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This book serves as a single-source reference to key machine
learning (ML) applications and methods in digital and analog design
and verification. Experts from academia and industry cover a wide
range of the latest research on ML applications in electronic
design automation (EDA), including analysis and optimization of
digital design, analysis and optimization of analog design, as well
as functional verification, FPGA and system level designs, design
for manufacturing (DFM), and design space exploration. The authors
also cover key ML methods such as classical ML, deep learning
models such as convolutional neural networks (CNNs), graph neural
networks (GNNs), generative adversarial networks (GANs) and
optimization methods such as reinforcement learning (RL) and
Bayesian optimization (BO). All of these topics are valuable to
chip designers and EDA developers and researchers working in
digital and analog designs and verification.
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