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Learning TensorFlow (A Guide to Building Deep Learning Systems)

List Price: $59.99
SKU:
9781491978511
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  • Product Details

    Author:
    Tom Hope, Yehezkel S. Resheff, Itay Lieder
    Format:
    Paperback
    Pages:
    240
    Publisher:
    O'Reilly Media (September 26, 2017)
    Language:
    English
    ISBN-13:
    9781491978511
    ISBN-10:
    1491978511
    Dimensions:
    7" x 9.19"
    File:
    TWO RIVERS-PERSEUS-Metadata_Only_Perseus_Distribution_Customer_Group_Metadata_20251022163324-20251022.xml
    Folder:
    TWO RIVERS
    List Price:
    $59.99
    As low as:
    $51.59
    Publisher Identifier:
    P-PER
    Discount Code:
    C
    Case Pack:
    38
    Country of Origin:
    United States
    Pub Discount:
    60
    Weight:
    13.6oz
    Imprint:
    O'Reilly Media
  • Overview

    Roughly inspired by the human brain, deep neural networks trained with large amounts of data can solve complex tasks with unprecedented accuracy. This practical book provides an end-to-end guide to TensorFlow, the leading open source software library that helps you build and train neural networks for computer vision, natural language processing (NLP), speech recognition, and general predictive analytics.

    Authors Tom Hope, Yehezkel Resheff, and Itay Lieder provide a hands-on approach to TensorFlow fundamentals for a broad technical audience—from data scientists and engineers to students and researchers. You’ll begin by working through some basic examples in TensorFlow before diving deeper into topics such as neural network architectures, TensorBoard visualization, TensorFlow abstraction libraries, and multithreaded input pipelines. Once you finish this book, you’ll know how to build and deploy production-ready deep learning systems in TensorFlow.

    • Get up and running with TensorFlow, rapidly and painlessly
    • Learn how to use TensorFlow to build deep learning models from the ground up
    • Train popular deep learning models for computer vision and NLP
    • Use extensive abstraction libraries to make development easier and faster
    • Learn how to scale TensorFlow, and use clusters to distribute model training
    • Deploy TensorFlow in a production setting