Granular Video Computing: With Rough Sets, Deep Learning...

Granular Video Computing: With Rough Sets, Deep Learning And In Iot

Debarati Bhunia Chakraborty, Sankar Kumar Pal
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This volume links the concept of granular computing using deep learning and the Internet of Things to object tracking for video analysis. It describes how uncertainties, involved in the task of video processing, could be handled in rough set theoretic granular computing frameworks. Issues such as object tracking from videos in constrained situations, occlusion/overlapping handling, measuring of the reliability of tracking methods, object recognition and linguistic interpretation in video scenes, and event prediction from videos, are the addressed in this volume. The book also looks at ways to reduce data dependency in the context of unsupervised (without manual interaction/ labeled data/ prior information) training.This book may be used both as a textbook and reference book for graduate students and researchers in computer science, electrical engineering, system science, data science, and information technology, and is recommended for both students and practitioners working in computer vision, machine learning, video analytics, image analytics, artificial intelligence, system design, rough set theory, granular computing, and soft computing.
類別:
年:
2021
出版商:
World Scientific
語言:
english
頁數:
256
ISBN 10:
9811227136
ISBN 13:
9789811227134
文件:
PDF, 52.07 MB
IPFS:
CID , CID Blake2b
english, 2021
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