Hands-On Neural Networks with TensorFlow 2.0: Understand TensorFlow,from static graph to eager execution,and design neural networks


Hands-On Neural Networks with TensorFlow 2.0: Understand TensorFlow,from static graph to eager execution,and design neural networks
Authors: Paolo Galeone
ISBN-10: 1789615550
ISBN-13: 9781789615555
Publisher finelybook 出版社:‏ Packt Publishing (September 18,2019)
Print Length 页数: 358 pages

Book Description


A comprehensive guide to developing neural network-based solutions using TensorFlow 2.0
TensorFlow,the most popular and widely used machine learning framework,has made it possible for almost anyone to develop machine learning solutions with ease. With TensorFlow (TF) 2.0,you’ll explore a revamped framework structure,offering a wide variety of new features aimed at improving productivity and ease of use for developers.
This book covers machine learning with a focus on developing neural network-based solutions. You’ll start by getting familiar with the concepts and techniques required to build solutions to deep learning problems. As you advance,you’ll learn how to create classifiers,build object detection and semantic segmentation networks,train generative models,and speed up the development process using TF 2.0 tools such as TensorFlow Datasets and TensorFlow Hub.
By the end of this TensorFlow book,you’ll be ready to solve any machine learning problem by developing solutions using TF 2.0 and putting them into production.
What you will learn
Grasp machine learning and neural network techniques to solve challenging tasks
Apply the new features of TF 2.0 to speed up development
Use TensorFlow Datasets (tfds) and the tf.data API to build high-efficiency data input pipelines
Perform transfer learning and fine-tuning with TensorFlow Hub
Define and train networks to solve object detection and semantic segmentation problems
Train Generative Adversarial Networks (GANs) to generate images and data distributions
Use the SavedModel file format to put a model,or a generic computational graph,into production
contents
1 What is Machine Learning?
2 Neural Networks and Deep Learning
3 TensorFlow Graph Architecture
4 TensorFlow 2.0 Architecture
5 Efficient Data Input Pipelines and Estimator API
6 Image Classification Using TensorFlow Hub
7 Introduction to Object Detection
8 Semantic Segmentation and Custom Dataset Builder
9 Generative Adversarial Networks
10 Bringing a Model to Production

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