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A new robust circular Gabor based object matching by using weighted Hausdorff distance

机译:基于加权Hausdorff距离的新型鲁棒圆形Gabor物体匹配

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This paper describes a new and efficient circular Gabor filter-based method for object matching by using a version of weighted modified Hausdorff distance. An improved Gabor odd filter-based edge detector is performed to get edge maps. A rotation invariant circular Gabor-based filter, which is different from conventional Gabor filter, is used to extract rotation invariant features. The Hausdorff distance (HD) has been shown an effective measure for determining the degree of resemblance between binary images. A version of weighted modified Hausdorff distance (WMHD) in the circular Gabor feature space is introduced to determine which position can be possible object model location, which we call 'coarse' location, and at the same time we get correspondence pairs of edge pixels for both object model and input test image. Then we introduce the geometric shape information derived from the above correspondence pairs of edge pixels to find the 'fine' location. The experimental results given in this paper show the proposed algorithm is robust to rotation, scale, occlusion, and noise etc.
机译:本文介绍了一种新的高效的基于圆形Gabor滤波器的对象匹配方法,该方法使用版本的加权修正Hausdorff距离进行对象匹配。执行改进的基于Gabor奇数滤波器的边缘检测器以获得边缘图。与传统的Gabor滤波器不同,基于旋转不变的基于圆形Gabor的滤波器用于提取旋转不变特征。已经证明Hausdorff距离(HD)是确定二值图像之间相似度的有效方法。引入了一个圆形Gabor特征空间中的加权修改的Hausdorff距离(WMHD)版本,以确定可能的对象模型位置(我们称为“粗略”位置)可能是什么,同时我们获得了对应的边缘像素对对象模型和输入测试图像。然后,我们介绍从上述边缘像素对应对获得的几何形状信息,以找到“精细”位置。本文给出的实验结果表明,该算法对旋转,缩放,遮挡和噪声等具有鲁棒性。

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