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Internet-Scale Pattern Recognition (New Techniques for Voluminous Data Sets and Data Clouds)

List Price: $91.99
SKU:
9780367380625
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  • Product Details

    Author:
    Anang Muhamad Amin, Asad Khan, Benny Nasution
    Format:
    Paperback
    Pages:
    197
    Publisher:
    CRC Press (June 19, 2019)
    Language:
    English
    Audience:
    Professional and scholarly
    ISBN-13:
    9780367380625
    Weight:
    10.375oz
    Dimensions:
    6.125" x 9.1875"
    File:
    TAYLORFRANCIS-TayFran_260825151040711-20260825.xml
    Folder:
    TAYLORFRANCIS
    List Price:
    $91.99
    Country of Origin:
    United States
    Case Pack:
    10
    As low as:
    $87.39
    Publisher Identifier:
    P-CRC
    Discount Code:
    H
    Pub Discount:
    30
    Imprint:
    Chapman and Hall/CRC
  • Overview

    For machine intelligence applications to work successfully, machines must perform reliably under variations of data and must be able to keep up with data streams. Internet-Scale Pattern Recognition: New Techniques for Voluminous Data Sets and Data Clouds unveils computational models that address performance and scalability to achieve higher levels of reliability. It explores different ways of implementing pattern recognition using machine intelligence.





    Based on the authors’ research from the past 10 years, the text draws on concepts from pattern recognition, parallel processing, distributed systems, and data networks. It describes fundamental research on the scalability and performance of pattern recognition, addressing issues with existing pattern recognition schemes for Internet-scale data deployment. The authors review numerous approaches and introduce possible solutions to the scalability problem.





    By presenting the concise body of knowledge required for reliable and scalable pattern recognition, this book shortens the learning curve and gives you valuable insight to make further innovations. It offers an extendable template for Internet-scale pattern recognition applications as well as guidance on the programming of large networks of devices.