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Data Mining Approaches for Big Data and Sentiment Analysis in Social Media - by Brij B Gupta & Dragan Perakovic & Ahmed A Abd El-Latif Hardcover
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Highlights
- Social media sites are constantly evolving with huge amounts of scattered data or big data, which makes it difficult for researchers to trace the information flow.
- Author(s): Brij B Gupta & Dragan Perakovic & Ahmed A Abd El-Latif
- 336 Pages
- Computers + Internet, Databases
Description
About the Book
Social media sites are constantly evolving with huge amounts of scattered data or big data, which makes it difficult for researchers to trace the information flow. It is a daunting task to extract a useful piece of information from the vast unstructured big data; the disorganized structure of social media contains data in various forms such as text and videos as well as huge real-time data on which traditional analytical methods like statistical approaches fail miserably. Due to this, there is a need for efficient data mining techniques that can overcome the shortcomings of the traditional approaches. Data Mining Approaches for Big Data and Sentiment Analysis in Social Media encourages researchers to explore the key concepts of data mining, such as how they can be utilized on online social media platforms, and provides advances on data mining for big data and sentiment analysis in online social media, as well as future research directions. Covering a range of concepts from machine learning methods to data mining for big data analytics, this book is ideal for graduate students, academicians, faculty members, scientists, researchers, data analysts, social media analysts, managers, and software developers who are seeking to learn and carry out research in the area of data mining for big data and sentiment.
Book Synopsis
Social media sites are constantly evolving with huge amounts of scattered data or big data, which makes it difficult for researchers to trace the information flow. It is a daunting task to extract a useful piece of information from the vast unstructured big data; the disorganized structure of social media contains data in various forms such as text and videos as well as huge real-time data on which traditional analytical methods like statistical approaches fail miserably. Due to this, there is a need for efficient data mining techniques that can overcome the shortcomings of the traditional approaches. Data Mining Approaches for Big Data and Sentiment Analysis in Social Media encourages researchers to explore the key concepts of data mining, such as how they can be utilized on online social media platforms, and provides advances on data mining for big data and sentiment analysis in online social media, as well as future research directions. Covering a range of concepts from machine learning methods to data mining for big data analytics, this book is ideal for graduate students, academicians, faculty members, scientists, researchers, data analysts, social media analysts, managers, and software developers who are seeking to learn and carry out research in the area of data mining for big data and sentiment.
Dimensions (Overall): 10.0 Inches (H) x 7.0 Inches (W) x .75 Inches (D)
Weight: 1.76 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 336
Genre: Computers + Internet
Sub-Genre: Databases
Publisher: Engineering Science Reference
Theme: Data Mining
Format: Hardcover
Author: Brij B Gupta & Dragan Perakovic & Ahmed A Abd El-Latif
Language: English
Street Date: November 17, 2021
TCIN: 1008784513
UPC: 9781799884132
Item Number (DPCI): 247-27-8451
Origin: Made in the USA or Imported
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Shipping details
Estimated ship dimensions: 0.75 inches length x 7 inches width x 10 inches height
Estimated ship weight: 1.76 pounds
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