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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Robust hypothesis verification: application to model-based object recognition
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Robust hypothesis verification: application to model-based object recognition

机译:可靠的假设验证:在基于模型的对象识别中的应用

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摘要

The use of hypothesis verification is recurrent in the model based recognition literature. Small sets of features forming salient groups are paired with model features. Pose can be hypothesised from this small set of correspondences. Verification of the pose consists in measuring how much model features transformed by the computed pose coincide with image features. When data involved in the initial pairing are noisy the pose is inaccurate and verification is a difficult problem. In this paper we propose to use a robust hypothesis verification algorithm to perform object recognition. We explain how to integrate it in two different recognition schemes (2D and 3D recognition). After describing these applications we present numerous experimental results proving the robustness and the efficiency of these algorithms.
机译:在基于模型的识别文献中经常使用假设验证。形成显着组的少量特征与模型特征配对。可以从这小部分对应关系中假设姿势。姿势验证包括测量通过计算出的姿势变换的多少模型特征与图像特征相符。当初始配对中涉及的数据嘈杂时,姿势将不准确,并且验证是一个困难的问题。在本文中,我们建议使用鲁棒的假设验证算法来执行对象识别。我们将说明如何将其集成到两种不同的识别方案(2D和3D识别)中。在描述了这些应用之后,我们提供了众多实验结果,证明了这些算法的鲁棒性和效率。

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