Scaling Machine Learning with Spark Distributed ML with Mllib, Tensorflow, and Pytorch-Quality Guarantee
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Scaling Machine Learning with Spark Distributed ML with Mllib, Tensorflow, and Pytorch-Quality Guarantee

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Description

Learn how to build end-to-end scalable machine learning solutions with Apache Spark. With this practical guide, author Adi Polak introduces data and ML practitioners to creative solutions that supersede todays traditional methods. Youll learn a more holistic approach that takes you beyond specific requirements and organizational goalsallowing data and ML practitioners to collaborate and understand each other better.

Scaling Machine Learning with Spark examines several technologies for building end-to-end distributed ML workflows based on the Apache Spark ecosystem with Spark MLlib, MLflow, TensorFlow, and PyTorch. If youre a data scientist who works with machine learning, this book shows you when and why to use each technology.

You will:

Explore machine learning, including distributed computing concepts and terminology

Manage the ML lifecycle with MLflow

Ingest data and perform basic preprocessing with Spark

Explore feature engineering, and use Spark to extract features

Train a model with MLlib and build a pipeline to reproduce it

Build a data system to combine the power of Spark with deep learning

Get a step-by-step example of working with distributed TensorFlow

Use PyTorch to scale machine learning and its internal architecture

Author: Adi Polak
Binding Type: Paperback
Publisher: OReilly Media
Published: 04/11/2023
Pages: 291
Weight: 1.04lbs
Size: 9.19h x 7.00w x 0.62d
ISBN: 9781098106829
Language: English

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