• 介绍一种聚类大型二元数据集合快速算法,在该数据集合中数据高维的,并且大多数的坐标值零。

    This paper introduces a fast algorithm to cluster large binary data sets where data points have high dimensionality and most of their coordinates are zero.

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  • 公开数据人工数据集上的实验结果表明DP算法快速高效找到接近真实中心的数据点作为初始聚类中心。

    Experiments on both public and real datasets show that DP is helpful to find cluster centers near to real centers quickly and effectively.

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  • 顺序算法一种非常直接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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  • 针对聚类算法中心点问题,提出了相应层次编码型数据快速处理算法从理论上证明算法的正确性。

    The paper also proposes a fast algorithm to compute the median of a hierarchy coding data set, and gives a clear proof of the algorithm.

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  • 提出基于均匀网格适应密度快速聚类算法

    A fast clustering algorithm with adaptive density based on homogeneous grid is proposed.

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  • 设计了基于加权快速聚类异常数据挖掘算法以便快速发现异常数据。

    This article promoted outlier data mining algorithms based on weighted fast clustering to inspect and deal with outlier data effectively.

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  • 算法提出简洁快速初始中心选取规则从而使获得的聚类结果为全局最优。

    The new algorithm can obtain global optimal solutions through a new simple and efficient select rule of the initial cluster centers.

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  • 分别采用模糊c -均值方法快速全局C -均值聚类两种算法实现化工建模所需训练数据有效提取。

    In order to getting the effective training data of chemical engineering modeling, two algorithms that fuzzy C-means and fast global fuzzy C-means clustering were used.

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  • DBSCAN一种基于密度空间算法,在处理空间数据时具有快速有效处理噪声发现任意形状聚类等优点。

    DBSCAN is a density based clustering algorithm that can efficiently discover clusters of arbitrary shape and can effectively handle noise.

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  • 提出了一种在的拓扑序列上进行概念快速算法,并且定义了概念聚类间基于偏序的层次关系。

    Next, a fast fuzzy conceptual clustering algorithm is proposed to cluster the fuzzy concept lattice into conceptual clusters.

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  • 接下来快速模糊概念聚类算法提出集群模糊概念概念集群

    Next, a fast fuzzy conceptual clustering algorithm is proposed to cluster the fuzzy concept lattice into conceptual clusters.

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  • 实践证明,算法快速有效地样本进行聚类特别适用于含有噪声样本环境

    It's proved that this algorithm can cluster the samples fast and efficiently, and adapts to the environment

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  • 目前多数算法不能很好适应文本聚类快速适应需求

    Most clustering algorithms can not meet the demand of speed and self-adapting about text clustering.

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  • 实验结果表明算法快速有效地识别任意形状不同大小和密度聚类边界

    Experimental results show that the algorithm can identify boundary points in noisy datasets containing clustering of different shapes and sizes effectively and efficiently.

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  • 算法通过闭合运算,空间对象完成空间聚类,可以快速处理的、复杂聚类形状。

    This algorithm could not only complete 3d spatial clustering at a time, and process clustering in-convex and complicated objects rapidly.

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  • 算法通过闭合运算,空间对象完成空间聚类,可以快速处理的、复杂聚类形状。

    This algorithm could not only complete 3d spatial clustering at a time, and process clustering in-convex and complicated objects rapidly.

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