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Machine Learning Systems - Jeff Smith

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        Présentation Machine Learning Systems de Jeff Smith Format Broché

         - Livre Informatique

        Livre Informatique - Jeff Smith - 01/07/2018 - Broché - Langue : Anglais

        . .

      • Auteur(s) : Jeff Smith
      • Editeur : Manning Publications
      • Langue : Anglais
      • Parution : 01/07/2018
      • Format : Moyen, de 350g à 1kg
      • Nombre de pages : 224.0
      • Expédition : 398
      • Dimensions : 23.3 x 18.7 x 1.7
      • ISBN : 1617293334



      • Résumé :
        Summary

        Machine Learning Systems: Designs that scale is an example-rich guide that teaches you how to implement reactive design solutions in your machine learning systems to make them as reliable as a well-built web app.

        Foreword by Sean Owen, Director of Data Science, Cloudera

        About the Technology

        If you’...

        Biographie:
        Jeff Smith builds large-scale machine learning systems using Scala and Spark. For the past decade, he has been working on data science applications at various startups in New York, San Francisco, and Hong Kong. He blogs and speaks about various aspects of building real world machine learning systems....

        Sommaire:
        re building machine learning models to be used on a small scale, you don't need this book. But if you're a developer building a production-grade ML application that needs quick response times, reliability, and good user experience, this is the book for you. It collects principles and practices of machine learning systems that are dramatically easier to run and maintain, and that are reliably better for users.

        About the Book

        Machine Learning Systems: Designs that scale teaches you to design and implement production-ready ML systems. You'll learn the principles of reactive design as you build pipelines with Spark, create highly scalable services with Akka, and use powerful machine learning libraries like MLib on massive datasets. The examples use the Scala language, but the same ideas and tools work in Java, as well.

        What's Inside

        • Working with Spark, MLlib, and Akka
        • Reactive design patterns
        • Monitoring and maintaining a large-scale system
        • Futures, actors, and supervision

        About the Reader

        Readers need intermediate skills in Java or Scala. No prior machine learning experience is assumed.

        About the Author

        Jeff Smith builds powerful machine learning systems. For the past decade, he has been working on building data science applications, teams, and companies as part of various teams in New York, San Francisco, and Hong Kong. He blogs (https: //medium.com/@jeffksmithjr), tweets (@jeffksmithjr), and speaks (www.jeffsmith.tech/speaking) about various aspects of building real-world machine learning systems.

        Table of Contents

        PART 1 - FUNDAMENTALS OF REACTIVE MACHINE LEARNING
        1. Learning reactive machine learning
        2. Using reactive tools

        PART 2 - BUILDING A REACTIVE MACHINE LEARNING SYSTEM
        1. Collecting data
        2. Generating features
        3. Learning models
        4. Evaluating models
        5. Publishing models
        6. Responding

        PART 3 - OPERATING A MACHINE LEARNING SYSTEM
        1. Delivering
        2. Evolving intelligence
        ...

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