Deep Learning Applications

Deep Learning Applications In Computer Vision, Signals and Networks

Hardback (02 Apr 2023)

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Publisher's Synopsis

This book proposes various deep learning models featuring how deep learning algorithms have been applied and used in real-life settings. The complexity of real-world scenarios and constraints imposed by the environment, together with budgetary and resource limitations, have posed great challenges to engineers and developers alike, to come up with solutions to meet these demands. This book presents case studies undertaken by its contributors to overcome these problems. These studies can be used as references for designers when applying deep learning in solving real-world problems in the areas of vision, signals, and networks.The contents of this book are divided into three parts. In the first part, AI vision applications in plant disease diagnostics, PM2.5 concentration estimation, surface defect detection, and ship plate identification, are featured. The second part introduces deep learning applications in signal processing; such as time series classification, broad-learning based signal modulation recognition, and graph neural network (GNN) based modulation recognition. Finally, the last section of the book reports on graph embedding applications and GNN in AI for networks; such as an end-to-end graph embedding method for dispute detection, an autonomous System-GNN architecture to infer the relationship between Apache software, a Ponzi scheme detection framework to identify and detect Ponzi schemes, and a GNN application to predict molecular biological activities.

Book information

ISBN: 9789811266904
Publisher: World Scientific
Imprint: World Scientific Publishing
Pub date:
DEWEY: 006.31
DEWEY edition: 23/eng20221209
Language: English
Number of pages: 308
Weight: 585g
Height: 229mm
Width: 152mm
Spine width: 19mm