Object Detection and Analysis: a Coherency Filtering Approach - Donovan Parks - 書籍 - VDM Verlag - 9783639013801 - 2008年5月6日
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Object Detection and Analysis: a Coherency Filtering Approach

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発送予定日 年8月7日 - 年8月25日
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Designing a general purpose computer vision system with performance comparable to that of the human vision system is the goal of many researchers. This book introduces a local appearance method, termed coherency filtering, which allows for the robust detection and analysis of rigid objects contained in heterogeneous scenes by properly exploiting the wealth of information returned by a k-nearest neighbours (k-NN) classifier. A significant advantage of k-NN classifiers is their ability to indicate uncertainty in the classification of a local window by returning a list of k candidate classifications. Classification of a local window can be inherently uncertain when considered in isolation since local windows from different objects may be similar in appearance. In order to robustly identify objects in a query image, a process is needed to appropriately resolve this uncertainty. Coherency filtering resolves this uncertainty by imposing constraints across the colour channels of a query image along with spatial constraints between neighbouring local windows in a manner that produces reliable classification of local windows and ultimately results in the robust identification of objects.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2008年5月6日
ISBN13 9783639013801
出版社 VDM Verlag
ページ数 172
寸法 150 × 220 × 10 mm   ·   235 g
言語 英語  

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