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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Generalised correlation for multi-feature correspondence
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Generalised correlation for multi-feature correspondence

机译:多特征对应的广义相关

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摘要

Computing correspondences between pairs of images is fundamental to all structures from motion algorithms, Correlation is a popular method to estimate similarity between patches of images. In the standard formulation, the correlation function uses only one feature such as the gray level values of a small neighbourhood. Research has shown that different features-such as colour, edge strength, corners, texture measures-work better under different conditions. We propose a framework of generalized correlation that can compute a real valued similarity measure using a feature vector whose components can be dissimilar. The framework can combine the effects of different image features, such as multi-spectral features, edges, corners, texture measures, etc., into a single similarity measure in a flexible manner. Additionally, it can combine results of different window sizes used for correlation with proper weighting for each. Relative importances of the features can be estimated from the image itself for accurate correspondence. In this paper, we present the framework of generalised correlation, provide a few examples demonstrating its power, as well as discuss the implementation issues. (C) 2002 Published by Elsevier Science Ltd on behalf of Pattern Recognition Society. [References: 18]
机译:计算图像对之间的对应关系是运动算法中所有结构的基础,相关性是一种流行的估算图像块之间相似度的方法。在标准公式中,相关函数仅使用一个功能,例如小社区的灰度值。研究表明,不同的功能(例如颜色,边缘强度,拐角,纹理度量)在不同条件下效果更好。我们提出了一种广义相关的框架,该框架可以使用分量可能不同的特征向量来计算实值相似性度量。该框架可以灵活地将不同图像特征(例如多光谱特征,边缘,拐角,纹理度量等)的效果组合到单个相似度量中。另外,它可以将用于相关的不同窗口大小的结果与每个窗口的适当加权相结合。可以从图像本身估算出特征的相对重要性,以进行准确的对应。在本文中,我们介绍了广义相关的框架,提供了一些示例来证明其强大功能,并讨论了实现问题。 (C)2002由Elsevier Science Ltd代表模式识别协会出版。 [参考:18]

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