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Deep Learning on Windows: Building Deep Learning Computer Vision Systems on Microsoft Windows 1st ed. Edition
Purchase options and add-ons
- ISBN-101484264304
- ISBN-13978-1484264300
- Edition1st ed.
- Publication dateDecember 16, 2020
- LanguageEnglish
- Dimensions7.01 x 0.84 x 10 inches
- Print length356 pages
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Editorial Reviews
From the Back Cover
Build deep learning and computer vision systems using Python, TensorFlow, Keras, OpenCV, and more, right within the familiar environment of Microsoft Windows. The book starts with an introduction to tools for deep learning and computer vision tasks followed by instructions to install, configure, and troubleshoot them. Here, you will learn how Python can help you build deep learning models on Windows.
Moving forward, you will build a deep learning model and understand the internal-workings of a convolutional neural network on Windows. Further, you will go through different ways to visualize the internal-workings of deep learning models along with an understanding of transfer learning where you will learn how to build model architecture and use data augmentations. Next, you will manage and train deep learning models on Windows before deploying your application as a web application. You’ll also do some simple image processing and work with computer vision options that will help you build various applications with deep learning. Finally, you will use generative adversarial networks along with reinforcement learning.After reading Deep Learning on Windows, you will be able to design deep learning models and web applications on the Windows operating system.
You will:
- Understand the basics of Deep Learning and its history
- Get Deep Learning tools working on Microsoft Windows
- Understand the internal-workings of Deep Learning models by using model visualization techniques, such as the built-in plot_model function of Keras and third-party visualization tools
- Understand Transfer Learning and how to utilize it to tackle small datasets
- Build robust training scripts to handle long-running training jobs
- Convert your Deep Learning model into a web application
- Generate handwritten digits and human faces with DCGAN (Deep Convolutional Generative Adversarial Network)
- Understand the basics of Reinforcement Learning
About the Author
Thimira Amaratunga is an Inventor, a Senior Software Architect at Pearson PLC Sri Lanka with over 12 years of industry experience, and a researcher in AI, Machine Learning, and Deep Learning in Education and Computer Vision domains.
Thimira holds a Master of Science in Computer Science with a Bachelor's degree in Information Technology from the University of Colombo, Sri Lanka. He has filed three patents to date, in the fields of dynamic neural networks and semantics for online learning platforms. Before this, Thimira has published two books on deep learning – ‘Build Deeper: The Deep Learning Beginners’ Guide’ and ‘Build Deeper: The Path to Deep Learning’.
Thimira is also the author of Codes of Interest (www.codesofinterest.com), a portal for deep learning and computer vision knowledge, covering everything from concepts to step-by-step tutorials.
LinkedIn: www.linkedin.com/in/thimira-amaratunga
Product details
- Publisher : Apress; 1st ed. edition (December 16, 2020)
- Language : English
- Paperback : 356 pages
- ISBN-10 : 1484264304
- ISBN-13 : 978-1484264300
- Item Weight : 1.49 pounds
- Dimensions : 7.01 x 0.84 x 10 inches
- Best Sellers Rank: #6,094,322 in Books (See Top 100 in Books)
- #2,052 in Microsoft C & C++ Windows Programming
- #35,609 in Computer Science (Books)
- #315,396 in Unknown
- Customer Reviews:
About the author

Seasoned Senior Software Architect and innovative inventor with a robust 15-year track record in the technology industry, specializing in AI & Machine Learning within education and computer vision. Holds a Master's degree in Computer Science and a Bachelor's in Information Technology. Renowned for pioneering contributions to the field, having filed three patents in dynamic neural networks and online learning semantics, and authored four books on Deep Learning, Computer Vision, Generative AI, and LLMs.
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