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Optimization design of genetic algorithm in particle image velocimetry

机译:粒子图像测速中遗传算法的优化设计

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Based on the modified genetic algorithm (GA), an improved disparity extraction method for three-dimensional (3-D) particle image velocimetry (PIV) is presented in this paper. Disparity is aligned to 1-D data array and encoded. The matching method, such as the sum of square difference (SSD) method and the sum of absolute difference (SAD) method, is employed to evaluate the results. Firstly, the crossover and mutation methods are used not only in chromosome but also inside every gene of a chromsome. Secondly, in order to reduce errors, the uniqueness is detected based on iterative algorithm. At last, synthetic particle images are tested and the results are analyzed. The experimental results show that the proposed method is suitable for stereo matching of 3-D particle images.
机译:基于改进遗传算法(GA),提出了一种改进的三维(3-D)粒子图像测速(PIV)视差提取方法。视差与一维数据数组对齐并进行了编码。采用诸如方差之和(SSD)方法和绝对差之和(SAD)方法之类的匹配方法来评估结果。首先,交叉和突变方法不仅用于染色体中,而且用于染色体的每个基因中。其次,为了减少错误,基于迭代算法检测唯一性。最后,对合成粒子图像进行测试并分析结果。实验结果表明,该方法适用于3D粒子图像的立体匹配。

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