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Issue title: Special section: Recent trends, Challenges and Applications in Cognitive Computing for Intelligent Systems
Guest editors: Vijayakumar Varadarajan, Piet Kommers, Vincenzo Piuri and V. Subramaniyaswamy
Article type: Research Article
Authors: Revathy, P.a; * | Mukesh, Rajeswarib
Affiliations: [a] Cognizant Techmology Solutions, Changi Business Park Crescent, Singapore, Singapore | [b] Deparment of Computer Science, Hindustan University, Padur, Kelambakam, Chennai, Tamil Nadu, India
Correspondence: [*] Corresponding author. P. Revathy, Cognizant Techmology Solutions, Changi Business Park Crescent, 486025 Singapore, Singapore. E-mail: [email protected].
Abstract: Like many open-source technologies such as UNIX or TCP/IP, Hadoop was not created with Security in mind. Hadoop however evolved from the other tools over time and got widely adopted across large enterprises. Some of Hadoop’s architectural features present Hadoop its unique security issues. Given this security vulnerability and potential invasion of confidentiality due to malicious attackers or internal customers, organizations face challenges in implementing a strong security framework for Hadoop. Furthermore, given the method in which data is placed in Hadoop Cluster adds to the only growing list of these potential security vulnerabilities. Data privacy is compromised when these critical and data-sensitive blocks are accessed either by unauthorized users or for that matter even misuse by authorized users. In this paper, we intend to address the strategy of data block placement across the allotted DataNodes. Prescriptive analytics algorithms are used to determine the Sensitivity Index of the Data and thereby decide on data placement allocation to provide impenetrable access to an unauthorized user. This data block placement strategy aims to adaptively distribute the data across the cluster using innovative ML techniques to make the data infrastructure extra secured.
Keywords: Big data, Hadoop security, data placement strategy for sensitive data, sensitivity in Hadoop, prescriptive analytics
DOI: 10.3233/JIFS-189165
Journal: Journal of Intelligent & Fuzzy Systems, vol. 39, no. 6, pp. 8477-8486, 2020
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