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Mining the social web

data mining Facebook, Twitter, LinkedIn, Instagram, GitHub, and more
Author: Search for this author Russell, Matthew A. (author); Klassen, Mikhail (author)
Statement of Responsibility: Matthew A. Russell and Mikhail Klassen
Year: [2019]
Publisher: Beijing ; [u.a.], O'Reilly
Media group: eBook/eResource
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Content

Mine the rich data tucked away in popular social websites such as Twitter, Facebook, LinkedIn, and Instagram. With the third edition of this popular guide, data scientists, analysts, and programmers will learn how to glean insights from social media—including who’s connecting with whom, what they’re talking about, and where they’re located—using Python code examples, Jupyter notebooks, or Docker containers.
 
In part one, each standalone chapter focuses on one aspect of the social landscape, including each of the major social sites, as well as web pages, blogs and feeds, mailboxes, GitHub, and a newly added chapter covering Instagram. Part two provides a cookbook with two dozen bite-size recipes for solving particular issues with Twitter.
 
- Get a straightforward synopsis of the social web landscape
- Use Docker to easily run each chapter’s example code, packaged as a Jupyter notebook
- Adapt and contribute to the code’s open source GitHub repository
- Learn how to employ best-in-class Python 3 tools to slice and dice the data you collect
- Apply advanced mining techniques such as TFIDF, cosine similarity, collocation analysis, clique detection, and image recognition
- Build beautiful data visualizations with Python and JavaScript toolkits

Details

Statement of Responsibility: Matthew A. Russell and Mikhail Klassen
Year: [2019]
Publisher: Beijing ; [u.a.], O'Reilly
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ISBN: 978-1-491-97350-9
ISBN (2nd): 9781491985045
Description: Third edition, xxiv, 396 Seiten, Illustrationen, Diagramme
Tags: Data Mining, Web 2.0 technologies, World Wide Web 2.0, Instagram, Facebook, GitHub, LinkedIn, Twitter, Social Software, Soziale Software
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Language: eng
Media group: eBook/eResource