Sparse and Redundant Representations_From Theory to Applications in Signal and Image Processing

上传者: xuzmb | 上传时间: 2019-12-21 22:06:52 | 文件大小: 14.08MB | 文件类型: pdf
This textbook introduces sparse and redundant representations with a focus on applications in signal and image processing. The theoretical and numerical foundations are tackled before the applications are discussed. Mathematical modeling for signal sources is discussed along with how to use the proper model for tasks such as denoising, restoration, separation, interpolation and extrapolation, compression, sampling, analysis and synthesis, detection, recognition, and more. The presentation is elegant and engaging. Sparse and Redundant Representations is intended for graduate students in applied mathematics and electrical engineering, as well as applied mathematicians, engineers, and researchers who are active in the fields of signal and image processing. * Introduces theoretical and numerical foundations before tackling applications * Discusses how to use the proper model for various situations * Introduces sparse and redundant representations * Focuses on applications in signal and image processing The field of sparse and redundant representation modeling has gone through a major revolution in the past two decades. This started with a series of algorithms for approximating the sparsest solutions of linear systems of equations, later to be followed by surprising theoretical results that guarantee these algorithms’ performance. With these contributions in place, major barriers in making this model practical and applicable were removed, and sparsity and redundancy became central, leading to state-of-the-art results in various disciplines. One of the main beneficiaries of this progress is the field of image processing, where this model has been shown to lead to unprecedented performance in various applications. This book provides a comprehensive view of the topic of sparse and redundant representation modeling, and its use in signal and image processing. It offers a systematic and ordered exposure to the theoretical foundations of this data model, the numerical aspec

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评论信息

  • netysh609760329 :
    经典书籍,不用多介绍,版本清晰,可以作为参考书使用,感谢上传
    2018-08-06
  • yannannfi_fpag :
    上次没有下载成功,想再试一下。
    2018-01-31
  • ccyrichard :
    十分清晰,Elad果真大牛,学习sparse的好资料
    2015-09-11
  • qq_25547871 :
    稀疏编码方面的经典文献,值得学习。
    2015-05-14
  • videoandimage08 :
    书籍清晰度很好,对稀疏表示的学习很有帮助。
    2015-04-21

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