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An Improved Optimization Strategy and Its Application to Clustering Analysis

机译:一种改进的优化策略及其在聚类分析中的应用

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In this paper, a new optimization strategy is put forward which locates as many potential unimodal regions as possible in the search space. The potential optima can be further explored by a global optimization method for searching in the identified unimodal regions. The proposed strategy was evaluated by the optimization of test functions. The results obtained by this approach are comparable with those achieved by variable step size generalized simulated annealing (VSGSA) and a genetic algorithm (GA). Finally, we used this strategy in a clustering analysis of a tobacco data set.
机译:本文提出了一种新的优化策略,可以在搜索空间中定位尽可能多的潜在单峰区域。可以通过全局优化方法在确定的单峰区域中进行搜索来进一步探索潜在的最优方法。通过优化测试功能对提出的策略进行了评估。通过这种方法获得的结果与通过可变步长的广义模拟退火(VSGSA)和遗传算法(GA)获得的结果相当。最后,我们在烟草数据集的聚类分析中使用了该策略。

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