A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA

Big data revolution is changing the lifestyle in terms of working and thinking environments through facilitating improvement in vision finding and decision-making. But, big data science's technical dilemma is that there is no knowledge that can administer and analyze large amounts of actively i...

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Main Authors: Vishnu Vandana Kolisetty, Dharmendra Singh Rajput
Format: Article
Language:English
Published: Scientific Research Support Fund of Jordan (SRSF) and Princess Sumaya University for Technology (PSUT) 2020-03-01
Series:Jordanian Journal of Computers and Information Technology
Subjects:
Online Access:http://jjcit.org/Volume%2006,%20Number%2001/4-DOI%2010.5455-jjcit.71-1564729835.pdf
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spelling doaj-c1be092b56df4645ab7c5ea78f5953bb2020-11-25T01:33:24ZengScientific Research Support Fund of Jordan (SRSF) and Princess Sumaya University for Technology (PSUT)Jordanian Journal of Computers and Information Technology 2413-93512415-10762020-03-01061415710.5455/jjcit.71-1564729835A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATAVishnu Vandana Kolisetty0Dharmendra Singh Rajput1Research Scholar in VIT Vellore TN, IndiaVIT Vellore TN, IndiaBig data revolution is changing the lifestyle in terms of working and thinking environments through facilitating improvement in vision finding and decision-making. But, big data science's technical dilemma is that there is no knowledge that can administer and analyze large amounts of actively increasing data and pull out valuable information. As data around the world grows rapidly and its distribution with real-time processing continues, traditional tools for automated machine learning have become inadequate. However, conventional machine learning (ML) approaches have been extended to meet the needs of other applications, but with increased information or large data knowledge bases, there are significant challenges for ML algorithms for big data analysis. This paper aims to facilitate understanding the importance of ML in the analysis of large data. It contributes to understanding the implications and challenges in big data computational complexity, classification imperfection and data heterogeneity. It discusses the capability to mine value from large-scale data for decision-making and predictive analysis through data transformation and knowledge extraction. It will suggest the impact of big data on real-time data analysis and discuss the extent to which machine learning can be used to analyze large data through machine learning in big data analysis. It will also suggest the meaning and opportunity from the point of view of encouraging feature research development in the field of ML using big data.http://jjcit.org/Volume%2006,%20Number%2001/4-DOI%2010.5455-jjcit.71-1564729835.pdfbig datamachine learningdata analysisbig data implicationsbig data challenges
collection DOAJ
language English
format Article
sources DOAJ
author Vishnu Vandana Kolisetty
Dharmendra Singh Rajput
spellingShingle Vishnu Vandana Kolisetty
Dharmendra Singh Rajput
A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
Jordanian Journal of Computers and Information Technology
big data
machine learning
data analysis
big data implications
big data challenges
author_facet Vishnu Vandana Kolisetty
Dharmendra Singh Rajput
author_sort Vishnu Vandana Kolisetty
title A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
title_short A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
title_full A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
title_fullStr A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
title_full_unstemmed A REVIEW ON THE SIGNIFICANCE OF MACHINE LEARNING FOR DATA ANALYSIS IN BIG DATA
title_sort review on the significance of machine learning for data analysis in big data
publisher Scientific Research Support Fund of Jordan (SRSF) and Princess Sumaya University for Technology (PSUT)
series Jordanian Journal of Computers and Information Technology
issn 2413-9351
2415-1076
publishDate 2020-03-01
description Big data revolution is changing the lifestyle in terms of working and thinking environments through facilitating improvement in vision finding and decision-making. But, big data science's technical dilemma is that there is no knowledge that can administer and analyze large amounts of actively increasing data and pull out valuable information. As data around the world grows rapidly and its distribution with real-time processing continues, traditional tools for automated machine learning have become inadequate. However, conventional machine learning (ML) approaches have been extended to meet the needs of other applications, but with increased information or large data knowledge bases, there are significant challenges for ML algorithms for big data analysis. This paper aims to facilitate understanding the importance of ML in the analysis of large data. It contributes to understanding the implications and challenges in big data computational complexity, classification imperfection and data heterogeneity. It discusses the capability to mine value from large-scale data for decision-making and predictive analysis through data transformation and knowledge extraction. It will suggest the impact of big data on real-time data analysis and discuss the extent to which machine learning can be used to analyze large data through machine learning in big data analysis. It will also suggest the meaning and opportunity from the point of view of encouraging feature research development in the field of ML using big data.
topic big data
machine learning
data analysis
big data implications
big data challenges
url http://jjcit.org/Volume%2006,%20Number%2001/4-DOI%2010.5455-jjcit.71-1564729835.pdf
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