Practical Deep Learning : A Python-Based Introduction
by
Ron Kneusel
Book Details
Format
Paperback / Softback
ISBN-10
1718500742
ISBN-13
9781718500747
Publisher
No Starch Press,US
Imprint
No Starch Press,US
Country of Manufacture
CN
Country of Publication
GB
Publication Date
Feb 23rd, 2021
Print length
464 Pages
Weight
884 grams
Dimensions
17.90 x 23.40 x 3.20 cms
Product Classification:
Computer programming / software developmentComputer programming / software engineering
Ksh 10,250.00
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A book for people with no experience with machine learning and who are looking for an intuition-based, hands-on introduction using Python.
Practical Deep Learning teaches total beginners how to build the datasets and models needed to train neural networks for your own DL projects.
If you’ve been curious about artificial intelligence and machine learning but didn’t know where to start, this is the book you’ve been waiting for. Focusing on the subfield of machine learning known as deep learning, it explains core concepts and gives you the foundation you need to start building your own models. Rather than simply outlining recipes for using existing toolkits, Practical Deep Learning teaches you the why of deep learning and will inspire you to explore further.
All you need is basic familiarity with computer programming and high school math—the book will cover the rest. After an introduction to Python, you’ll move through key topics like how to build a good training dataset, work with the scikit-learn and Keras libraries, and evaluate your models’ performance.
You’ll also learn:
The perfect introduction to this dynamic, ever-expanding field, Practical Deep Learning will give you the skills and confidence to dive into your own machine learning projects.
If you’ve been curious about artificial intelligence and machine learning but didn’t know where to start, this is the book you’ve been waiting for. Focusing on the subfield of machine learning known as deep learning, it explains core concepts and gives you the foundation you need to start building your own models. Rather than simply outlining recipes for using existing toolkits, Practical Deep Learning teaches you the why of deep learning and will inspire you to explore further.
All you need is basic familiarity with computer programming and high school math—the book will cover the rest. After an introduction to Python, you’ll move through key topics like how to build a good training dataset, work with the scikit-learn and Keras libraries, and evaluate your models’ performance.
You’ll also learn:
- How to use classic machine learning models like k-Nearest Neighbors, Random Forests, and Support Vector Machines
- How neural networks work and how they’re trained
- How to use convolutional neural networks
- How to develop a successful deep learning model from scratch
The perfect introduction to this dynamic, ever-expanding field, Practical Deep Learning will give you the skills and confidence to dive into your own machine learning projects.
Get Practical Deep Learning by at the best price and quality guaranteed only at Werezi Africa's largest book ecommerce store. The book was published by No Starch Press,US and it has pages.