Convex Optimization in Signal Processing and Communications

Convex Optimization in Signal Processing and Communications

Daniel P. Palomar, Yonina C. Eldar
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Over the past two decades there have been significant advances in the field of optimization. In particular, convex optimization has emerged as a powerful signal processing tool, and the variety of applications continues to grow rapidly. This book, written by a team of leading experts, sets out the theoretical underpinnings of the subject and provides tutorials on a wide range of convex optimization applications. Emphasis throughout is on cutting-edge research and on formulating problems in convex form, making this an ideal textbook for advanced graduate courses and a useful self-study guide. Topics covered range from automatic code generation, graphical models, and gradient-based algorithms for signal recovery, to semidefinite programming (SDP) relaxation and radar waveform design via SDP. It also includes blind source separation for image processing, robust broadband beamforming, distributed multi-agent optimization for networked systems, cognitive radio systems via game theory, and the variational inequality approach for Nash equilibrium solutions.
年:
2010
版本:
1
出版商:
Cambridge University Press
語言:
english
頁數:
512
ISBN 10:
0521762227
ISBN 13:
9780521762229
文件:
PDF, 5.06 MB
IPFS:
CID , CID Blake2b
english, 2010
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