Machine Learning for Hackers

Machine Learning for Hackers
Author: Drew Conway
Publisher: "O'Reilly Media, Inc."
Total Pages: 324
Release: 2012-02-13
Genre: Computers
ISBN: 1449330533

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If you’re an experienced programmer interested in crunching data, this book will get you started with machine learning—a toolkit of algorithms that enables computers to train themselves to automate useful tasks. Authors Drew Conway and John Myles White help you understand machine learning and statistics tools through a series of hands-on case studies, instead of a traditional math-heavy presentation. Each chapter focuses on a specific problem in machine learning, such as classification, prediction, optimization, and recommendation. Using the R programming language, you’ll learn how to analyze sample datasets and write simple machine learning algorithms. Machine Learning for Hackers is ideal for programmers from any background, including business, government, and academic research. Develop a naïve Bayesian classifier to determine if an email is spam, based only on its text Use linear regression to predict the number of page views for the top 1,000 websites Learn optimization techniques by attempting to break a simple letter cipher Compare and contrast U.S. Senators statistically, based on their voting records Build a “whom to follow” recommendation system from Twitter data


Machine Learning for Hackers
Language: en
Pages: 324
Authors: Drew Conway
Categories: Computers
Type: BOOK - Published: 2012-02-13 - Publisher: "O'Reilly Media, Inc."

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If you’re an experienced programmer interested in crunching data, this book will get you started with machine learning—a toolkit of algorithms that enables
Machine Learning for Hackers
Language: en
Pages: 323
Authors: Drew Conway
Categories: Computers
Type: BOOK - Published: 2012-02-15 - Publisher: "O'Reilly Media, Inc."

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This title emphasizes the tools of machine learning and statistics in a practical, problem-based manner that teaches programmers how to crunch data.
Bayesian Methods for Hackers
Language: en
Pages: 551
Authors: Cameron Davidson-Pilon
Categories: Computers
Type: BOOK - Published: 2015-09-30 - Publisher: Addison-Wesley Professional

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Master Bayesian Inference through Practical Examples and Computation–Without Advanced Mathematical Analysis Bayesian methods of inference are deeply natural a
Machine Learning for Red Team Hackers
Language: en
Pages: 100
Authors: Dr Emmanuel Tsukerman
Categories:
Type: BOOK - Published: 2020-08-15 - Publisher: Independently Published

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Everyone knows that AI and machine learning are the future of penetration testing. Large cybersecurity enterprises talk about hackers automating and smartening
Mastering Machine Learning for Penetration Testing
Language: en
Pages: 264
Authors: Chiheb Chebbi
Categories: Language Arts & Disciplines
Type: BOOK - Published: 2018-06-27 - Publisher: Packt Publishing Ltd

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Become a master at penetration testing using machine learning with Python Key Features Identify ambiguities and breach intelligent security systems Perform uniq