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A Method for Estimating View Transformations from Image Correspondences Based on the Harmony Search Algorithm

机译:基于和声搜索算法的图像对应估计视图变换方法

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摘要

In this paper, a new method for robustly estimating multiple view relations from point correspondences is presented. The approach combines the popular random sampling consensus (RANSAC) algorithm and the evolutionary method harmony search (HS). With this combination, the proposed method adopts a different sampling strategy than RANSAC to generate putative solutions. Under the new mechanism, at each iteration, new candidate solutions are built taking into account the quality of the models generated by previous candidate solutions, rather than purely random as it is the case of RANSAC. The rules for the generation of candidate solutions (samples) are motivated by the improvisation process that occurs when a musician searches for a better state of harmony. As a result, the proposed approach can substantially reduce the number of iterations still preserving the robust capabilities of RANSAC. The method is generic and its use is illustrated by the estimation of homographies, considering synthetic and real images. Additionally, in order to demonstrate the performance of the proposed approach within a real engineering application, it is employed to solve the problem of position estimation in a humanoid robot. Experimental results validate the efficiency of the proposed method in terms of accuracy, speed, and robustness.
机译:本文提出了一种从点对应关系中稳健估计多个视图关系的新方法。该方法结合了流行的随机抽样共识(RANSAC)算法和进化方法和声搜索(HS)。通过这种组合,所提出的方法采用与RANSAC不同的采样策略来生成推定的解决方案。在新机制下,每次迭代都将考虑先前候选解决方案生成的模型的质量,构建新的候选解决方案,而不是像RANSAC那样纯粹是随机的。临时解决方案(样本)的生成规则是由当音乐家寻求更好的和声状态时即兴进行的。结果,所提出的方法可以大大减少迭代次数,仍然保留RANSAC的强大功能。该方法是通用的,并考虑了合成图像和真实图像,通过估计单应性来说明其用法。另外,为了在实际工程应用中证明所提出方法的性能,它被用来解决人形机器人中位置估计的问题。实验结果从准确性,速度和鲁棒性方面验证了该方法的有效性。

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