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Simulated annealing using a reversible jump Markov chain Monte Carlo algorithm for fuzzy clustering

机译:使用可逆跳马尔可夫链蒙特卡罗算法进行模拟退火的模糊聚类

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摘要

In this paper, an approach for automatically clustering a data set into a number of fuzzy partitions with a simulated annealing using a reversible jump Markov chain Monte Carlo algorithm is proposed. This is in contrast to the widely used fuzzy clustering scheme, the fuzzy c-means (FCM) algorithm, which requires the a priori knowledge of the number of clusters. The said approach performs the clustering by optimizing a cluster validity index, the Xie-Beni index. It makes use of the homogeneous reversible jump Markov chain Monte Carlo (RJMCMC) kernel as the proposal so that the algorithm is able to jump between different dimensions, i.e., number of clusters, until the correct value is obtained. Different moves, like birth, death, split, merge, and update, are used for sampling a candidate state given the current state. The effectiveness of the proposed technique in optimizing the Xie-Beni index and thereby determining the appropriate clustering is demonstrated for both artificial and real-life data sets. In a part of the investigation, the utility of the fuzzy clustering scheme for classifying pixels in an IRS satellite image of Kolkata is studied. A technique for reducing the computation efforts in the case of satellite image data is incorporated.
机译:本文提出了一种使用可逆跳跃马尔可夫链蒙特卡罗算法通过模拟退火将数据集自动聚类为多个模糊分区的方法。这与广泛使用的模糊聚类方案,即模糊c均值(FCM)算法形成鲜明对比,后者需要先验了解聚类数量。所述方法通过优化聚类有效性指数Xie-Beni指数来执行聚类。它利用均质可逆跳跃马尔可夫链蒙特卡洛(RJMCMC)内核作为建议,以便算法能够在不同维度(即簇数)之间跳跃,直到获得正确的值为止。给定当前状态时,可以使用不同的动作(例如出生,死亡,分裂,合并和更新)来对候选状态进行采样。对于人工和现实数据集,都证明了所建议技术在优化谢贝尼指数从而确定适当聚类中的有效性。在研究的一部分中,研究了模糊聚类方案对加尔各答IRS卫星图像中的像素进行分类的实用性。结合了减少卫星图像数据情况下的计算量的技术。

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