Computer vision is a scientific field that enables machines to identify and process digital images and videos. This book focuses on independent recipes to help you perform various computer vision tasks using Tensor Flow.
The book begins by taking you through the basics of deep learning for computer vision, along with covering Tensor Flow 2.x’s key features, such as the Keras and tf.data.Dataset APIs. You’ll then learn about the ins and outs of common computer vision tasks, such as image classification, transfer learning, image enhancing and styling, and object detection. The book also covers autoencoders in domains such as inverse image search indexes and image denoising, while offering insights into various architectures used in the recipes, such as convolutional neural networks (CNNs), region-based CNNs (R-CNNs), VGGNet, and You Only Look Once (YOLO).
Moving on, you’ll discover tips and tricks to solve any problems faced while building various computer vision applications. Finally, you’ll delve into more advanced topics such as Generative Adversarial Networks (GANs), video processing, and Auto ML, concluding with a section focused on techniques to help you boost the performance of your networks.
By the end of this Tensor Flow book, you’ll be able to confidently tackle a wide range of computer vision problems using Tensor Flow 2.x.
Jesús Martínez
TensorFlow 2.0 Computer Vision Cookbook [EPUB ebook]
Implement machine learning solutions to overcome various computer vision challenges
TensorFlow 2.0 Computer Vision Cookbook [EPUB ebook]
Implement machine learning solutions to overcome various computer vision challenges
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Limba Engleză ● Format EPUB ● Pagini 542 ● ISBN 9781838820688 ● Mărime fișier 8.5 MB ● Editura Packt Publishing ● Oraș San Antonio ● Țară US ● Publicat 2021 ● Descărcabil 24 luni ● Valută EUR ● ID 7743116 ● Protecție împotriva copiilor fără