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  • Book Overview & Buying Mastering Social Media Mining with R
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Mastering Social Media Mining with R

Mastering Social Media Mining with R

By : Kumar Ravindran, Vikram Garg
4.4 (9)
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Mastering Social Media Mining with R

Mastering Social Media Mining with R

4.4 (9)
By: Kumar Ravindran, Vikram Garg

Overview of this book

With an increase in the number of users on the web, the content generated has increased substantially, bringing in the need to gain insights into the untapped gold mine that is social media data. For computational statistics, R has an advantage over other languages in providing readily-available data extraction and transformation packages, making it easier to carry out your ETL tasks. Along with this, its data visualization packages help users get a better understanding of the underlying data distributions while its range of "standard" statistical packages simplify analysis of the data. This book will teach you how powerful business cases are solved by applying machine learning techniques on social media data. You will learn about important and recent developments in the field of social media, along with a few advanced topics such as Open Authorization (OAuth). Through practical examples, you will access data from R using APIs of various social media sites such as Twitter, Facebook, Instagram, GitHub, Foursquare, LinkedIn, Blogger, and other networks. We will provide you with detailed explanations on the implementation of various use cases using R programming. With this handy guide, you will be ready to embark on your journey as an independent social media analyst.
Table of Contents (8 chapters)
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7
Index

Chapter 2. Mining Opinions, Exploring Trends, and More with Twitter

Our approach in this book is to use statistics and social science theory to mine social media, and we'll use R as our base programming language.

In this chapter, we will cover the following:

  • Twitter and its importance
  • Getting hands-on with Twitter's data and using various Twitter APIs
  • Use of data to solve business problems—comparison of various businesses based on tweets
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