Wireless Communication Using Deep Learning Techniques for Neuromorphic VLSI Computing

Language: English

Published by Springer, Springer Nature Switzerland Jan 2025, 2025

3031737997 / 9783031737992

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Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermanyBuchWeltWeit Ludwig Meier e.K.

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This item is printed on demand - it takes 3-4 days longer - Neuware -This book describes Deep Learning-based architecture design for intelligent wireless communication systems and specifically for Deep Learning-based receiver design. Deep Learning-based architecture design utilizes Deep Learning (DL) techniques to reformulate the traditional block-based wireless communication architecture. Deep Learning-based algorithm design utilizes Deep Learning methods to speed up the processing at a guaranteed high accuracy performance. Automatic signal modulation classification in AI-based wireless communication can be done using deep learning techniques to improve dynamic spectrum allocation. Automatic signal modulation recognition in wireless communication is described using Deep Learning techniques to improve resource shortage and spectrum utilization efficiency. Moreover, using deep learning neural network circuit methods and doing parallel computations on hardware can reduce costs. Spiking neural network (SNN) provides a promising solution for low-power hardware for neuromorphic computing. Spiking Neural Networks circuit functions with a pre-trained network's weights consume less power. Spiking neural network is more promising than other neural networks that can pave a new way for low-power computing applications. Analog VLSI is utilized to design spiking neural networks circuits such as silicon synapse and CMOS neuron. 116 pp. Englisch.

Seller Inventory # 9783031737992

Title
Wireless Communication Using Deep Learning Techniques for Neuromorphic VLSI Computing
Author
Ziad El-Khatib
Publisher
Springer, Springer Nature Switzerland Jan 2025
Publication year
2025
Condition
Neu
Binding
Buch
Language
English
ISBN 10
3031737997
ISBN 13
9783031737992
Item weight
406 grams
Dimensions
246x173x12 mm

BuchWeltWeit Ludwig Meier e.K.

Bergisch Gladbach, Germany

5-star seller

AbeBooks seller since January 11, 2012

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BuchWeltWeit Ludwig Meier e.K.

Germany