Convolutional Neural Network Accelerators

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Convolutional Neural Network Accelerators

From Basic Design Principles to Advanced Security Applications

Cybernetics and systems theory Electronics engineering Electronics: circuits and components Embedded systems

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Collection: Engineering

Language: English

Published by: Springer

Published on: 5th April 2026

Format: LCP-protected ePub

ISBN: 9783032085146


Overview

This book provides comprehensive coverage of the state-of-the-art in Convolutional Neural Network (CNN) hardware accelerator design, security, and its applications in hardware security.

Part 1: CNN Architectures and Emulation

The first part gives a foundational understanding of CNN architectures, emphasizing their computational demands and the necessity for specialized hardware solutions. It also proposes an emulation method with open-source code to mimic CNN hardware accelerator behavior.

Part 2: Security Applications of CNN Models

The second part presents security applications of CNN models, featuring a case study in Network-on-Chip security. It covers threat modeling, countermeasures, and the use of alternative machine learning models to CNNs.

Part 3: Security Threats and Robustness

The third part explains security threats throughout the AI model production lifecycle, including software vulnerabilities and hardware risks, and explores techniques to enhance the robustness of CNN hardware accelerators, focusing on preventing hardware Trojan and backdoor attacks and analyzing the vulnerability levels of different CNN layers.

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