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首页> 外文期刊>IEEE transactions on systems, man, and cybernetics. Part B, Cybernetics >On combining support vector machines and simulated annealing in stereovision matching
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On combining support vector machines and simulated annealing in stereovision matching

机译:在立体视觉匹配中结合支持向量机和模拟退火

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This paper outlines a method for solving the stereovision matching problem using edge segments as the primitives. In stereovision matching, the following constraints are commonly used: epipolar, similarity, smoothness, ordering, and uniqueness. We propose a new strategy in which such constraints are sequentially combined. The goal is to achieve high performance in terms of correct matches by combining several strategies. The contributions of this paper are reflected in the development of a similarity measure through a support vector machines classification approach; the transformation of the smoothness, ordering and epipolar constraints into the form of an energy function, through an optimization simulated annealing approach, whose minimum value corresponds to a good matching solution and by introducing specific conditions to overcome the violation of the smoothness and ordering constraints. The performance of the proposed method is illustrated by comparative analysis against some recent global matching methods.
机译:本文概述了一种以边缘片段为基元来解决立体视觉匹配问题的方法。在立体视觉匹配中,通常使用以下约束:对极,相似性,平滑度,有序性和唯一性。我们提出了一种新的策略,其中这些约束顺序地组合。目标是通过组合多种策略来实现正确匹配方面的高性能。本文的贡献反映在通过支持向量机分类方法开发相似性度量中;通过优化的模拟退火方法将平滑度,有序和对极约束转换为能量函数的形式,其最小值对应于良好的匹配解,并通过引入特定条件来克服对平滑度和有序约束的违反。通过与一些最新的全局匹配方法进行比较分析,说明了该方法的性能。

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