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首页> 外文期刊>International Journal of Information Technology & Decision Making >MULTISCALE COMPARISON AND CLUSTERING OF THREE-DIMENSIONAL TRAJECTORIES BASED ON CURVATURE MAXIMA
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MULTISCALE COMPARISON AND CLUSTERING OF THREE-DIMENSIONAL TRAJECTORIES BASED ON CURVATURE MAXIMA

机译:基于曲率最大值的三维轨迹的多尺度比较与聚类

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This paper presents a multiscale comparison method for three-dimensional trajectories. In order to deal with the problem that zero-crossings of curvature cannot be determined for space curve, we utilize the maxima of curvature. The method first traces the positions of curvature maxima across scales for recognizing the hierarchy of partial trajectories. Then it performs cross-scale matching of partial trajectories derived from two input trajectories, and obtains the structurally best matches. Finally, it calculates the value-based dissimilarity for each pair of the matched partial trajectories and output as the final dissimilarity between trajectories that can be further used for clustering or classification tasks. In experiments on the UCI character trajectory dataset we demonstrate that reasonable correspondences were captured successfully and the derived dissimilarity yielded good clustering results comparable to DTW. We also demonstrate using real medical data that the method could generate interesting clusters that might reflect distribution of fibrotic stages.
机译:本文提出了三维轨迹的多尺度比较方法。为了解决空间曲线无法确定曲率过零的问题,我们利用曲率的最大值。该方法首先跨刻度跟踪曲率最大值的位置,以识别部分轨迹的层次结构。然后,它执行从两个输入轨迹派生的部分轨迹的跨尺度匹配,并获得结构上最佳的匹配。最后,它为每对匹配的部分轨迹计算基于值的差异,并输出为轨迹之间的最终差异,这些最终差异可进一步用于聚类或分类任务。在UCI字符轨迹数据集上的实验中,我们证明成功地捕获了合理的对应关系,并且得出的不相似性产生了与DTW相当的良好聚类结果。我们还演示了使用实际医学数据可以证明该方法可以生成有趣的簇,这些簇可能反映纤维化阶段的分布。

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