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Compressed Sensing
Theory and Applications

$108.00 (P)

Mark A. Davenport, Marco F. Duarte, Yonina C. Eldar, Gitta Kutyniok, Alexey Castrodad, Ignacio Ramirez, Guillermo Sapiro, Pablo Sprechmann, Guoshen Yu, Moshe Mishali, Jose Antonia Uriguen, Pier Luigi Dragotta, Zvika Ben-Haim, Roman Vershynin, Jarvis Haupt, Robert Nowak, Weiyu Xu, Babak Hassibi, Thomas Blumensath, Michael E. Davies, Gabriel Rilling, Andrea Montanari, Robert Calderbank, Sina Jafarpour, Jeremy Kent, Gitta Kutyniok, Arvind Ganesh, Andrew Wagner, Zihan Zhou, Allen Y. Yang, Yi Ma, John Wright
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  • Date Published: June 2012
  • availability: Available
  • format: Hardback
  • isbn: 9781107005587
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About the Authors
  • Compressed sensing is an exciting, rapidly growing field, attracting considerable attention in electrical engineering, applied mathematics, statistics and computer science. This book provides the first detailed introduction to the subject, highlighting recent theoretical advances and a range of applications, as well as outlining numerous remaining research challenges. After a thorough review of the basic theory, many cutting-edge techniques are presented, including advanced signal modeling, sub-Nyquist sampling of analog signals, non-asymptotic analysis of random matrices, adaptive sensing, greedy algorithms and use of graphical models. All chapters are written by leading researchers in the field, and consistent style and notation are utilized throughout. Key background information and clear definitions make this an ideal resource for researchers, graduate students and practitioners wanting to join this exciting research area. It can also serve as a supplementary textbook for courses on computer vision, coding theory, signal processing, image processing and algorithms for efficient data processing.

    Reviews & endorsements

    "It looks like a charming encouragement to fascinating scientific adventure for talented students. Also, the book provides a solid reference platform for researchers in many fields..." - Artur Przelaskowski, IEEE Communications Magazine, April 2013

    Customer reviews

    08th Sep 2013 by Bh667770

    This is really a good book for those who are new in compressed sensing area and it is also a useful tool for who work on digital signal processing!!

    Review was not posted due to profanity

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    Product details

    • Date Published: June 2012
    • format: Hardback
    • isbn: 9781107005587
    • length: 558 pages
    • dimensions: 249 x 175 x 30 mm
    • weight: 1.22kg
    • contains: 128 b/w illus. 9 tables
    • availability: Available
  • Table of Contents

    1. Introduction to compressed sensing Mark A. Davenport, Marco F. Duarte, Yonina C. Eldar and Gitta Kutyniok
    2. Second generation sparse modeling: structured and collaborative signal analysis Alexey Castrodad, Ignacio Ramirez, Guillermo Sapiro, Pablo Sprechmann and Guoshen Yu
    3. Xampling: compressed sensing of analog signals Moshe Mishali and Yonina C. Eldar
    4. Sampling at the rate of innovation: theory and applications Jose Antonia Uriguen, Yonina C. Eldar, Pier Luigi Dragotta and Zvika Ben-Haim
    5. Introduction to the non-asymptotic analysis of random matrices Roman Vershynin
    6. Adaptive sensing for sparse recovery Jarvis Haupt and Robert Nowak
    7. Fundamental thresholds in compressed sensing: a high-dimensional geometry approach Weiyu Xu and Babak Hassibi
    8. Greedy algorithms for compressed sensing Thomas Blumensath, Michael E. Davies and Gabriel Rilling
    9. Graphical models concepts in compressed sensing Andrea Montanari
    10. Finding needles in compressed haystacks Robert Calderbank, Sina Jafarpour and Jeremy Kent
    11. Data separation by sparse representations Gitta Kutyniok
    12. Face recognition by sparse representation Arvind Ganesh, Andrew Wagner, Zihan Zhou, Allen Y. Yang, Yi Ma and John Wright.

  • Editors

    Yonina C. Eldar, Technion - Israel Institute of Technology, Haifa
    Yonina C. Eldar is a Professor in the Department of Electrical Engineering at the Technion, Israel Institute of Technology, a Research Affiliate with the Research Laboratory of Electronics at the Massachusetts Institute of Technology, and a Visiting Professor at Stanford University, California. She has received numerous awards for excellence in research and teaching, including the Wolf Foundation Krill Prize for Excellence in Scientific Research, the Hershel Rich Innovation Award, the Weizmann Prize for Exact Sciences, the Michael Bruno Memorial Award from the Rothschild Foundation, and the Muriel and David Jacknow Award for Excellence in Teaching. She is an Associate Editor for several journals in the areas of signal processing and mathematics and a Signal Processing Society Distinguished Lecturer.

    Gitta Kutyniok, Technische Universität Berlin
    Gitta Kutyniok is an Einstein Professor in the Department of Mathematics at the Technische Universität Berlin, Germany. She has been a Postdoctoral Fellow at Princeton University, New Jersey, Stanford University, California, and Yale University, Connecticut, and a Full Professor at the Universität Osnabrück, Germany. Her research and teaching has been recognized by various awards, including a Heisenberg Fellowship and the von Kaven Prize by the German Research Foundation, an Einstein Chair by the Einstein Foundation in Berlin, awards by the Universität Paderborn and the Justus-Liebig Universität Giessen for Excellence Research, as well as the Weierstraß Prize for Outstanding Teaching. She is an Associate Editor and also Corresponding Editor for several journals in the areas of applied mathematics.

    Contributors

    Mark A. Davenport, Marco F. Duarte, Yonina C. Eldar, Gitta Kutyniok, Alexey Castrodad, Ignacio Ramirez, Guillermo Sapiro, Pablo Sprechmann, Guoshen Yu, Moshe Mishali, Jose Antonia Uriguen, Pier Luigi Dragotta, Zvika Ben-Haim, Roman Vershynin, Jarvis Haupt, Robert Nowak, Weiyu Xu, Babak Hassibi, Thomas Blumensath, Michael E. Davies, Gabriel Rilling, Andrea Montanari, Robert Calderbank, Sina Jafarpour, Jeremy Kent, Gitta Kutyniok, Arvind Ganesh, Andrew Wagner, Zihan Zhou, Allen Y. Yang, Yi Ma, John Wright

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