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Random Binary Local Patch Clustering Transforms Based Image Matching for Nonlinear Intensity Changes

机译:基于随机二进制局部补丁聚类变换的非线性强度变化图像匹配

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This paper presents a new feature descriptor that is suitable for image matching under nonlinear intensity changes. The proposed approach consists of the following three steps. First, a binary local patch clustering transform response is employed as the transform space. The value of the new space exhibits a high similarity after changes in intensity. Then, a random binary pattern coding method extracts raw feature histograms from the new space. Finally, the discrimination of the proposed feature descriptor is enhanced by using a multiple spatial support region-based binning method. Experimental results show that the proposed method is able to provide a more robust image matching performance under nonlinear intensity changes.
机译:本文提出了一种新的特征描述符,适用于非线性强度变化下的图像匹配。提议的方法包括以下三个步骤。首先,将二进制局部补丁聚类转换响应用作转换空间。强度变化后,新空间的值显示出很高的相似性。然后,随机二进制模式编码方法从新空间中提取原始特征直方图。最后,通过使用基于多空间支持区域的合并方法来增强对所提出的特征描述符的辨别力。实验结果表明,该方法能够在非线性强度变化下提供更鲁棒的图像匹配性能。

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