Proposal: State-of-the-Art Healthcare System in Four States.

Dr. O. Aly
Computer Science

Abstract

The purpose of this proposal is to design a state-of-the-art healthcare system in four States of Colorado, Utah, Arizona, and New Mexico.   Big Data and Big Data Analytics have played significant roles in various industries including the healthcare industry.  The value that is driven by BDA can save lives and minimize costs for patients.  The project proposes a design to apply BD and BDA in the healthcare system across these identified four States.  Cloud computing is the most appropriate technology to deal with the large volume of healthcare data at the storage level as well as at the data processing level.  Due to the security issue of the cloud computing, the Virtual Private Cloud (VPC) will be used.  VPC provides a secure cloud environment using network traffic security setup using security groups and network access control lists.   The project requires other components to be fully implemented using the latest technology such as Hadoop and MapReduce for data streaming processing, machine learning for artificial intelligence, which will be used for Internet of Things (IoT).  The NoSQL database HBase and MongoDB will be used to handle the semi-structured data such as XML and unstructured data such as logs and images.  Spark will be used for real-time data processing which can be vital for urgent care and emergency services.  This project addresses the assumptions and limitations plus the justification for selecting these specific components.  All stakeholders in the healthcare sector including providers, insurers, pharmaceuticals, practitioners should cooperate and coordinate to facilitate the implementation process.  The rigid culture and silo pattern need to change for better healthcare which can save millions of dollars to the healthcare industry and provide excellent care to the patients at the same time.

Keywords: Big Data Analytics; Hadoop; Healthcare Big Data System; Spark.

Introduction

            In the age of Big Data (BD), information technology plays a significant role in the healthcare industry (HIMSS, 2018).  The role of information technology in healthcare The healthcare sector generates a massive amount of data every day to conform to standards and regulations (Alexandru, Alexandru, Coardos, & Tudora, 2016).  The generated Big Data has the potential to support many medical and healthcare operations including clinical decision support, disease surveillance and population health management (Alexandru et al., 2016). This project proposes a state-of-the-art integrated system for hospitals located in Arizona, Colorado, New Mexico, and Utah.  The system is based on the Hadoop ecosystem to help the hospitals maintain and improve human health via diagnosis, treatment and disease prevention. 

It begins with Big Data Analytics in Healthcare Overview, which covers the benefits and challenges of BD and BDA in the healthcare industry.  The overview also covers the various healthcare data sources for data analytics, in different formats such as semi-structured, e.g., XML and JSON, and unstructured, e.g., images and XRays.  The second section addresses the healthcare BDA Design Proposal Using Hadoop. This section covers various components.  The first component discusses the requirements for this design.  These requirements include state-of-the-art technology such as Hadoop/MapReduce, Spark, NoSQL database, Artificial Intelligence (AI), Internet of Things (IoT).  The project also covers various diagrams including the data flow diagram, a communication flow chart, and the overall system diagram.  The healthcare design system is bounded by regulation, policies, and governance such as HIPAA, that is also covered in this project.  The justification, limitation, and assumptions are also discussed.

Big Data Analytics in Healthcare Overview

BD and BDA are terms that have been used interchangeably and described as the next frontier for innovation, competitions, and productivity (Maltby, 2011; Manyika et al., 2011).  BD has a multi-V model with unique characteristics, such as volume referring to the large dataset, velocity refers to the speed of the computation as well as data generation, and variety referring to the various data types such as semi-structured and unstructured (Assunção, Calheiros, Bianchi, Netto, & Buyya, 2015; Hu, Wen, Chua, & Li, 2014).  BD is described as the next frontier for competition, innovation, and productivity.  Various industries including healthcare have taken this opportunity and applied BD and BDA in their business models (Manyika et al., 2011).  McKinsey Institute predicted $300 billion as a potential annual value to US healthcare (Manyika et al., 2011).  

The healthcare industry generated extensive data driven by keeping patients’ records, complying with regulations and policies, and patients care (Raghupathi & Raghupathi, 2014).  The current trend is digitalizing this explosive growth of the data in the age of Big Data (BD) and Big Data Analytics (BDA) (Raghupathi & Raghupathi, 2014).  BDA has made a revolution in healthcare by transforming the valuable information, knowledge to predict epidemics, cure diseases, improve quality of life, and avoid preventable deaths (Van-Dai, Chuan-Ming, & Nkabinde, 2016).  Various applications of BDA in healthcare include pervasive health, fraud detection, pharmaceutical discoveries, clinical decision support system, computer-aided diagnosis, and biomedical applications. 

Healthcare Big Data Benefits and Challenges

            Healthcare sector employs BDA in various aspect of healthcare such as detecting diseases at early stages, providing evidence-based medicine, minimizing doses of medication to avoid any side effects, and delivering useful medicine base on genetic analysis.  The use of BD and BDA can reduce the re-admission rate, and thereby the healthcare related costs for patients are reduced.  Healthcare BDA can be used to detect spreading diseases earlier before the disease gets spread using real-time analytics (Archenaa & Anita, 2015; Raghupathi & Raghupathi, 2014; Wang, Kung, & Byrd, 2018).   Example of the application of BDA in the healthcare system is Kaiser Permanente implementing a HealthConnect technique to ensure data exchange across all medical facilities and promote the use of electronic health records (Fox & Vaidyanathan, 2016).

            Despite the various benefits of BD and BDA in the healthcare sector, various challenges and issues are emerging from the application of BDA in healthcare.  The nature of the healthcare industry poses challenging to BDA (Groves, Kayyali, Knott, & Kuiken, 2016).  The episodic culture, the data puddles, and the IT leadership are the three significant challenges of the healthcare industry to apply BDA.  The episodic culture addresses the conservative culture of the healthcare and the lack of IT technologies mindset creating rigid culture.  Few providers have overcome this rigid culture and started to use the BDA technology. The data puddles reflect the silo nature of healthcare.  Silo is described as one of the most significant flaws in the healthcare sector (Wicklund, 2014).  The use of the technology properly is lacking in healthcare sector resulting in making the industry fall behind other industries. All silos use their methods to collect data from labs, diagnosis, radiology, emergency, case management and so forth.  The IT leadership is another challenge is caused by the rigid culture of the healthcare industry.  The lack of the latest technologies among the IT leadership in the healthcare industry is a severe problem. 

Healthcare Data Sources for Data Analytics

            The current healthcare data is collected from clinical and non-clinical sources (InformationBuilders, 2018; Van-Dai et al., 2016; Zia & Khan, 2017).  The electronic healthcare records are digital copies of the medical history of the patients.  It contains a variety of data relevant to the care of the patients such as demographics, medical problems, medications, body mass index, medical history, laboratory test data, radiology reports, clinical notes, and payment information. These electronic healthcare records are the most important data in healthcare data analytics, because it provides effective and efficient methods for the providers and organizations to share data (Botta, de Donato, Persico, & Pescapé, 2016; Palanisamy & Thirunavukarasu, 2017; Van-Dai et al., 2016; Wang et al., 2018).  

The biomedical imaging data plays a crucial role in healthcare data to aid disease monitoring, treatment planning and prognosis.  This data can be used to generate quantitative information and make inferences from the images that can provide insights into a medical condition.  The images analytics is more complicated due to the noises of the data associated with the images and is one of the significant limitations with biomedical analysis (Ji, Ganchev, O’Droma, Zhang, & Zhang, 2014; Malik & Sangwan, 2015; Van-Dai et al., 2016). 

The sensing data is ubiquitous in the medical domain both for real-time and for historical data analysis.  The sensing data involve several forms of medical data collection instruments such as the electrocardiogram (ECG) and electroencephalogram (EEG) which are vital sensors to collect signals from various parts of the human body.  The sensing data plays a significant role for intensive care units (ICU) and real-time remote monitoring of patients with specific conditions such as diabetes or high blood pressure.  The real-time and long-term analysis of various trends and treatment in remote monitoring programs can help providers monitor the state of those patients with certain conditions(Van-Dai et al., 2016). 

The biomedical signals are collected from many sources such as hearts, blood pressure, oxygen saturation levels, blood glucose, nerve conduction, and brain activity.  Examples of biomedical signals include electroneurogram (ENG), electromyogram (EMG), electrocardiogram (ECG), electroencephalogram (EEG), electrogastrogram (EGG), and phonocardiogram (PCG).  The biomedical signals real-time analytics will provide better management of chronic diseases, earlier detection of adverse events such as heart attacks, and strokes and earlier diagnosis of disease.   These biomedical signals can be discrete or continuous based on the kind of care or severity of a particular pathological condition (Malik & Sangwan, 2015; Van-Dai et al., 2016).

The genomic data analysis helps better understand the relationship between various genetic, mutations, and disease conditions. It has great potentials in the development of various gene therapies to cure certain conditions.  Furthermore, the genomic data analytics can assist in translating genetic discoveries into personalized medicine practice (Liang & Kelemen, 2016; Luo, Wu, Gopukumar, & Zhao, 2016; Palanisamy & Thirunavukarasu, 2017; Van-Dai et al., 2016).

The clinical text data analytics using the data mining are the transformation process of the information from clinical notes stored in unstructured data format to useful patterns.  The manual coding of clinical notes is costly and time-consuming, because of their unstructured nature, heterogeneity, different format, and context across different patients and practitioners.  Various methods such as natural language processing (NLP) and information retrieval can be used to extract useful knowledge from large volume of clinical text and automatically encoding clinical information in a timely manner (Ghani, Zheng, Wei, & Friedman, 2014; Sun & Reddy, 2013; Van-Dai et al., 2016).

The social network healthcare data analytics is based on various kinds of collected social media sources such as social networking sites, e.g., Facebook, Twitter, Web Logs, to discover new patterns and knowledge that can be leveraged to model and predict global health trends such as outbreaks of infections epidemics (InformationBuilders, 2018; Luo et al., 2016; Van-Dai et al., 2016; Zia & Khan, 2017). Figure 1 shows a summary of these healthcare data sources.


Figure 1.  Healthcare Data Sources.

Healthcare Big Data Analytics Design Proposal Using Hadoop

            The implementation of BDA in the hospitals within the four States aims to improve the safety of the patient, the clinical outcomes, promoting wellness and disease management (Alexandru et al., 2016; HIMSS, 2018).  The BDA system will take advantages of the large healthcare-generated data to provide various applied analytical disciplines such as statistical, contextual, quantitative, predictive and cognitive spectrums (Alexandru et al., 2016; HIMSS, 2018).  These applied analytical disciplines will drive the fact-based decision making for planning management and learning in hospitals (Alexandru et al., 2016; HIMSS, 2018). 

            The proposal begins with the requirements, followed by the data flow diagram, the communication flowcharts, and the overall system diagram.  The proposal addresses the regulations, policies, and governance for the medical system.  The limitation and assumptions are also addressed in this proposal, followed by the justification for the overall design.

1.      Basic Design Requirements

The basic requirement for the implementation of this proposal included not only the tools and required software, but also the training at all levels from staff, to nurses, to clinicians, to patients.  The list of the requirements is divided into system requirement, implementation requirement, and training requirements. 

1.1 Cloud Computing Technology Adoption Requirement

The volume is one of the significant characteristics of BD, especially in the healthcare industry (Manyika et al., 2011).  Based on the challenges addressed earlier when dealing with BD and BDA in healthcare, the system requirements cannot be met using the traditional on-premise technology center, as it cannot handle the intensive computation requirements of BD, and the storage requirement for all the medical information from various hospitals from the four States (Hu et al., 2014). Thus, the cloud computing environment is found to be more appropriate and a solution for the implantation of this proposal.  Cloud computing plays a significant role in BDA (Assunção et al., 2015).  The massive computation and storage requirement of BDA brings the critical need for cloud computing emerging technology (Mehmood, Natgunanathan, Xiang, Hua, & Guo, 2016).  Cloud computing offers various benefits such as cost reduction, elasticity, pay per use, availability, reliability, and maintainability (Gupta, Gupta, & Mohania, 2012; Kritikos, Kirkham, Kryza, & Massonet, 2017).  However, although cloud computing offers various benefits, it has security and privacy issues using the standard deployment models of public cloud, private cloud, hybrid cloud, and community cloud.  Thus, one of the major requirements is to adopt the Virtual Private Cloud as it has been regarded as the most prominent approach to trusted computing technology (Abdul, Jena, Prasad, & Balraju, 2014).

 1.2 Security Requirement

Cloud computing has been facing various threats (Cloud Security Alliance, 2013, 2016, 2017).   Records showed that over the last three years from 2015 until 2017, the number of breaches, lost medical records, and settlements of fines are staggering (Thompson, 2017).  The Office of Civil Rights (OCR) issued 22 resolution agreements, requiring monetary settlements approaching $36 million (Thompson, 2017).  Table 1 shows the data categories and the total for each year. 

Table 1.  Approximation of Records Lost by Category Disclosed on HHS.gov (Thompson, 2017)

Furthermore, a recent report published by HIPAA showed the first three months of 2018 experienced 77 healthcare data breaches reported to the OCR (HIPAA, 2018d).  In the second quarter of 2018, at least 3.14 million healthcare records were exposed (HIPAA, 2018a).  In the third quarter of 2018, 4.39 million records exposed in 117 breaches (HIPAA, 2018c).

Thus, the protection of the patients’ private information requires the technology to extract, analyze, and correlated potentially sensitive dataset (HIPAA, 2018b).  The implementation of BDA requires security measures and safeguards to protect the privacy of the patients in the healthcare industry (HIPAA, 2018b).  Sensitive data should be encrypted to prevent the exposure of data in the event of theft (Abernathy & McMillan, 2016).  The security requirements involve security at the VPC cloud deployment model as well as at the local hospitals in each State (Regola & Chawla, 2013).  The security at the VPC cloud deployment model should involve the implementation of security groups and network access control lists to allow access to the right individuals to the right applications and patients’ records.  Security group in VPC acts as the first line of defense firewall for the associated instances of the VPC (McKelvey, Curran, Gordon, Devlin, & Johnston, 2015).  The network access control lists act as the second layer of defense firewall for the associated subnets, controlling the inbound and the outbound traffic at the subnet level (McKelvey et al., 2015). 

The security at the local hospitals level in each State is mandatory to protect patients’ records and comply with HIPAA regulations (Regola & Chawla, 2013).  The medical equipment must be secured with authentication and authorization techniques so that only the medical staff, nurses and clinicians have access to the medical devices based on their role.  The general access should be prohibited as every member of the hospital has a different role with different responses.  The encryption should be used to hide the meaning or intent of communication from unintended users (Stewart, Chapple, & Gibson, 2015).   The encryption is an essential element in security control especially for the data in transit (Stewart et al., 2015).  The hospital in all four State should implement the encryption security control using the same type of the encryption across the hospitals such as PKI, cryptographic application, and cryptography and symmetric key algorithm (Stewart et al., 2015).

The system requirements should also include the identity management systems that can correspond with the hospitals in each state. The identity management system provides authentication and authorization techniques allowing only those who should have access to the patients’ medical records.  The proposal requires the implementation of various encryption techniques such as secure socket layer (SSL), Transport Layer Security (TLS), and Internet Protocol Security (IPSec) to protect information transferred in public network (Zhang, R. & Liu, 2010).  

 1.3 Hadoop Implementation for Data Stream Processing Requirement

While the velocity of BD leads to the speed of generating large volume of data and requires speed in data processing (Hu et al., 2014), the variety of the data requires specific technology capabilities to handle various types of dataset such as structured, semi-structured, and unstructured data (Bansal, Deshpande, Ghare, Dhikale, & Bodkhe, 2014; Hu et al., 2014).  Hadoop ecosystem is found to be the most appropriate system that is required to implement BDA (Bansal et al., 2014; Dhotre, Shimpi, Suryawanshi, & Sanghati, 2015).  The implementation requirements include various technologies and various tools.  This section covers various components that are required when implementing Hadoop technology in the four States for healthcare BDA system.

Hadoop has three significant limitations, which must be addressed in this design.  The first limitation is the lack of technical support and document for open source Hadoop (Guo, 2013).   Thus, this design requires the Enterprise Edition of Hadoop to get around this limitation using Cloudera, Hortonworks, and MapR (Guo, 2013). The final decision for which product will be determined by the cost analysis team.  The second limitation is that Hadoop is not optimal for real-time data processing (Guo, 2013). The solution for this limitation will require the integration of real-time streaming program as Spark or Storm or Kafka (Guo, 2013; Palanisamy & Thirunavukarasu, 2017). This requirement of integrating Spark is discussed below in a separate requirement for this design (Guo, 2013). The third limitation is that Hadoop is not a good fit for large graph dataset (Guo, 2013). The solution for this limitation requires the integration of GraphLab which is also discussed below in a separate requirement for this design.

1.3.1 Hadoop Ecosystem for Data Processing

Hadoop technologies have been in the front-runner for Big Data application (Bansal et al., 2014; Chrimes, Zamani, Moa, & Kuo, 2018).  Hadoop ecosystem will be part of the implementation requirement as it is proven to serve well with intensive computation using large datasets (Raghupathi & Raghupathi, 2014; Wang et al., 2018).   The implementation of Hadoop technology will be performed in the VPC deployment model.  The Hadoop version that is required is version 2.x to include YARN for resource management  (Karanth, 2014).  Hadoop 2.x also include HDFS snapshots to provide a read-only image of the entire or a particular subset of a filesystem to protect against user errors, backup, and disaster recovery (Karanth, 2014). The Hadoop platform can be implemented to gain more insight into various areas (Raghupathi & Raghupathi, 2014; Wang et al., 2018). Hadoop ecosystem involves Hadoop Distributed File System, MapReduce, and NoSQL database such as HBase, and Hive to handle a large volume of dataset using various algorithms and machine learning to extract values from the medical records that are structured, semi-structured, and unstructured (Raghupathi & Raghupathi, 2014; Wang et al., 2018).  Other components to support Hadoop ecosystem include Oozie for workflow, Pig for scripting, and Mahout for machine learning which is part of the artificial intelligence (AI) (Ankam, 2016; Karanth, 2014).  Hadoop ecosystem will also include Flume for log collector, Sqoop for data exchange, and Zookeeper for coordination (Ankam, 2016; Karanth, 2014).  HCatalog is a required component to manage the metadata in Hadoop (Ankam, 2016; Karanth, 2014).   Figure 2 shows the Hadoop ecosystem before integrating Spark for real-time analytics.


Figure 2.  Hadoop Architecture Overview (Alguliyev & Imamverdiyev, 2014).

1.3.2 Hadoop-specific File Format for Splittable and Agnostic Compression

The ability of splittable files plays a significant role during the data processing (Grover, Malaska, Seidman, & Shapira, 2015).  Therefore, Hadoop-specific file formats of SequenceFile, and Serialization formats like Avro, and columnar formats such as RCFile and Parquet should be used because these files share two essential characteristics that are essential for Hadoop applications: splittable compression and agnostic compression (Grover et al., 2015).  Hadoop allows large files to be split for input to MapReduce and other types of jobs, which is required for parallel processing and an essential key to leveraging data locality feature of Hadoop (Grover et al., 2015). The agnostic compression is required to compress data using any compression codec without readers having to know the codec because the codec is stored in the header metadata of the file format (Grover et al., 2015).  Figure 3 summarizes the three Hadoop file types with the two common characteristics.  


Figure 3. Three Hadoop File Types with the Two Common Characteristics.  

1.3.3 XML and JSON Use in Hadoop

The clinical data include semi-structured formats such as XML and JSON.  The split process of XML and JSON is not straightforward and can present unique challenges using Hadoop (Grover et al., 2015).  Since and Hadoop does not provide a built-in InputFormat for either format of XML and JSON (Grover et al., 2015).  Furthermore, JSON presents more challenges to Hadoop than XML because no token is available to mark the beginning or end of a record (Grover et al., 2015). When using these file format, two primary considerations must be taken.  The container format such as Avro should be used because Avro provides a compact and efficient method to store and process the data when transforming the data into Avro (Grover et al., 2015).  A library for processing XML or JSON should be designed (Grover et al., 2015).  XMLLoader in PiggyBank library for Pig is an example when using XML data type.  The Elephant Bird project is an example of a JSON data type file (Grover et al., 2015). 

1.4 HBase and MongoDB NoSQL Database Integration Requirement

In the age of BD and BDA, the traditional data store is found inadequate to handle not only the large volume of the dataset but also the various types of the data format such as unstructured and semi-structured (Hu et al., 2014).   Thus, Not Only SQL (NoSQL) database is emerged to meet the requirement of the BDA.  These NoSQL data stores are used for modern, and scalable databases (Sahafizadeh & Nematbakhsh, 2015).  The scalability feature of the NoSQL data stores enables the systems to increase the throughput when the demand increases during the processing of the data (Sahafizadeh & Nematbakhsh, 2015).  The platform can incorporate two scalability types to support the large volume of the datasets; the horizontal and vertical scalability.  The horizontal scaling allows the distribution of the workload across many servers and nodes to increase the throughput, while the vertical scaling requires more processors, more memories and faster hardware to be installed on a single server (Sahafizadeh & Nematbakhsh, 2015). 

NoSQL data stores have various types such as MongoDB, CouchDB, Redis, Voldemort, Cassandra, Big Table, Riak, HBase, Hypertable, ZooKeeper, Vertica, Neo4j, db4o, and DynamoDB.  These data stores are categorized into four types: document-oriented, column-oriented or column-family stores, graph database, and key-value (EMC, 2015; Hashem et al., 2015). The document-oriented data store can store and retrieve collections of data and documents using complex data forms in various formats such as XML and JSON as well as PDF and MS word (EMC, 2015; Hashem et al., 2015).  MongoDB and CouchDB are examples of document-oriented data stores (EMC, 2015; Hashem et al., 2015).  The column-oriented data store can store the content in columns aside from rows with the attributes of the columns stored contiguously (Hashem et al., 2015).  This type of datastore can store and render blog entries, tags, and feedback (Hashem et al., 2015).  Cassandra, DynamoDB, and HBase are examples of column-oriented data stores (EMC, 2015; Hashem et al., 2015).  The key-value can store and scale large volumes of data and contains value and a key to access the value (EMC, 2015; Hashem et al., 2015).  The value can be complicated, but this type of data stores can be useful in storing the user’s login ID as the key referencing the value of patients.  Redis and Riak are examples of the key-value NoSQL data store (Alexandru et al., 2016).  Each of these NoSQL data stores has its limitations and advantages.  The graph NoSQL database can store and represent data using graph models with nodes, edges, and properties related to one another through relations which will be useful for unstructured medical data such as images, and lab results. Neo4j is an example of this type of graph NoSQL database (Hashem et al., 2015).  Figure 4 summarizes these NoSQL data stores, data types for storage, and examples.

Figure 4.  Big Data Analytics NoSQL Data Store Types.

The proposed design requires one or more NoSQL data stores to meet the requirement of BDA using Hadoop environment for this healthcare BDA system.  Healthcare big data has unique characteristics which must be addressed when selecting the data store and consideration must be taken for the various types of data.   HBase and HDFS are the commonly used storage manager in the Hadoop environment (Grover et al., 2015).  HBase is a column-oriented data store which will be used to store multi-structured data (Archenaa & Anita, 2015).  HBase sets on top of HDFS in the Hadoop ecosystem framework (Raghupathi & Raghupathi, 2014).   

MongoDB will also be used to store the semi-structured data set such as XML and JSON. Metadata for HBase data schema, to improve the accessibility and readability of HBase data schema (Luo et al., 2016).  Riak will be used for a key-value dataset which can be used for the dictionary, hash tables and associative arrays that can be used for login and user ID information for patients as well as for providers and clinicians (Klein et al., 2015).  Neo4j NoSQL will be used to store the images with nodes and edges such as Lab images, XRays (Alexandru et al., 2016).

The proposed healthcare system has a logical data model and query patterns that need to be supported by NoSQL databases (Klein et al., 2015). The data model will include reading the medical test results for patients is a core function used to populate the user interface. It will also include a strong replica consistency when a new medical result is written for a patient.  Providers can make patient care decisions using these records.  All providers will be able to see the same information within the hospital systems in the four States, whether they are at the same site as the patients, or providing telemedicine support from another location. 

The logical data model includes mapping the application-specific model into the particular data model, indexing, and query language capabilities of each database.  The HL7 Fast Healthcare Interoperability Resources (FHIR) is used as the logical data model for records analysis.  The patient’s data such as demographic information such as names, addresses, and telephone will be modeled using the FHIR Patient Resources such as result quantity, and result units (Klein et al., 2015). 

1.5 Spark Integration for Real-Time Data Processing Requirement

While the architecture of Hadoop ecosystem has been designed in various scenarios for data storage, data management statistical analysis, and statistical association between various data sources distributed computing and batch processing, this proposal requires real-time data processing which cannot be met by Hadoop alone (Basu, 2014).  Real-time analytics will tremendous value to the healthcare proposed system.  Thus, Apache Spark is another component which is required to implement this proposal (Basu, 2014).  Spark allows in-memory processing for fast response time, bypassing MapReduce operations (Basu, 2014).  With Spark integration with Hadoop, stream processing, machine learning, interactive analytics, and data integration will be possible (Scott, 2015).  Spark will run on top of Hadoop to benefit from YARN and the underlying storage of HDFS, HBase and other Hadoop ecosystem building blocks (Scott, 2015).  Figure 5 shows the core engines of the Spark.


Figure 5. Spark Core Engines (Scott, 2015).

 1.6 Big Healthcare Data Visualization Requirement

Visualization is one of the most powerful presentations of the data (Jayasingh, Patra, & Mahesh, 2016).  It helps in viewing the data in a more meaningful way in the form of graphs, images, pie charts that can be understood easily.  It helps in synthesizing a large volume of data set such as healthcare data to get at the core of such raw big data and convey the key points from the data for insight (Meyer, 2018).  Some of the commercial visualization tools include Tableau, Spotfire, QlikView, and Adobe Illustrator.  However, the most commonly used visualization tools in healthcare include Tableau, PowerBI, and QlikView. This healthcare design proposal will utilize Tableau. 

Healthcare providers are successfully transforming data from information to insight using Tableau software.  Healthcare organizations can utilize three approaches to get more from the healthcare datasets.  The first approach is to break the data access by empowering the departments in healthcare to explore their data.  The second approach is to uncover answers with data from multiple systems to reveal trends and outliers.  The third approach is to share insights with executives, providers, and others to drive collaboration (Tableau, 2011).  It has several advantages including the interactive visualization using drag-n-drop techniques, handling large amounts of data and millions of rows of data with ease, and other scripts such as Python can be integrated with Tableau (absentdata.com, 2018).  It also provides mobile support and responsive dashboard.  The limitation of Tableau is that it requires substantial training to fully master the platform, among other limitations including lack of automatic refreshing,  conditional formatting and 16-column table limit (absentdata.com, 2018).   Figure 6 shows the Patient Cycle Time data visualization using Tableau software.


Figure 6. Patient Cycle Time Data Visualization Example (Tableau, 2011).

1.7 Artificial Intelligence Integration Requirement

Artificial Intelligence is a computational technique allowing machines to perform cognitive functions such as acting or reacting to input, similar to the way humans do (Patrizio, 2018).  The traditional computing applications react to data, and the reactions and responses must be hand-coded with human intervention (Patrizio, 2018).  The AI systems are continuously in a flux mode changing their behavior to accommodate any changes in the results and modifying their reactions accordingly (Patrizio, 2018). The AI techniques can include video recognition, natural language processing, speech recognition, machine learning engines, and automation (Mills, 2018)

Healthcare system can benefit from BDA integration with Artificial Intelligence (AI) (Bresnick, 2018).  Since AI can play a significant role in BDA in the healthcare system, this proposal suggests the implementation of machine learning which is part of the AI to deploy more precise and impactful interventions at the right time in the care of patients (Bresnick, 2018).  The application of AI in the proposed design requires machine learning (Patrizio, 2018).  Since the data used in the AI and machine learning is already cleaned after removing the duplicates and unnecessary data, AI can take advantages of these filtered data leading to many healthcare breakthroughs such as genomic and proteomic experiments to enable personalized medicine (Kersting & Meyer, 2018).

The healthcare industry has been utilizing AI, machine learning (ML) and data mining (DM) to extract value from BD by transforming the large medical datasets into actionable knowledge performing predictive and prescriptive analytics (Palanisamy & Thirunavukarasu, 2017).   The ML will be used to utilize the AI to develop sophisticated algorithm processing massive medical datasets including the structured, unstructured, and semi-structured data performing advanced analytics (Palanisamy & Thirunavukarasu, 2017).  Apache Mahout, which is an open source for ML, will be integrated with Hadoop to facilitate the execution of scalable machine learning algorithms, offering various techniques such as recommendation, classification, and clustering (Palanisamy & Thirunavukarasu, 2017).

1.8 Internet of Things (IoT) Integration Requirement

Internet of Things (IoT) refers to the increased connected devices with IP addresses which were not common years ago  (Anand & Clarice, 2015; Thompson, 2017).  These connected devices collect and use the IP addresses to transmit information (Thompson, 2017).    Providers in healthcare take advantages of the collected information to find new treatment methods and increase efficiency (Thompson, 2017).

The implementation of IoT will involve various technologies including frequency identification (RFID), near field communication (NFC), machine to machine (M2M), wireless sensor network (WSM), and addressing schemes (AS) (IPv6 addresses) (Anand & Clarice, 2015; Kumari, 2017).  The implementation of IoT requires machine learning and algorithm to find patterns, correlations, and anomalies that have the potential of enabling healthcare improvements (O’Brien, 2016).  Machine learning is a critical component of artificial intelligence. Thus, the success of IoT depends on AI implementation. 

1.9 Training Requirement

This design proposal requires various training to IT professionals, providers and clinician and those who will be using this healthcare ecosystem depending on their role (Alexandru et al., 2016; Archenaa & Anita, 2015). Each component of this ecosystem should have training such as training for Hadoop/MapReduce, Spark, Security, and so forth.  The training will play a significant role in the success of this design implementation to apply BD and BDA in the healthcare system in the four States of Colorado, Utah, Arizona, and New Mexico.   Patients should be considered in training for remote monitoring programs such as blood sugar monitoring, and blood pressure monitoring applications.  The senior generation might face some challenges.  However, with the technical support, this challenge can be alleviated.

2.      Data Flow Diagram

            This section discusses the data flow for the proposed design for the healthcare ecosystem for the application of BDA. 

2.1 HBase Cluster and HDFS Data Flow

HBase stores data into table schema and specify the column family (Yang, Liu, Hsu, Lu, & Chu, 2013).  The table schema must be predefined, and the column families must be specified.  New columns can be added to families as required making the schema-flexible and can adapt to changing application requirements (Yang et al., 2013).   HBase is developed in a similar way like HDFS with a NameNode and slave nodes, and MapReduce with JobTracker and TaskTracker slaves (Yang et al., 2013).  HBase will play a vital role in the cluster environment of Hadoop system.  In HBase master node called HMaster will manage the cluster, and region servers store portions of the tables and perform the work on the data. The HMaster reflects the Master Server and is responsible for monitoring all RegionServer instances in the cluster and is the interface for all metadata changes.  This Master executes on the NameNode in the distributed cluster Hadoop environment.  The HRegionServer represents the RegionServer and is responsible for serving and managing regions.  The RegionServer runs on a DataNode in the distributed cluster Hadoop environment.   The ZooKeeper will assist other machines are selected within the cluster as HMaster in case of a failure, unlike HDFS framework where NameNode has a single point of availability issue.  Thus, the data flow between the DataNodes and the NameNodes when integrating HBase on top of HDFS is shown in Figure 7.  


Figure 7.  HBase Cluster Data Flow (Yang et al., 2013).

2.2 HBase and MongoDB with Hadoop/MapReduce and HDFS Data Flow

The healthcare system integrates four significant components such as HBase, MongoDB, MapReduce, and Visualization.  HBase is used for data storage, MongoDB is used for metadata, MapReduce using Hadoop for computation, and data visualization tool.  The signal data will be stored in HBase while the metadata and other clinical data will be stored in MongoDB.  The data stored in both HBase and MongoDB will be accessible from the Hadoop/MapReduce environment for processing and the data visualization layer as well.   One master node and eight slave nodes, and several supporting servers.   The data will be imported to Hadoop and processed via MapReduce.  The result of the computational process will be viewed through a data visualization tool such as Tableau.  Figure 8 shows the data flow between these four components of the proposed healthcare ecosystem.


Figure 8.  The Proposed Data Flow Between Hadoop/MapReduce and Other Databases.

2.3 XML Design Flow Using ETL Process with MongoDB 

Healthcare records have various types of data from structured, semi-structured to unstructured (Luo et al., 2016).   Some of these healthcare records are XML-based records in the semi-structured format using tags.  XML stands for eXtensible Markup Language (Fawcett, Ayers, & Quin, 2012).  Healthcare sector can drive value from these XML documents which reflect semi-structured data (Aravind & Agrawal, 2014).  Example of this XML-based patients records shows in Figure 9.


Figure 9.  Example of the Patient’s Electronic Health Record (HL7, 2011)

XML-based records need to get ingested into Hadoop system for the analytical purpose to derive value from this semi-structured XML-based data.   However, Hadoop does not offer a standard XML “RecordReader” (Lublinsky, Smith, & Yakubovich, 2013).  XML is one of the standard file formats for MapReduce.  Various approaches can be used to process XML semi-structured data.  The process of ETL (Extract, Transform and Load) can be used to process XML data in Hadoop.  MongoDB is a NoSQL database which is required in this design proposal.  It handles XML document-oriented type. 

The ETL process in MongoDB starts with the extract and transform.  The MongoDB application provides the ability to map the XML elements within the document to the downstream data structure.  The application supports the ability to unwind simple arrays or present embedded documents using appropriate data relationships such as one-to-one (1:1), one-to-many (1: M), or many-to-many (M: M) (MongoDB, 2018).  The application infers the schema information by examining a subset of documents within target collections.  Organizations can add fields to the discovered data model that may not have been present within the subset of documents used for schema inference.  The application infers information about the existing indexes for collections to be queried.  It prompts or warns of queries that do not contain any indexes fields.  The application can return a subset of fields from documents using query projections.  For queries against MongoDB Replica Sets, the application supports the ability to specify custom MongoDB Read Preferences for individual query operations.  The application then infers information about sharded cluster deployment and note the shard key fields for each sharded collection.  For queries against MongoDB Sharded Clusters, the application warns against queries that do not use proper query isolation.  Broadcast queries in a sharded cluster can have a negative impact on database performance (MongoDB, 2018). 

The load process in MongoDB is performed after the extract and transform process.  The application supports the ability to write data to any MongoDB deployment whether a single node, replica set or sharded cluster.  For writes to a MongoDB Sharded Cluster, the application informs or display an error message to the user if XML documents do not contain a shard key.  A custom WriteConcern can be used for any write operations to a running MongoDB deployment.  For the bulk loading operations, writing documents in batches using the insert() method can be used using the MongoDB 2.6 version or above, which supports the bulk update database command. For the bulk loading into a MongoDB sharded deployment, the bulk insert into a sharded collection is supported, including the pre-splitting of the collections’ shard key and inserting via multiple mongos processes.   Figure 10 shows this ETL process for XML-based patients records using MongoDB.


Figure 10.  The Proposed XML ETL Process in MongoDB.

2.4 Real-Time Streaming Spark Data Flow

Real-Time streaming can be implemented using any real-time streaming program such as Spark, Kafka, or Storm.  This healthcare design proposal will integrate Spark open-source program for the real-time streaming data such as sensing data, from various sources such as intensive care units, remote monitoring programs, biomedical signals. The data from various sources will be flow into Spark for analytics and then imported to the data storage systems.  Figure 11 illustrates the data flow for real-time streaming analytics.

Figure 11.  The Proposed Spark Data Flow.

3.      Communication Workflow

The communication flow involves the stakeholders involves in the healthcare system. These stakeholders include providers, insurer, pharmaceutical, and IT professionals and practitioners.  The communication flow is centered with the patient-centric healthcare system using the cloud computing technology for the four States of Colorado, Utah, Arizona, and New Mexico.  These stakeholders are from these states.  The patient-centric healthcare system is the central point for communication.  The patients communicate with the central system using the web-based platform, and clinical forums as needed.  The providers communicate with the patient-centric healthcare system using resource usages, patient feedback, and hospital visits, and services details.  The insurers communicate with the central system using claims database, and census and societal data. The pharmaceutical vendors will communicate with the central system using prescription and drug reports which can be retrieved by the providers from anywhere in these four states. The IT professionals and practitioners will communicate with the central system for data streaming, medical records, genomics, and all omics data analysis and reporting.  Figure 12 shows the communication flow between these stakeholders and the central system in the cloud that can be accessed from any of these identified four States.

Figure 12.  The Proposed Patient-Centric Healthcare System Communication Flow.

4.      Overall System Diagram

The overall system represents the state-of-the-art healthcare ecosystem system that utilizes the latest technology for healthcare Big Data Analytics. The system is bounded by the regulations and policy such as HIPAA to ensure the protection of the patients’ privacy across the various layers of the overall system.  The system integrated components include the Hadoop latest technology with MapReduce and HDFS.  The data government layer is the bottom layer which contains three major building blocks:  master data management (MDM), data life-cycle management (DLM) components, and data security and privacy management.  The MDM component is responsible for data completeness, accuracy, and availability, while the DLM is responsible for archiving the data, maintaining the data warehousing, data deletion, and disposal.   The data security and privacy management building block is responsible for sensitive data discovery, vulnerability and configuration assessment, security policies application, auditing and compliance reporting, activity monitoring, identify and access management, and protecting data.  The top layers include data layer, data aggregation layer, data analytics layer, and information exploration layer.  The data layer is responsible for data sources and content format, while the data aggregation layer involves various components from data acquisition process, transformation engines, and data storage area using Hadoop, HDFS, NoSQL databases such as MongoDB and HBase.  The data analytics layer involves the Hadoop/MapReduce mapping process, stream computing, real-time streaming, and database analytics.  AI and IoT are part of the data analytics layer.  The information exploration layer involves the data visualization layer, visualization reporting, real-time monitoring using healthcare dashboard, and clinical decision support. Figure 13 illustrates the overall system diagram with these layers.


Figure 13.  The Proposed Healthcare Overall System Diagram.

5.      Regulations, Policies, and Governance for the Medical Industry

Healthcare data must be stored in a secure storage area to protect the information and the privacy of patients (Liveri, Sarri, & Skouloudi, 2015).  When the healthcare industry fails to comply with the regulation and policies, the fines and the cost can cause financial stress on the industry (Thompson, 2017).  Records showed that the healthcare industry paid millions of dollars in fines.  The Advocate Health Care in suburban Chicago agreed to the most significant figure as of August 2016 with a total amount of $5.55 million (Thompson, 2017).  Memorial Health System in southern Florida became the second entity to top of paying $5 million (Thompson, 2017). Table 2 shows the five most substantial fines posted to the Office of Civil Rights (OCR) site. 

Table 2.  Five Largest Fines Posted to OCR Web Site (Thompson, 2017)

The hospitals must adhere to the data privacy regulations and legislative rules carefully to protect the patients’ medical records from data breaches (HIPAA).  The proper security policy and risk management must be implemented to ensure the protection of private information as well to minimize the impact of confidential data in case of loss or theft (HIPAA, 2018a, 2018c; Salido, 2010).  The healthcare system design proposal requires the implementation of a system for those hospitals or providers who are not compliant with the regulation and policies and the escalation path (Salido, 2010).  This design proposal implements four major principles as the best practice to comply with required policies and regulation and protect the confidential data assets of the patients and users (Salido, 2010).  The first principle is to honor policies throughout private data life (Salido, 2010).  The second principle for best practice in healthcare design system is to minimize the risk of unauthorized access or misuse of confidential data (Salido, 2010).  The third principle is to minimize the impact of confidential data loss, while the fourth principle is to document appropriate controls and demonstrate their effectiveness (Salido, 2010).  Figure 14 shows these four principles which this healthcare design proposal adheres to ensure protection healthcare data from unauthorized users and comply with the required regulation and policies. 


Figure 14.  Healthcare Design Proposal Four Principles.

6.      Assumptions and Limitations

This design proposal assumes that the healthcare sector in the four States will support the application of BD and BDA across these fours States.  The support includes investment in the proper technology, proper tools and proper training based on the requirements of this design proposal.  The proposal also assumes that the stakeholders including the providers, patients, insurer, pharmaceutical vendors, and practitioners will welcome the application of BDA to take advantages of it to provide efficient healthcare services, increase productivity, decrease costs for healthcare sector as well as for patients, and provide better care to patients.

            The limitation of this proposal is the timeframe that is required to implement it.  With the support of the healthcare sector from these four States, the implementation can be expedited.  However, the silo and the rigid culture of the healthcare may interfere with the implementation which can take longer than expected.   The initial implementation might face unexpected challenges. However, these unexpected challenges will come from the lack of experienced IT professionals and managers in the field of BD and BDA domain.  This design proposal will be enhanced based on the observations from the first few months of the implementation. 

7.      The justification for Overall Design

            The traditional database and analytical systems are found inadequate when dealing with healthcare data in the age of BDA.  The characteristics of the healthcare datasets including the large volume medical records, the variety of the dataset from structured, to semi-structured, to the unstructured dataset, and the velocity of the dataset generation and the data processing requires technology such as cloud computing (Fernández et al., 2014). Cloud computing is found the best solution when dealing with BD and BDA to address the challenges of BD storage, and the intensive-computing processing demands (Alexandru et al., 2016; Hashem et al., 2015).  The healthcare system in the four States will shift the communication technology and services for applications across the hospitals and providers (Hashem et al., 2015).  Some of the advantages of cloud computing adoption include virtualized resources, parallel processing, security and data service integration with scalable data storage (Hashem et al., 2015).  With the cloud computing technology, the healthcare sector in the four States will reduce the cost, and increase the efficiency (Hashem et al., 2015).  When quick access to critical data for patients care is required quickly, the mobility of accessing the data from anywhere is one of the most significant advantages of the cloud computing adoption as recommended by this proposed design  (Carutasu, Botezatu, Botezatu, & Pirnau, 2016). The benefits of cloud computing include technological benefits such as visualization, multi-tenancy, data and storage, security and privacy compliance (Chang, 2015).  The cloud computing also offers economic benefits such as pay per use, cost reduction, return on investment (Chang, 2015).  The non-functional benefits of the cloud computing cover the elasticity, quality of service, reliability, and availability (Chang, 2015).  Thus, the proposed design justifies the use of cloud computing for several benefits as cloud computing is proven the best technology for BDA especially for healthcare data analytics.

            Although cloud computing offers several benefits to the proposed healthcare system, cloud computing has been suffering from security and privacy concerns (Balasubramanian & Mala, 2015; Kazim & Zhu, 2015).  The security concerns involve risk areas such as external data storage, dependency on the public internet, lack of control, multi-tenancy and integration with internal security (Hashizume, Rosado, Fernández-medina, & Fernandez, 2013). The traditional security techniques such as identity, authentication, and authorization are not sufficient for cloud computing environments in their current forms using the standard deployment models of the public cloud, and private cloud  (Hashizume et al., 2013).  The increasing trend in the security threats data breaches, and the current deployment models of private and public clouds, which are not meeting the security challenges, have triggered the need for another deployment to ensure security and privacy protection.  Thus, the VPC deployment model which is a new deployment model of cloud computing technology (Botta et al., 2016; Sultan, 2010; Venkatesan, 2012; Zhang, Q., Cheng, & Boutaba, 2010).  The VPC is taking advantages of technologies such as a virtual private network (VPN) which will allow hospitals and providers to set up their required network settings such as security (Botta et al., 2016; Sultan, 2010; Venkatesan, 2012; Zhang, Q. et al., 2010).  The VPC deployment model will have dedicated resources with the VPN to provide the required isolation for security to protect the patients’ information (Botta et al., 2016; Sultan, 2010; Venkatesan, 2012; Zhang, Q. et al., 2010). Thus, this proposed design will be using VPC cloud computing deployment mode to store and use healthcare data in a secure and isolated environment to protect the patients’ medical records (Regola & Chawla, 2013).

Hadoop ecosystem is a required component in this proposed design for several reasons.  Hadoop technology is a commonly used computing paradigm for massive volume data processing in the cloud computing (Bansal et al., 2014; Chrimes et al., 2018; Dhotre et al., 2015).  Hadoop is the only technology that enables large healthcare volumes of data to be stored in its native forms (Dezyre, 2016).  Hadoop is proven to develop better treatments for diseases such as cancer by accelerating the design and testing of effective treatments tailored to patients, expanding genetically based clinical cancer trials, and establishing a national cancer knowledge network to guide treatment decision (Dezyre, 2016).  With Hadoop system, hospitals in the four States will be able to monitor the patient vitals (Dezyre, 2016).  The Children’s Healthcare of Atlanta is an example of using the Hadoop ecosystem to treat over six thousand children in their ICU units (Dezyre, 2016).

The proposed design requires the integration of NoSQL database because it offers benefits such as mass storage support, reading and writing operations which are fast, and the expansion is easy with a low cost (Sahafizadeh & Nematbakhsh, 2015). HBase is proposed as a required NoSQL database as it is faster when reading more than six million variants which are required when analyzing large healthcare datasets (Luo et al., 2016).  Besides, query engine such as SeqWare can be integrated with HBase as needed to help bioinformatics researchers access large-scale whole-genome datasets (Luo et al., 2016).  HBase can store clinical sensors where the row key serves as the time stamp of a single value, and the column stores patients’ physiological values that correspond with the row key time stamp (Luo et al., 2016). HBase is scalable, high-performance and low-cost NoSQL data store that can be integrated with Hadoop sitting on top of HDFS (Yang et al., 2013). As a column-oriented NoSQL data store that runs on top of HDFS of Hadoop ecosystem, HBase is well suited to parse the healthcare large data sets (Yang et al., 2013). HBase supports applications written in Avro, REST and Thrift (Yang et al., 2013).  MongoDB is another NoSQL data store, which will be used to store metadata to improve the accessibility and readability of the HBase data schema (Luo et al., 2016).

The integration of Spark is required in order to overcome the Hadoop limitation of real-time data processing because Hadoop is not optimal for real-time data processing (Guo, 2013).  Thus, Apache Spark is a required component to implement this proposal so that the healthcare BDA system can take advantages of data processing at rest using the batching technique as well as a motion using the real-time processing technique (Liang & Kelemen, 2016).  Spark allows in-memory processing for fast response time, bypassing MapReduce operations (Liang & Kelemen, 2016).   Spark is a high integration to the recent Hadoop cluster deployment (Scott, 2015).  While Spark is a powerful tool on its own for processing a large volume of medical and healthcare datasets, Spark is not well-suited for production workload.  Thus, the integration of Spark with Hadoop ecosystem provides many capabilities which Spark cannot offer on its own, and Hadoop cannot offer on its own.

The integration of AI as part of this proposal is justified by the examination of Harvard Business Review (HBR) that shows ten promising AI application in healthcare (Kalis, Collier, & Fu, 2018). The findings of HBR’s examination showed that the application of AI could create up to $150 billion in annual savings for U.S. healthcare by 2026 (Kalis et al., 2018).  The result also showed that AI currently creates the most value in assisting the frontline clinicians to be more productive and in making back-end processes more efficient (Kalis et al., 2018).   Furthermore, IBM invested $1 billion in AI through the IBM Watson Group, and healthcare industry is the most significant application of Watson (Power, 2015).

Conclusion

Big Data and Big Data Analytics have played significant roles in various industries including the healthcare industry.  The value that is driven by BDA can save lives and minimize costs for patients.  This project proposes a design to apply BDA in the healthcare system across four States of Colorado, Utah, Arizona, and New Mexico.  Cloud computing is the most appropriate technology to deal with the large volume of healthcare data.  Due to the security issue of the cloud computing, the Virtual Private Cloud (VPC) will be used.  VPC provides a secure cloud environment using network traffic security setup using security groups and network access control lists. 

The project requires other components to be fully implemented using the latest technology such as Hadoop and MapReduce for data streaming processing, machine learning for artificial intelligence, which will be used for Internet of Things (IoT).  The NoSQL database HBase and MongoDB will be used to handle the semi-structured data such as XML and unstructured data such as logs and images.  Spark will be used for real-time data processing which can be vital for urgent care and emergency services.  This project addressed the assumptions and limitations plus the justification for selecting these specific components. 

In summary, all stakeholders in the healthcare sector including providers, insurers, pharmaceuticals, practitioners should cooperate and coordinate to facilitate the implementation process.  All stakeholders are responsible to facilitate the integration of BD and BDA into the healthcare system.  The rigid culture and silo pattern need to change for better healthcare system which can save millions of dollars to the healthcare industry and provide excellent care to the patients at the same time.

References

Abdul, A. M., Jena, S., Prasad, S. D., & Balraju, M. (2014). Trusted Environment In Virtual Cloud. International Journal of Advanced Research in Computer Science, 5(4).

Abernathy, R., & McMillan, T. (2016). CISSP Cert Guide: Pearson IT Certification.

absentdata.com. (2018). Tableau Advantages and Disadvantages. Retrieved from https://www.absentdata.com/advantages-and-disadvantages-of-tableau/.

Alexandru, A., Alexandru, C., Coardos, D., & Tudora, E. (2016). Healthcare, Big Data and Cloud Computing. management, 1, 2.

Alguliyev, R., & Imamverdiyev, Y. (2014). Big data: big promises for information security. Paper presented at the Application of Information and Communication Technologies (AICT), 2014 IEEE 8th International Conference on.

Anand, M., & Clarice, S. (2015). Artificial Intelligence Meets Internet of Things. Retrieved from http://www.ijcset.net/docs/Volumes/volume5issue6/ijcset2015050604.pdf.

Ankam, V. (2016). Big Data Analytics: Packt Publishing Ltd.

Aravind, P. S., & Agrawal, V. (2014). Processing XML data in BigInsights 3.0. Retrieved from https://developer.ibm.com/hadoop/2014/10/31/processing-xml-data-biginsights-3-0/.

Archenaa, J., & Anita, E. M. (2015). A survey of big data analytics in healthcare and government. Procedia Computer Science, 50, 408-413.

Assunção, M. D., Calheiros, R. N., Bianchi, S., Netto, M. A. S., & Buyya, R. (2015). Big Data Computing and Clouds: Trends and Future Directions. Journal of Parallel and Distributed Computing, 79, 3-15. doi:10.1016/j.jpdc.2014.08.003

Balasubramanian, V., & Mala, T. (2015). A Review On Various Data Security Issues In Cloud Computing Environment And Its Solutions. Journal of Engineering and Applied Sciences, 10(2).

Bansal, A., Deshpande, A., Ghare, P., Dhikale, S., & Bodkhe, B. (2014). Healthcare data analysis using dynamic slot allocation in Hadoop. International Journal of Recent Technology and Engineering, 3(5), 15-18.

Basu, A. (2014). Real-Time Healthcare Analytics on Apache Hadoop* using Spark* and Shark. Retrieved from https://www.intel.com/content/dam/www/public/us/en/documents/white-papers/big-data-real-time-healthcare-analytics-whitepaper.pdf.

Botta, A., de Donato, W., Persico, V., & Pescapé, A. (2016). Integration of Cloud Computing and Internet Of Things: a Survey. Future Generation computer systems, 56, 684-700.

Bresnick, J. (2018). Top 12 Ways Artificial Intelligence Will Impact Healthcare. Retrieved from https://healthitanalytics.com/news/top-12-ways-artificial-intelligence-will-impact-healthcare.

Carutasu, G., Botezatu, M., Botezatu, C., & Pirnau, M. (2016). Cloud Computing and Windows Azure. Electronics, Computers and Artificial Intelligence.

Chang, V. (2015). A Proposed Framework for Cloud Computing Adoption. International Journal of Organizational and Collective Intelligence, 6(3).

Chrimes, D., Zamani, H., Moa, B., & Kuo, A. (2018). Simulations of Hadoop/MapReduce-Based Platform to Support its Usability of Big Data Analytics in Healthcare.

Cloud Security Alliance. (2013). The Notorious Nine: Cloud Computing Top Threats in 2013. Cloud Security Alliance: Top Threats Working Group. 

Cloud Security Alliance. (2016). The Treacherous 12: Cloud Computing Top Threats in 2016. Cloud Security Alliance: Top Threats Working Group. 

Cloud Security Alliance. (2017). The Treacherous 12 Top Threats to Cloud Computing. Cloud Security Alliance: Top Threats Working Group. 

Dezyre. (2016). 5 Healthcare Applications of Hadoop and Big Data Retrieved from https://www.dezyre.com/article/5-healthcare-applications-of-hadoop-and-big-data/85.

Dhotre, P., Shimpi, S., Suryawanshi, P., & Sanghati, M. (2015). Health Care Analysis Using Hadoop. Internationaljournalofscientific&tech nologyresearch, 4(12), 279r281.

EMC. (2015). Data Science and Big Data Analytics: Discovering, Analyzing, Visualizing and Presenting Data. (1st ed.): Wiley.

Fawcett, J., Ayers, D., & Quin, L. R. (2012). Beginning XML: John Wiley & Sons.

Fernández, A., del Río, S., López, V., Bawakid, A., del Jesus, M. J., Benítez, J. M., & Herrera, F. (2014). Big Data with Cloud Computing: An Insight on the Computing Environment, MapReduce, and Programming Frameworks. Wiley Interdisciplinary Reviews: Data Mining and Knowledge Discovery, 4(5), 380-409. doi:10.1002/widm.1134

Fox, M., & Vaidyanathan, G. (2016). Impacts of Healthcare Big Data:  A Framwork With Legal and Ethical Insights. Issues in Information Systems, 17(3).

Ghani, K. R., Zheng, K., Wei, J. T., & Friedman, C. P. (2014). Harnessing big data for health care and research: are urologists ready? European urology, 66(6), 975-977.

Grover, M., Malaska, T., Seidman, J., & Shapira, G. (2015). Hadoop Application Architectures: Designing Real-World Big Data Applications: ” O’Reilly Media, Inc.”.

Groves, P., Kayyali, B., Knott, D., & Kuiken, S. V. (2016). The ‘Big Data’ Revolution in Healthcare: Accelerating Value and Innovation.

Guo, S. (2013). Hadoop operations and cluster management cookbook: Packt Publishing Ltd.

Gupta, R., Gupta, H., & Mohania, M. (2012). Cloud Computing and Big Data Analytics: What is New From Databases Perspective? Paper presented at the International Conference on Big Data Analytics, Springer-Verlag Berlin Heidelberg.

Hashem, I. A. T., Yaqoob, I., Anuar, N. B., Mokhtar, S., Gani, A., & Khan, S. U. (2015). The Rise of “Big Data” on Cloud Computing: Review and Open Research Issues. Information Systems, 47, 98-115. doi:10.1016/j.is.2014.07.006

Hashizume, K., Rosado, D. G., Fernández-medina, E., & Fernandez, E. B. (2013). An analysis of security issues for cloud computing. Journal of internet services and applications, 4(1), 1-13. doi:10.1186/1869-0238-4-5

HIMSS. (2018). 2017 Security Metrics:  Guide to HIPAA Compliance: What Healthcare Entities and Business Associates Need to Know. . Retrieved on 12/1/2018 from  http://www.himss.org/file/1318331/download?token=h9cBvnl2. 

HIPAA. (2018a). At Least 3.14 Million Healthcare Records Were Exposed in Q2, 2018. Retrieved 11/22/2018 from https://www.hipaajournal.com/q2-2018-healthcare-data-breach-report/. 

HIPAA. (2018b). How to Defend Against Insider Threats in Healthcare. Retrieved 8/22/2018 from https://www.hipaajournal.com/category/healthcare-cybersecurity/. 

HIPAA. (2018c). Q3 Healthcare Data Breach Report: 4.39 Million Records Exposed in 117 Breaches. Retrieved 11/22/2018 from https://www.hipaajournal.com/q3-healthcare-data-breach-report-4-39-million-records-exposed-in-117-breaches/. 

HIPAA. (2018d). Report: Healthcare Data Breaches in Q1, 2018. Retrieved 5/15/2018 from https://www.hipaajournal.com/report-healthcare-data-breaches-in-q1-2018/. 

HL7. (2011). Patient Example Instance in XML.  

Hu, H., Wen, Y., Chua, T., & Li, X. (2014). Toward Scalable Systems for Big Data Analytics: A Technology Tutorial. Practical Innovation, Open Solution, 2, 652-687. doi:10.1109/ACCESS.2014.2332453

InformationBuilders. (2018). Data In Motion – Big Data Analytics in Healthcare. Retrieved from http://docs.media.bitpipe.com/io_10x/io_109369/item_674791/datainmotionbigdataanalytics.pdf, White Paper.

Jayasingh, B. B., Patra, M. R., & Mahesh, D. B. (2016, 14-17 Dec. 2016). Security issues and challenges of big data analytics and visualization. Paper presented at the 2016 2nd International Conference on Contemporary Computing and Informatics (IC3I).

Ji, Z., Ganchev, I., O’Droma, M., Zhang, X., & Zhang, X. (2014). A cloud-based X73 ubiquitous mobile healthcare system: design and implementation. The Scientific World Journal, 2014.

Kalis, B., Collier, M., & Fu, R. (2018). 10 Promising AI Applications in Health Care. Retrieved from https://hbr.org/2018/05/10-promising-ai-applications-in-health-care, Harvard Business Review.

Karanth, S. (2014). Mastering Hadoop: Packt Publishing Ltd.

Kazim, M., & Zhu, S. Y. (2015). A Survey on Top Security Threats in Cloud Computing. International Journal Advanced Computer Science and Application, 6(3), 109-113.

Kersting, K., & Meyer, U. (2018). From Big Data to Big Artificial Intelligence? : Springer.

Klein, J., Gorton, I., Ernst, N., Donohoe, P., Pham, K., & Matser, C. (2015, June 27 2015-July 2 2015). Application-Specific Evaluation of No SQL Databases. Paper presented at the 2015 IEEE International Congress on Big Data.

Kritikos, K., Kirkham, T., Kryza, B., & Massonet, P. (2017). Towards a Security-Enhanced PaaS Platform for Multi-Cloud Applications. Future Generation computer systems, 67, 206-226. doi:10.1016/j.future.2016.10.008

Kumari, W. M. P. (2017). Artificial INtelligence Meets Internet of Things.

Liang, Y., & Kelemen, A. (2016). Big Data Science and its Applications in Health and Medical Research: Challenges and Opportunities. Austin Journal of Biometrics & Biostatistics, 7(3).

Liveri, D., Sarri, A., & Skouloudi, C. (2015). Security and Resilience in eHealth: Security Challenges and Risks. European Union Agency For Network And Information Security.

Lublinsky, B., Smith, K. T., & Yakubovich, A. (2013). Professional hadoop solutions: John Wiley & Sons.

Luo, J., Wu, M., Gopukumar, D., & Zhao, Y. (2016). Big data application in biomedical research and health care: a literature review. Biomedical informatics insights, 8, BII. S31559.

Malik, L., & Sangwan, S. (2015). MapReduce Framework Implementation on the Prescriptive Analytics of Health Industry. International Journal of Computer Science and Mobile Computing, ISSN, 675-688.

Maltby, D. (2011). Big Data Analytics. Paper presented at the Annual Meeting of the Association for Information Science and Technology.

Manyika, J., Chui, M., Brown, B., Bughin, J., Dobbs, R., Roxburgh, C., & Byers, A. H. (2011). Big Data: The Next Frontier for Innovation, Competition, and Productivity. McKinsey Global Institute.

McKelvey, N., Curran, K., Gordon, B., Devlin, E., & Johnston, K. (2015). Cloud Computing and Security in the Future Guide to Security Assurance for Cloud Computing (pp. 95-108): Springer.

Mehmood, A., Natgunanathan, I., Xiang, Y., Hua, G., & Guo, S. (2016). Protection of Big Data Privacy. Institute of Electrical and Electronic Engineers, 4, 1821-1834. doi:10.1109/ACCESS.2016.2558446

Meyer, M. (2018). The Rise of Healthcare Data Visualization.

Mills, T. (2018). Eight Ways Big Data And AI Are Changing The Business World.

MongoDB. (2018). ETL Best Practice.  

O’Brien, B. (2016). Why The IoT Needs ARtificial Intelligence to Succeed.

Palanisamy, V., & Thirunavukarasu, R. (2017). Implications of Big Data Analytics in developing Healthcare Frameworks–A review. Journal of King Saud University-Computer and Information Sciences.

Patrizio, A. (2018). Big Data vs. Artificial Intelligence.

Power, B. (2015). Artificial Intelligence Is Almost Ready for Business.

Raghupathi, W., & Raghupathi, V. (2014). Big data analytics in healthcare: promise and potential. Health Information Science and Systems, 2(1), 1.

Regola, N., & Chawla, N. (2013). Storing and Using Health Data in a Virtual Private Cloud. Journal of medical Internet research, 15(3), 1-12. doi:10.2196/jmir.2076

Sahafizadeh, E., & Nematbakhsh, M. A. (2015). A Survey on Security Issues in Big Data and NoSQL. Int’l J. Advances in Computer Science, 4(4), 2322-5157.

Salido, J. (2010). Data Governance for Privacy, Confidentiality and Compliance: A Holistic Approach. ISACA Journal, 6, 17.

Scott, J. A. (2015). Getting Started with Spark: MapR Technologies, Inc.

Stewart, J., Chapple, M., & Gibson, D. (2015). ISC Official Study Guide.  CISSP Security Professional Official Study Guide (7th ed.): Wiley.

Sultan, N. (2010). Cloud Computing for Education: A New Dawn? International Journal of Information Management, 30(2), 109-116. doi:10.1016/j.ijinfomgt.2009.09.004

Sun, J., & Reddy, C. (2013). Big Data Analytics for Healthcare. Retrieved from https://www.siam.org/meetings/sdm13/sun.pdf.

Tableau. (2011). Three Ways Healthcare Probiders are transforming data from information to insight. White Paper.

Thompson, E. C. (2017). Building a HIPAA-Compliant Cybersecurity Program, Using NIST 800-30 and CSF to Secure Protected Health Information.

Van-Dai, T., Chuan-Ming, L., & Nkabinde, G. W. (2016, 5-7 July 2016). Big data stream computing in healthcare real-time analytics. Paper presented at the 2016 IEEE International Conference on Cloud Computing and Big Data Analysis (ICCCBDA).

Venkatesan, T. (2012). A Literature Survey on Cloud Computing. i-Manager’s Journal on Information Technology, 1(1), 44-49.

Wang, Y., Kung, L. A., & Byrd, T. A. (2018). Big Data Analytics: Understanding its Capabilities and Potential Benefits for Healthcare Organizations. Technological Forecasting and Social Change, 126, 3-13. doi:10.1016/j.techfore.2015.12.019

Wicklund, E. (2014). ‘Silo’ one of healthcare’s biggest flaws. Retrieved from http://www.healthcareitnews.com/news/silo-one-healthcares-biggest-flaws.

Yang, C. T., Liu, J. C., Hsu, W. H., Lu, H. W., & Chu, W. C. C. (2013, 16-18 Dec. 2013). Implementation of Data Transform Method into NoSQL Database for Healthcare Data. Paper presented at the 2013 International Conference on Parallel and Distributed Computing, Applications and Technologies.

Zhang, Q., Cheng, L., & Boutaba, R. (2010). Cloud Computing: State-of-the-Art and Research Challenges. Journal of internet services and applications, 1(1), 7-18. doi:10.1007/s13174-010-0007-6

Zhang, R., & Liu, L. (2010). Security models and requirements for healthcare application clouds. Paper presented at the Cloud Computing (CLOUD), 2010 IEEE 3rd International Conference on.

Zia, U. A., & Khan, N. (2017). An Analysis of Big Data Approaches in Healthcare Sector. International Journal of Technical Research & Science, 2(4), 254-264.

 

The Relationship Between Internet of Things (IoT) and Artificial Intelligence (AI)

Dr. O. Aly
Computer Science

The purpose of this discussion is to address the relationship between the Internet of Things (IoT) and the Artificial Intelligence (AI), and whether one can be used efficiently without the help from the other.  The discussion begins with the Internet of Things (IoT) and artificial intelligence (AI) overview, followed by the relationship between them. 

Internet of Things (IoT) and Artificial Intelligence Overview

Internet of Things (IoT) refers to the increased connected devices with IP addresses that years ago were not common (Anand & Clarice, 2015; Thompson, 2017).  The connected devices collect and use these IP addresses to transmit information (Thompson, 2017).  Organizations take advantages of the collected information for innovation, enhancing customer service, optimizing processes (Thompson, 2017). Providers in healthcare take advantages of the collected information to find new treatment methods and increase efficiency (Thompson, 2017).

IoT implementation involves various technologies such as radio frequency identification (RFID), near field communication (NFC), machine to machine (M2M), wireless sensor network (WSM), and addressing schemes (AS) (IPv6 addresses) (Anand & Clarice, 2015; Kumari, 2017).   The RFID uses electromagnetic fields to identify and track tags attached to objects.  The NFC is a set of thoughts and technologies where smartphones and other objects want to communicate under IoT.  The M2M is used often for remote monitoring. WSM is a set of a large number of sensors used to monitor environmental conditions.  The AS is the primary tool which is used in IoT and giving IP addresses to each object which wants to communicate (Anand & Clarice, 2015; Kumari, 2017).

Machine learning (ML) is a subset of AI.  Machine learning (ML) involves supervise and unsupervised ML (Thompson, 2017).  In the AI domain, the advances in computer science result in creating intelligent machines that resemble humans in their functions (NMC, 2018).  The access to categories, properties, and relationships between various datasets help develop knowledge engineering allowing computers to simulate the perception, learning, and decision making of human (NMC, 2018).  The ML enables computers to learn without being explicitly programmed (NMC, 2018).  The unsupervised ML and AI allow for security tools such as behavior-based-analytics and anomaly detection (Thompson, 2017).  The neural network of AI help model the biological function of the human brain to interpret and react to specific inputs such as words and tone of voice (NMC, 2018).  The neural networks have been used for voice recognition, and natural language processing (NLP), enabling a human to interact with machines.

The Relationship Between IoT and AI

Various reports and studies have discussed the relationship between IoT and AI.  (O’Brien, 2016) has reported the need of IoT to AI to succeed.  (Jaffe, 2014) suggested the same thing that IoT will not work without AI.  IoT future depends on ML to find patterns, correlations, and anomalies that have the potential of enabling improvement in almost every facet of the daily lives (Jaffe, 2014).

Thus, the success of IoT depends on AI.  IoT follows five necessary steps: sense, transmit, store, analyze and act (O’Brien, 2016). AI plays a significant role in the analyzing step, where the ML which is the subset of AI gets involved in this step.  When ML is applied in the analysis step, it can change the subsequent step of “act” which dictates whether the action has high value or no value to the consumer (O’Brien, 2016).   

(Schatsky, Kumar, & Bumb, 2018) suggested the AI can unlock the potential of IoT. As cited in (Schatsky et al., 2018), Gartner predicts by 2022, more than 80% of enterprise IoT projects will include AI components which are up from only 10% in 2018.  International Data Corp (IDC) predicts by 2019, AI will support “all effective” IoT efforts, and without AI, data from the deployments will have limited value (Schatsky et al., 2018).

Various companies are crafting an IoT strategy to include AI (Schatsky et al., 2018).  Venture capital funding of AI-focused IoT start-ups is growing, while vendors of IoT platforms such as Amazon, GE, IBM, Microsoft, Oracle, and Salesforce are integrating AI capabilities (Schatsky et al., 2018).  The value of AI is the ability to extract insight from data quickly. The ML, which is a subset of AI, enables the automatic identification of patterns and detected anomalies in the data that smart sensors and devices generate (Schatsky et al., 2018).  IoT is expected to combine with the power of AI, blockchain, and other emerging technologies to create the “smart hospitals” of the future (Bresnick, 2018).  Example of AI-powered IoT devices includes automated vacuum cleaners, like that of the iRobot Roomba, smart thermostat solutions, like that of Nest Labs, and self-driving cars, such as that of Tesla Motors (Faggella, 2018; Kumari, 2017).   

Conclusion

This discussion has addressed artificial intelligence (AI) and the internet of things (IoT) and the relationship between them.  Machine learning which is a subset of AI is required for IoT at the analysis phase.  Without this analysis phase, IoT will not provide the value-added insight organizations anticipate.  Various studies and reports have indicated that the success and the future of IoT depend on AI. 

References

Anand, M., & Clarice, S. (2015). Artificial Intelligence Meets Internet of Things. Retrieved from http://www.ijcset.net/docs/Volumes/volume5issue6/ijcset2015050604.pdf.

Bresnick, J. (2018). Internet of Things, AI to Play Key Role in Future Smart Hospitals.

Faggella, D. (2018). Artificial Intelligence Plus the Internet of Things (IoT) – 3 Examples Worth Learning From.

Jaffe, M. (2014). IoT Won’t Work Without Artificial Intelligence.

Kumari, W. M. P. (2017). Artificial Intelligence Meets Internet of Things.

NMC, H. P. (2018). NMC Horizon Report: 2017 Higher Education Edition. Retrieve from https://www.nmc.org/publication/nmc-horizon-report-2017-higher-education-edition/.

O’Brien, B. (2016). Why The IoT Needs ARtificial Intelligence to Succeed.

Schatsky, D., Kumar, N., & Bumb, S. (2018). Bringing the power of AI to the Internet of Things.

Thompson, E. C. (2017). Building a HIPAA-Compliant Cybersecurity Program, Using NIST 800-30 and CSF to Secure Protected Health Information.

The Impact of Artificial Intelligence (AI) on Big Data Analytics (BDA)

Dr. O. Aly
Computer Science

The purpose of this discussion is to discuss the influence of artificial intelligence on big data analytics. As discussed in the previous discussion, Big Data empowers artificial intelligence.  This discussion is about the impact of artificial intelligence in the Big Data Analytics domain.  The discussion begins with artificial intelligence building blocks and big data building blocks, following by the impact of the artificial intelligence in the BDA. 

Artificial Intelligence Building Blocks and Their Impact on BDA

Understanding the building blocks of AI could help understand the impact of AI on BDA.  Various reports and studies have identified various building blocks for AI.  Four building blocks have been identified  In (Chibuk, 2018), four building blocks that are expected to shape the next stage of AI.  The computation methodology is the first building block of AI.  This component is structured in a way to improve the computers move from binary to infinite connections. The storage of the information is the second building block of AI improving storing and accessing data in the more efficient form.  Brain-computer interface is the third building block of AI, through which the human minds would speak silently with a computer, and our thought would turn into actions.  The mathematics and algorithms form the last building block of AI to include advanced mathematics called capsule network and having networks to teach each other based on rules defined (Chibuk, 2018). 

(Rao, 2017) has identified five fundamental building blocks for AI in the banking sector, while they can be easily applicable to other sectors. Machine learning (ML) is the first component of AI in banking where the software can learn on its own without being programmed and adjust its algorithms to respond to new insights. The data mining algorithms hand over findings to a human for further work, while machine learning can act on its own (Rao, 2017).  The financial and banking industry can benefit from machine learning for fraud detection, security settlement and alike (Rao, 2017).  The deep learning (DL) is another building block of AI in the banking industry (Rao, 2017).  DL can leverage a hierarchy of artificial neural networks, similar to the human brain to do its job.  DL mimics the human brain to perform non-linear deductions, unlike the linearly traditional programs (Rao, 2017).  DL can produce better decisions by factoring learning from previous transactions or interactions to conclude (Rao, 2017).  Example of DL is the collected information about customers and their behaviors from social networks, from which their likes and preferences can be inferred, and financial institutions can utilize this insight to make contextual, relevant offers to those customers in real-time (Rao, 2017).   Natural language process (NLP) is the third building block for AI in banking (Rao, 2017).  NLP is a key building block in AI to help computers learn, analyze and understand human language (Rao, 2017).  NLP can be used to organize and structure knowledge in order to answer queries, translate content from one language to another, recognize people by their speech, mine text, and perform sentiment analysis (Rao, 2017). The natural language generation (NLG) is another essential building block in AI, which can help computers analyze, understand, and make sense of human language (Rao, 2017).  It can help converse and interact intelligently with humans (Rao, 2017).  NLG can transform raw data into a narrative, which banks such as Credit Suisse are using to generate portfolio review (Rao, 2017).  Visual recognition is the last component of AI which help recognize images and their content (Rao, 2017). It uses DL to perform its role of finding faces, tagging images, identifying the components of visuals, and picking out similar images from a large dataset (Rao, 2017). Various banks such as Australia’s Westpac is using this technology to allow customers to activate their new card from their smartphone camera, and Bank of America, Citibank, Wells Fargo, and TD Bank are using this technology of visual recognition to allow customers to deposit checks remotely via mobile app (Rao, 2017).

(Gerbert, Hecker, Steinhäuser, & Ruwolt, 2017) have identified ten building blocks for AI.  They have suggested that the simplest AI use cases often consist of a single building block. However, they often evolve to combine two or more blocks over time (Gerbert et al., 2017).  The machine vision is one of the building blocks of AI. The machine vision building block of AI is the classification and tracking of real-world objects based on visual, x-ray, laser or other signals.  The quality of machine vision depends on the labels of a large number of reference images which is performed by a human (Gerbert et al., 2017).  Video-based computer vision is anticipated to recognize actions and predict motions within the next five years (Gerbert et al., 2017).  The speech recognition is another building block which involves the transformation of auditory signals into text (Gerbert et al., 2017).  Siri and Alexa can identify most words in a general vocabulary, but as vocabulary becomes specific, tailored programs such as the PowerScribe of Nuance for radiologist will be needed (Gerbert et al., 2017).  Information processing building block of AI involves searching billions of documents or constructing basic knowledge graphs identifying relationships in text.  This building block is closely related to NLP, which is also identified as another building block of AI (Gerbert et al., 2017).  NLP can provide basic summaries of text and infer intent in some instances (Gerbert et al., 2017). Learning from data is another component of AI, which is a machine learning and able to predict values or classify information based on historical data (Gerbert et al., 2017).  While ML is an element in AI building blocks of machine vision and NLP, it is also a separate building block of AI (Gerbert et al., 2017).  Other building blocks of AI include the planning and exploring agents that can help identify the best sequence of actions to achieve certain goals.  Self-driving cars rely on this building clock for navigation (Gerbert et al., 2017).  The image generation is another building block of AI, which is the opposite of machine vision block, as it creates images based on models.  Speech generation is another building block of AI which covers both data-based text generation and text-based speech synthesis. The handling and control building block of AI refers to interactions with real-world objects (Gerbert et al., 2017). The navigating and movement building block of AI covers the ways where robots move through a given physical environment. The self-driving cars and drones do well with their wheels and rotors.  However, walking on legs especially a single pair of legs is challenging (Gerbert et al., 2017).

Artificial Intelligence (AI) and machine learning (ML) have observed an increasing trend across industries, and public sector (Brook, 2018).  Such increasing trend plays a significant role in the digital world (Brook, 2018).  This increasing trend is driven by the customer-centric view of data involving use data as part of the product or service (Brook, 2018). The customer-centric model assumes data enrichment with data from multiple sources, and the data is divided into real-time data and historical data (Brook, 2018).  Businesses build a trust relationship with customers, where data is becoming the central model for many consumer services such as Amazon, and Facebook (Brook, 2018).   The data value increases over time (Brook, 2018).  The impact of machine learning and artificial intelligence have driven the need for “corporate memory” to be rapidly adopted in organizations.  (Brook, 2018) have suggested organizations implement loosely coupled data silos and data lake which can contribute to the corporate memory and the super-fast data usage in the age of AI-driven data usage.  Various examples of AL and ML impact on BDA and the value of data over time include Coca-Cola’s global market and extensive product list, IBM’s machine learning system Watson, GE Power using BD, ML, and internet of things (IoT) to build internet of energy (Marr, 2018).  Figure 1 shows the impact of AI and ML on Big Data Analytics and the value of the data over time.


Figure 1.  Impact of AI and ML on BDA and the Value of Data Overtime (Brook, 2018).

AI is anticipated to be the most dominant factor that will have a disruptive impact on organizations and businesses (Hansen, 2017).  (Mills, 2018) has suggested that organizations need to embrace BD and AI to help their businesses.  EMC survey has shown that 69% of information technology decision-makers in New Zealand believe that BDA is critical to their business strategy, and 41% already incorporated BD into the everyday business decision (Henderson, 2015).     

The application of AI to BDA can assist businesses and organizations to detect a correlation between factors humans cannot perceive (Henderson, 2015).  It can allow organizations to deal with the speed of the information change today in the business world (Henderson, 2015).   AI can help organization add a level of intelligence to their BDA to understand complex issues better quicker than humans can in the absence of AI (Henderson, 2015).  AI can also serve to fill the gap left by not having enough data analysts available (Henderson, 2015).  AI can also reveal insights that can lead to novel solutions to existing problems or even uncover issues that are not previously known (Henderson, 2015).  A good example of AI impact on BDA is the AI-powered BDA in Canada which is used to identify patterns in the vital signs of premature babies that can be used in the early detection of life-threatening infections.  Figure 2 shows AI and BD working together for better analytics and better insight. 


Figure 2:  Artificial Intelligence and Big Data (Hansen, 2017).

Conclusion

This assignment has discussed the impact of artificial intelligence (AI) on Big Data Analytics (BDA).  It began with the identification of the building blocks of the AI and the impact of each building block on BDA.  BDA has an essential impact on AI as it empowers it, and AI has a crucial role in BDA as demonstrated and proven in various fields especially in the healthcare and financial industries.  The researcher would like to summarize this relationship between AI and BDA in a single statement: “AI without BDA is lame, and BDA without AI is blind.”  

References

Brook, P. (2018). Trends in Big Data and Artificial Intelligence Data

Chibuk, J. D. (2018). Four Building Blocks for a General AI.

Gerbert, P., Hecker, M., Steinhäuser, S., & Ruwolt, P. (2017). The Building Blocks of Artificial Intelligence.

Hansen, S. (2017). How Big Data Is Empowering AI and Machine Learning?

Henderson, J. (2015). Insight: What role does Artificial Intelligence Play in Big Data?  What are the links between artificial intelligence and Big Data?

Marr, B. (2018). 27 Incredible Examples Of AI And Machine Learning In Practice.

Mills, T. (2018). Eight Ways Big Data And AI Are Changing The Business World.

Rao, S. (2017). The Five Fundamental Building Blocks for Artificial Intelligence in Banking.

Can Artificial Intelligence Support or Replace Decision Makers?

Dr. O. Aly
Computer Science

The purpose of this discussion is to discuss artificial intelligence and whether it should be used as a tool to support or replace decision makers.  The discussion begins with a brief history of artificial intelligence (AI), followed by the foundation of the AI, and the question about AI whether it should be used to support or replace decision makers.

The History of Artificial Intelligence

Artificial intelligence is defined as a computational technique allowing machines to perform cognitive functions such as acting or reacting to input, similar to the way humans do (Patrizio, 2018).  The gestation of AI was between the year of 1943 and 1955. The work of Warren McCulloch and Walter Pins (1943) is regarded to be the first work of Artificial Intelligence (AI) (Russell & Norvig, 2016).  Their work drew on three sources: knowledge of the underlying physiology and function of neurons in the brain, a formal analysis of propositional logic due, and Turing’s theory of computation (Russell & Norvig, 2016).  Hebbian learning is the result of the work from Donald Hebb (1949) who demonstrated a simple updating a rule for modifying the connection strengths between neurons (Russell & Norvig, 2016). The Hebbian theory is still an influential model to this day (Russell & Norvig, 2016).  

The birth of AI was in 1956, when John McCarthy, who was another influential figure in AI in Princeton, initiated a project for AI. AI witnessed early enthusiasm, and high expectation from 1952 until 1969 (Russell & Norvig, 2016). AI witnessed a dose of reality between 1966 and 1973.  The knowledge-based systems as the key to power began in 1969 until 1979.  In 1980 until the present time, the AI became an industry.  From 1986 until today, the neural networks are returned.  From 1987 until the present, AI adopts the scientific method.  The emergence of intelligent agents is developed from 1995 until the present time.  The large dataset became available from 2001 until the present.  Recent works of AI suggest that the emphasis should be on data and not an algorithm to solve many problems (Russell & Norvig, 2016).

The Foundation of Artificial Intelligence

AI, ideally, takes the best possible action in a situation (Russell & Norvig, 2016).  Building an agent that is intelligent is not an easy task and is described as problematic.  There are eight foundations for building an intelligent agent.  The early philosophers such as Aristotle (400 B.C.) made the AI conceivable by considering the ideas that the mind is in some ways like a machine, that it operates on knowledge encoded in some internal language, and that thought can be used to choose what actions to take (Russell & Norvig, 2016).  The mathematics is another block for building an intelligent agent, where mathematician provides the tools to manipulate certain and uncertain statement, as well as probabilistic statements.  Mathematics also set the groundwork for understanding computation and reasoning about algorithms (Russell & Norvig, 2016).  The economics formalize the problem of making decisions that maximize the expected outcome of the decision makers (Russell & Norvig, 2016).  The neuroscience discovered some facts about how the brain works and how it is similar to and different from computers.  The computer engineering provided the ever-more-powerful machines that make AI applications possible.  The control theory deals with designing devices that act optimally by feedback from the environment (Russell & Norvig, 2016).  Understanding language requires an understanding of the subject matter and context, not just an understanding of the structure of sentences, which can cause a problem in AI (Russell & Norvig, 2016).

Can AI Support or Replace Decision-Maker?

AI has already entered various industries such as healthcare (navatiosolutions.com, 2018; UNAB, 2018).  It has been used in managing medical records and other data.  It has also been used for doing repetitive jobs such as analyzing tests, X-Rays, CT scans, and data entry (navatiosolutions.com, 2018).  AI has been used to analyzing data, and reports to help select the correct individually customized treatment path (navatiosolutions.com, 2018).  Patients can report their symptoms into an AI app which uses speech recognition to compare against a database of illness.  AI acts as virtual nurses to help monitor the conditions of patients and follow up with treatments between doctor visits (navatiosolutions.com, 2018).  AI has also been used to monitor the use of medication by a patient.  Pharmaceutical has taken advantage of AI in creating drugs faster and cheaper.  AI has been used for genetics and genomics for mutations and links to disease from information in DNA (navatiosolutions.com, 2018).  AI has been used to sift through the data to highlight mistakes in treatments, workflow inefficiencies, and helps area healthcare systems avoid unnecessary patient hospitalization (navatiosolutions.com, 2018).  Other examples of AI’s benefits include the autonomous transport system decreasing the number of accidents, the medical systems making quantum advances possible in health monitoring (UNAB, 2018). 

The UNAB think tank (UNAB, 2018) has raised valid questions among which the singularity of human and AI and whether the human and AI can become integrated.  AI control of the human with no regard to the human value is causing fears towards AI technology (UNAB, 2018).  The other questions include the following (UNAB, 2018):

  • “What if AI was wholly monitoring human behavior, without human participation?
  • Who or what will be engaged in the related decision-making process?
  • To what extent would individuals accept AI despite the consequences?
  • Will the human factor as we know it disappears completely?”

These questions are valid questions to fully adopt AI technology and integrate it fully into the human lives.  (James, 2018) has raised another valid question “Can We Trust AI?”  Despite the benefits of AI especially in the healthcare industry, these systems can still make mistakes, caused by limited training, or unknown bias in the algorithm due to lack of understanding of the neural network models operation (James, 2018).  Several high profile instances of machines have demonstrated bias, which caused by wrong training dataset, and a malicious attacker who hacks into the training dataset to make it bias (IBM, n.d.).

Ethics issues come along with AI technology adoption (James, 2018; UNAB, 2018). IBM has suggested instilling human values and morality into AI systems (IBM, n.d.).  However, there is no single ethical system for AI (IBM, n.d.).  Transparency seems to be a key in trusting AI (IBM, n.d.; James, 2018).  People need to know how the AI system arrives at a particular conclusion and make a decision or a recommendation (IBM, n.d.; James, 2018).

Conclusion

This discussion has addressed the artificial intelligence and its key dimension in human life.  It has contributed to various industries including healthcare and pharmaceutical and proven to provide value in certain areas.  However, it is also proven to make mistakes and demonstrated bias due to wrong training data set or malicious attacks.  There is a fear about integrating AI technology fully into human lives with no regard to human’s participation and human’s values.  Integrating values and ethics is not an easy task. 

From the researcher point of view, AI should not be used for making decisions that are related to human values and ethics.  Human lives have many dimensions that are not always black and white.  There are some areas where human integrity, principles, values, and ethics play a role.   In the court, there is always a statement of “benefit of the doubt.” Can AI decision be based on the “benefit of the doubt” rule in the court?  Another aspect of AI, from the researcher’s point of view, is: who develops AI?  The AI technology is developed by humans. Are humans trying to get rid of humans and put AI in a superior role?  AI technology has its role and its dimension in certain fields but not in all fields and domains where a human can move and interact with other humans with integrity and values. Let AI technology take place and make decisions in areas where it is proven to be most useful to human such as promoting sales and marketing, automating certain processes to increase efficiency, and productivity, etc.  Let the human takes place and makes decisions in areas where it is proven to be most useful to human lives promoting ethics, values, integrity, and principles.  “Computers are becoming great assistants to us however they still need our thought to make good decisions” (Chibuk, 2018).

References

Chibuk, J. D. (2018). Four Building Blocks for a General AI.

IBM. (n.d.). Building Trust in AI. Retrieved from https://www.ibm.com/watson/advantage-reports/future-of-artificial-intelligence/building-trust-in-ai.html.

James, R. (2018). Can We Trust AI? Retrieved from https://www.electronicdesign.com/industrial-automation/can-we-trust-ai.

navatiosolutions.com. (2018). 10 Common Applications of Artificial Intelligence in Healthcare. Retrieved from https://novatiosolutions.com/10-common-applications-artificial-intelligence-healthcare/.

Patrizio, A. (2018). Big Data vs. Artificial Intelligence.

Russell, S. J., & Norvig, P. (2016). Artificial intelligence: a modern approach: Malaysia; Pearson Education Limited.

UNAB. (2018). Human Decision Thoughts On AI. Retrieved from http://unesdoc.unesco.org/images/0026/002615/261563E.pdf, United Nations Educational, Scientificn and Cultrual Organization.

Ten Big Data Visualization Tools

Dr. O. Aly
Computer Science

Abstract

This project discusses and analyzes ten big data visualization tools.  These ten tools include Sisense, Microsoft Power BI, Tableau, Domo, Looker, InsightSquared, QlikView, WebFOCUS, Phocas, and Easy Insight. Each tool has advantages and disadvantages that are discussed in this project as well.  The analysis shows that the Sisense, Looker, InsightSquared, and EasyInsight have the highest rate in Quality of Support.  Phocas and InsightSquared have the highest rate of ease of use. InsightSquared has the highest rates of meets requirements.  Easy Insight has the highest rate for ease of admin.  Easy Insight, Phocas, WebFOCUS, InsightSquared, Looker, and Sisense have the highest ease of doing business with.  EasyInsight and Sisense have the highest rate for ease of setup. Organizations must analyze each tool that can best meet their business requirements.

Keywords: Big Data Analytics Data Visualization Tools.

Overview of Data Visualization Tools

Data visualization is a visual depiction or context to help better understand the significance of the data (P.  Baker, 2018; Meyer, 2018).   Visualization is one of the most powerful representations and presentation of the data (Jayasingh, Patra, & Mahesh, 2016).  It does help in viewing the data in the form of graphs, images, pie charts (EMC, 2015; Jayasingh et al., 2016).  Data visualization is not a new concept, as it has been utilized in business intelligence (P.  Baker, 2018).  The kind and size of the data which data visualization nowadays represents are sophisticated (Meyer, 2018).  The visualization process includes the synthesis of large volumes of data sets to obtain the essence of the data and convey the critical insights for decision making (Meyer, 2018).  Data visualization play a significant role in depicting patterns and relationships in large volumes of data that may not be easily seen in raw data reports (Meyer, 2018).  It helps to identify emerging trends to provide actionable insights that can drive change (Meyer, 2018). 

Ten tools are recognized as the best data visualization tools of 2018 (P.  Baker, 2018).  These ten data visualization tools include Zoho Reports, Sisense, Domo, Microsoft Power BI, Tableau Desktop, Google Analytics, Chartio, SAP Analytics Cloud, IB Watson Analytics, and Salesforce Einstein Analytics Platform.  The same report has rated these tools from fair, good to excellent.  The top excellent tools include Sisense, Power BI, Tableau, and IBM Watson. The top good tools include Zoho, Domo, Google Analytics, SAP Analytics Cloud, and Salesforce Einstein Analytics Platform.  The only fair rated data visualization tool is Chartio.  IBM Watson is not available in the market since July 2018 (P.  Baker, 2018).

Other reports have included additional data visualization tools such as QlikView, Matlab, Kibana, Plotly and other (financeonline.com, 2018a). The seven best data visualization tools include Tableau, QlikView, FusionCharts, Highcharts, Datawrapper, Plotly, and Sisense (Marr, 2017).  There are various data visualization tools in the market. Organizations must analyze each tool to ensure that the tools will serve the business needs.  

This project has selected top ten visualization tools in the market.  These ten visualization tools include Sisense Data, Microsoft Power BI, Tableau, Domo, Looker, InsightSquared, QlikView, WebFOCUS, Phocas, and EasyInsight.  The project discusses and analyzes these top ten visualization tools.  The discussion describes each tool, its benefits, and limitation. The discussion is followed by the analysis of these selected top ten data visualization tools, and a conclusion.

1. Sisense Data

Sisense won the best business intelligence software aware for 2017 with 99% user satisfaction (financesonline.com, 2018b). It was rated with among the excellent data visualization tools (P. Baker, 2018c).  It can be used to collect information from all sources and unify them into a single repository (P. Baker, 2018c; financesonline.com, 2018b).  It generates intelligent analysis and enables sharing insights across the organization (P. Baker, 2018c; financesonline.com, 2018b).  It is a fast system as it uses 64-bit computer, parallelization capabilities, and multi-core CPUs (financesonline.com, 2018b).   It has been named a Leader based on receiving a high customer satisfaction score and having a large Market Presence (looker.com, 2018).  It has 91% of the users rating it 4-5 stars (looker.com, 2018).  Figure 1 illustrates the satisfaction rating of Sisense.


Figure 1.  Sisense Satisfaction Rating (looker.com, 2018).

Sisense has various advantages.  It has an intuitive user interface (P. Baker, 2018c). It is described to be all-in-one BI solution enabling multiple tasks including data modeling and complex calculations (P. Baker, 2018c; financesonline.com, 2018b). Sisense provides accurate data analysis in real-time (financesonline.com, 2018b).  It uses crowd accelerated BI technology which can simultaneously handle hundreds of queries (financesonline.com, 2018b).  Other advantages include excellent technical support.  It connects to all data storage platform allowing users to quickly view the data assets in different systems (financesonline.com, 2018b).  It creates robust dashboards accessible from any device (financesonline.com, 2018b).  The system can be easily customized for multiple user levels (financesonline.com, 2018b).  The highest-rated features include dashboards with 90%, followed by data visualization of 90%, and scorecards of 90%.

The drawbacks of Sisense include sharing the dashboards created by multiple users not as easy as it should be.  The navigation and filtering on the mobile platform could be improved (financesonline.com, 2018b).  It is a bit complex for a self-service business intelligence tool (BI) (P. Baker, 2018c).  The analytics process needs work (P. Baker, 2018c).  The natural language features have limitations (P. Baker, 2018c).  The lowest-rated features include the mobile user support with 77%, followed by auto-modeling of 78% and breadth of partner applications of 79%. Figure 2 shows the highest-rated features and lowest-rated features of Sisense.


Figure 2.  Sisense Highest-Rated and Lowest-Rated Features (looker.com, 2018).

2. Microsoft Power BI

Power BI does a very good job in combining power analytics with a user-friendly user interface (UI) and remarkable data visualization capabilities (P. Baker, 2018b).  There is a limited free version as well as the Professional version which begins at $9.99 per user per month (P. Baker, 2018b).  It provides a single view for the dashboard to view the critical business data (P. Baker, 2018b).  Power BI has been named a leader based on receiving a high customer satisfaction score and having a significant market presence (looker.com, 2018).  It has 89% of users rating it 4-5 stars.  Figure 3 illustrates the Power BI satisfaction ratings.  


Figure 3.  Power BI Satisfaction Ratings (looker.com, 2018).

Power BI has several advantages.  It is affordable because it has a free version as well as the Professional version for $9.99 per user per month (P. Baker, 2018b; techaffinity.com, 2017).  It is tightly coupled with Microsoft product suite and integration with Excel, Azure and SQL server is simple and straightforward (techaffinity.com, 2017). It consistently gets upgraded to improve its features (techaffinity.com, 2017). It provides good visualization reports offering detailed reporting (techaffinity.com, 2017).  It can connect and extract data from a variety of data sources like Excel, Access, Github, Google Analytics, Salesforce, etc.  It works on all platforms like Windows, Android, and iOS (techaffinity.com, 2017).  The highest-rated features of Power BI include the data visualization with 90%, followed by graphs and charts of 89%, and breadth of partner applications of 86% (looker.com, 2018). 

The drawbacks of Power BI include the limitation for handling a large volume of data (techaffinity.com, 2017).  It will hand many times while handling vast sets of data and the best solution is to use a live connection which will make it much faster (techaffinity.com, 2017).  It is complicated to master as there are many complex components like Power BI desktop, Gateway, and Power BI services and it is difficult to understand which option is best suited for the business (techaffinity.com, 2017).  Power BI has 90% highest rated features for data visualization, followed by graphs and charts, and breadth of partner applications.  The lowest-rated features have 73% for predictive analytics, followed by big data services of 77%, and auto-modeling of 80% (looker.com, 2018).  Figure 4 shows the highest-rated features and the lowest rated features of Power BI.

    
Figure 4.  Power BI Highest-Rated and Lowest-Rated Features (looker.com, 2018).

3. Tableau

            Tableau Desktop was one of the early players in the business intelligence domain (P. Baker, 2018d).   It is one of the most mature offerings on the market (P. Baker, 2018d). It has a steep learning curve than other platforms, and it is easily one of the best tools in the data visualization tools (P. Baker, 2018d).  It has been named as a leader based on receiving a high customer satisfaction score and having a significant market presence (looker.com, 2018).  The number of the user is 85% who rated Tableau 4-5 stars (looker.com, 2018).  Figure 5 shows the satisfaction ratings of Tableau. 

Figure 5. Tableau Satisfaction Rating (looker.com, 2018).

            Tableau has several advantages.  Some of these advantages include the data visualization tool supporting complex computations (absentdata.com, 2018).   It quickly creates interactive visualizations using drag-n-drop functionalities (absentdata.com, 2018). It offers many types of visualization options enhancing user experience (absentdata.com, 2018). Tableau can handle large amounts of data and millions of rows of data with ease (absentdata.com, 2018).  Users can integrate other scripting languages such as Python or R-programming in Tableau (absentdata.com, 2018). It provides mobile support and responsive dashboard (absentdata.com, 2018).  Data visualization is the highest-rated features with 90% rating, followed by graphs and charts of 90%, and dashboard of 89% ratings (looker.com, 2018). 

            The drawbacks of Tableau include the requirement for substantial training to fully master the Tableau platform (P. Baker, 2018d). It does not provide the feature of automatic refreshing of the reports with the help of scheduling (absentdata.com, 2018).  It is not a complete open tool; unlike other tools like Power BI, developers can create custom visuals that can be imported into Tableau. Hence, any new visuals need to be recreated instead of imported to Tableau (absentdata.com, 2018).  It has a limitation of conditional formatting and limited 16 column table, and a manual update to the parameters (absentdata.com, 2018).  The screen resolution can disturb a Tableau dashboard (absentdata.com, 2018).  Tableau Desktop provides necessary pre-processing including joining and blending data, and data cleansing is a required step, which required another tool such as Power BI to clean the data. Tableau introduced Tableau Prep tool in 2018 to prepare the data, which has its advantages and disadvantages as well (absentdata.com, 2018).  The biggest issue in Tableau is scaling and pricing for enterprise (absentdata.com, 2018).  The lowest-rated features in Tableau include the sandbox and test environment with 71% ratings, followed by the predictive analytics of 73% and auto-modeling of 78% (looker.com, 2018).  Figure 6 shows the highest-rated features and lowest-rated features of Tableau.


Figure 6.  Tableau Highest-Rated and Lowest-Rated Features (looker.com, 2018).

4. Domo

            Domo was founded in 2010 and has received $689 million in funding as of April 2017 (yurbi.com, 2018).  This funding includes investments from Fidelity Investments and Salesforce.  Domo has big customers like eBay and National Geographic (yurbi.com, 2018).  The initial public offering (IPO) was on June 29, 2018, and is now publicly traded on NASDAQ (yurbi.com, 2018).  It is for companies that already have business intelligence experience in their organizations (P. Baker, 2018a).  It is a powerful BI tool with many data connectors and robust data visualization capabilities (P. Baker, 2018a).  It has been named a leader based on receiving a high customer satisfaction score and having a significant market presence.  The number of users is 92% rating it 4-5 stars and 87% of users believe it is headed into the right direction (looker.com, 2018).  Figure 7 shows the satisfaction ratings.

Figure 7.  Domo Satisfaction Ratings (looker.com, 2018).

            Domo has advantages and disadvantages.  The advantages include the ability to view real-time data in a single dashboard (yurbi.com, 2018).  Domo can integrate on-premise data and external data sources in the cloud (yurbi.com, 2018).  It is built on reliable technology, its network is dependable, and it has both the leadership and financial resources to continue to evolve.  The highest-rated features include graphs and charts with 91%, followed by the dashboards of 90% and data visualization of 90% (looker.com, 2018). 

            The drawbacks of Domo include the cloud-based nature of Domo for those organizations whose most data is on-premise (yurbi.com, 2018).  The cost of Domo is a prohibitive for most business as it is not interested in deals that are less than $50,000 (yurbi.com, 2018).  The lack of improvement is another drawback of Domo (yurbi.com, 2018).  It is difficult to extract data, and high-pressure sales (yurbi.com, 2018).  The lowest-rated features of Domo include predictive analytics with 73%, followed by the auto-modeling of 77% and search of 80% (looker.com, 2018).  Figure 8 shows the highest-rated features and the lowest-rated features. 

Figure 8.  Domo Highest-Rated and Lowest-Rated Features (looker.com, 2018).

5. Looker

Looker is self-service data exploration solution hosted in the cloud (comparecamp.com, 2018).  It can be used to discover critical data and generate reports in seconds (comparecamp.com, 2018).  All collaboration and exploration models can be created with a little bit of SQL coding knowledge (comparecamp.com, 2018).  It supports more than 20 variations including BigQuery, Vertica, Hive, and Spark (comparecamp.com, 2018).   It can be used in complex installations and process the required terabytes of data (comparecamp.com, 2018).  It has been named a leader based on receiving a high customer satisfaction score and having a significant market presence (comparecamp.com, 2018).  The number of the user of 97% rated it 4-5 stars, and 90% of them believe it is headed in the right direction (looker.com, 2018).  The satisfaction ratings show 94% for quality of support, ease of use of 82%, and meets requirements of 86%.  Ease of admin has 88%, and ease of doing business with has 94%, and ease of setup has 84%.  Figure 9 shows the satisfaction ratings for Looker as a data visualization tool.

Figure 9.  Looker Satisfaction Ratings (looker.com, 2018).

Looker has advantages and disadvantages.  The main advantage of Looker is that the user does not have to be SQL expert or professional data analyst to use Looker (looker.com, 2018).  It has its understandable and flexible language known as LookML with a specific syntax, which can be used to explore data, extend the platform’s SQL efficiency (looker.com, 2018).  Packages can be tailored within the budget of the organization (looker.com, 2018).  The highest-rated features include the data column filtering of 90%, followed by data modeling of 89% and reports interface of 88% (looker.com, 2018). 

            The drawbacks of the Looker include the mobile user support limitation which has 66% of lowest-rated features (looker.com, 2018).  The predictive analytics is another limitation in Looker with 70% lowest-rated features (looker.com, 2018).  The auto-modeling has 74% lowest-rated feature (looker.com, 2018).  Figure 10 shows the highest-rated features and lowest-rated features of Looker. 

Figure 10. Looker Highest-Rated and Lowest-Rated Features (looker.com, 2018).

6. InsightSquared

            InsightSquared is a suite offering an array of business reporting and analytics features to measure all aspects of businesses including marketing, sales, customer service, financials and staffing (financesonline.com, 2018a).  It provides an in-depth analysis of the sales pipeline, covering sales forecasting and retrospective trend identification (financesonline.com, 2018a).  The sales analytics reports can be utilized to measure employee achievements and successes (financesonline.com, 2018a).  These sales analytics reports can be combined with marketing analytics information to identify lead sources, track lead generation, and measure campaign results (financesonline.com, 2018a).  It has been named a leader based on receiving a high customer satisfaction score and having a significant market presence (looker.com, 2018).  It received the highest satisfaction score among products in the BI platform (looker.com, 2018).  Figure 11 shows the satisfaction rating for the InsightSquared tool.


Figure 11.  InsightSquared Satisfaction Ratings (looker.com, 2018).

InsightSquared has several advantages.  It offers six customizable dashboards that give a near real-time view of essential metrics and latest trends, such as new pipeline opportunities, sales cycle warnings, employee activities, and flagged data errors (financesonline.com, 2018a).  It offers sales analytics and reports as well as marketing analytics.  It also offers other analytic reports such as financial reporting, staffing analytics and support team analytics (financesonline.com, 2018a).  (financesonline.com, 2018a) reported 100% user satisfaction. (looker.com, 2018) has reported 98% of the users rated it 4-5 stars with 97% of users believe it is headed in the right direction. 

            The disadvantages of InsightSquared include the limited customization, the loading time which needs improvement, and tricky configuration to ensure data is perfect (getapp.com, 2018b). The lowest-rated features of the InsightSquared tool include mobile user support with 83%, customization of 83% and Big Data services of 85% (looker.com, 2018). Figure 12 shows the highest-rated features and lowest-rated features of the InsightSquared tool.


Figure 12. InsightSquared Highest-Rated and Lowest-Rated Features (looker.com, 2018).

7.  QlikView

            QlikView is a data discovery tool allowing users to simulate the application of analytical data (financeonline.com, 2018a).  It can be used to create and utilize the default and custom data connectors and templates based on the requirement of the business (financeonline.com, 2018a).  It has been named a leader based on receiving a high customer satisfaction score and having a significant market presence (looker.com, 2018).  The number of users of 90% rated it with 4-5 stars, and 80% of the users believe it is headed in the right direction (looker.com, 2018).  Figure 13 shows the satisfaction ratings.

Figure 13.  QlikView Satisfaction Ratings (looker.com, 2018).

The advantages of QlikView include the personalized data search (financeonline.com, 2018a).  Users can build applications from the software script to fit the business needs.  It offers role-based access to specific security and data access (financeonline.com, 2018a). The highest-rated features include the dashboards with 89%, followed by performance and reliability and data transformation of 87% each (looker.com, 2018).

            The disadvantages of QlikView include the predictive analytics which received the lowest-rated features of 67%, followed by the auto-modeling of 69%, and integration APIs of 75% (looker.com, 2018).  Figure 14 shows the highest-rated features and the lowest-rated features of QlikView tool.

Figure 14.  QlikView Highest-Rated and Lowest-Rated Features (looker.com, 2018).

8.  WebFOCUS

            WebFOCUS is a cloud-based business intelligence and analytics platform offering analytical tools, applications, reports and documents for business stakeholders such as management team, analysts, line-of-business workers, partners and customers (softwareadvice.com, 2018).  It provides data discovery, location intelligence, predictive and prescriptive analytics, BI smart search, and natural language search (looker.com, 2018; softwareadvice.com, 2018).  It has been named a leader on receiving a high customer satisfaction score and having a significant market presence. The number of the user of 93% rated it with 4-5 stars, and 95% of the users believe it is headed in the right direction (looker.com, 2018).  Figure 15 shows the satisfaction ratings for WebFOCUS.


Figure 15.  WebFOCUS Satisfaction Ratings (looker.com, 2018).

The advantages of WebFOCUS include the ability to create anything the customer’s request; the platform is very flexible (looker.com, 2018).  Server time is minimal and easy to host multiple, separate applications with separate user groups and roles (looker.com, 2018).  The product is user-friendly and can be used by multiple levels of knowledge (looker.com, 2018).  The highest-rated features include data column filtering with 90% ratings, followed by reports interface with 90% ratings, and user, role and access management with 89% ratings (looker.com, 2018). 

            The disadvantages of WebFOCUS include the learning curve for developers to create content, and the reporting server has a static font which is proportional (looker.com, 2018).  Some things that seem to be easy becomes difficult, and not all features work with all data sources (softwareadvice.com, 2018). The lowest-rated features of WebFOCUS include the auto-modeling with 80% rating, mobile user support with 80% rating, and predictive analytics with 81% ratings (looker.com, 2018). Figure 16 shows the highest-rated features and lowest-rated features of WebFOCUS tool.

Figure 16.  WebFOCUS Highest-Rated and Lowest-Rated Features (looker.com, 2018).

9.  Phocas

            Phocas is a leading business intelligence solution built on exceeding customer expectations (financeonline.com, 2018c; looker.com, 2018).  It helps make data-driven business decisions, see new sales opportunities, and enhance the efficiency of the business (financeonline.com, 2018c).  It is an integrated data solution, providing an innovative data discovery platform (financeonline.com, 2018c).  It is designed for non-technical users and delivers a simple and powerful analytical capability that easily turns data into a graph, chart, or map at a few clicks or touches of a screen (financeonline.com, 2018c).  It has been named a leader based on receiving a high customer satisfaction score and having a significant market presence (looker.com, 2018).  The number of users of 100% rated it with 4-5 stars, and 95% of the users believe it is headed in the right direction (looker.com, 2018).  Figure 17 shows the satisfaction rating for Phocas.

Figure 17.  Phocas Satisfaction Ratings (looker.com, 2018).

            The advantages of Phocas include gaining a quick insight into sales data, the ease of use of the product and responsiveness of the vendor (getapp.com, 2018c).  It is described to be quick and easy to get the reports the business needs, with dashboards providing summaries that can drill down into (getapp.com, 2018c).  It is accessible from anywhere and can design to suit the business needs (getapp.com, 2018c).  The highest-rated features of Phocas include the performance and reliability of 96%, followed by the data column filtering of 95% and Big Data services of 94% (looker.com, 2018).

            The disadvantages of Phocas include the cost to make it available to more employees (getapp.com, 2018c).  The lowest-rated features include the predictive analytics of 81%, followed by the breadth of partner applications of 81%, and auto-modeling of 82% (looker.com, 2018). Figure 18 shows the highest-rated features and lowest-rated features of Phocas.

Figure 18. Phocas Highest-Rated and Lowes-Rated Features (looker.com, 2018).

10.  Easy Insight

            Easy Insight is a feature-packed business intelligence platform enabling users to get an insightful overview of business operations.  The overview helps business in defining and analyzing the business data to help find better ways to improve the existing business processes or devise and deploy new strategies (financeonline.com, 2018b).  Business gets access to vital information that will help them come up with better decisions and initiate sound business actions (financeonline.com, 2018b).  It has been named a niche vendor based on receiving a relatively low customer satisfaction score and having a small market presence (financeonline.com, 2018b).  The number of the user of 100% rated it with 4-5 stars, and 100% of the users believe it is headed in the right direction (looker.com, 2018).  Figure 19 shows the satisfaction rating for Easy Insight tool.


Figure 19.  Easy Insight Satisfaction Ratings (looker.com, 2018).

The advantages of Easy Insight include data import and export, data visualization, drag and drop interface, and graphical data presentation (getapp.com, 2018a).  It also offers real-time analytics, real-time reporting, reporting and statistics, and visual analytics (getapp.com, 2018a).  It has data filtering, and customizable reporting (getapp.com, 2018a).  The highest-rated features include the performance and reliability of 96%, followed by data column filtering of 95%, and Big Data services of 94% (looker.com, 2018). 

            The limitations of Easy Insight include the activity dashboard, ad-hoc reporting, automatic notification, monitoring, and dashboard creation (getapp.com, 2018a).  The limitations also include the third-party integration.  The lowest-rated features of Easy Insight include collaboration and workflow of 71%, followed by auto-modeling of 71% and mobile user support of 76% (looker.com, 2018).  Figure 20 shows the highest-rated features and lowest-rated features of Easy Insight tool.


Figure 20.  Easy Insight Highest-Rated and Lowest-Rated Features (looker.com, 2018).

Analysis of the Selected Ten Data Visualization Tools

            Table 1 summarizes the satisfaction ratings for these ten big data visualization tools. The comparative analysis in Figure 21 illustrates visually the Sisense, Looker, InsightSquared, and EasyInsight have the highest rate in Quality of Support.  Phocas and InsightSquared have the highest rate of ease of use. InsightSquared has the highest rates of meets requirements.  Easy Insight has the highest rate for ease of admin.  Easy Insight, Phocas, WebFOCUS, InsightSquared, Looker, and Sisense have the highest ease of doing business with.  EasyInsight and Sisense have the highest rate for ease of setup.


Table 1.  The Ten Tools Satisfaction Rating Summary.


Figure 21. Illustration of the Satisfaction Ratings of the Ten Data Visualization Tools.

Conclusion

This project has discussed and analyzed ten big data visualization tools.  These ten include Sisense, Microsoft Power BI, Tableau, Domo, Looker, InsightSquared, QlikView, WebFOCUS, Phocas, and Easy Insight. Each tool has advantages and disadvantages that are discussed in this project as well.  The analysis showed that the Sisense, Looker, InsightSquared, and EasyInsight have the highest rate in Quality of Support.  Phocas and InsightSquared have the highest rate of ease of use. InsightSquared has the highest rates of meets requirements.  Easy Insight has the highest rate for ease of admin.  Easy Insight, Phocas, WebFOCUS, InsightSquared, Looker, and Sisense have the highest ease of doing business with.  EasyInsight and Sisense have the highest rate for ease of setup. Organizations must analyze each tool that can best meet their business requirements.

References

absentdata.com. (2018). Tableau Advantages and Disadvantages. Retrieved from https://www.absentdata.com/advantages-and-disadvantages-of-tableau/.

Baker, P. (2018). The Best Data Visualization Tools of 2018. Retrieved from https://www.pcmag.com/roundup/346417/the-best-data-visualization-tools.

Baker, P. (2018a). Data Visualization Tool:  DOMO.

Baker, P. (2018b). Data Visualization Tool:  Microsoft Power BI.

Baker, P. (2018c). Data Visualization Tool:  Sisense.

Baker, P. (2018d). Data Visualization Tool: Tableau Desktop.

comparecamp.com. (2018). Looker Review: Comparison of Pros, Cons & Pricing of one of the Best Business Intelligence Services. Retrieved from http://comparecamp.com/looker-review-comparison-pros-cons-pricing-one-best-business-intelligence-services/.

EMC. (2015). Data Science and Big Data Analytics: Discovering, Analyzing, Visualizing and Presenting Data. (1st ed.): Wiley.

financeonline.com. (2018a). 20 Best Data Visualization Software Solutions of 2018. Retrieved from https://financesonline.com/data-visualization/.

financeonline.com. (2018b). Easy Insight Review. Retrieved from https://reviews.financesonline.com/p/easy-insight/.

financeonline.com. (2018c). Phocas Review. Retrieved from https://reviews.financesonline.com/p/phocas/.

financesonline.com. (2018a). InsightSquared Review. Retrieved from https://reviews.financesonline.com/p/insightsquared/.

financesonline.com. (2018b). Sisense: Pros & Cons of the Top Business Intelligence Software.

getapp.com. (2018a). Easy Insight. Retrieved from https://www.getapp.com/business-intelligence-analytics-software/a/easy-insight/.

getapp.com. (2018b). InsightSquared: Pros and Cons. Retrieved from https://www.getapp.com/marketing-software/a/insightsquared/reviews/.

getapp.com. (2018c). Phocas Pros and Cons. Retrieved from https://www.getapp.com/business-intelligence-analytics-software/a/phocas/reviews/.

Jayasingh, B. B., Patra, M. R., & Mahesh, D. B. (2016, 14-17 Dec. 2016). Security issues and challenges of big data analytics and visualization. Paper presented at the 2016 2nd International Conference on Contemporary Computing and Informatics (IC3I).

looker.com. (2018). BI Tools Comparison, Ratings of Top 20 Vendors. Retrieved from https://www.looker.com.

Marr, B. (2017). The 7 Best Data Visualization Tools Available Today. Retrieved from https://www.forbes.com/sites/bernardmarr/2017/07/20/the-7-best-data-visualization-tools-in-2017/#3a3af8096c30.

Meyer, M. (2018). The Rise of Healthcare Data Visualization.

softwareadvice.com. (2018). WebFOCUS: Pros and Cons. Retrieved from https://www.softwareadvice.com/bi/webfocus-bi-profile/.

techaffinity.com. (2017). Microsoft Power BI & Pros and Cons. Retrieved from https://techaffinity.com/blog/microsoft-power-bi-pros-and-cons/.

yurbi.com. (2018). Straight Talk: Review of DOMO; The Pros and Cons. Retrieved from https://www.yurbi.com/blog/straight-talk-review-of-domo-the-pros-and-cons/.

 

Big Data Visualization in Healthcare Industry

Dr. Aly, O.
Computer Science

The purpose of this discussion is to select an industry and discuss three Big Data visualization tools often used in that particular industry.  The selected tools for this discussion involve Tableau, QlikView, and Power BI in the healthcare sector.  The discussion also provides the viewpoint of the researcher on their impact or purpose for an industry. 

Data Visualization

Visualization is one of the most powerful representations and presentation of the data (Jayasingh, Patra, & Mahesh, 2016).  It does help in viewing the data in the form of graphs, images, pie charts (EMC, 2015; Jayasingh et al., 2016). Table 1 shows common representation methods for data and charts. It helps in synthesizing a large volume of data to get at the essence of such big data and convey the key insights from this data (Meyer, 2018).


Table 1.  Common Representation Methods for Data and Charts (EMC, 2015).

EMC has provided a good example which can demonstrate the power of data visualization.  The forty-five years of store opening data in a table which is very hard to understand versus data presentation visualized in a map in Figure 1, which can be easily understood.


Figure 1.  Demonstration of Data Visualization Role in Presenting Big Data (EMC, 2015).

Data Visualization and Visual Analytics

Data visualization is increasingly becoming the critical building block of the analytics in the era of Big Data Analytics (EMC, 2015; Fiaz, Asha, Sumathi, & Navaz, 2016).  The volume and the variety of the data keep growing, and the data visualization plays a significant role in presenting the analytical data to the various audience with various backgrounds (EMC, 2015; Fiaz et al., 2016).  The Big Data Analytical projects are sophisticated, and the presentation of their values is critical to sustaining their momentum (EMC, 2015).  The presentation of such analytical projects is challenging due to the mixed backgrounds of the audience (EMC, 2015). The interpretation of the data visually assists in understanding the data and to quickly make business decisions (Fiaz et al., 2016).  Besides, the dynamic data visualization is another challenge. 

(EMC, 2015) have recommended four deliverables for communicating analytical projects to satisfy most of the needs of various stakeholders.  The first presentation is for a project sponsor. The second presentation is for an analytical audience.  The third presentation is for technical specification documents. The fourth presentation is for well-annotated production code.

Various data visualization such as Tableau, D3.js, timeline provide visualization for processing Big Data to provide overviews, summaries and drill down to a level where patterns can be extracted and correlation can be developed from the datasets (EMC, 2015; Jayasingh et al., 2016).  Table 2 shows the standard tools for data visualization.


Table 2. Common Tools for Data Visualization (EMC, 2015).

The Visual Analytics is the combination of Big Data Analytics and the interactive visualization techniques (Jayasingh et al., 2016).  Visual analytics is faced with the challenge of embedding or supporting Big Data to represent the data (Jayasingh et al., 2016).  The application of visual analytics includes early fraud detection in the credit card sector, weather monitoring, network analysis and forensic analysis (Jayasingh et al., 2016).     

Data Visualization in Healthcare

As healthcare industry is taking advantage of Big Data Analytics, it is also utilizing the powerful presentation of the visual analytics and data visualization to make sense out of the large volume of the data (Bresnick, 2018; Patel-Misra, 2018).  However, as (Patel-Misra, 2018) have indicated the data visualization alone does not drive value, but rather the value is realized when the data visualization drives a process, a change in process, or a new action.  Thus, the data visualization become best when it is integrated seamlessly into a process (Patel-Misra, 2018).

Various user-friendly data visualization tools have been used in various sectors including healthcare such as Splunk, Datameer, Jaspersoft, Karmasphere, Pentaho, Hadapt, HP Vertica, Teradata Aster Solutions Cognos, Crystal Reports, Tableau, QlikView, Spotfire, and Power BI (Haughom, Horstmeier, Wadsworth, Staheli, & Falk, 2017; Mathew & Pillai, 2015).

Tableau, QlikView, and Power BI have been used often in healthcare and transformed the analytical reporting (Thompson, Gresse, & Lendway, 2018).  This discussion addresses only Tableau, QlikView and Power BI as the three data visualization tools often used in the healthcare industry. 

Tableau in Healthcare

Tableau has reported in a white paper (Tableau, 2011)) that healthcare providers are successfully transforming data from information to insight using Tableau software.  Healthcare organizations utilize three approaches to get more from their information assets (Tableau, 2011).  The first approach is to break the data access logjam by empowering the departments in healthcare organization to explore their data.  The second approach is to uncover answers with data from multiple systems to reveal trends and outliers. The third approach is to share insights with executives, doctors, and others to drive collaboration.  

The application of the first approach has resulted in reducing the time patients have to wait by nearly ten minutes.  Figure 2 shows the data visualization for such a result.


Figure 2.  Patient Cycle Time Data Visualization (Tableau, 2011).

The second approach has been applied in a syringe label audit resulting in better labeling with provider initials, syringe date and time of syringe preparation, increasing the safety of the patient. Figure 3 shows the data visualization for the anesthesiology syringe audit.


Figure 3.  Anesthesiology Syringe Audit Data Visualization (Tableau, 2011).

The application of the third approach to sharing insights with executives, doctors, and others to drive collaboration has increased the hospital profitability by the market. Figure 4 shows the data visualization for such application.


Figure 4.  Analyzing Hospital Profitability by Market (Tableau, 2011)

QlikView in Healthcare

QlikView has reported that healthcare providers can integrate data from across systems and remove the inhibitors to improve quality, safety, and cost of healthcare delivery using QlikView (qlikview.com, 2007).  It uses in-memory analysis.  Data can be analyzed across an unlimited number of dimensions and explored in any directions against the entire data volume down to the transaction level.   Qlik provides quick, and robust business analysis using data visualization all enabled through its in-memory associative technology.  It provides various types of analysis such as clinical operations analysis, care delivery analysis, resource planning analysis, supply chain analysis, financial analysis, and improving the quality, safety and cost of healthcare delivery (qlikview.com, 2007).

Power BI in Healthcare

(Schott, 2017) has reported three ways real-time data visualization will transform the healthcare industry.  The first approach is to share data across healthcare organizations.  The second approach is to provide real-time visualization. The third approach is to improve the response time.  Power BI was found useful in all three approaches (Schott, 2017). Power BI collects and analyzes electronic health records.  It then connects that information with open data sources to enable users to visualize data and explore service are patterns (Schott, 2017). 

The Foundation Trust is an example for utilizing Power BI to evaluate the cost and efficacy of drugs during treatment processes (Schott, 2017).  The organization integrated regional weather information with its data to find out how inclement weather can impact the frequency of respiratory ailment (Schott, 2017).  The group has worked jointly with a local hospital to compare data through Power BI to identify the best practices in prescribing medications (Schott, 2017)

Conclusion

In summary, data visualization plays a significant role not only in interpreting the Big Data Analytics but also in representing and presenting the Big Data Analytics.  Data visualization has challenges of the various audience and dynamic visual analytics.  Various data visualizations software and programs are available for Big Data Analytics. The three selected programs for this discussion involved Tableau, QlikView and Power BI for the healthcare sector.  Each program offers unique services with data visualization capabilities.  QlikView provides the analysis using the in-memory technique for better performance.  Organizations should utilize the best data visualization tool based on the business model. Organizations might need to implement more than one data visualization tool, should the business model require.

References

Bresnick, J. (2018). Using Visual Analytics, Big Data Dashboards for Healthcare Insights.

EMC. (2015). Data Science and Big Data Analytics: Discovering, Analyzing, Visualizing and Presenting Data. (1st ed.): Wiley.

Fiaz, A. S., Asha, N., Sumathi, D., & Navaz, A. S. (2016). Data Visualization: Enhancing Big Data More Adaptable and Valuable. International Journal of Applied Engineering Research, 11(4), 2801-2804.

Haughom, J., Horstmeier, P., Wadsworth, J., Staheli, R., & Falk, L. H. (2017). The Changing Role of Healthcare Data Analytics – How our Most Successful Clients Are Embracing Healthcare Transformation. Retrieved from https://www.healthcatalyst.com/wp-content/uploads/2014/12/whitepaper-Changing-Role-Healthcare-Data-Analysts.pdf, White Paper.

Jayasingh, B. B., Patra, M. R., & Mahesh, D. B. (2016, 14-17 Dec. 2016). Security issues and challenges of big data analytics and visualization. Paper presented at the 2016 2nd International Conference on Contemporary Computing and Informatics (IC3I).

Mathew, P. S., & Pillai, A. S. (2015). Big Data solutions in Healthcare: Problems and perspectives. Paper presented at the Innovations in Information, Embedded and Communication Systems (ICIIECS), 2015 International Conference on.

Meyer, M. (2018). The Rise of Healthcare Data Visualization.

Patel-Misra, D. (2018). Data Visualization in Healthcare: Driving Real-Time Actionable Insights.

qlikview.com. (2007). QlikView for Healthcare. Retrieved from http://www.infovara.ee/documents/pdf/meditsiin.pdf.

Schott, W. (2017). 3 ways real-time data visualizations will transform the healthcare industry.

Tableau. (2011). Three Ways Healthcare Probiders are transforming data from information to insight. White Paper.

Thompson, J., Gresse, J., & Lendway, L. (2018). Healthcare Visualizations: Are You Getting the Entire Story?

The Significance of Big Data and Artificial Intelligence to any Industry

Dr. O. Aly
Computer Science

The purpose of this discussion is to address whether the combination of Big Data and Artificial Intelligence is significant to any industry.  The discussion also provides an example where Artificial Intelligence has been used and applied successfully.  The chosen sector for such the use of AI is the health care.    

The Significance of Big Data and Artificial Intelligence Integration

            As discussed in U4-DB2, Big Data empowers artificial intelligence.  Thus, there is no doubt about the benefits and advantages of utilizing Big Data in artificial intelligence for businesses.  However, in this discussion, the question is whether the significance of their combination in any industry or specific industries only. 

            McKinsey Global Institute reported in 2011 that not all industries are created equal when parsing the benefits of Big Data (Brown, Chui, & Manyika, 2011).  The report has indicated that although Big Data is changing the game for virtually every sector, it favors some companies and industries over the others, especially in the early stages of the adoption.  McKinsey has also reported in (Manyika et al., 2011) five domains that could take advantages of the transformative potential of Big Data. These domains include for U.S. healthcare, retail, and public sector administration, retail for European Union, and personal location data globally.  Figure 1 illustrates the value of Big Data significant financial value across sectors.


Figure 1.  Big Data Financial Value Across Sectors (Manyika et al., 2011).

            Thus, the value of Big Data Analytics is tremendous already for almost every business, and the value varies from one sector to another.  The combination of Big Data and artificial intelligence is good for innovation (Bean, 2018; Seamans, 2017).  There is no limit for innovation for any business.  Figure 2 shows the 19-year Go player Ke Jie reacts during the second match against Google’s artificial intelligence program AlphaGo in Wuzhen. 


Figure 2.  19-year old Ke Jie Reacts During the Second Match Against Google’s Artificial Intelligence Program AlphaGo (Seamans, 2017).

If the combination of Big Data and artificial intelligence is good for innovation, then, logically every organization and every sector need innovations to survive the competition.  In the survey conducted by NewVantage Partner, 97.2% of the executive decision-makers have reported that their companies are investing in building or launching Big Data and Artificial Intelligence initiatives (Bean, 2018; Patrizio, 2018).  It is also worth noting that 76.5% of the executives have indicated that the availability of Big Data is empowering AI and cognitive initiatives within their organizations (Bean, 2018).  The same survey has also shown 93% of the executives have identified artificial intelligence as the disruptive technology and their organizations are investing in for the future.  This result shows that a common consensus among the executives that organizations must leverage cognitive technologies to compete in an increasingly disruptive period (Bean, 2018). 

AI Application Example in the Health Care Industry

Since healthcare industry has been identified in various research studies about its great benefits from Big Data and artificial intelligence, this sector is chosen as an example of the application of both BD and AI for this discussion. AI is becoming a transformational force in healthcare (Bresnick, 2018).  The healthcare industry has almost endless opportunities to apply technologies such as Big Data and AI to deploy more precise and impactful interventions at the right time in the care of patients (Bresnick, 2018).

Harvard Business Review (HBR) has indicated that 121 health AI and machine learning companies raised $2.7 billion in 206 deals between 2011 and 2017 (Kalis, Collier, & Fu, 2018).  HBR has examined ten promising artificial intelligence applications in healthcare (Kalis et al., 2018).  The findings have shown that the application of AI could create up to $150 billion in annual savings for U.S. health care by 2026 (Kalis et al., 2018).   The investigation has also shown that AI currently creates the most value in assisting the frontline clinicians to be more productive and in making back-end processes more efficient, but not yet in making clinical decisions or improving clinical outcomes (Kalis et al., 2018).  Figure 3 shows the ten AI applications that could change health care.


Figure 3.  Ten Application of AI That Could Change Health Care (Kalis et al., 2018).

Conclusion

            In conclusion, the combination of Big Data and Artificial Intelligence drives innovations for all sectors. Every sector and every business need to innovate to maintain a competitive edge.  Some sectors are leading in taking the advantages of this combination of BD and AI more than others.  Health care is an excellent example of employing artificial intelligence.  However, the application of the AI has its most value on three main areas only of AI-assisted surgery, virtual nurse, administrative workflow.  The use of AI in other areas in healthcare is still in infant stages and will take time until it establishes its root and witness the great benefits of AI application (Kalis et al., 2018).

References

Bean, R. (2018). How Big Data and AI Are Driving Business Innovation in 2018. Retrieved from https://sloanreview.mit.edu/article/how-big-data-and-ai-are-driving-business-innovation-in-2018/.

Bresnick, J. (2018). Top 12 Ways Artificial Intelligence Will Impact Healthcare. Retrieved from https://healthitanalytics.com/news/top-12-ways-artificial-intelligence-will-impact-healthcare.

Brown, B., Chui, M., & Manyika, J. (2011). Are you ready for the era of ‘big data’. McKinsey Quarterly, 4(1), 24-35.

Kalis, B., Collier, M., & Fu, R. (2018). 10 Promising AI Applications in Health Care. Retrieved from https://hbr.org/2018/05/10-promising-ai-applications-in-health-care, Harvard Business Review.

Manyika, J., Chui, M., Brown, B., Bughin, J., Dobbs, R., Roxburgh, C., & Byers, A. H. (2011). Big data: The next frontier for innovation, competition, and productivity.

Patrizio, A. (2018). Big Data vs. Artificial Intelligence.

Seamans, R. (2017). Artificial Intelligence And Big Data: Good For Innovation?

The Impact of Big Data Analytics (BDA)on Artificial Intelligence (AI)

Dr. O. Aly
Computer Science

The purpose of this discussion is to discuss the future impact of Big Data Analytics for Artificial Intelligence.  The discussion will also provide an example of the AI use in Big Data generation and analysis.  The discussion begins with artificial intelligence, followed by an advanced level of big data analysis.  The impact of the Big Data (BD) on the artificial intelligence is also discussed addressing various examples showing how artificial intelligence is empowered by BD.

Artificial Intelligence

Artificial Intelligence (AI) has eight definitions laid out across two dimensions of thinking and acting (Table 1) (Russell & Norvig, 2016). The top definitions are concerned with thought processes and reasoning, while the bottom definitions address the behavior.  The definitions on the left measure success regarding fidelity to human performance, while the definitions on the rights measure against an ideal performance measure called “rationality” (Russell & Norvig, 2016).  The system is “rational” if it does the “right thing” given what it knows.

Table 1:  Some Definitions of Artificial Intelligence, Organized Into Four Categories (Russell & Norvig, 2016).

The study (Patrizio, 2018) defined artificial intelligence as a computational technique allowing machines to perform cognitive functions such as acting or reacting to input, similar to the way humans do.  The traditional computing applications react to data, but the reactions and responses have to be hand-coded.   However, the app cannot react to unexpected results (Patrizio, 2018).  The artificial intelligence systems are continuously in a flux mode changing their behavior to accommodate any changes in the results and modifying their reactions (Patrizio, 2018).  The artificial intelligence-enabled system is designed to analyze and interpret data and address the issues based on those interpretations (Patrizio, 2018).  The computer learns once how to act or react to a particular result and knows in the future to act in the same way using the machine learning algorithms (Patrizio, 2018).  IBM has invested $1 billion in artificial intelligence through the launch of its IBM Watson Group (Power, 2015).  The health care industry is the most significant application of Watson (Power, 2015).

Advanced Level of Big Data Analysis

The fundamental analytics techniques include descriptive analytics allowing breaking down big data into smaller, more useful pieces of information about what has happened, and focusing on the insight gained from the historical data to provide trending information on past or current events (Liang & Kelemen, 2016).  However, the advanced level computational tools focus on predictive analytics, to determine patterns and predict future outcomes and trends through quantifying effects of future decision to advise on possible outcomes (Liang & Kelemen, 2016).  The prescriptive analytic includes functions as a decision support tool exploring a set of possible actions and proposing actions based on descriptive and predictive analysis of complex data.  The advanced level computational techniques include real-time analytics.

Advanced level of data analysis includes various techniques.  The real-time analytics and meta-analysis can be used to integrate multiple data sources (Liang & Kelemen, 2016).  The hierarchical or multi-level model can be used for spatial data, a longitudinal and mixed model for real-time or dynamic temporal data rather than static data (Liang & Kelemen, 2016).  The data mining, pattern recognition can be used for trends, and pattern detection (Liang & Kelemen, 2016).  The natural language processing (NLP) can be used for text mining, machine learning, statistical learning Bayesian learning with auto-extraction of data and variables (Liang & Kelemen, 2016).  The artificial intelligence with automatic ensemble techniques and intelligent agent, and deep learning such as neural network, support vector machine, dynamic state-space model, automatic can be used for automated analysis and information retrieval (Liang & Kelemen, 2016).  The causal inferences and Bayesian approach can be used for probabilistic interpretations (Liang & Kelemen, 2016).  

Big Data Empowers Artificial Intelligence

            The trend of artificial intelligence implementation is increasing.  It is anticipated that 70% of enterprises will implement artificial intelligence (AI) by the end of 2018, which is up from 40% in 2016 and 51% in 2017 (Mills, 2018).  A survey conducted by NewVantage Partners of c-level executive decision-makers found that 97.2% of executives stated that their companies are investing in, building, or launching Big Data and artificial intelligence initiatives (Bean, 2018; Patrizio, 2018).  The same survey has found that 76.5% of the executives feel that the artificial intelligence and Big Data are becoming interconnected closely and the availability of the data is empowering the artificial intelligence and cognitive initiatives within their organizations (Patrizio, 2018).

Artificial intelligence requires data to develop its intelligence, particularly machine learning (Patrizio, 2018).  The data used in artificial intelligence and machine learning is already cleaned, with extraneous, duplicate and unnecessary data already removed, which is regarded to be the first big step when using Big Data and artificial intelligence (Patrizio, 2018).  CERN data center has accumulated over 200 petabytes of filtered data (Kersting & Meyer, 2018). Machine learning and artificial intelligence can take advantages of this filtered data leading to many breakthroughs (Kersting & Meyer, 2018).  An example of these breakthroughs includes genomic and proteomic experiments to enable personalized medicine (Kersting & Meyer, 2018).  Another example includes the historical climate data which can be used to understand global warming and to predict weather better (Kersting & Meyer, 2018).  The massive amounts of sensor network readings and hyperspectral images of plants is another example to identify drought conditions and gain insights into plant growth and development (Kersting & Meyer, 2018). 

Multiple technologies such as artificial intelligence, machine learning, and data mining techniques have been used together to extract the maximum value from Big Data (Luo, Wu, Gopukumar, & Zhao, 2016). Artificial intelligence, machine learning, and data mining have been used in healthcare (Luo et al., 2016).  Computational tools such as neural networks, genetic algorithms, support vector machines, case-based reasoning have been used in prediction (Mishra, Dehuri, & Kim, 2016; Qin, 2012) of stock markets and other financial markets (Qin, 2012). 

AI has impacted the business world through social media and the large volume of the collected data from social media (Mills, 2018).  For instance, the personalized content in real time is increasing to enhance the sales opportunities (Mills, 2018).   The artificial intelligence makes use of effective behavioral targeting methodologies (Mills, 2018).  Big Data improves customer services by making it proactive and allows companies to make customer responsive products (Mills, 2018).  The Big Data Analytics (BDA) assist in predicting what is wanted out of a product (Mills, 2018).  BDA has been playing a significant role in fraud preventions using artificial intelligence (Mills, 2018).  Artificial intelligence techniques such as video recognition, natural language processing, speech recognition, machine learning engines, and automation have been used to help businesses protect against these sophisticated fraud schemes (Mills, 2018).   

The healthcare industry has utilized the machine learning to transform the large volume of the medical data into actionable knowledge performing predictive and prescriptive analytics (Palanisamy & Thirunavukarasu, 2017).  The machine learning platform utilizes artificial intelligence to develop sophisticated algorithm processing massive datasets (structured and unstructured) performing advanced analytics (Palanisamy & Thirunavukarasu, 2017).  For a distributed environment, Apache Mahout (2017), which is an open source machine learning library, integrates with Hadoop to facilitate the execution of scalable machine learning algorithms, offering various techniques such as recommendation, classification, and clustering (Palanisamy & Thirunavukarasu, 2017).

Conclusion

Big Data has attracted the attention of various industries including academia, healthcare and even the government. Artificial intelligence has been around for some time.  Big Data offers various advantages to organizations from increasing sales, to reduce costs to health care.  Artificial intelligence also has its advantages, providing real-time analysis reacting to changes continuously.  The use of Big Data has empowered the artificial intelligence.  Various industries such as the healthcare industry are taking advantages of Big Data and artificial intelligence.  Their growing trend is increasingly demonstrating the realization of businesses to the importance of artificial intelligence in the age of Big Data, and the importance of Big Data role in the artificial intelligence domain.

References

Bean, R. (2018). How Big Data and AI Are Driving Business Innovation in 2018. Retrieved from https://sloanreview.mit.edu/article/how-big-data-and-ai-are-driving-business-innovation-in-2018/.

Kersting, K., & Meyer, U. (2018). From Big Data to Big Artificial Intelligence? : Springer.

Liang, Y., & Kelemen, A. (2016). Big Data Science and its Applications in Health and Medical Research: Challenges and Opportunities. Austin Journal of Biometrics & Biostatistics, 7(3).

Luo, J., Wu, M., Gopukumar, D., & Zhao, Y. (2016). Big data application in biomedical research and health care: a literature review. Biomedical informatics insights, 8, BII. S31559.

Mills, T. (2018). Eight Ways Big Data And AI Are Changing The Business World.

Mishra, B. S. P., Dehuri, S., & Kim, E. (2016). Techniques and Environments for Big Data Analysis: Parallel, Cloud, and Grid Computing (Vol. 17): Springer.

Palanisamy, V., & Thirunavukarasu, R. (2017). Implications of Big Data Analytics in developing Healthcare Frameworks–A review. Journal of King Saud University-Computer and Information Sciences.

Patrizio, A. (2018). Big Data vs. Artificial Intelligence.

Power, B. (2015). Artificial Intelligence Is Almost Ready for Business.

Qin, X. (2012). Making use of the big data: next generation of algorithm trading. Paper presented at the International Conference on Artificial Intelligence and Computational Intelligence.

Russell, S. J., & Norvig, P. (2016). Artificial intelligence: a modern approach: Malaysia; Pearson Education Limited.

Hadoop: Manageable Size of Data.

Dr. O. Aly
Computer Science

Abstract

The purpose of this project is to discuss how data can be handled before Hadoop can take action on breaking data into manageable sizes.  The discussion begins with an overview of Hadoop providing a brief history of Hadoop and the difference between Hadoop 1.x and Hadoop 2.x. The discussion involves the Big Data Analytics process using Hadoop which involves six significant steps including the pre-processing data and ETL process where the data must be converted and cleaned before processing it.  Before data processing, some consideration must be taken for data preprocessing, modeling and schema design in Hadoop for better processing and data retrieval as it will affect how data can be split among various nodes in the distributed environment because not all tools can split the data.  This consideration begins with the data storage format, followed by Hadoop file types consideration and XML and JSON format challenges in Hadoop.  The compression of the data must be considered carefully because not all compression types are “splittable.” The discussion also involves the schema design consideration for HDFS and HBase since they are used often in the Hadoop ecosystem. 

Keywords: Big Data Analytics; Hadoop; Data Modelling in Hadoop; Schema Design in Hadoop.

Introduction

In the age of Big Data, dealing with large datasets in terabytes and petabytes is a reality and requires specific technology as the traditional technology was found inappropriate for it (Dittrich & Quiané-Ruiz, 2012).  Hadoop is developed to store, and process such large datasets efficiently.  Hadoop is becoming a data processing engine for Big Data (Dittrich & Quiané-Ruiz, 2012).  One of the significant advantages of Hadoop MapReduce is allowing non-expert users to run easily analytical tasks over Big Data (Dittrich & Quiané-Ruiz, 2012). However, before the analytical process takes place, some schema design and data modeling consideration must be taken for Hadoop so that the data process can be efficient (Grover, Malaska, Seidman, & Shapira, 2015).  Hadoop requires splitting the data. Some tools can split the data while others cannot split the data natively and requires integration (Grover et al., 2015). 

This project discusses these considerations to ensure the appropriate schema design for Hadoop and its components of HDFS, HBase where the data gets stored in a distributed environment.   The discussion begins with an overview of Hadoop first, followed by the data analytics process and ends with the data modeling techniques and consideration for Hadoop which can assist in splitting the data appropriately for better data processing performance and better data retrieval.

Overview of Hadoop

            Google published and disclosed its MapReduce technique and implementation early around 2004 (Karanth, 2014).  It also introduced the Google File System (GFS) which is associated with MapReduce implementation.  The MapReduce, since then, has become the most common technique to process massive data sets in parallel and distributed settings across many companies (Karanth, 2014).  In 2008, Yahoo released Hadoop as an open-source implementation of the MapReduce framework (Karanth, 2014; sas.com, 2018). Hadoop and its file system HDFS are inspired by Google’s MapReduce and GFS (Ankam, 2016; Karanth, 2014).  

The Apache Hadoop is the parent project for all subsequence projects of Hadoop (Karanth, 2014).  It contains three essential branches 0.20.1 branch, 0.20.2 branch, and 0.21 branch.  The 0.20.2 branch is often termed MapReduce v2.0, MRv2, or Hadoop 2.0.  Two additional releases for Hadoop involves the Hadoop-0.20-append and Hadoop-0.20-Security, introducing HDFS append and security-related features into Hadoop respectively.  The timeline for Hadoop technology is outlined in Figure 1.


Figure 1.  Hadoop Timeline from 2003 until 2013 (Karanth, 2014).

Hadoop version 1.0 was the inception and evolution of Hadoop as a simple MapReduce job-processing framework (Karanth, 2014).  It exceeded its expectations with wide adoption of massive data processing.  The stable version of the 1.x release includes features such as append and security.  Hadoop version 2.0 release came out in 2013 to increase efficiency and mileage from existing Hadoop clusters in enterprises.  Hadoop is becoming a common cluster-computing and storage platform from being limited to MapReduce only, because it has been moving faster than MapReduce to stay leading in massive scale data processing with the challenge of being backward compatible (Karanth, 2014). 

            In Hadoop 1.x, the JobTracker was responsible for the resource allocation and job execution (Karanth, 2014).  MapReduce was the only supported model since the computing model was tied to the resources in the cluster. The yet another resource negotiator (YARN) was developed to separate concerns relating to resource management and application execution, which enables other application paradigms to be added into Hadoop computing cluster. The support for diverse applications result in the efficient and effective utilization of the resources and integrates well with the infrastructure of the business (Karanth, 2014).  YARN maintains backward compatibility with Hadoop version 1.x APIs  (Karanth, 2014).  Thus, the old MapReduce program can still execute in YARN with no code changes, but it has to be recompiled (Karanth, 2014).

            YARN abstracts out the resource management functions to form a platform layer called ResourceManager (RM) (Karanth, 2014).  Every cluster must have RM to keep track of cluster resource usage and activity.  RM is also responsible for allocation of the resources and resolving contentions among resource seekers in the cluster.  RM utilizes a generalized resource model and is agnostic to application-specific resource needs.  RM does not need to know the resources corresponding to a single Map or Reduce slot (Karanth, 2014). Figure 2 shows Hadoop 1.x and Hadoop 2.x with YARN layer.   


Figure 2. Hadoop 1.x vs. Hadoop 2.x (Karanth, 2014).

Hadoop 2.x involves various enhancement at the storage layer as well.   These enhancements include the high availability feature to have a hot standby of NameNode (Karanth, 2014), when the active NameNode fails, the standby can become active NameNode in a matter of minutes.  The Zookeeper or any other HA monitoring service can be utilized to track NameNode failure (Karanth, 2014).  The failover process to promote the hot standby as the active NameNode is triggered with the assistance of the Zookeeper.  The HDFS federation is another enhancement in Hadoop 2.x, which is a more generalized storage model, where the block storage has been generalized and separated from the filesystem layer (Karanth, 2014).  The HDFS snapshots is another enhancement to the Hadoop 2.x which provides a read-only image of the entire or a particular subset of a filesystem to protect against user errors, backup, and disaster recovery.   Other enhancements added in Hadoop 2.x include the Protocol Buffers (Karanth, 2014). The wire protocol for RPCs within Hadoop is based on Protocol Buffers.  Hadoop 2.x is aware of the type of storage and expose this information to the application, to optimize data fetch and placement strategies (Karanth, 2014).  HDFS append support has been another enhancement in Hadoop 2.x.

Hadoop is regarded to be the de facto open-source framework for dealing with large-scale, massively parallel, and distributed data processing (Karanth, 2014).  The framework of Hadoop includes two layers for computation and data layer (Karanth, 2014).  The computation layer is used for parallel and distributed computation processing, while the data layer is used for a highly fault-tolerant data storage layer which is associated with the computation layer.  These two layers run on commodity hardware, which is not expensive, readily available, and compatible with other similar hardware (Karanth, 2014).

Hadoop Architecture

Apache Hadoop has four projects: Hadoop Common, Hadoop Distributed File System, Yet Another Resource Negotiator (YARN), and MapReduce (Ankam, 2016).  The HDFS is used to store data, MapReduce is used to process data, and YARN is used to manage the resources such as CPU and memory of the cluster and common utilities that support Hadoop framework (Ankam, 2016; Karanth, 2014).  Apache Hadoop integrates with other tools such as Avro, Hive, Pig, HBase, Zookeeper, and Apache Spark (Ankam, 2016; Karanth, 2014).

            Hadoop three significant components for Big Data Analytics.  The HDFS is a framework for reliable distributed data storage (Ankam, 2016; Karanth, 2014).  Some considerations must be taken when storing data into HDFS (Grover et al., 2015).  The multiple frameworks for parallel processing of data include MapReduce, Crunch, Cascading, Hive, Tez, Impala, Pig, Mahout, Spark, and Giraph (Ankam, 2016; Karanth, 2014). The Hadoop architecture includes NameNodes and DataNodes.  It also includes Oozie for workflow, Pig for scripting, Mahout for machine learning, Hive for the data warehouse.  Sqoop for data exchange, and Flume for log collection.  YARN is in Hadoop 2.0 as discussed earlier for distributed computing, while HCatalog for Hadoop metadata management.  HBase is for columnar database and Zookeeper for coordination (Alguliyev & Imamverdiyev, 2014).  Figure 3 shows the Hadoop ecosystem components.


Figure 3.  Hadoop Architecture (Alguliyev & Imamverdiyev, 2014).

Big Data Analytics Process Using Hadoop

The process of Big Data Analytics involves six essential steps (Ankam, 2016). The identification of the business problem and outcomes is the first step.  Examples of business problems include sales are going down, or shopping carts are abandoned by customers, a sudden rise in the call volumes, and so forth.  Examples of the outcome include improving the buying rate by 10%, decreasing shopping cart abandonment by 50%, and reducing call volume by 50% by next quarter while keeping customers happy.  The required data must be identified where data sources can be data warehouse using online analytical processing, application database using online transactional processing, log files from servers, documents from the internet, sensor-generated data, and so forth, based on the case and the problem.  Data collection is the third step in analyzing the Big Data (Ankam, 2016).  Sqoop tool can be used to collect data from the relational database, and Flume can be used for stream data.  Apache Kafka can be used for reliable intermediate storage.  The data collection and design should be implemented using the fault tolerance strategy (Ankam, 2016).  The preprocessing data and ETL process is the fourth step in the analytical process.  The collected data comes in various formats, and the data quality can be an issue. Thus, before processing it, it needs to be converted to the required format and cleaned from inconsistent, invalid or corrupted data.  Apache Hive, Apache Pig, and Spark SQL can be used for preprocessing massive amounts of data.  The analytics implementation is the fifth steps which should be in order to answer the business questions and problems. The analytical process requires understanding the data and relationships between data points.  The types of data analytics include descriptive and diagnostic analytics to present the past and current views of the data, to answer questions such as what and why happened.  The predictive analytics is performed to answer questions such as what would happen based on a hypothesis. Apache Hive, Pig, Impala, Drill, Tez, Apache Spark, and HBase can be used for data analytics in batch processing mode.  Real-time analytics tools including Impala, Tez, Drill, and Spark SQL can be integrated into the traditional business intelligence (BI) using any of BI tools such as Tableau, QlikView, and others for interactive analytics. The last step in this process involves the visualization of the data to present the analytics output in a graphical or pictorial format to understand the analysis better for decision making.  The finished data is exported from Hadoop to a relational database using Sqoop, for integration into visualization systems or visualizing systems are directly integrated into tools such as Tableau, QlikView, Excel, and so forth.  Web-based notebooks such as Jupyter, Zeppelin, and Data bricks cloud are also used to visualize data by integrating Hadoop and Spark components (Ankam, 2016). 

Data Preprocessing, Modeling and Design Consideration in Hadoop

            Before processing any data, and before collecting any data for storage, some considerations must be taken for data modeling and design in Hadoop for better processing and better retrieval (Grover et al., 2015).  The traditional data management system is referred to as Schema-on-Write system which requires the definition of the schema of the data store before the data is loaded (Grover et al., 2015).  This traditional data management system results in long analysis cycles, data modeling, data transformation loading, testing, and so forth before the data can be accessed (Grover et al., 2015).   In addition to this long analysis cycle, if anything changes or wrong decision was made, the cycle must start from the beginning which will take longer time for processing (Grover et al., 2015).   This section addresses various types of consideration before processing the data from Hadoop for analytical purpose.

Data Pre-Processing Consideration

The dataset may have various levels of quality regarding noise, redundancy, and consistency (Hu, Wen, Chua, & Li, 2014).  Preprocessing techniques must be used to improve data quality should be in place in Big Data systems (Hu et al., 2014; Lublinsky, Smith, & Yakubovich, 2013).  The data pre-processing involves three techniques: data integration, data cleansing, and redundancy elimination.

The data integration techniques are used to combine data residing in different sources and provide users with a unified view of the data (Hu et al., 2014).  The traditional database approach has well-established data integration system including the data warehouse method, and the data federation method (Hu et al., 2014).  The data warehouse approach is also known as ETL consisting of extraction, transformation, and loading (Hu et al., 2014).  The extraction step involves the connection to the source systems and selecting and collecting the required data to be processed for analytical purposes.  The transformation step involves the application of a series of rules to the extracted data to convert it into a standard format.  The load step involves importing extracted and transformed data into a target storage infrastructure (Hu et al., 2014).  The federation approach creates a virtual database to query and aggregate data from various sources (Hu et al., 2014).  The virtual database contains information or metadata about the actual data, and its location and does not contain data itself (Hu et al., 2014).  These two data pre-processing are called store-and-pull techniques which is not appropriate for Big Data processing, with high computation and high streaming, and dynamic nature (Hu et al., 2014).  

The data cleansing process is a vital process to keep the data consistent and updated to get widely used in many fields such as banking, insurance, and retailing (Hu et al., 2014).  The cleansing process is required to determine the incomplete, inaccurate, or unreasonable data and then remove these data to improve the quality of the data (Hu et al., 2014). The data cleansing process includes five steps (Hu et al., 2014).  The first step is to define and determine the error types.  The second step is to search and identify error instances.  The third step is to correct the errors, and then document error instances and error types. The last step is to modify data entry procedures to reduce future errors.  Various types of checks must be done at the cleansing process, including the format checks, completeness checks, reasonableness checks, and limit checks (Hu et al., 2014).  The process of data cleansing is required to improve the accuracy of the analysis (Hu et al., 2014).  The data cleansing process depends on the complex relationship model, and it has extra computation and delay overhead (Hu et al., 2014).  Organizations must seek a balance between the complexity of the data-cleansing model and the resulting improvement in the accuracy analysis (Hu et al., 2014). 

The data redundancy is the third data pre-processing step where data is repeated increasing the overhead of the data transmission and causes limitawtions for storage systems, including wasted space, inconsistency of the data, corruption of the dta, and reduced reliability (Hu et al., 2014).  Various redundancy reduction methods include redundancy detection and data compression (Hu et al., 2014).  The data compression method poses an extra computation burden in the data compression and decompression processes (Hu et al., 2014).

Data Modeling and Design Consideration

Schema-on-Write system is used when the application or structure is well understood and frequently accessed through queries and reports on high-value data (Grover et al., 2015).        The term Schema-on-Read is used in the context of Hadoop data management system (Ankam, 2016; Grover et al., 2015). This term refers to the raw data, that is not processed and can be loaded to Hadoop using the required structure at processing time based on the requirement of the processing application (Ankam, 2016; Grover et al., 2015).  The Schema-on-Read is used when the application or structure of data is not well understood (Ankam, 2016; Grover et al., 2015).  The agility of the process is implemented through the schema-on-read providing valuable insights on data not previously accessible (Grover et al., 2015).

            Five factors must be considered before storing data into Hadoop for processing (Grover et al., 2015).  The data storage format must be considered as there are some file formats and compression formats supported on Hadoop.  Each type of format has strengths that make it better suited to specific applications.   Although Hadoop Distributed File System (HDFS) is a building block of Hadoop ecosystem, which is used for storing data, several commonly used systems implemented on top of HDFS such as HBase for traditional data access functionality, and Hive for additional data management functionality (Grover et al., 2015).  These systems of HBase for data access functionality and Hive for data management functionality must be taken into consideration before storing data into Hadoop (Grover et al., 2015). The second factor involves the multitenancy which is a common approach for clusters to host multiple users, groups and application types. The multi-tenant clusters involve essential considerations for data storage.  The schema design factor should also be considered before storing data into Hadoop even if Hadoop is a schema-less (Grover et al., 2015).  The schema design consideration involves directory structures for data loaded into HDFS and the output of the data processing and analysis, including the schema of objects stored in systems such as HBase and Hive.  The last factor for consideration before storing data into Hadoop is represented in the metadata management.  Metadata is related to the stored data and is often regarded as necessary as the data.  The understanding of the metadata management plays a significant role as it can affect the accessibility of the data.  The security is another factor which should be considered before storing data into Hadoop system.  The security of the data decision involves authentication, fine-grained access control, and encryption. These security measures should be considered for data at rest when it gets stored as well as in motion during the processing (Grover et al., 2015).  Figure 4 summarizes these considerations before storing data into the Hadoop system. 


Figure 4.  Considerations Before Storing Data into Hadoop.

Data Storage Format Considerations

            When architecting a solution on Hadoop, the method of storing the data into Hadoop is one of the essential decisions. Primary considerations for data storage in Hadoop involve file format, compression, data storage system (Grover et al., 2015).  The standard file formats involve three types:  text data, structured text data, and binary data.  Figure 5 summarizes these three standard file formats.


Figure 5.  Standard File Formats.

The text data is widespread use of Hadoop including log file such as weblogs, and server logs (Grover et al., 2015).  These text data format can come in many forms such as CSV files, or unstructured data such as emails.  Compression of the file is recommended, and the selection of the compression is influenced by how the data will be used (Grover et al., 2015).  For instance, if the data is for archival, the most compact compression method can be used, while if the data are used in processing jobs such as MapReduce, the splittable format should be used (Grover et al., 2015).  The splittable format enables Hadoop to split files into chunks for processing, which is essential to efficient parallel processing (Grover et al., 2015).

In most cases, the use of container formats such as SequenceFiles or Avro provides benefits making it the preferred format for most file system including text (Grover et al., 2015).  It is worth noting that these container formats provide functionality to support splittable compression among other benefits (Grover et al., 2015).   The binary data involves images which can be stored in Hadoop as well.  The container format such as SequenceFile is preferred when storing binary data in Hadoop.  If the binary data splittable unit is more than 64MB, the data should be put into its file, without using the container format (Grover et al., 2015).

XML and JSON Format Challenges with Hadoop

The structured text data include formats such as XML and JSON, which can present unique challenges using Hadoop because splitting XML and JSON files for processing is not straightforward, and Hadoop does not provide a built-in InputFormat for either (Grover et al., 2015).  JSON presents more challenges to Hadoop than XML because no token is available to mark the beginning or end of a record.  When using these file format, two primary consideration must be taken.  The container format such as Avro should be used because Avro provides a compact and efficient method to store and process the data when transforming the data into Avro (Grover et al., 2015).  A library for processing XML or JSON should be designed.  XMLLoader in PiggyBank library for Pig is an example when using XML data type.  The Elephant Bird project is an example of a JSON data type file (Grover et al., 2015). 

Hadoop File Types Considerations

            Several Hadoop-based file formats created to work well with MapReduce (Grover et al., 2015).  The Hadoop-specific file formats include file-based data structures such as sequence files, serialization formats like Avro, and columnar formats such as RCFile and Parquet (Grover et al., 2015).  These files types share two essential characteristics that are important for Hadoop application: splittable compression and agnostic compression.  The ability of splittable files play a significant role during the data processing, and should not be underestimated when storing data in Hadoop because it allows large files to be split for input to MapReduce and other types of jobs, which is a fundamental part of parallel processing and a key to leveraging data locality feature of Hadoop (Grover et al., 2015).  The agnostic compression is the ability to compress using any compression codec without readers having to know the codec because the codec is stored in the header metadata of the file format (Grover et al., 2015).  Figure 6 summarizes these Hadoop-specific file formats with the typical characteristics of splittable compression and agnostic compression.


Figure 6. Three Hadoop File Types with the Two Common Characteristics.  

1.      SequenceFiles Format Consideration

SequenceFiles format is the most widely used Hadoop file-based formats.  SequenceFile format store data as binary key-value pairs (Grover et al., 2015).  It involves three formats for records stored within SequenceFiles:  uncompressed, record-compressed, and block-compressed.  Every SequenceFile uses a standard header format containing necessary metadata about the file such as the compression codec used, key and value class names, user-defined metadata, and a randomly generated syn marker.  The SequenceFiles arewell supported in Hadoop. However, it has limited support outside the Hadoop ecosystem as it is only supported in Java language.  The frequent use case for SequenceFiles is a container for smaller files.  However, storing a large number of small files in Hadoop can cause memory issue and excessive overhead in processing.  Packing smaller files into a SequenceFile can make the storage and processing of these files more efficient because Hadoop is optimized for large files (Grover et al., 2015).   Other file-based formats include the MapFiles, SetFiles, Array-Files, and BloomMapFiles.  These formats offer a high level of integration for all forms of MapReduce jobs, including those run via Pig and Hive because they were designed to work with MapReduce (Grover et al., 2015).  Figure 7 summarizes the three formats for records stored within SequenceFiles.


Figure 7.  Three Formats for Records Stored within SequenceFile.

2.      Serialization Formats Consideration

Serialization is the process of moving data structures into bytes for storage or for transferring data over the network (Grover et al., 2015).   The de-serialization is the opposite process of converting a byte stream back into a data structure (Grover et al., 2015).  The serialization process is the fundamental building block for distributed processing systems such as Hadoop because it allows data to be converted into a format that can be efficiently stored and transferred across a network connection (Grover et al., 2015).  Figure 8 summarizes the serialization formats when architecting for Hadoop.


Figure 8.  Serialization Process vs. Deserialization Process.

The serialization involves two aspects of data processing in a distributed system of interprocess communication using data storage, and remote procedure calls or RPC (Grover et al., 2015).  Hadoop utilizes Writables as the main serialization format, which is compact and fast but uses Java only.  Other serialization frameworks have been increasingly used within Hadoop ecosystems, including Thrift, Protocol Buffers and Avro (Grover et al., 2015).  Avro is a language-neutral data serialization system (Grover et al., 2015).  It was designed to address the limitation of the Writables of Hadoop which is lack of language portability.  Similar to Thrift and Protocol Buffers, Avro is described through a language-independent schema (Grover et al., 2015).   Avro, unlike Thrift and Protocol Buffers, the code generation is optional.  Table 1 provides a comparison between these serialization formats.

Table 1:  Comparison between Serialization Formats.

3.      Columnar Format Consideration

Row-oriented systems have been used to fetch data stored in the database (Grover et al., 2015).  This type of data retrieval has been used as the analysis heavily relied on fetching all fields for records that belonged to a specific time range.  This process is efficient if all columns of the record are available at the time or writing because the record can be written with a single disk seek.  The column storage has recently been used to fetch data.  The use of columnar storage has four main benefits over the row-oriented system (Grover et al., 2015).  The skips I/O and decompression on columns that are not part of the query is one of the benefits of the columnar storage.  Columnar data storage works better for queries that access a small subset of columns than the row-oriented data storage, which can be used when many columns are retrieved.  The compression on columns provides efficiency because data is more similar within the same column than it is in a block of rows.  The columnar data storage is more appropriate for data warehousing-based applications where aggregations are implemented using specific columns than an extensive collection of records (Grover et al., 2015).  Hadoop applications have been using the columnar file formats including the RCFile format, Optimized Row Columnar (ORC), and Parquet.  The RCFile format has been used as a Hive Format.  It was developed to provide fast data loading, fast query processing, and highly efficient storage space utilization.  It breaks files into row splits, and within each split uses columnar-oriented storage.  Despite its advantages of the query and compression performance compared to SequenceFiles, it has limitations, that prevent the optimal performance for query times and compression.  The newer version of the columnar formats ORC and Parquet are designed to address many of the limitations of the RCFile (Grover et al., 2015). 

Compression Consideration

Compression is another data storage consideration because it plays a crucial role in reducing the storage requirements, and in improving the data processing performance (Grover et al., 2015).  Some compression formats supported on Hadoop are not splittable (Grover et al., 2015).  MapReduce framework splits data for input to multiple tasks; the nonsplittable compression format is an obstacle to efficient processing.  Thus, the splittability is a critical consideration in selecting the compression format and file format for Hadoop.  Various compression types for Hadoop include Snappy, LZO, Gzip, bzip2.  Google developed Snappy for speed. However, it does not offer the best compression size. It is designed to be used with a container format like SequenceFile or Avro because it is not inherently splittable.  It is being distributed with Hadoop. Similar to Snappy, LZO is optimized for speed as opposed to size.  However, LZO, unlike Snappy support splittability of the compressed files, but it requires indexing.  LZO, unlike Snappy, is not distributed with Hadoop and requires a license and separate installation.  Gzip, like Snappy, provides good compression performance, but is not splittable, and it should be used with a container format. The speed read performance of the Gzip is like the Snappy.  Gzip is slower than Snappy for write processing.  Gzip is not splittable and should be used with a container format.  The use of smaller blocks with Gzip can result in better performance.   The bzip2 is another compression type for Hadoop.  It provides good compression performance, but it can be slower than another compression codec such as Snappy.  It is not an ideal codec for Hadoop storage. Bzip2, unlike Snappy and Gzip, is inherently splittable.  It inserts synchronization markers between blocks.  It can be used for active archival purposes (Grover et al., 2015).

The compression format can become splittable when used with container file formats such as Avro, SequenceFile which compress blocks of records or each record individually (Grover et al., 2015).  If the compression is implemented on the entire file without using the container file format, the compression format that inherently supports splittable must be used such as bzip2.  The compression use with Hadoop has three recommendation (Grover et al., 2015).  The first recommendation is to enable compression of MapReduce intermediate output, which improves performance by decreasing the among of intermediate data that needs to be read and written from and to disk.  The second recommendation s to pay attention to the order of the data.  When the data is close together, it provides better compression levels. The data in Hadoop file format is compressed in chunks, and the organization of those chunks determines the final compression.   The last recommendation is to consider the use of a compact file format with support for splittable compression such as Avro.  Avro and SequenceFiles support splittability with non-splittable compression formats.  A single HDFS block can contain multiple Avro or SequenceFile blocks. Each block of the Avro or SequenceFile can be compressed and decompressed individually and independently of any other blocks of Avro or SequenceFile. This technique makes the data splittable because each block can be compressed and decompressed individually.  Figure 9 shows the Avro and SequenceFile splittability support (Grover et al., 2015).  


Figure 9.  Compression Example Using Avro (Grover et al., 2015).

Design Consideration for HDFS Schema

HDFS and HBase are the commonly used storage managers in the Hadoop ecosystem.  Organizations can store the data in HDFS or HBase which internally store it on HDFS (Grover et al., 2015).  When storing data in HDFS, some design techniques must be taken into consideration.  The schema-on-read model of Hadoop does not impose any requirement when loading data into Hadoop, as data can be ingested into HDFS by one of many methods without the requirements to associate a schema or preprocess the data.  Although Hadoop has been used to load many types of data such as the unstructured data, semi-structured data, some order is still required, because Hadoop serves as a central location for the entire organization and the data stored in HDFS is intended to be shared across various departments and teams in the organization (Grover et al., 2015).  The data repository should be carefully structured and organized to provide various benefits to the organization  (Grover et al., 2015).   When there is a standard directory structure, it becomes easier to share data among teams working with the same data set.  The data gets staged in a separate location before processing it.  The standard stage technique can help not processing data that has not been appropriately staged or entirely yet.  The standard organization of data allows for some code reuse that may process the data (Grover et al., 2015).  The placement of data assumptions can help simplify the loading process of the data into Hadoop.   The HDFS data model design for projects such as data warehouse implementation is likely to use structure facts and dimension tables similar to the traditional schema  (Grover et al., 2015).  The HDFS data model design for projects of unstructured and semi-structured data is likely to focus on directory placement and metadata management (Grover et al., 2015). 

Grover et al. (2015) suggested three key considerations when designing the schema, regardless of the data model design project.  The first consideration is to develop standard practices that can be followed by all teams.  The second point is to ensure the design works well with the chosen tools.  For instance, if the version of Hive can support only table partitions on directories that are named a certain way, it will affect the schema design and the names of the table subdirectories.  The last consideration when designing a schema is to keep usage patterns in mind, because different data processing and querying patterns work better with different schema designs (Grover et al., 2015). 

HDFS Files Location Consideration

            The first step when designing an HDFS schema involves the determination of the location of the file.  Standard file location plays a significant role in finding and sharing data among various departments and teams. It also helps in the assignment of permission to access files to various groups and users.  The recommended file locations are summarized in Table 2.


Table 2.  Standard Files Locations.

HDFS Schema Design Consideration

The HDFS schema design involves advanced techniques to organize data into files (Grover et al., 2015).   A few strategies are recommended to organize the data set. These strategies for data organization involve partitioning, bucketing, and denormalizing process.  The partitioning process of the data set is a common technique used to reduce the amount of I/O required to process the data set.  HDFS does not store indexes on the data unlike the traditional data warehouse. Such a lack of indexes in HDFS plays a key role in speeding up data ingest, with a full table scan cost where every query will have to read the entire dataset even when processing a small subset of data. Breaking up the data set into smaller subsets, or partitions can help with the full table scan, allowing queries to read only the specific partitions reducing the amount of I/O and improving the query time processing significantly (Grover et al., 2015). When data is placed in the filesystem, the directory format for partition should be as shown below.  The order data sets are partitioned by date because there are a large number of orders done daily and the partitions will contain large enough files which are optimized by HDFS.  Various tools such as HCatalog, Hive, Impala, and Pig understand this directory structure leveraging the partitioning to reduce the amount of I/O requiring during the data processing (Grover et al., 2015).

  • <data set name>/<partition_column_name=partition_column_value>/(Armstrong)
  • e.g. medication_orders/date=20181107/[order1.csv, order2.csv]

Bucketing is another technique for breaking a large data set into manageable sub-sets (Grover et al., 2015).  The bucketing technique is similar to the hash partitions which is used in the relational database.   Various tools such as HCatalog, Hive, Impala, and Pig understand this directory structure leveraging the partitioning to reduce the amount of I/O requiring during the data processing. The partition example above was implemented using the date which resulted in large data files which can be optimized by HDFS (Grover et al., 2015).  However, if the data sets are partitioned by a the category of the physician, the result will be too many small files, which leads to small file problems, which can lead to excessive memory use for the NameNode, since metadata for each file stored in HDFS is stored in memory (Grover et al., 2015).  Many small files can also lead to many processing tasks, causing excessive overhead in processing.  The solution for too many small files is to use the bucketing process for the physician in this example, which uses the hashing function to map physician into a specified number of buckets (Grover et al., 2015).

The bucketing technique controls the size of the data subsets and optimizes the query speed (Grover et al., 2015).  The recommended average bucket size is a few multiples of the HDFS block size. The distribution of data when hashed on the bucketing column is essential because it results in consistent bucketing (Grover et al., 2015).  The use of the number of buckets as a power of two is every day.   Bucketing allows joining two data sets.  The join, in this case, is used to represent the general idea of combining two data sets to retrieve a result. The joins can be implemented through the SQL-on-Hadoop systems and also in MapReduce, or Spark, or other programming interfaces to Hadoop.  When using join in the bucketing technique, it joins corresponding buckets individually without having to join the entire datasets, which help in minimizing the time complexity for the reduce-side join of the two datasets process, which is computationally expensive (Grover et al., 2015).   The join is implemented in the map stage of a MapReduce job by loading the smaller of the buckets in memory because the buckets are small enough to easily fit into memory, which is called map-side join process.  The map-side join process improves the join performance as compared to a reduce-side join process.  A hive for data analysis recognizes the tables are bucketed and optimize the process accordingly.

Further optimization can be implemented if the data in the bucket is sorted, the merge join can be used, and the entire bucket does not get stored in memory when joining, resulting in the faster process and much less memory than a simple bucket join.  Hive supports this optimization as well.  The use of both sorting and bucketing on large tables that are frequently joined together using the join key for bucketing is recommended (Grover et al., 2015).

The schema design depends on how the data will be queried (Grover et al., 2015).  Thus, the columns to be used for joining and filtering must be identified before the portioning and bucketing of the data is implemented.   In some cases, when the identification of one partitioning key is challenging, storing the same data set multiple times can be implemented, each with the different physical organization, which is regarded to be an anti-pattern in a relational database.  However, this solution can be implemented with Hadoop, because with Hadoop is write-once, and few updates are expected.  Thus, the overhead of keeping duplicated data set in sync is reduced.  The cost of storage in Hadoop clusters is reduced as well  (Grover et al., 2015). The duplicated data set in sync provides better query speed processing in such cases (Grover et al., 2015). 

Regarding the denormalizing process, it is another technique of trading the disk space for query performance, where joining the entire data set need is minimized (Grover et al., 2015).   In the relational database model, the data is stored in the third standard form (NF3), where redundancy is minimized, and data integrity is enforced by splitting data into smaller tables, each holding a particular entity.  In this relational model, most queries require joining a large number of tables together to produce a final result as desired (Grover et al., 2015).  However, in Hadoop, joins are often the slowest operations and consume the most resources from the cluster.  Specifically, the reduce-side join requires sending the entire table over the network, which is computationally costly.  While sorting and bucketing help minimizing this computational cost, another solution is to create data sets that are pre-joined or pre-aggregated (Grover et al., 2015).  Thus, the data can be joined once and store it in this form instead of running the join operations every time there is a query for that data.  Hadoop schema consolidates many of the small dimension tables into a few larger dimensions by joining them during the ETL process  (Grover et al., 2015).  Other techniques to speed up the process include the aggregation or data type conversion.  The duplication of the data is of less concern; thus, when the processing is frequent for a large number of queries, it is recommended to doing it one and reuse as the case with a materialized view in the relational database.  In Hadoop, the new dataset is created that contains the same data in its aggregated form (Grover et al., 2015).

To summarize, the partitioning process is used to reduce the I/O overhead of processing by selectively reading and writing data in particular partitions.  The bucketing can be used to speed up queries that involve joins or sampling, by reducing the I/O as well.  The denormalization can be implemented to speed up Hadoop jobs.   In this section, a review of advanced techniques to organize data into files is discussed.  The discussion includes the use of a small number of large files versus a large number of small files.  Hadoop prefers working with a small number of large files than a large number of small files.  The discussion also addresses the reduce-side join versus map-side join techniques.   The reduce-side join is computationally costly. Hence, the map-side join technique is preferred and recommend. 

HBase Schema Design Consideration

HBase is not a relational database (Grover et al., 2015; Yang, Liu, Hsu, Lu, & Chu, 2013).  HBase is similar to a large hash table, which allows the association of values with keys and performs a fast lookup of the value based on a given key  (Grover et al., 2015). The operations of hash tables involve put, get, scan, increment and delete.  HBase provides scalability and flexibility and is useful in many applications, including fraud detection, which is a widespread application for HBase (Grover et al., 2015).

The framework of HBase involves Master Server, Region Servers, Write-Ahead Log (WAL), Memstore, HFile, API and Hadoop HDFS (Bhojwani & Shah, 2016).  Each component of the HBase framework plays a significant role in data storage and processing.  Figure 10 illustrated the HBase framework.


Figure 10.  HBase Architecture (Bhojwani & Shah, 2016).

            The following consideration must be taken when designing the schema for HBase (Grover et al., 2015).

  • Row Key Consideration.
  • Timestamp Consideration.
  • Hops Consideration.
  • Tables and Regions Consideration.
  • Columns Use Consideration.
  • Column Families Use Consideration.
  • Time-To-Live Consideration.

The row key is one of the most critical factors for well-architected HBase schema design (Grover et al., 2015).  The row key consideration involves record retrieval, distribution, block cache, the ability to scan, size, readability, and uniqueness.  The row key is critical for retrieving records from HBase. In the relational database, the composite key can be used to combine multiple primary keys.  In HBase, multiple pieces of information can be combined in a single key.  For instance, a key of customer_id, order_id, and timestamp will be a row key for a row describing an order. In a relational database, they are three different columns in the relational database, but in HBase, they will be combined into a single unique identifier.  Another consideration for selecting the row key is the get operation because a get operation of a single record is the fasted operation in HBase.  A single get operation can retrieve the most common uses of the data improves the performance, which requires to put much information in a single record which is called denormalized design.    For instance, while in the relational database, customer information will be placed in various tables, in HBase all customer information will be stored in a single record where get operation will be used. The distribution is another consideration for HBase schema design.  The row key determines the regions of HBase cluster for a given table, which will be scattered throughout various regions (Grover et al., 2015; Yang et al., 2013).   The row keys are sorted, and each region stores a range of these sorted row keys  (Grover et al., 2015).  Each region is pinned to a region server namely a node in the cluster  (Grover et al., 2015).  The combination of device ID and timestamp or reverse timestamp is commonly used to “salt” the key in machine data  (Grover et al., 2015).  The block cache is a least recently used (LRU) cache which caches data blocks in memory  (Grover et al., 2015).  HBase reads records in chunks of 64KB from the disk by default. Each of these chunks is called HBase block  (Grover et al., 2015).  When the HBase block is read from disk, it will be put into the block cache  (Grover et al., 2015).   The choice of the row key can affect the scan operation as well.  HBase scan rates are about eight times slower than HSFS scan rates.  Thus, reducing I/O requirements has a significant performance advantage.  The size of the row key determines the performance of the workload.  The short row key is better than, the long row key because it has lower storage overhead and faster read/ writes performance.  The readability of the row key is critical. Thus, it is essential to start with human-readable row key.  The uniqueness of the row key is also critical since a row key is equivalent to a key in hash table analogy.  If the row key is based on the non-unique attribute, the application should handle such cases and only put data in HBase with a unique row key (Grover et al., 2015).

The timestamp is the second essential consideration for good HBase schema design (Grover et al., 2015).  The timestamp provides advantages of determining which records are newer in case of put operation to modify the record.  It also determines the order where records are returned when multiple versions of a single record are requested. The timestamp is also utilized to remove out-of-date records because time-to-live (TTL) operation compared with the timestamp shows the record value has either been overwritten by another put or deleted (Grover et al., 2015).

The hop term refers to the number of synchronized “get” requests to retrieve specific data from HBase (Grover et al., 2015). The less hop, the better because of the overhead.  Although multi-hop requests with HBase can be made, it is best to avoid them through better schema design, for example by leveraging de-normalization, because every hop is a round-trip to HBase which has a significant performance overhead (Grover et al., 2015).

The number of tables and regions per table in HBase can have a negative impact on the performance and distribution of the data (Grover et al., 2015).  If the number of tables and regions are not implemented correctly, it can result in an imbalance in the distribution of the load.  Important considerations include one region server per node, many regions in a region server, a give region is pinned to a particular region server, and tables are split into regions and scattered across region servers.  A table must have at least one region.  All regions in a region server receive “put” requests and share the region server’s “memstore,” which is a cache structure present on every HBase region server. The “memstore” caches the write is sent to that region server and sorts them in before it flushes them when certain memory thresholds are reached. Thus, the more regions exist in a region server; the less memstore space is available per region.  The default configuration sets the ideal flush size to 100MB. Thus, the “memstore” size can be divided by 100MB and result should be the maximum number of regions which can be put on that region server.   The vast region takes a long time to compact.  The upper limit on the size of a region is around 20GB. However, there are successful HBase clusters with upward of 120GB regions.  The regions can be assigned to HBase table using one of two techniques. The first technique is to create the table with a single default region, which auto splits as data increases.  The second technique is to create the table with a given number of regions and set the region size to a high enough value, e.g., 100GB per region to avoid auto splitting (Grover et al., 2015).  Figure 11 shows a topology of region servers, regions and tables. 


Figure 11.  The Topology of Region Servers, Regions, and Tables (Grover et al., 2015).

The columns used in HBase is different from the traditional relational database (Grover et al., 2015; Yang et al., 2013).  In HBase, unlike the traditional database, a record can have a million columns, and the next record can have a million completely different columns, which is not recommended but possible (Grover et al., 2015).   HBase stores data in a format called HFile, where each column value gets its row in HFile (Grover et al., 2015; Yang et al., 2013). The row has files like row key, timestamp, column names, and values. The file format provides various functionality, like versioning and sparse column storage (Grover et al., 2015). 

HBase, include the concept of column families (Grover et al., 2015; Yang et al., 2013).  A column family is a container for columns.  In HBase, a table can have one or more column families.  Each column family has its set of HFiles and gets compacted independently of other column families in the same table.  In many cases, no more than one column family is needed per table.  The use of more than one column family per table can be done when the operation is done, or the rate of change on a subset of the columns of a table is different from the other columns (Grover et al., 2015; Yang et al., 2013).  The last consideration for HBase schema design is the use of TTL, which is a built-in feature of HBase which ages out data based on its timestamp (Grover et al., 2015).  If TTL is not used and an aging requirement is needed, then a much more I/O intensive operation would need to be done.   The objects in HBase begin with table object, followed by regions for the table, store per column family for each region for the table, memstore, store files, and block (Yang et al., 2013).  Figure 12 shows the hierarchy of objects in HBase.

Figure 12.  The Hierarchy of Objects in HBase (Yang et al., 2013).

To summarize this section, HBase schema design requires seven key consideration starting with the row key, which should be selected carefully for record retrieval, distribution, block cache, ability to scan, size, readability, and uniqueness.  The timestamp and hops are other schema design consideration for HBase.  Tables and regions must be considered for put performance, and compacting time.  The use of columns and column families should also be considered when designing the schema for HBase. The TTL to remove data that aged is another consideration for HBase schema design. 

Metadata Consideration

The above discussion has been about the data and the techniques to store it in Hadoop.  Metadata is as essential as the data itself.  Metadata is data about the data (Grover et al., 2015)).  Hadoop ecosystem has various forms of metadata.   Metadata about logical dataset usually stored in a separate metadata repository include the information like the location of a data set such as directory in HDFS or HBase table name, the schema associated with the dataset, the partitioning and sorting properties of the data set, the format of the data set e.g. CSV, SequenceFile, etc. (Grover et al., 2015). The metadata about files on HDFS includes the permission and ownership of such files and the location of various blocks on data nodes, usually stored and managed by Hadoop NameNode (Grover et al., 2015).  Metadata about tables in HBase include information like table names, associated namespace, associated attributes, e.g. MAX_FILESIZE, READONLY, etc., and the names of column families, usually stored and managed by HBase (Grover et al., 2015).  Metadata about data ingest and transformation include information like which user-generated a given dataset, where the dataset came from, how long it took to generate it, and how many records there are, or the size of the data load (Grover et al., 2015).  Metadata about dataset statistics include information like the number of rows in a dataset, number of unique values in each column, a histogram of the distribution of the data, and maximum and minimum values (Grover et al., 2015).  Figure 13 summarizes this various metadata.


Figure 13.  Various Metadata in Hadoop.

Apache Hive was the first project in the Hadoop ecosystem to store, manage and leverage metadata (Antony et al., 2016; Grover et al., 2015).  Hives stores this metadata in a relational database called the Hive “metastore” (Antony et al., 2016; Grover et al., 2015).  Hive also provides a “metastore” service which interfaces with the Hive metastore database (Antony et al., 2016; Grover et al., 2015).  The query process in Hive goes to the metastore to get the metadata for the desired query, and metastore sends the metadata to Hive generating execution plan, followed by executing the job using the Hadoop cluster, which implements the job and Hive send the fetched result to the user (Antony et al., 2016; Grover et al., 2015).  Figure 14 shows the query process and the role of the metastore in Hive framework.


Figure 14.  Query Process and the Role of Metastore in Hive (Antony et al., 2016).

More projects have utilized the concept of metadata that was introduced by Hive and created a separate project called HCatalog to enable the usage of Hive metastore outside of Hive (Grover et al., 2015).  HCatalog is a part of Hive and allows other tools like Pig and MapReduce to integrate with Hive metastore.  It also opens the access to Hive metastore to other tools such as REST API via WebHCat server.  MapReduce, Pig, and standalone applications can talk directly to the metastore of Hive through its APIs, but HCatalog allows easy access through its WebHCat REST APIs, and it allows the cluster administrators to lock down access to the Hive metastore to address security concerns. Other ways to store metadata include the embedding of metadata in file paths and names.  Another technique to store metadata involves storing it in HDFS in a hidden file, e.g., .metadata.  Figure 15 shows the HCatalog as an accessibility veneer around the Hive metastore (Grover et al., 2015). 


Figure 15.  HCatalog acts an accessibility veneer around the Hive metastore (Grover et al., 2015).

Hive Metastore and HCatalog Limitations

There are some limitations for Hive metastore and HCatalog, including the problem with high availability (Grover et al., 2015).  The HA database cluster solutions to bring HA to the Hive metastore database.  For the metastore service of Hive, there is support concurrently to run multiple metastores on more than one node in the cluster.  However, concurrency issues related to data definition language operations (DDL) can occur, and Hive community is working on fixing these issues. 

The fixed schema for metadata is another limitation.  Hadoop provides much flexibility on the type of data that can be stored, mainly because of the Schema-on-Read concept. Hive metastore provides a fixed schema for the metadata itself. It provides a tabular abstraction for the data sets.   The data in metastore is moving the part in the infrastructure which requires to be running and secured as part of Hadoop infrastructure (Grover et al., 2015).

Conclusion

This project has discussed essential topics related to Hadoop technology.  It began with an overview of Hadoop providing a history of Hadoop and the difference between Hadoop 1.x and Hadoop 2.x.  The discussion involved the Big Data Analytics Process using Hadoop technology.  The process involves six significant steps starting with the problem identification, required data to be collected, and the data collection process. The pre-processing data and ETL process must be implemented before performing the analytics. The last step is the visualization of the data for decision making.  Before processing any data and before collecting any data for storage, some considerations must be taken for data preprocessing, modeling and schema design in Hadoop for better processing and better data retrieval, giving some tools cannot split the data while others can.  These considerations begin with data storage format, followed by Hadoop file types consideration and XML and JSON format challenges in Hadoop.  Compression must be considered when designing the schema for Hadoop. Since HDFS and HBase are commonly used in Hadoop for data storage, the discussion involved the consideration for the HDFS and HBase schema design considerations.  To summarize the design of the schema for Hadoop, HDFS, and HBase makes a difference in storing data in various nodes using the right tools for splitting the data.  Thus, organizations must pay attention to the process and the design requirements before storing data into Hadoop for better computational processing. 

References

Alguliyev, R., & Imamverdiyev, Y. (2014). Big data: big promises for information security. Paper presented at the Application of Information and Communication Technologies (AICT), 2014 IEEE 8th International Conference on.

Ankam, V. (2016). Big Data Analytics: Packt Publishing Ltd.

Antony, B., Boudnik, K., Adams, C., Lee, C., Shao, B., & Sasaki, K. (2016). Professional Hadoop: John Wiley & Sons.

Armstrong, D. (n.d.). R: Learning by Example: Lattice Graphics. Retrieved from https://quantoid.net/files/rbe/lattice.pdf.

Bhojwani, N., & Shah, A. P. V. (2016). A SURVEY ON HADOOP HBASE SYSTEM. Development, 3(1).

Dittrich, J., & Quiané-Ruiz, J.-A. (2012). Efficient big data processing in Hadoop MapReduce. Proceedings of the VLDB Endowment, 5(12), 2014-2015.

Grover, M., Malaska, T., Seidman, J., & Shapira, G. (2015). Hadoop Application Architectures: Designing Real-World Big Data Applications: ” O’Reilly Media, Inc.”.

Hu, H., Wen, Y., Chua, T.-S., & Li, X. (2014). Toward scalable systems for big data analytics: A technology tutorial. IEEE Access, 2, 652-687.

Karanth, S. (2014). Mastering Hadoop: Packt Publishing Ltd.

Lublinsky, B., Smith, K. T., & Yakubovich, A. (2013). Professional hadoop solutions: John Wiley & Sons.

sas.com. (2018). Hadoop – why it is and why it matters. Retrieved from https://www.sas.com/en_us/insights/big-data/hadoop.html.

Yang, C. T., Liu, J. C., Hsu, W. H., Lu, H. W., & Chu, W. C. C. (2013, 16-18 Dec. 2013). Implementation of Data Transform Method into NoSQL Database for Healthcare Data. Paper presented at the 2013 International Conference on Parallel and Distributed Computing, Applications and Technologies.

 

Abstract

The purpose of this project is to discuss how data can be handled before Hadoop can take action on breaking data into manageable sizes.  The discussion begins with an overview of Hadoop providing a brief history of Hadoop and the difference between Hadoop 1.x and Hadoop 2.x. The discussion involves the Big Data Analytics process using Hadoop which involves six significant steps including the pre-processing data and ETL process where the data must be converted and cleaned before processing it.  Before data processing, some consideration must be taken for data preprocessing, modeling and schema design in Hadoop for better processing and data retrieval as it will affect how data can be split among various nodes in the distributed environment because not all tools can split the data.  This consideration begins with the data storage format, followed by Hadoop file types consideration and XML and JSON format challenges in Hadoop.  The compression of the data must be considered carefully because not all compression types are “splittable.” The discussion also involves the schema design consideration for HDFS and HBase since they are used often in the Hadoop ecosystem. 

Keywords: Big Data Analytics; Hadoop; Data Modelling in Hadoop; Schema Design in Hadoop.

Introduction

In the age of Big Data, dealing with large datasets in terabytes and petabytes is a reality and requires specific technology as the traditional technology was found inappropriate for it (Dittrich & Quiané-Ruiz, 2012).  Hadoop is developed to store, and process such large datasets efficiently.  Hadoop is becoming a data processing engine for Big Data (Dittrich & Quiané-Ruiz, 2012).  One of the significant advantages of Hadoop MapReduce is allowing non-expert users to run easily analytical tasks over Big Data (Dittrich & Quiané-Ruiz, 2012). However, before the analytical process takes place, some schema design and data modeling consideration must be taken for Hadoop so that the data process can be efficient (Grover, Malaska, Seidman, & Shapira, 2015).  Hadoop requires splitting the data. Some tools can split the data while others cannot split the data natively and requires integration (Grover et al., 2015). 

This project discusses these considerations to ensure the appropriate schema design for Hadoop and its components of HDFS, HBase where the data gets stored in a distributed environment.   The discussion begins with an overview of Hadoop first, followed by the data analytics process and ends with the data modeling techniques and consideration for Hadoop which can assist in splitting the data appropriately for better data processing performance and better data retrieval.

Overview of Hadoop

            Google published and disclosed its MapReduce technique and implementation early around 2004 (Karanth, 2014).  It also introduced the Google File System (GFS) which is associated with MapReduce implementation.  The MapReduce, since then, has become the most common technique to process massive data sets in parallel and distributed settings across many companies (Karanth, 2014).  In 2008, Yahoo released Hadoop as an open-source implementation of the MapReduce framework (Karanth, 2014; sas.com, 2018). Hadoop and its file system HDFS are inspired by Google’s MapReduce and GFS (Ankam, 2016; Karanth, 2014).  

The Apache Hadoop is the parent project for all subsequence projects of Hadoop (Karanth, 2014).  It contains three essential branches 0.20.1 branch, 0.20.2 branch, and 0.21 branch.  The 0.20.2 branch is often termed MapReduce v2.0, MRv2, or Hadoop 2.0.  Two additional releases for Hadoop involves the Hadoop-0.20-append and Hadoop-0.20-Security, introducing HDFS append and security-related features into Hadoop respectively.  The timeline for Hadoop technology is outlined in Figure 1.


Figure 1.  Hadoop Timeline from 2003 until 2013 (Karanth, 2014).

Hadoop version 1.0 was the inception and evolution of Hadoop as a simple MapReduce job-processing framework (Karanth, 2014).  It exceeded its expectations with wide adoption of massive data processing.  The stable version of the 1.x release includes features such as append and security.  Hadoop version 2.0 release came out in 2013 to increase efficiency and mileage from existing Hadoop clusters in enterprises.  Hadoop is becoming a common cluster-computing and storage platform from being limited to MapReduce only, because it has been moving faster than MapReduce to stay leading in massive scale data processing with the challenge of being backward compatible (Karanth, 2014). 

            In Hadoop 1.x, the JobTracker was responsible for the resource allocation and job execution (Karanth, 2014).  MapReduce was the only supported model since the computing model was tied to the resources in the cluster. The yet another resource negotiator (YARN) was developed to separate concerns relating to resource management and application execution, which enables other application paradigms to be added into Hadoop computing cluster. The support for diverse applications result in the efficient and effective utilization of the resources and integrates well with the infrastructure of the business (Karanth, 2014).  YARN maintains backward compatibility with Hadoop version 1.x APIs  (Karanth, 2014).  Thus, the old MapReduce program can still execute in YARN with no code changes, but it has to be recompiled (Karanth, 2014).

            YARN abstracts out the resource management functions to form a platform layer called ResourceManager (RM) (Karanth, 2014).  Every cluster must have RM to keep track of cluster resource usage and activity.  RM is also responsible for allocation of the resources and resolving contentions among resource seekers in the cluster.  RM utilizes a generalized resource model and is agnostic to application-specific resource needs.  RM does not need to know the resources corresponding to a single Map or Reduce slot (Karanth, 2014). Figure 2 shows Hadoop 1.x and Hadoop 2.x with YARN layer.   


Figure 2. Hadoop 1.x vs. Hadoop 2.x (Karanth, 2014).

Hadoop 2.x involves various enhancement at the storage layer as well.   These enhancements include the high availability feature to have a hot standby of NameNode (Karanth, 2014), when the active NameNode fails, the standby can become active NameNode in a matter of minutes.  The Zookeeper or any other HA monitoring service can be utilized to track NameNode failure (Karanth, 2014).  The failover process to promote the hot standby as the active NameNode is triggered with the assistance of the Zookeeper.  The HDFS federation is another enhancement in Hadoop 2.x, which is a more generalized storage model, where the block storage has been generalized and separated from the filesystem layer (Karanth, 2014).  The HDFS snapshots is another enhancement to the Hadoop 2.x which provides a read-only image of the entire or a particular subset of a filesystem to protect against user errors, backup, and disaster recovery.   Other enhancements added in Hadoop 2.x include the Protocol Buffers (Karanth, 2014). The wire protocol for RPCs within Hadoop is based on Protocol Buffers.  Hadoop 2.x is aware of the type of storage and expose this information to the application, to optimize data fetch and placement strategies (Karanth, 2014).  HDFS append support has been another enhancement in Hadoop 2.x.

Hadoop is regarded to be the de facto open-source framework for dealing with large-scale, massively parallel, and distributed data processing (Karanth, 2014).  The framework of Hadoop includes two layers for computation and data layer (Karanth, 2014).  The computation layer is used for parallel and distributed computation processing, while the data layer is used for a highly fault-tolerant data storage layer which is associated with the computation layer.  These two layers run on commodity hardware, which is not expensive, readily available, and compatible with other similar hardware (Karanth, 2014).

Hadoop Architecture

Apache Hadoop has four projects: Hadoop Common, Hadoop Distributed File System, Yet Another Resource Negotiator (YARN), and MapReduce (Ankam, 2016).  The HDFS is used to store data, MapReduce is used to process data, and YARN is used to manage the resources such as CPU and memory of the cluster and common utilities that support Hadoop framework (Ankam, 2016; Karanth, 2014).  Apache Hadoop integrates with other tools such as Avro, Hive, Pig, HBase, Zookeeper, and Apache Spark (Ankam, 2016; Karanth, 2014).

            Hadoop three significant components for Big Data Analytics.  The HDFS is a framework for reliable distributed data storage (Ankam, 2016; Karanth, 2014).  Some considerations must be taken when storing data into HDFS (Grover et al., 2015).  The multiple frameworks for parallel processing of data include MapReduce, Crunch, Cascading, Hive, Tez, Impala, Pig, Mahout, Spark, and Giraph (Ankam, 2016; Karanth, 2014). The Hadoop architecture includes NameNodes and DataNodes.  It also includes Oozie for workflow, Pig for scripting, Mahout for machine learning, Hive for the data warehouse.  Sqoop for data exchange, and Flume for log collection.  YARN is in Hadoop 2.0 as discussed earlier for distributed computing, while HCatalog for Hadoop metadata management.  HBase is for columnar database and Zookeeper for coordination (Alguliyev & Imamverdiyev, 2014).  Figure 3 shows the Hadoop ecosystem components.


Figure 3.  Hadoop Architecture (Alguliyev & Imamverdiyev, 2014).

Big Data Analytics Process Using Hadoop

The process of Big Data Analytics involves six essential steps (Ankam, 2016). The identification of the business problem and outcomes is the first step.  Examples of business problems include sales are going down, or shopping carts are abandoned by customers, a sudden rise in the call volumes, and so forth.  Examples of the outcome include improving the buying rate by 10%, decreasing shopping cart abandonment by 50%, and reducing call volume by 50% by next quarter while keeping customers happy.  The required data must be identified where data sources can be data warehouse using online analytical processing, application database using online transactional processing, log files from servers, documents from the internet, sensor-generated data, and so forth, based on the case and the problem.  Data collection is the third step in analyzing the Big Data (Ankam, 2016).  Sqoop tool can be used to collect data from the relational database, and Flume can be used for stream data.  Apache Kafka can be used for reliable intermediate storage.  The data collection and design should be implemented using the fault tolerance strategy (Ankam, 2016).  The preprocessing data and ETL process is the fourth step in the analytical process.  The collected data comes in various formats, and the data quality can be an issue. Thus, before processing it, it needs to be converted to the required format and cleaned from inconsistent, invalid or corrupted data.  Apache Hive, Apache Pig, and Spark SQL can be used for preprocessing massive amounts of data.  The analytics implementation is the fifth steps which should be in order to answer the business questions and problems. The analytical process requires understanding the data and relationships between data points.  The types of data analytics include descriptive and diagnostic analytics to present the past and current views of the data, to answer questions such as what and why happened.  The predictive analytics is performed to answer questions such as what would happen based on a hypothesis. Apache Hive, Pig, Impala, Drill, Tez, Apache Spark, and HBase can be used for data analytics in batch processing mode.  Real-time analytics tools including Impala, Tez, Drill, and Spark SQL can be integrated into the traditional business intelligence (BI) using any of BI tools such as Tableau, QlikView, and others for interactive analytics. The last step in this process involves the visualization of the data to present the analytics output in a graphical or pictorial format to understand the analysis better for decision making.  The finished data is exported from Hadoop to a relational database using Sqoop, for integration into visualization systems or visualizing systems are directly integrated into tools such as Tableau, QlikView, Excel, and so forth.  Web-based notebooks such as Jupyter, Zeppelin, and Data bricks cloud are also used to visualize data by integrating Hadoop and Spark components (Ankam, 2016). 

Data Preprocessing, Modeling and Design Consideration in Hadoop

            Before processing any data, and before collecting any data for storage, some considerations must be taken for data modeling and design in Hadoop for better processing and better retrieval (Grover et al., 2015).  The traditional data management system is referred to as Schema-on-Write system which requires the definition of the schema of the data store before the data is loaded (Grover et al., 2015).  This traditional data management system results in long analysis cycles, data modeling, data transformation loading, testing, and so forth before the data can be accessed (Grover et al., 2015).   In addition to this long analysis cycle, if anything changes or wrong decision was made, the cycle must start from the beginning which will take longer time for processing (Grover et al., 2015).   This section addresses various types of consideration before processing the data from Hadoop for analytical purpose.

Data Pre-Processing Consideration

The dataset may have various levels of quality regarding noise, redundancy, and consistency (Hu, Wen, Chua, & Li, 2014).  Preprocessing techniques must be used to improve data quality should be in place in Big Data systems (Hu et al., 2014; Lublinsky, Smith, & Yakubovich, 2013).  The data pre-processing involves three techniques: data integration, data cleansing, and redundancy elimination.

The data integration techniques are used to combine data residing in different sources and provide users with a unified view of the data (Hu et al., 2014).  The traditional database approach has well-established data integration system including the data warehouse method, and the data federation method (Hu et al., 2014).  The data warehouse approach is also known as ETL consisting of extraction, transformation, and loading (Hu et al., 2014).  The extraction step involves the connection to the source systems and selecting and collecting the required data to be processed for analytical purposes.  The transformation step involves the application of a series of rules to the extracted data to convert it into a standard format.  The load step involves importing extracted and transformed data into a target storage infrastructure (Hu et al., 2014).  The federation approach creates a virtual database to query and aggregate data from various sources (Hu et al., 2014).  The virtual database contains information or metadata about the actual data, and its location and does not contain data itself (Hu et al., 2014).  These two data pre-processing are called store-and-pull techniques which is not appropriate for Big Data processing, with high computation and high streaming, and dynamic nature (Hu et al., 2014).  

The data cleansing process is a vital process to keep the data consistent and updated to get widely used in many fields such as banking, insurance, and retailing (Hu et al., 2014).  The cleansing process is required to determine the incomplete, inaccurate, or unreasonable data and then remove these data to improve the quality of the data (Hu et al., 2014). The data cleansing process includes five steps (Hu et al., 2014).  The first step is to define and determine the error types.  The second step is to search and identify error instances.  The third step is to correct the errors, and then document error instances and error types. The last step is to modify data entry procedures to reduce future errors.  Various types of checks must be done at the cleansing process, including the format checks, completeness checks, reasonableness checks, and limit checks (Hu et al., 2014).  The process of data cleansing is required to improve the accuracy of the analysis (Hu et al., 2014).  The data cleansing process depends on the complex relationship model, and it has extra computation and delay overhead (Hu et al., 2014).  Organizations must seek a balance between the complexity of the data-cleansing model and the resulting improvement in the accuracy analysis (Hu et al., 2014). 

The data redundancy is the third data pre-processing step where data is repeated increasing the overhead of the data transmission and causes limitawtions for storage systems, including wasted space, inconsistency of the data, corruption of the dta, and reduced reliability (Hu et al., 2014).  Various redundancy reduction methods include redundancy detection and data compression (Hu et al., 2014).  The data compression method poses an extra computation burden in the data compression and decompression processes (Hu et al., 2014).

Data Modeling and Design Consideration

Schema-on-Write system is used when the application or structure is well understood and frequently accessed through queries and reports on high-value data (Grover et al., 2015).        The term Schema-on-Read is used in the context of Hadoop data management system (Ankam, 2016; Grover et al., 2015). This term refers to the raw data, that is not processed and can be loaded to Hadoop using the required structure at processing time based on the requirement of the processing application (Ankam, 2016; Grover et al., 2015).  The Schema-on-Read is used when the application or structure of data is not well understood (Ankam, 2016; Grover et al., 2015).  The agility of the process is implemented through the schema-on-read providing valuable insights on data not previously accessible (Grover et al., 2015).

            Five factors must be considered before storing data into Hadoop for processing (Grover et al., 2015).  The data storage format must be considered as there are some file formats and compression formats supported on Hadoop.  Each type of format has strengths that make it better suited to specific applications.   Although Hadoop Distributed File System (HDFS) is a building block of Hadoop ecosystem, which is used for storing data, several commonly used systems implemented on top of HDFS such as HBase for traditional data access functionality, and Hive for additional data management functionality (Grover et al., 2015).  These systems of HBase for data access functionality and Hive for data management functionality must be taken into consideration before storing data into Hadoop (Grover et al., 2015). The second factor involves the multitenancy which is a common approach for clusters to host multiple users, groups and application types. The multi-tenant clusters involve essential considerations for data storage.  The schema design factor should also be considered before storing data into Hadoop even if Hadoop is a schema-less (Grover et al., 2015).  The schema design consideration involves directory structures for data loaded into HDFS and the output of the data processing and analysis, including the schema of objects stored in systems such as HBase and Hive.  The last factor for consideration before storing data into Hadoop is represented in the metadata management.  Metadata is related to the stored data and is often regarded as necessary as the data.  The understanding of the metadata management plays a significant role as it can affect the accessibility of the data.  The security is another factor which should be considered before storing data into Hadoop system.  The security of the data decision involves authentication, fine-grained access control, and encryption. These security measures should be considered for data at rest when it gets stored as well as in motion during the processing (Grover et al., 2015).  Figure 4 summarizes these considerations before storing data into the Hadoop system. 


Figure 4.  Considerations Before Storing Data into Hadoop.

Data Storage Format Considerations

            When architecting a solution on Hadoop, the method of storing the data into Hadoop is one of the essential decisions. Primary considerations for data storage in Hadoop involve file format, compression, data storage system (Grover et al., 2015).  The standard file formats involve three types:  text data, structured text data, and binary data.  Figure 5 summarizes these three standard file formats.


Figure 5.  Standard File Formats.

The text data is widespread use of Hadoop including log file such as weblogs, and server logs (Grover et al., 2015).  These text data format can come in many forms such as CSV files, or unstructured data such as emails.  Compression of the file is recommended, and the selection of the compression is influenced by how the data will be used (Grover et al., 2015).  For instance, if the data is for archival, the most compact compression method can be used, while if the data are used in processing jobs such as MapReduce, the splittable format should be used (Grover et al., 2015).  The splittable format enables Hadoop to split files into chunks for processing, which is essential to efficient parallel processing (Grover et al., 2015).

In most cases, the use of container formats such as SequenceFiles or Avro provides benefits making it the preferred format for most file system including text (Grover et al., 2015).  It is worth noting that these container formats provide functionality to support splittable compression among other benefits (Grover et al., 2015).   The binary data involves images which can be stored in Hadoop as well.  The container format such as SequenceFile is preferred when storing binary data in Hadoop.  If the binary data splittable unit is more than 64MB, the data should be put into its file, without using the container format (Grover et al., 2015).

XML and JSON Format Challenges with Hadoop

The structured text data include formats such as XML and JSON, which can present unique challenges using Hadoop because splitting XML and JSON files for processing is not straightforward, and Hadoop does not provide a built-in InputFormat for either (Grover et al., 2015).  JSON presents more challenges to Hadoop than XML because no token is available to mark the beginning or end of a record.  When using these file format, two primary consideration must be taken.  The container format such as Avro should be used because Avro provides a compact and efficient method to store and process the data when transforming the data into Avro (Grover et al., 2015).  A library for processing XML or JSON should be designed.  XMLLoader in PiggyBank library for Pig is an example when using XML data type.  The Elephant Bird project is an example of a JSON data type file (Grover et al., 2015). 

Hadoop File Types Considerations

            Several Hadoop-based file formats created to work well with MapReduce (Grover et al., 2015).  The Hadoop-specific file formats include file-based data structures such as sequence files, serialization formats like Avro, and columnar formats such as RCFile and Parquet (Grover et al., 2015).  These files types share two essential characteristics that are important for Hadoop application: splittable compression and agnostic compression.  The ability of splittable files play a significant role during the data processing, and should not be underestimated when storing data in Hadoop because it allows large files to be split for input to MapReduce and other types of jobs, which is a fundamental part of parallel processing and a key to leveraging data locality feature of Hadoop (Grover et al., 2015).  The agnostic compression is the ability to compress using any compression codec without readers having to know the codec because the codec is stored in the header metadata of the file format (Grover et al., 2015).  Figure 6 summarizes these Hadoop-specific file formats with the typical characteristics of splittable compression and agnostic compression.


Figure 6. Three Hadoop File Types with the Two Common Characteristics.  

1.      SequenceFiles Format Consideration

SequenceFiles format is the most widely used Hadoop file-based formats.  SequenceFile format store data as binary key-value pairs (Grover et al., 2015).  It involves three formats for records stored within SequenceFiles:  uncompressed, record-compressed, and block-compressed.  Every SequenceFile uses a standard header format containing necessary metadata about the file such as the compression codec used, key and value class names, user-defined metadata, and a randomly generated syn marker.  The SequenceFiles arewell supported in Hadoop. However, it has limited support outside the Hadoop ecosystem as it is only supported in Java language.  The frequent use case for SequenceFiles is a container for smaller files.  However, storing a large number of small files in Hadoop can cause memory issue and excessive overhead in processing.  Packing smaller files into a SequenceFile can make the storage and processing of these files more efficient because Hadoop is optimized for large files (Grover et al., 2015).   Other file-based formats include the MapFiles, SetFiles, Array-Files, and BloomMapFiles.  These formats offer a high level of integration for all forms of MapReduce jobs, including those run via Pig and Hive because they were designed to work with MapReduce (Grover et al., 2015).  Figure 7 summarizes the three formats for records stored within SequenceFiles.


Figure 7.  Three Formats for Records Stored within SequenceFile.

2.      Serialization Formats Consideration

Serialization is the process of moving data structures into bytes for storage or for transferring data over the network (Grover et al., 2015).   The de-serialization is the opposite process of converting a byte stream back into a data structure (Grover et al., 2015).  The serialization process is the fundamental building block for distributed processing systems such as Hadoop because it allows data to be converted into a format that can be efficiently stored and transferred across a network connection (Grover et al., 2015).  Figure 8 summarizes the serialization formats when architecting for Hadoop.


Figure 8.  Serialization Process vs. Deserialization Process.

The serialization involves two aspects of data processing in a distributed system of interprocess communication using data storage, and remote procedure calls or RPC (Grover et al., 2015).  Hadoop utilizes Writables as the main serialization format, which is compact and fast but uses Java only.  Other serialization frameworks have been increasingly used within Hadoop ecosystems, including Thrift, Protocol Buffers and Avro (Grover et al., 2015).  Avro is a language-neutral data serialization system (Grover et al., 2015).  It was designed to address the limitation of the Writables of Hadoop which is lack of language portability.  Similar to Thrift and Protocol Buffers, Avro is described through a language-independent schema (Grover et al., 2015).   Avro, unlike Thrift and Protocol Buffers, the code generation is optional.  Table 1 provides a comparison between these serialization formats.

Table 1:  Comparison between Serialization Formats.

3.      Columnar Format Consideration

Row-oriented systems have been used to fetch data stored in the database (Grover et al., 2015).  This type of data retrieval has been used as the analysis heavily relied on fetching all fields for records that belonged to a specific time range.  This process is efficient if all columns of the record are available at the time or writing because the record can be written with a single disk seek.  The column storage has recently been used to fetch data.  The use of columnar storage has four main benefits over the row-oriented system (Grover et al., 2015).  The skips I/O and decompression on columns that are not part of the query is one of the benefits of the columnar storage.  Columnar data storage works better for queries that access a small subset of columns than the row-oriented data storage, which can be used when many columns are retrieved.  The compression on columns provides efficiency because data is more similar within the same column than it is in a block of rows.  The columnar data storage is more appropriate for data warehousing-based applications where aggregations are implemented using specific columns than an extensive collection of records (Grover et al., 2015).  Hadoop applications have been using the columnar file formats including the RCFile format, Optimized Row Columnar (ORC), and Parquet.  The RCFile format has been used as a Hive Format.  It was developed to provide fast data loading, fast query processing, and highly efficient storage space utilization.  It breaks files into row splits, and within each split uses columnar-oriented storage.  Despite its advantages of the query and compression performance compared to SequenceFiles, it has limitations, that prevent the optimal performance for query times and compression.  The newer version of the columnar formats ORC and Parquet are designed to address many of the limitations of the RCFile (Grover et al., 2015). 

Compression Consideration

Compression is another data storage consideration because it plays a crucial role in reducing the storage requirements, and in improving the data processing performance (Grover et al., 2015).  Some compression formats supported on Hadoop are not splittable (Grover et al., 2015).  MapReduce framework splits data for input to multiple tasks; the nonsplittable compression format is an obstacle to efficient processing.  Thus, the splittability is a critical consideration in selecting the compression format and file format for Hadoop.  Various compression types for Hadoop include Snappy, LZO, Gzip, bzip2.  Google developed Snappy for speed. However, it does not offer the best compression size. It is designed to be used with a container format like SequenceFile or Avro because it is not inherently splittable.  It is being distributed with Hadoop. Similar to Snappy, LZO is optimized for speed as opposed to size.  However, LZO, unlike Snappy support splittability of the compressed files, but it requires indexing.  LZO, unlike Snappy, is not distributed with Hadoop and requires a license and separate installation.  Gzip, like Snappy, provides good compression performance, but is not splittable, and it should be used with a container format. The speed read performance of the Gzip is like the Snappy.  Gzip is slower than Snappy for write processing.  Gzip is not splittable and should be used with a container format.  The use of smaller blocks with Gzip can result in better performance.   The bzip2 is another compression type for Hadoop.  It provides good compression performance, but it can be slower than another compression codec such as Snappy.  It is not an ideal codec for Hadoop storage. Bzip2, unlike Snappy and Gzip, is inherently splittable.  It inserts synchronization markers between blocks.  It can be used for active archival purposes (Grover et al., 2015).

The compression format can become splittable when used with container file formats such as Avro, SequenceFile which compress blocks of records or each record individually (Grover et al., 2015).  If the compression is implemented on the entire file without using the container file format, the compression format that inherently supports splittable must be used such as bzip2.  The compression use with Hadoop has three recommendation (Grover et al., 2015).  The first recommendation is to enable compression of MapReduce intermediate output, which improves performance by decreasing the among of intermediate data that needs to be read and written from and to disk.  The second recommendation s to pay attention to the order of the data.  When the data is close together, it provides better compression levels. The data in Hadoop file format is compressed in chunks, and the organization of those chunks determines the final compression.   The last recommendation is to consider the use of a compact file format with support for splittable compression such as Avro.  Avro and SequenceFiles support splittability with non-splittable compression formats.  A single HDFS block can contain multiple Avro or SequenceFile blocks. Each block of the Avro or SequenceFile can be compressed and decompressed individually and independently of any other blocks of Avro or SequenceFile. This technique makes the data splittable because each block can be compressed and decompressed individually.  Figure 9 shows the Avro and SequenceFile splittability support (Grover et al., 2015).  


Figure 9.  Compression Example Using Avro (Grover et al., 2015).

Design Consideration for HDFS Schema

HDFS and HBase are the commonly used storage managers in the Hadoop ecosystem.  Organizations can store the data in HDFS or HBase which internally store it on HDFS (Grover et al., 2015).  When storing data in HDFS, some design techniques must be taken into consideration.  The schema-on-read model of Hadoop does not impose any requirement when loading data into Hadoop, as data can be ingested into HDFS by one of many methods without the requirements to associate a schema or preprocess the data.  Although Hadoop has been used to load many types of data such as the unstructured data, semi-structured data, some order is still required, because Hadoop serves as a central location for the entire organization and the data stored in HDFS is intended to be shared across various departments and teams in the organization (Grover et al., 2015).  The data repository should be carefully structured and organized to provide various benefits to the organization  (Grover et al., 2015).   When there is a standard directory structure, it becomes easier to share data among teams working with the same data set.  The data gets staged in a separate location before processing it.  The standard stage technique can help not processing data that has not been appropriately staged or entirely yet.  The standard organization of data allows for some code reuse that may process the data (Grover et al., 2015).  The placement of data assumptions can help simplify the loading process of the data into Hadoop.   The HDFS data model design for projects such as data warehouse implementation is likely to use structure facts and dimension tables similar to the traditional schema  (Grover et al., 2015).  The HDFS data model design for projects of unstructured and semi-structured data is likely to focus on directory placement and metadata management (Grover et al., 2015). 

Grover et al. (2015) suggested three key considerations when designing the schema, regardless of the data model design project.  The first consideration is to develop standard practices that can be followed by all teams.  The second point is to ensure the design works well with the chosen tools.  For instance, if the version of Hive can support only table partitions on directories that are named a certain way, it will affect the schema design and the names of the table subdirectories.  The last consideration when designing a schema is to keep usage patterns in mind, because different data processing and querying patterns work better with different schema designs (Grover et al., 2015). 

HDFS Files Location Consideration

            The first step when designing an HDFS schema involves the determination of the location of the file.  Standard file location plays a significant role in finding and sharing data among various departments and teams. It also helps in the assignment of permission to access files to various groups and users.  The recommended file locations are summarized in Table 2.


Table 2.  Standard Files Locations.

HDFS Schema Design Consideration

The HDFS schema design involves advanced techniques to organize data into files (Grover et al., 2015).   A few strategies are recommended to organize the data set. These strategies for data organization involve partitioning, bucketing, and denormalizing process.  The partitioning process of the data set is a common technique used to reduce the amount of I/O required to process the data set.  HDFS does not store indexes on the data unlike the traditional data warehouse. Such a lack of indexes in HDFS plays a key role in speeding up data ingest, with a full table scan cost where every query will have to read the entire dataset even when processing a small subset of data. Breaking up the data set into smaller subsets, or partitions can help with the full table scan, allowing queries to read only the specific partitions reducing the amount of I/O and improving the query time processing significantly (Grover et al., 2015). When data is placed in the filesystem, the directory format for partition should be as shown below.  The order data sets are partitioned by date because there are a large number of orders done daily and the partitions will contain large enough files which are optimized by HDFS.  Various tools such as HCatalog, Hive, Impala, and Pig understand this directory structure leveraging the partitioning to reduce the amount of I/O requiring during the data processing (Grover et al., 2015).

  • <data set name>/<partition_column_name=partition_column_value>/(Armstrong)
  • e.g. medication_orders/date=20181107/[order1.csv, order2.csv]

Bucketing is another technique for breaking a large data set into manageable sub-sets (Grover et al., 2015).  The bucketing technique is similar to the hash partitions which is used in the relational database.   Various tools such as HCatalog, Hive, Impala, and Pig understand this directory structure leveraging the partitioning to reduce the amount of I/O requiring during the data processing. The partition example above was implemented using the date which resulted in large data files which can be optimized by HDFS (Grover et al., 2015).  However, if the data sets are partitioned by a the category of the physician, the result will be too many small files, which leads to small file problems, which can lead to excessive memory use for the NameNode, since metadata for each file stored in HDFS is stored in memory (Grover et al., 2015).  Many small files can also lead to many processing tasks, causing excessive overhead in processing.  The solution for too many small files is to use the bucketing process for the physician in this example, which uses the hashing function to map physician into a specified number of buckets (Grover et al., 2015).

The bucketing technique controls the size of the data subsets and optimizes the query speed (Grover et al., 2015).  The recommended average bucket size is a few multiples of the HDFS block size. The distribution of data when hashed on the bucketing column is essential because it results in consistent bucketing (Grover et al., 2015).  The use of the number of buckets as a power of two is every day.   Bucketing allows joining two data sets.  The join, in this case, is used to represent the general idea of combining two data sets to retrieve a result. The joins can be implemented through the SQL-on-Hadoop systems and also in MapReduce, or Spark, or other programming interfaces to Hadoop.  When using join in the bucketing technique, it joins corresponding buckets individually without having to join the entire datasets, which help in minimizing the time complexity for the reduce-side join of the two datasets process, which is computationally expensive (Grover et al., 2015).   The join is implemented in the map stage of a MapReduce job by loading the smaller of the buckets in memory because the buckets are small enough to easily fit into memory, which is called map-side join process.  The map-side join process improves the join performance as compared to a reduce-side join process.  A hive for data analysis recognizes the tables are bucketed and optimize the process accordingly.

Further optimization can be implemented if the data in the bucket is sorted, the merge join can be used, and the entire bucket does not get stored in memory when joining, resulting in the faster process and much less memory than a simple bucket join.  Hive supports this optimization as well.  The use of both sorting and bucketing on large tables that are frequently joined together using the join key for bucketing is recommended (Grover et al., 2015).

The schema design depends on how the data will be queried (Grover et al., 2015).  Thus, the columns to be used for joining and filtering must be identified before the portioning and bucketing of the data is implemented.   In some cases, when the identification of one partitioning key is challenging, storing the same data set multiple times can be implemented, each with the different physical organization, which is regarded to be an anti-pattern in a relational database.  However, this solution can be implemented with Hadoop, because with Hadoop is write-once, and few updates are expected.  Thus, the overhead of keeping duplicated data set in sync is reduced.  The cost of storage in Hadoop clusters is reduced as well  (Grover et al., 2015). The duplicated data set in sync provides better query speed processing in such cases (Grover et al., 2015). 

Regarding the denormalizing process, it is another technique of trading the disk space for query performance, where joining the entire data set need is minimized (Grover et al., 2015).   In the relational database model, the data is stored in the third standard form (NF3), where redundancy is minimized, and data integrity is enforced by splitting data into smaller tables, each holding a particular entity.  In this relational model, most queries require joining a large number of tables together to produce a final result as desired (Grover et al., 2015).  However, in Hadoop, joins are often the slowest operations and consume the most resources from the cluster.  Specifically, the reduce-side join requires sending the entire table over the network, which is computationally costly.  While sorting and bucketing help minimizing this computational cost, another solution is to create data sets that are pre-joined or pre-aggregated (Grover et al., 2015).  Thus, the data can be joined once and store it in this form instead of running the join operations every time there is a query for that data.  Hadoop schema consolidates many of the small dimension tables into a few larger dimensions by joining them during the ETL process  (Grover et al., 2015).  Other techniques to speed up the process include the aggregation or data type conversion.  The duplication of the data is of less concern; thus, when the processing is frequent for a large number of queries, it is recommended to doing it one and reuse as the case with a materialized view in the relational database.  In Hadoop, the new dataset is created that contains the same data in its aggregated form (Grover et al., 2015).

To summarize, the partitioning process is used to reduce the I/O overhead of processing by selectively reading and writing data in particular partitions.  The bucketing can be used to speed up queries that involve joins or sampling, by reducing the I/O as well.  The denormalization can be implemented to speed up Hadoop jobs.   In this section, a review of advanced techniques to organize data into files is discussed.  The discussion includes the use of a small number of large files versus a large number of small files.  Hadoop prefers working with a small number of large files than a large number of small files.  The discussion also addresses the reduce-side join versus map-side join techniques.   The reduce-side join is computationally costly. Hence, the map-side join technique is preferred and recommend. 

HBase Schema Design Consideration

HBase is not a relational database (Grover et al., 2015; Yang, Liu, Hsu, Lu, & Chu, 2013).  HBase is similar to a large hash table, which allows the association of values with keys and performs a fast lookup of the value based on a given key  (Grover et al., 2015). The operations of hash tables involve put, get, scan, increment and delete.  HBase provides scalability and flexibility and is useful in many applications, including fraud detection, which is a widespread application for HBase (Grover et al., 2015).

The framework of HBase involves Master Server, Region Servers, Write-Ahead Log (WAL), Memstore, HFile, API and Hadoop HDFS (Bhojwani & Shah, 2016).  Each component of the HBase framework plays a significant role in data storage and processing.  Figure 10 illustrated the HBase framework.


Figure 10.  HBase Architecture (Bhojwani & Shah, 2016).

            The following consideration must be taken when designing the schema for HBase (Grover et al., 2015).

  • Row Key Consideration.
  • Timestamp Consideration.
  • Hops Consideration.
  • Tables and Regions Consideration.
  • Columns Use Consideration.
  • Column Families Use Consideration.
  • Time-To-Live Consideration.

The row key is one of the most critical factors for well-architected HBase schema design (Grover et al., 2015).  The row key consideration involves record retrieval, distribution, block cache, the ability to scan, size, readability, and uniqueness.  The row key is critical for retrieving records from HBase. In the relational database, the composite key can be used to combine multiple primary keys.  In HBase, multiple pieces of information can be combined in a single key.  For instance, a key of customer_id, order_id, and timestamp will be a row key for a row describing an order. In a relational database, they are three different columns in the relational database, but in HBase, they will be combined into a single unique identifier.  Another consideration for selecting the row key is the get operation because a get operation of a single record is the fasted operation in HBase.  A single get operation can retrieve the most common uses of the data improves the performance, which requires to put much information in a single record which is called denormalized design.    For instance, while in the relational database, customer information will be placed in various tables, in HBase all customer information will be stored in a single record where get operation will be used. The distribution is another consideration for HBase schema design.  The row key determines the regions of HBase cluster for a given table, which will be scattered throughout various regions (Grover et al., 2015; Yang et al., 2013).   The row keys are sorted, and each region stores a range of these sorted row keys  (Grover et al., 2015).  Each region is pinned to a region server namely a node in the cluster  (Grover et al., 2015).  The combination of device ID and timestamp or reverse timestamp is commonly used to “salt” the key in machine data  (Grover et al., 2015).  The block cache is a least recently used (LRU) cache which caches data blocks in memory  (Grover et al., 2015).  HBase reads records in chunks of 64KB from the disk by default. Each of these chunks is called HBase block  (Grover et al., 2015).  When the HBase block is read from disk, it will be put into the block cache  (Grover et al., 2015).   The choice of the row key can affect the scan operation as well.  HBase scan rates are about eight times slower than HSFS scan rates.  Thus, reducing I/O requirements has a significant performance advantage.  The size of the row key determines the performance of the workload.  The short row key is better than, the long row key because it has lower storage overhead and faster read/ writes performance.  The readability of the row key is critical. Thus, it is essential to start with human-readable row key.  The uniqueness of the row key is also critical since a row key is equivalent to a key in hash table analogy.  If the row key is based on the non-unique attribute, the application should handle such cases and only put data in HBase with a unique row key (Grover et al., 2015).

The timestamp is the second essential consideration for good HBase schema design (Grover et al., 2015).  The timestamp provides advantages of determining which records are newer in case of put operation to modify the record.  It also determines the order where records are returned when multiple versions of a single record are requested. The timestamp is also utilized to remove out-of-date records because time-to-live (TTL) operation compared with the timestamp shows the record value has either been overwritten by another put or deleted (Grover et al., 2015).

The hop term refers to the number of synchronized “get” requests to retrieve specific data from HBase (Grover et al., 2015). The less hop, the better because of the overhead.  Although multi-hop requests with HBase can be made, it is best to avoid them through better schema design, for example by leveraging de-normalization, because every hop is a round-trip to HBase which has a significant performance overhead (Grover et al., 2015).

The number of tables and regions per table in HBase can have a negative impact on the performance and distribution of the data (Grover et al., 2015).  If the number of tables and regions are not implemented correctly, it can result in an imbalance in the distribution of the load.  Important considerations include one region server per node, many regions in a region server, a give region is pinned to a particular region server, and tables are split into regions and scattered across region servers.  A table must have at least one region.  All regions in a region server receive “put” requests and share the region server’s “memstore,” which is a cache structure present on every HBase region server. The “memstore” caches the write is sent to that region server and sorts them in before it flushes them when certain memory thresholds are reached. Thus, the more regions exist in a region server; the less memstore space is available per region.  The default configuration sets the ideal flush size to 100MB. Thus, the “memstore” size can be divided by 100MB and result should be the maximum number of regions which can be put on that region server.   The vast region takes a long time to compact.  The upper limit on the size of a region is around 20GB. However, there are successful HBase clusters with upward of 120GB regions.  The regions can be assigned to HBase table using one of two techniques. The first technique is to create the table with a single default region, which auto splits as data increases.  The second technique is to create the table with a given number of regions and set the region size to a high enough value, e.g., 100GB per region to avoid auto splitting (Grover et al., 2015).  Figure 11 shows a topology of region servers, regions and tables. 


Figure 11.  The Topology of Region Servers, Regions, and Tables (Grover et al., 2015).

The columns used in HBase is different from the traditional relational database (Grover et al., 2015; Yang et al., 2013).  In HBase, unlike the traditional database, a record can have a million columns, and the next record can have a million completely different columns, which is not recommended but possible (Grover et al., 2015).   HBase stores data in a format called HFile, where each column value gets its row in HFile (Grover et al., 2015; Yang et al., 2013). The row has files like row key, timestamp, column names, and values. The file format provides various functionality, like versioning and sparse column storage (Grover et al., 2015). 

HBase, include the concept of column families (Grover et al., 2015; Yang et al., 2013).  A column family is a container for columns.  In HBase, a table can have one or more column families.  Each column family has its set of HFiles and gets compacted independently of other column families in the same table.  In many cases, no more than one column family is needed per table.  The use of more than one column family per table can be done when the operation is done, or the rate of change on a subset of the columns of a table is different from the other columns (Grover et al., 2015; Yang et al., 2013).  The last consideration for HBase schema design is the use of TTL, which is a built-in feature of HBase which ages out data based on its timestamp (Grover et al., 2015).  If TTL is not used and an aging requirement is needed, then a much more I/O intensive operation would need to be done.   The objects in HBase begin with table object, followed by regions for the table, store per column family for each region for the table, memstore, store files, and block (Yang et al., 2013).  Figure 12 shows the hierarchy of objects in HBase.

Figure 12.  The Hierarchy of Objects in HBase (Yang et al., 2013).

To summarize this section, HBase schema design requires seven key consideration starting with the row key, which should be selected carefully for record retrieval, distribution, block cache, ability to scan, size, readability, and uniqueness.  The timestamp and hops are other schema design consideration for HBase.  Tables and regions must be considered for put performance, and compacting time.  The use of columns and column families should also be considered when designing the schema for HBase. The TTL to remove data that aged is another consideration for HBase schema design. 

Metadata Consideration

The above discussion has been about the data and the techniques to store it in Hadoop.  Metadata is as essential as the data itself.  Metadata is data about the data (Grover et al., 2015)).  Hadoop ecosystem has various forms of metadata.   Metadata about logical dataset usually stored in a separate metadata repository include the information like the location of a data set such as directory in HDFS or HBase table name, the schema associated with the dataset, the partitioning and sorting properties of the data set, the format of the data set e.g. CSV, SequenceFile, etc. (Grover et al., 2015). The metadata about files on HDFS includes the permission and ownership of such files and the location of various blocks on data nodes, usually stored and managed by Hadoop NameNode (Grover et al., 2015).  Metadata about tables in HBase include information like table names, associated namespace, associated attributes, e.g. MAX_FILESIZE, READONLY, etc., and the names of column families, usually stored and managed by HBase (Grover et al., 2015).  Metadata about data ingest and transformation include information like which user-generated a given dataset, where the dataset came from, how long it took to generate it, and how many records there are, or the size of the data load (Grover et al., 2015).  Metadata about dataset statistics include information like the number of rows in a dataset, number of unique values in each column, a histogram of the distribution of the data, and maximum and minimum values (Grover et al., 2015).  Figure 13 summarizes this various metadata.


Figure 13.  Various Metadata in Hadoop.

Apache Hive was the first project in the Hadoop ecosystem to store, manage and leverage metadata (Antony et al., 2016; Grover et al., 2015).  Hives stores this metadata in a relational database called the Hive “metastore” (Antony et al., 2016; Grover et al., 2015).  Hive also provides a “metastore” service which interfaces with the Hive metastore database (Antony et al., 2016; Grover et al., 2015).  The query process in Hive goes to the metastore to get the metadata for the desired query, and metastore sends the metadata to Hive generating execution plan, followed by executing the job using the Hadoop cluster, which implements the job and Hive send the fetched result to the user (Antony et al., 2016; Grover et al., 2015).  Figure 14 shows the query process and the role of the metastore in Hive framework.


Figure 14.  Query Process and the Role of Metastore in Hive (Antony et al., 2016).

More projects have utilized the concept of metadata that was introduced by Hive and created a separate project called HCatalog to enable the usage of Hive metastore outside of Hive (Grover et al., 2015).  HCatalog is a part of Hive and allows other tools like Pig and MapReduce to integrate with Hive metastore.  It also opens the access to Hive metastore to other tools such as REST API via WebHCat server.  MapReduce, Pig, and standalone applications can talk directly to the metastore of Hive through its APIs, but HCatalog allows easy access through its WebHCat REST APIs, and it allows the cluster administrators to lock down access to the Hive metastore to address security concerns. Other ways to store metadata include the embedding of metadata in file paths and names.  Another technique to store metadata involves storing it in HDFS in a hidden file, e.g., .metadata.  Figure 15 shows the HCatalog as an accessibility veneer around the Hive metastore (Grover et al., 2015). 


Figure 15.  HCatalog acts an accessibility veneer around the Hive metastore (Grover et al., 2015).

Hive Metastore and HCatalog Limitations

There are some limitations for Hive metastore and HCatalog, including the problem with high availability (Grover et al., 2015).  The HA database cluster solutions to bring HA to the Hive metastore database.  For the metastore service of Hive, there is support concurrently to run multiple metastores on more than one node in the cluster.  However, concurrency issues related to data definition language operations (DDL) can occur, and Hive community is working on fixing these issues. 

The fixed schema for metadata is another limitation.  Hadoop provides much flexibility on the type of data that can be stored, mainly because of the Schema-on-Read concept. Hive metastore provides a fixed schema for the metadata itself. It provides a tabular abstraction for the data sets.   The data in metastore is moving the part in the infrastructure which requires to be running and secured as part of Hadoop infrastructure (Grover et al., 2015).

Conclusion

This project has discussed essential topics related to Hadoop technology.  It began with an overview of Hadoop providing a history of Hadoop and the difference between Hadoop 1.x and Hadoop 2.x.  The discussion involved the Big Data Analytics Process using Hadoop technology.  The process involves six significant steps starting with the problem identification, required data to be collected, and the data collection process. The pre-processing data and ETL process must be implemented before performing the analytics. The last step is the visualization of the data for decision making.  Before processing any data and before collecting any data for storage, some considerations must be taken for data preprocessing, modeling and schema design in Hadoop for better processing and better data retrieval, giving some tools cannot split the data while others can.  These considerations begin with data storage format, followed by Hadoop file types consideration and XML and JSON format challenges in Hadoop.  Compression must be considered when designing the schema for Hadoop. Since HDFS and HBase are commonly used in Hadoop for data storage, the discussion involved the consideration for the HDFS and HBase schema design considerations.  To summarize the design of the schema for Hadoop, HDFS, and HBase makes a difference in storing data in various nodes using the right tools for splitting the data.  Thus, organizations must pay attention to the process and the design requirements before storing data into Hadoop for better computational processing. 

References

Alguliyev, R., & Imamverdiyev, Y. (2014). Big data: big promises for information security. Paper presented at the Application of Information and Communication Technologies (AICT), 2014 IEEE 8th International Conference on.

Ankam, V. (2016). Big Data Analytics: Packt Publishing Ltd.

Antony, B., Boudnik, K., Adams, C., Lee, C., Shao, B., & Sasaki, K. (2016). Professional Hadoop: John Wiley & Sons.

Armstrong, D. (n.d.). R: Learning by Example: Lattice Graphics. Retrieved from https://quantoid.net/files/rbe/lattice.pdf.

Bhojwani, N., & Shah, A. P. V. (2016). A SURVEY ON HADOOP HBASE SYSTEM. Development, 3(1).

Dittrich, J., & Quiané-Ruiz, J.-A. (2012). Efficient big data processing in Hadoop MapReduce. Proceedings of the VLDB Endowment, 5(12), 2014-2015.

Grover, M., Malaska, T., Seidman, J., & Shapira, G. (2015). Hadoop Application Architectures: Designing Real-World Big Data Applications: ” O’Reilly Media, Inc.”.

Hu, H., Wen, Y., Chua, T.-S., & Li, X. (2014). Toward scalable systems for big data analytics: A technology tutorial. IEEE Access, 2, 652-687.

Karanth, S. (2014). Mastering Hadoop: Packt Publishing Ltd.

Lublinsky, B., Smith, K. T., & Yakubovich, A. (2013). Professional hadoop solutions: John Wiley & Sons.

sas.com. (2018). Hadoop – why it is and why it matters. Retrieved from https://www.sas.com/en_us/insights/big-data/hadoop.html.

Yang, C. T., Liu, J. C., Hsu, W. H., Lu, H. W., & Chu, W. C. C. (2013, 16-18 Dec. 2013). Implementation of Data Transform Method into NoSQL Database for Healthcare Data. Paper presented at the 2013 International Conference on Parallel and Distributed Computing, Applications and Technologies.

 

 

Case Study: Fraud Detection in Healthcare Industry

Dr. O. Aly
Computer Science

The purpose of this discussion is to identify and research an analytics case that involves data-in-motion.  The discussion addresses how the data-in-motion analytics performed in the selected case study, and why it is essential to apply data analytics to data in motion.  The discussion begins with data-in-motion vs. data-at-rest, followed by data in-motion analytics in healthcare.  The case study selected for this discussion is regarding fraud detection in healthcare insurance.

Data In-Motion vs. Data at-Rest

(CSA, 2013) have categorized Big Data technologies into two groups:  the batch processing, and stream processing. The batch processing involves analytics on data at rest, while the stream processing involves analytics on data in motion.  The real-time data (a.k.a data in motion) is the streaming data which needs to be analyzed as it comes in (Jain, 2013).  The processing of real-time data does not always require to reside in memory (CSA, 2013), as technologies such as Drill (Hausenblas & Nadeau, 2013) and Dremel (Melnik et al., 2010) provide new techniques for new interactive analysis of large-scale data sets (CSA, 2013).  Hadoop is dominating the batch processing using MapReduce.  However, the stream processing does not have a single dominant technology like Hadoop, but rather, involves stream technologies such as InfoSphere Streams, and Storm (CSA, 2013).   Figure 1 shows the data analytics using the batch processing (data at rest) and using streaming processing (data in motion).   


Figure 1.  Data In Motion (Stream) vs. Data At Rest (Batch) (CSA, 2013)

            (Tibco, 2013) have described the data at rest vs. in motion from the Business Intelligence (BI) perspective.  The traditional BI employs data at rest such as customer information, purchasing history, inventory and so forth, which does not change continuously.  The data at rest analyses can be used for decisions for next week, next month or next quarter (Tibco, 2013).  The data in motion analytics can be employed to make immediate decisions for the next few minutes (Tibco, 2013).  The value of data in motion or real-time analytics is significant, as it implicitly allows for higher quality data for decision making (evariant.com, 2015). Figure 2 illustrates the value of data in motion analytics for businesses. 


Figure 2.  Business Values Through an Accelerated “Insight to Action” Process (Tibco, 2013).

Data in Motion Analytics Value in Healthcare

Various studies and reports have discussed the value of real-time or data-in-motion analytics to healthcare.  Real-time or streaming data analytics will be a critical asset providing a more profound understanding of patient situations at the point of care (Maike, 2018).  Such understanding that is based on real-time data analytics can assist in decreasing costs and improving outcomes. (Maike, 2018) has referenced BIS Research prediction of big data analytics market growth to over $68.75 billion by 2025.  The real-time data analytics for patients and the real-time monitoring of patients care plans provide the opportunity for providers to care for patients proactively (Maike, 2018).  (redhat.com, 2016) has reported a use case for using real-time data analytics.  TMG health was using batch-oriented application which prevented it from providing continuous data visibility and access to its Medicare and Medicaid clients.  TMG handles various tasks such as billing, health insurance, claim processing delivering to more than 3 million file feeds daily.  TMG was seeking a solution to process data quickly and improve visibility and efficiency.   TMG has employed a new application to accelerate real-time data access and visibility for its clients which reduced development time and costs. (Perna, 2015) has also addressed another use case for the value of real-time in healthcare, as Maine health information exchange rolls out real-time predictive analytics for members. The analytics service employs real-time clinical data to determine the potential costly patients who will have a stroke, heart attack or Type 2 diabetes.  The real-time predictive analytics add value to the patient’s care and has value-based reimbursement and risk-based models, which can filter population by provider and contractor.  (Maike, 2018) has discussed the real-time data using the medical devices which are increasingly connected and able to relay data to centralized patient management systems.  When using the real-time analytics, the health care providers can monitor patients both during their hospital stays as well as after they return home. 

Fraud Detection Use Case in Insurance Agency

(Nelson, 2017) has reported an insurance agency’s use case using real-time analytics for fraud detection.  The case study shows that the insurance agency was able to detect $100+ million in fraud in a fraction of the time the legacy process used to take.  (Nelson, 2017) has provided a good example of the powerful user interface to detect new fraud schemes shown in Figure 3.


Figure 3: Powerful User Interface to Detect New Fraud Scheme At Real-Time Analytics (Nelson, 2017).

Conclusion

Big Data Analytics is distinguished from Business Intelligence (BI) in data processing.  The traditional analytics techniques in BI use the batching processing which is based on historical data, when the decision is made for next week, next month or even next quarter.  However, the unique characteristics of Big Data such as volume, velocity, and variety provide unique opportunity to process data at the real-time or in motion to make a more effective decision at the real-time or near real time.  CSA categorized two types of processing: batching and streaming.  The batch processing is similar to the BI data processing and can implement using the Hadoop technology.  The processing of data in motion or real time is implemented through interactive technology such as Drill and Dremel technologies.  The technique of real-time data analytics is proven more effective and efficient reducing costs and increasing values in various domains.

References

CSA. (2013). Big Data Analytics for Security Intelligence. Big Data Working Group, Cloud Security Alliance.

evariant.com. (2015). What’s the Best Way to Manage Big Data for Healthcare: Batch vs. Stream Processing? Retrieved from https://www.evariant.com/blog/best-way-to-manage-healthcare-big-data.

Hausenblas, M., & Nadeau, J. (2013). Apache Drill: interactive ad-hoc analysis at scale. Big Data, 1(2), 100-104.

Jain, R. (2013). Big Data Fundamentals. Retrieved from http://www.cse.wustl.edu/~jain/cse570-13/ftp/m_10abd.pdf.

Maike, C. (2018). How Real-Time Data is Affecting Healthcare. Retrieved from https://hortonworks.com/blog/how-real-time-data-is-affecting-healthcare/.

Melnik, S., Gubarev, A., Long, J. J., Romer, G., Shivakumar, S., Tolton, M., & Vassilakis, T. (2010). Dremel: interactive analysis of web-scale datasets. Proceedings of the VLDB Endowment, 3(1-2), 330-339.

Nelson, P. (2017). Fraud Detection Powered by Big Data – An Insurance Agency’s Case Story.

Perna, G. (2015). Patients in Motion: Maine HIE Rolls Out Real-Time Predictive Analytics.

redhat.com. (2016). TMG Health Accelerates to real-time data access for clients. Retrieved from https://www.redhat.com/en/files/resources/rh-tmg-health-data-access-case-study-inc0350259lw-201603-en.pdf.

Tibco. (2013). Big Data Analytics: Turning Insight Into Action. Retrieved from https://www.tibco.com/sites/tibco/files/resources/wp-big-data-analytics-turning-insight-into-action.pdf, White Paper.