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Deep Learning In Computer Vision Principles And Applications First Edition Mahmoud Hassaballah

  • SKU: BELL-10846438
Deep Learning In Computer Vision Principles And Applications First Edition Mahmoud Hassaballah
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Deep Learning In Computer Vision Principles And Applications First Edition Mahmoud Hassaballah instant download after payment.

Publisher: CRC Press
File Extension: PDF
File size: 2.6 MB
Pages: 338
Author: Mahmoud Hassaballah, Ali Ismail Awad
ISBN: 9781138544420, 9781351003827, 1138544426, 1351003828
Language: English
Year: 2020
Edition: First edition.

Product desciption

Deep Learning In Computer Vision Principles And Applications First Edition Mahmoud Hassaballah by Mahmoud Hassaballah, Ali Ismail Awad 9781138544420, 9781351003827, 1138544426, 1351003828 instant download after payment.

Deep learning algorithms have brought a revolution to the computer vision community by introducing non-traditional and efficient solutions to several image-related problems that had long remained unsolved or partially addressed. This book presents a collection of eleven chapters where each individual chapter explains the deep learning principles of a specific topic, introduces reviews of up-to-date techniques, and presents research findings to the computer vision community. The book covers a broad scope of topics in deep learning concepts and applications such as accelerating the convolutional neural network inference on field-programmable gate arrays, fire detection in surveillance applications, face recognition, action and activity recognition, semantic segmentation for autonomous driving, aerial imagery registration, robot vision, tumor detection, and skin lesion segmentation as well as skin melanoma classification. The content of this book has been organized such that each chapter can be read independently from the others. The book is a valuable companion for researchers, for postgraduate and possibly senior undergraduate students who are taking an advanced course in related topics, and for those who are interested in deep learning with applications in computer vision, image processing, and pattern recognition.

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