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Yuxi Liu (Hayden) | Akateeminen Kirjakauppa

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Hands-On Deep Learning Architectures with Python - Create deep neural networks to solve computational problems using TensorFlow
Yuxi Liu (Hayden); Saransh Mehta
Packt Publishing Limited (2019)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
38,50
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Python Machine Learning By Example
Yuxi Liu (Hayden)
Packt Publishing Limited (2017)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
62,50
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
R Deep Learning Projects - Master the techniques to design and develop neural network models in R
Yuxi Liu (Hayden); Pablo Maldonado
Packt Publishing Limited (2018)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
45,20
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Python Machine Learning By Example - Implement machine learning algorithms and techniques to build intelligent systems, 2nd Edit
Yuxi Liu (Hayden)
Packt Publishing Limited (2019)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
46,50
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
PyTorch 1.x Reinforcement Learning Cookbook - Over 60 recipes to design, develop, and deploy self-learning AI models using Pytho
Yuxi Liu (Hayden)
Packt Publishing Limited (2019)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
50,40
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Python Machine Learning By Example - Build intelligent systems using Python, TensorFlow 2, PyTorch, and scikit-learn, 3rd Editio
Yuxi Liu (Hayden)
Packt Publishing Limited (2020)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
45,00
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Machine Learning with PyTorch and Scikit-Learn - Develop machine learning and deep learning models with Python
Sebastian Raschka; Yuxi Liu (Hayden); Vahid Mirjalili
Packt Publishing Limited (2022)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
68,90
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Deep Learning with R for Beginners - Design neural network models in R 3.5 using TensorFlow, Keras, and MXNet
Mark Hodnett; Joshua F. Wiley; Yuxi Liu (Hayden); Pablo Maldonado
Packt Publishing Limited (2019)
Saatavuus: Tilaustuote
Pehmeäkantinen kirja
61,00
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Hands-On Deep Learning Architectures with Python - Create deep neural networks to solve computational problems using TensorFlow
38,50 €
Packt Publishing Limited
Sivumäärä: 316 sivua
Asu: Pehmeäkantinen kirja
Julkaisuvuosi: 2019, 30.04.2019 (lisätietoa)
Kieli: Englanti
Concepts, tools, and techniques to explore deep learning architectures and methodologies

Key Features

Explore advanced deep learning architectures using various datasets and frameworks
Implement deep architectures for neural network models such as CNN, RNN, GAN, and many more
Discover design patterns and different challenges for various deep learning architectures

Book DescriptionDeep learning architectures are composed of multilevel nonlinear operations that represent high-level abstractions; this allows you to learn useful feature representations from the data. This book will help you learn and implement deep learning architectures to resolve various deep learning research problems.

Hands-On Deep Learning Architectures with Python explains the essential learning algorithms used for deep and shallow architectures. Packed with practical implementations and ideas to help you build efficient artificial intelligence systems (AI), this book will help you learn how neural networks play a major role in building deep architectures. You will understand various deep learning architectures (such as AlexNet, VGG Net, GoogleNet) with easy-to-follow code and diagrams. In addition to this, the book will also guide you in building and training various deep architectures such as the Boltzmann mechanism, autoencoders, convolutional neural networks (CNNs), recurrent neural networks (RNNs), natural language processing (NLP), GAN, and more—all with practical implementations.

By the end of this book, you will be able to construct deep models using popular frameworks and datasets with the required design patterns for each architecture. You will be ready to explore the potential of deep architectures in today's world.

What you will learn

Implement CNNs, RNNs, and other commonly used architectures with Python
Explore architectures such as VGGNet, AlexNet, and GoogLeNet
Build deep learning architectures for AI applications such as face and image recognition, fraud detection, and many more
Understand the architectures and applications of Boltzmann machines and autoencoders with concrete examples
Master artificial intelligence and neural network concepts and apply them to your architecture
Understand deep learning architectures for mobile and embedded systems

Who this book is forIf you’re a data scientist, machine learning developer/engineer, or deep learning practitioner, or are curious about AI and want to upgrade your knowledge of various deep learning architectures, this book will appeal to you. You are expected to have some knowledge of statistics and machine learning algorithms to get the best out of this book

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Tilaustuote | Arvioimme, että tuote lähetetään meiltä noin 12-15 arkipäivässä
Myymäläsaatavuus
Helsinki
Tapiola
Turku
Tampere
Hands-On Deep Learning Architectures with Python - Create deep neural networks to solve computational problems using TensorFlow zoom
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ISBN:
9781788998086
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