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Efficient Techniques for a Very Accurate Measurement of Dissimilarities between Cyclic Patterns

机译:精确测量循环模式之间差异的有效技术

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摘要

Two efficient approximate techniques for measuring dissimilarities between cyclic patterns are presented. They are inspired on the quadratic time algorithm proposed by Bunke and Buehler. The first technique completes pseudoalignments built by the Bunke and Buehler algorithm (BBA), obtaining full alignments between cyclic patterns. The edit cost of the minimum-cost alignment is given as an upper-bound estimation of the exact cyclic edit distance, which results in a more accurate bound than the lower one obtained by BBA. The second technique uses both bounds to compute a weighted average, achieving even more accurate solutions. Weights come from minimizing the sum of squared relative errors with respect to exact distance values on a training set of string pairs. Experiments were conducted on both artificial and real data, to demonstrate the capabilities of new techniques in both accurateness and quadratic computing time.
机译:提出了两种有效的近似技术,用于测量循环模式之间的差异。他们的灵感来自Bunke和Buehler提出的二次时间算法。第一种技术完成了由Bunke and Buehler算法(BBA)建立的伪对齐方式,获得了循环模式之间的完全对齐方式。最小成本对齐的编辑成本是对精确循环编辑距离的上限估计,与BBA所获得的下界相比,它的边界更准确。第二种技术使用两个边界来计算加权平均值,从而获得更准确的解决方案。权重来自于相对于一组训练对的精确距离值的相对误差平方和的最小值。对人造和真实数据进行了实验,以证明新技术在准确性和二次计算时间上的功能。

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