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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Robust multi-view feature matching from multiple unordered views
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Robust multi-view feature matching from multiple unordered views

机译:来自多个无序视图的强大多视图功能匹配

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摘要

This paper explores the problem of multi-view feature matching from an unordered set of widely separated views. A set of local invariant features is extracted independently from each view. First we propose a new view-ordering algorithm that organizes all the unordered views into clusters of related (i.e. the same scene) views by efficiently computing the view-similarity values of all view pairs by reasonably selecting part of extracted features to match. Second a robust two-view matching algorithm is developed to find initial matches, then detect the outliers and finally incrementally find more reliable feature matches under the epipolar constraint between two views from dense to sparse based on an assumption that changes of both motion and feature characteristics of one match are consistent with those of neighbors. Third we establish the reliable multi-view matches across related views by reconstructing missing matches in a neighboring triple of views and efficiently determining the states of matches between view pairs. Finally, the reliable multi-view matches thus obtained are used to automatically track all the views by using a self-calibration method. The proposed methods were tested on several sets of real images. Experimental results show that it is efficient and can track a large set of multi-view feature matches across multiple widely separated views. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:本文从无序的广泛分离的视图集中探索多视图特征匹配的问题。从每个视图独立提取一组局部不变特征。首先,我们提出一种新的视图排序算法,该算法通过合理地选择部分提取的特征进行匹配来有效地计算所有视图对的视图相似性值,从而将所有无序视图组织到相关(即同一场景)视图的群集中。其次,基于运动和特征特性都发生变化的假设,开发了一种鲁棒的两视图匹配算法,以找到初始匹配,然后检测异常值,最后在对极约束下从密集到稀疏地在两个视图之间的对极约束下逐步找到更可靠的特征匹配。一场比赛与邻居的比赛一致。第三,我们通过重构相邻三视图中的缺失匹配并有效确定视图对之间的匹配状态,来建立相关视图之间的可靠多视图匹配。最后,由此获得的可靠的多视图匹配用于通过使用自校准方法自动跟踪所有视图。所提出的方法在几套真实图像上进行了测试。实验结果表明,该方法是有效的,并且可以在广泛分离的多个视图之间跟踪大量的多视图特征匹配。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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