Machine Learning for Email

3.60 (20 ratings by Goodreads)
Regular price €25.99
A01=Drew Conway
A32=John Myles White
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Author_Drew Conway
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Category1=Non-Fiction
Category=UMB
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COP=United States
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Email spam classification regression statistics R binary classification filtering priority inbox machine learning
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eq_computing
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Language_English
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Price_€20 to €50
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USA

Product details

  • ISBN 9781449314309
  • Publication Date: 06 Dec 2011
  • Publisher: O'Reilly Media
  • Publication City/Country: US
  • Product Form: Paperback
  • Language: English
Delivery/Collection within 10-20 working days

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This compact book explores standard tools for text classification, and teaches the reader how to use machine learning to decide whether a e-mail is spam or ham (binary classification), based on raw data from The SpamAssassin Public Corpus. Of course, sometimes the items in one class are not created equally, or we want to distinguish among them in some meaningful way. The second part of the book will look at how to not only filter spam from our email, but also placing "more important" messages at the top of the queue. This is a curated excerpt from the upcoming book "Machine Learning for Hackers."
Drew Conway is a PhD candidate in Politics at NYU. He studies international relations, conflict, and terrorism using the tools of mathematics, statistics, and computer science in an attempt to gain a deeper understanding of these phenomena. His academic curiosity is informed by his years as an analyst in the U.S. intelligence and defense communities. John Myles White is a PhD candidate in Psychology at Princeton. He studies pattern recognition, decision-making, and economic behavior using behavioral methods and fMRI. He is particularly interested in anomalies of value assessment.