Clique descriptor of affine invariant regions for robust wide baseline image matching

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摘要

Assuming that the image distortion between corresponding regions of a stereo pair of images with wide baseline can be approximated as an affine transformation if the regions are reasonably small, recent image matching algorithms have focused on affine invariant region (IR) detection and its description to increase the robustness in matching. However, the distinctiveness of an intensity-based region descriptor tends to deteriorate when an image includes homogeneous texture or repetitive pattern. To address this problem, we investigated the geometry of a local IR cluster (also called a clique) and propose a new clique-based image matching method. In the proposed method, the clique of an IR is estimated by Delaunay triangulation in a local affine frame and the Hausdorff distance is adopted for matching an inexact number of multiple descriptor vectors. We also introduce two adaptively weighted clique distances, where the neighbour distance in a clique is appropriately weighted according to characteristics of the local feature distribution. Experimental results show the clique-based matching method produces more tentative correspondences than variants of the SIFT-based method.

论文关键词:MSER,SIFT,Affine invariant feature,Wide baseline matching,Hausdorff distance

论文评审过程:Received 15 March 2009, Revised 9 April 2010, Accepted 14 April 2010, Available online 18 April 2010.

论文官网地址:https://doi.org/10.1016/j.patcog.2010.04.010