Unsupervised Adaptive Filtering Volume 2: Blind Deconvolution
暫譯: 無監督自適應濾波 第2卷:盲去卷積

Simon Haykin

  • 出版商: Wiley
  • 出版日期: 2000-04-06
  • 售價: $1,050
  • 貴賓價: 9.8$1,029
  • 語言: 英文
  • 頁數: 200
  • 裝訂: Hardcover
  • ISBN: 0471379417
  • ISBN-13: 9780471379416
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商品描述

A complete, one-stop reference on the state of the art of unsupervised adaptive filtering

While unsupervised adaptive filtering has its roots in the 1960s, more recent advances in signal processing, information theory, imaging, and remote sensing have made this a hot area for research in several diverse fields. This book brings together cutting-edge information previously available only in disparate papers and articles, presenting a thorough and integrated treatment of the two major classes of algorithms used in the field, namely, blind signal separation and blind channel equalization algorithms.

Divided into two volumes for ease of presentation, this important work shows how these algorithms, although developed independently, are closely related foundations of unsupervised adaptive filtering. Through contributions by the foremost experts on the subject, the book provides an up-to-date account of research findings, explains the underlying theory, and discusses potential applications in diverse fields. More than 100 illustrations as well as case studies, appendices, and references further enhance this excellent resource. Following coverage begun in Volume I: Blind Source Separation, this volume discusses:
* The core of FSE-CMA behavior theory
* Relationships between blind deconvolution and blind source separation
* Blind separation of independent sources based on multiuser kurtosis optimization criteria

商品描述(中文翻譯)

一部完整的一站式參考書,涵蓋無監督自適應濾波的最新技術

雖然無監督自適應濾波的根源可以追溯到1960年代,但最近在信號處理、信息理論、成像和遙感等領域的進展,使其成為多個不同領域研究的熱門領域。本書匯集了之前僅在各種論文和文章中可獲得的前沿信息,全面而綜合地介紹了該領域中使用的兩大類算法,即盲信號分離和盲通道均衡算法。

本書分為兩卷以便於呈現,這部重要的著作展示了這些算法雖然是獨立開發的,但卻是無監督自適應濾波的密切相關基礎。通過該領域頂尖專家的貢獻,本書提供了最新的研究成果,解釋了其背後的理論,並討論了在不同領域的潛在應用。超過100幅插圖以及案例研究、附錄和參考文獻進一步增強了這一優秀資源。在第一卷《盲源分離》中開始的內容之後,本卷討論了:
* FSE-CMA行為理論的核心
* 盲去卷積與盲源分離之間的關係
* 基於多用戶峰度優化標準的獨立源的盲分離