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Machine Learning, revised and updated edition

List Price: $18.95
SKU:
9780262542524
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  • Product Details

    Author:
    Ethem Alpaydin
    Series:
    The MIT Press Essential Knowledge series
    Format:
    Paperback
    Pages:
    280
    Publisher:
    MIT Press (August 17, 2021)
    Language:
    English
    ISBN-13:
    9780262542524
    ISBN-10:
    0262542528
    Weight:
    7.8oz
    Dimensions:
    5" x 7" x 0.77"
    Case Pack:
    40
    File:
    RandomHouse-PRH_Book_Company_PRH_PRT_Onix_full_active_D20260705T122203_156890364-20260705.xml
    Folder:
    RandomHouse
    List Price:
    $18.95
    As low as:
    $14.59
    Publisher Identifier:
    P-RH
    Discount Code:
    A
    QuickShip:
    Yes
    Audience:
    General/trade
    Country of Origin:
    United States
    Pub Discount:
    65
    Imprint:
    The MIT Press
  • Overview

    A concise overview of machine learning--computer programs that learn from data--the basis of such applications as voice recognition and driverless cars.

    Today, machine learning underlies a range of applications we use every day, from product recommendations to voice recognition--as well as some we don't yet use everyday, including driverless cars. It is the basis for a new approach to artificial intelligence that aims to program computers to use example data or past experience to solve a given problem. In this volume in the MIT Press Essential Knowledge series, Ethem Alpaydin offers a concise and accessible overview of "the new AI." This expanded edition offers new material on such challenges facing machine learning as privacy, security, accountability, and bias.
     
    Alpaydin, author of a popular textbook on machine learning, explains that as "Big Data" has gotten bigger, the theory of machine learning--the foundation of efforts to process that data into knowledge--has also advanced. He describes the evolution of the field, explains important learning algorithms, and presents example applications. He discusses the use of machine learning algorithms for pattern recognition; artificial neural networks inspired by the human brain; algorithms that learn associations between instances; and reinforcement learning, when an autonomous agent learns to take actions to maximize reward. In a new chapter, he considers transparency, explainability, and fairness, and the ethical and legal implications of making decisions based on data.