• 顺序算法一种非常直接和快速算法,并且需要提前确定聚类个数

    Sequential algorithm is a straightforward cluster algorithm, and people do not have to provide the number of clusters in advance.

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  • 均值算法聚类个数k指定,聚类结果数据输入顺序相关,而且孤立点影响

    K-means algorithm has some deficiencies. The number K must be pointed and its effectiveness liable to be effected by isolated data and the input sequence of data.

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  • 枚举所有划分方法聚类个数确定会很大程度影响计算结果运行效率

    The result and efficiency of method, in which first clustering and then enumerating all the possible cases, were greatly affected by the number of clusters.

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  • 由于关系数据竞争算法得到优化固定聚类个数,因此能挖掘出优化的模糊关联规则

    The optimal fuzzy association rules can be mined due to the optimal fixed clustering number that can be obtained by the relational competitive agglomeration algorithm.

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  • 通过对系统性能测试,新的自适应索引算法,效果不再受到聚类个数聚类中心点限制

    Based on the performance tests, clustering results will no longer be restricted by the number of clusters and initial center.

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  • 技术通常必须指定一个聚类个数这样给出结果是否合理,是否真正反映了用户群的需要进行聚类有效性验证

    Clustering techniques usually have to assign the number of clusters, but whether the result really reflects the classification of users needs verification on the validity of cluster.

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  • 聚类一种据库分成不同群组,使之间差别明显,而同一个群之间的数据尽量相似的算法

    Cluster is an algorithm, which can divide the data in the database into different groups, and there are obvious distinctions among groups.

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  • 实验表明EPFCM算法可以有效地得到最佳中心个数结果不受初始中心影响,并且陷入局部极小概率较FCM算法大大降低

    Experiments show that EPFCM algorithm can gain best cluster centers and optimal cluster structures, and the probability of falling into local minima is greatly reduced.

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  • 最后研究讨论正确率集成规模、簇个数之间关系。

    Finally, we also study and discussion the relationship between accuracy and ensemble size, the number of clusters, respectively.

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  • 实验证明算法有效解决调和K均值算法中簇个数事先给定聚类算法容易陷入局部问题

    The result of experiment indicate that the new algorithm efficiently resolves the problems of KHM algorithm that the count of clusters need decide prior and it well reach local optimum result.

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  • 目的探讨常见条件系统的性质,选择一到两个适于二有序样品聚类的样品个数比较均匀的条件系统聚类法。

    Objective Six familiar conditional hierarchical clustering methods were discussed, and some methods of 2-dimensional ordinal sample were selected which results were relative even.

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  • 目的探讨常见条件系统的性质,选择一到两个适于二有序样品聚类的样品个数比较均匀的条件系统聚类法。

    Objective Six familiar conditional hierarchical clustering methods were discussed, and some methods of 2-dimensional ordinal sample were selected which results were relative even.

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