A Systematic Review Towards Big Data Analytics in Social Media

The recent advancement in internet 2.0 creates a scope to connect people worldwide using society 2.0 and web 2.0 technologies. This new era allows the consumer to directly connect with other individuals, business corporations, and the government. People are open to sharing opinions, views, and ideas...

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Main Authors: Md. Saifur Rahman, Hassan Reza
Format: Article
Language:English
Published: Tsinghua University Press 2022-09-01
Series:Big Data Mining and Analytics
Subjects:
Online Access:https://www.sciopen.com/article/10.26599/BDMA.2022.9020009
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author Md. Saifur Rahman
Hassan Reza
author_facet Md. Saifur Rahman
Hassan Reza
author_sort Md. Saifur Rahman
collection DOAJ
description The recent advancement in internet 2.0 creates a scope to connect people worldwide using society 2.0 and web 2.0 technologies. This new era allows the consumer to directly connect with other individuals, business corporations, and the government. People are open to sharing opinions, views, and ideas on any topic in different formats out loud. This creates the opportunity to make the "Big Social Data" handy by implementing machine learning approaches and social data analytics. This study offers an overview of recent works in social media, data science, and machine learning to gain a wide perspective on social media big data analytics. We explain why social media data are significant elements of the improved data-driven decision-making process. We propose and build the "Sunflower Model of Big Data" to define big data and bring it up to date with technology by combining 5 V’s and 10 Bigs. We discover the top ten social data analytics to work in the domain of social media platforms. A comprehensive list of relevant statistical/machine learning methods to implement each of these big data analytics is discussed in this work. "Text Analytics" is the most used analytics in social data analysis to date. We create a taxonomy on social media analytics to meet the need and provide a clear understanding. Tools, techniques, and supporting data type are also discussed in this research work. As a result, researchers will have an easier time deciding which social data analytics would best suit their needs.
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spelling doaj-art-902274b08a66456e9d83d7eeb1339ac72025-02-02T06:14:03ZengTsinghua University PressBig Data Mining and Analytics2096-06542022-09-015322824410.26599/BDMA.2022.9020009A Systematic Review Towards Big Data Analytics in Social MediaMd. Saifur Rahman0Hassan Reza1School of Electrical Engineering and Computer Science, University of North Dakota, Grand Forks, ND 58202, USASchool of Electrical Engineering and Computer Science, University of North Dakota, Grand Forks, ND 58202, USAThe recent advancement in internet 2.0 creates a scope to connect people worldwide using society 2.0 and web 2.0 technologies. This new era allows the consumer to directly connect with other individuals, business corporations, and the government. People are open to sharing opinions, views, and ideas on any topic in different formats out loud. This creates the opportunity to make the "Big Social Data" handy by implementing machine learning approaches and social data analytics. This study offers an overview of recent works in social media, data science, and machine learning to gain a wide perspective on social media big data analytics. We explain why social media data are significant elements of the improved data-driven decision-making process. We propose and build the "Sunflower Model of Big Data" to define big data and bring it up to date with technology by combining 5 V’s and 10 Bigs. We discover the top ten social data analytics to work in the domain of social media platforms. A comprehensive list of relevant statistical/machine learning methods to implement each of these big data analytics is discussed in this work. "Text Analytics" is the most used analytics in social data analysis to date. We create a taxonomy on social media analytics to meet the need and provide a clear understanding. Tools, techniques, and supporting data type are also discussed in this research work. As a result, researchers will have an easier time deciding which social data analytics would best suit their needs.https://www.sciopen.com/article/10.26599/BDMA.2022.9020009big datasocial mediabig data analyticssocial media analyticstext analyticsimage analyticsaudio analyticsvideo analyticspredictive analyticsdescriptive analyticsprescriptive analyticsdiagnostic analytics
spellingShingle Md. Saifur Rahman
Hassan Reza
A Systematic Review Towards Big Data Analytics in Social Media
Big Data Mining and Analytics
big data
social media
big data analytics
social media analytics
text analytics
image analytics
audio analytics
video analytics
predictive analytics
descriptive analytics
prescriptive analytics
diagnostic analytics
title A Systematic Review Towards Big Data Analytics in Social Media
title_full A Systematic Review Towards Big Data Analytics in Social Media
title_fullStr A Systematic Review Towards Big Data Analytics in Social Media
title_full_unstemmed A Systematic Review Towards Big Data Analytics in Social Media
title_short A Systematic Review Towards Big Data Analytics in Social Media
title_sort systematic review towards big data analytics in social media
topic big data
social media
big data analytics
social media analytics
text analytics
image analytics
audio analytics
video analytics
predictive analytics
descriptive analytics
prescriptive analytics
diagnostic analytics
url https://www.sciopen.com/article/10.26599/BDMA.2022.9020009
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AT hassanreza systematicreviewtowardsbigdataanalyticsinsocialmedia