A Model Based Framework for Object Detection Via Data Transformation - Prabir Bhattacharya - 書籍 - LAP LAMBERT Academic Publishing - 9783659494574 - 2013年12月12日
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A Model Based Framework for Object Detection Via Data Transformation

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Kč 817
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発送予定日 年12月16日 - 年12月26日
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The dynamic synthesis of nonlinear feature functions is a challenging problem in object detection. This book presents a combinatorial approach of genetic programming and the expectation maximization algorithm (GP-EM) to synthesize nonlinear feature functions automatically for the purpose of object detection. The EM algorithm investigates the use of Gaussian mixture which is able to model the behaviour of the training samples during an optimal GP search strategy. Based on the Gaussian probability assumption, the GP-EM method is capable of performing simultaneously dynamic feature synthesis and model-based generalization. The EM part of the approach leads to the application of the maximum likelihood (ML) operation which provides protection against inter-cluster data separation and thus exhibits improved convergence. The experimental results show that the approach improves the detection accuracy and efficiency of pattern object discovery, as compared to some state-of-the-art methods for object detection existing in the literature.

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 2013年12月12日
ISBN13 9783659494574
出版社 LAP LAMBERT Academic Publishing
ページ数 64
寸法 150 × 4 × 225 mm   ·   113 g
言語 ドイツ語  

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