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Chain-detection Between Clusters

机译:集群之间的链检测

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Chains connecting two or more different clusters are a well known problem of clustering algorithms like DBSCAN or Single Linkage Clustering. Since already a small number of points resulting from, e. g., noise can form such a chain and build a bridge between different clusters, it can happen that the results of the clustering algorithm are distorted: several disparate clusters get merged into one. This single-link effect is rather known but to the best of our knowledge there are no satisfying solutions which extract those chains, yet. We present a new algorithm detecting not only straight chains between clusters, but also bent and noisy ones. Users are able to choose between eliminating one dimensional and higher dimensional chains connecting clusters to receive the underlying cluster structure. Also, the desired straightness can be set by the user. As this paper is an extension of [8], we apply our technique not only in combination with DBSCAN but also with single link hierarchical clustering. On a real world dataset containing traffic accidents in Great Britain we were able to detect chains emerging from streets between cities and villages, which led to clusters composed of diverse villages. Additionally, we analyzed the robustness regarding the variance of chains in synthetic experiments.
机译:连接两个或多个不同群集的链是群集算法(如DBSCAN或单链接群集)的众所周知的问题。由于已经有少量的点来自,例如例如,噪声会形成这样的链,并在不同群集之间架起一座桥梁,这可能会导致群集算法的结果失真:几个完全不同的群集合并为一个。这种单链接效应是众所周知的,但是据我们所知,还没有令人满意的解决方案来提取这些链接。我们提出了一种新算法,该算法不仅可以检测聚类之间的直链,还可以检测弯曲和嘈杂的聚类。用户可以在消除连接集群以接收底层集群结构的一维链和更高维链之间进行选择。而且,期望的平直度可以由用户设置。由于本文是[8]的扩展,因此我们不仅将技术与DBSCAN相结合,而且还将其与单链路层次聚类相结合。在包含英国交通事故的真实世界数据集上,我们能够检测到城市和村庄之间的街道上出现的链条,从而导致了由不同村庄组成的集群。此外,我们在合成实验中分析了链变化的鲁棒性。

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