An Insight into State-of-the-Art Techniques for Big Data Classification
Neha Bansal,
R.K. Singh and
Arun Sharma
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Neha Bansal: Department of IT, Indira Gandhi Delhi Technical University for Women, Delhi, India
R.K. Singh: Department of IT, Indira Gandhi Delhi Technical University for Women, Delhi, India
Arun Sharma: Department of IT, Indira Gandhi Delhi Technical University for Women, Delhi, India
International Journal of Information System Modeling and Design (IJISMD), 2017, vol. 8, issue 3, 24-42
Abstract:
This article describes how classification algorithms have emerged as strong meta-learning techniques to accurately and efficiently analyze the masses of data generated from the widespread use of internet and other sources. In particular, there is need of some mechanism which classifies unstructured data into some organized form. Classification techniques over big transactional database may provide required data to the users from large datasets in a more simplified way. With the intention of organizing and clearly representing the current state of classification algorithms for big data, present paper discusses various concepts and algorithms, and also an exhaustive review of existing classification algorithms over big data classification frameworks and other novel frameworks. The paper provides a comprehensive comparison, both from a theoretical as well as an empirical perspective. The effectiveness of the candidate classification algorithms is measured through a number of performance metrics such as implementation technique, data source validation, and scalability etc.
Date: 2017
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Persistent link: https://EconPapers.repec.org/RePEc:igg:jismd0:v:8:y:2017:i:3:p:24-42
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