• K-means algorithm is a classical clustering algorithm.

    平均算法经典聚类算法。

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  • This directory contains code implementing the K-means algorithm.

    这个目录包含了K - means算法代码实现

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  • The fuzzy c-means algorithm (FCM) is one of widely used clustering algorithms.

    模糊c均值算法(FCM)经常使用聚类算法之一。

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  • The C-means algorithm is treated as a new search operator in order to improve the convergence speed.

    算法还集成了C -均值搜索算子,用于加快收敛速度。

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  • A clustering algorithm for Chinese documents based on the spherical fuzzy c-means algorithm is presented.

    提出一种基于球形模糊c -均值算法中文文本聚类方法

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  • For increasing classifiers classification rate, We make use of the fuzzy theories to K-means algorithm again.

    基于K -均值算法模糊分类器具有很好的分类效果,它可以很准确的对训练样本进行分类。

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  • Traditional K-Means algorithm is sensitive to the initial centers and easy to get stuck at locally optimal value.

    传统K均值算法初始聚类中心敏感,聚类结果不同的初始输入波动,容易陷入局部最优值。

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  • Researched the unsupervised anomaly detection methods based on clustering analysis, improved the K-means algorithm.

    研究了基于分析非监督式异常检测方法并改进K均值算法用于聚类分析。

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  • Without considering the spatial information of images, the original fuzzy C-means algorithm is very sensitive to image noise.

    由于原始模糊c -均值聚类算法没有考虑图像空间信息,算法图像中的噪音点十分敏感

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  • Mahout provides driver programs for all of the clustering algorithms, including the k-Means algorithm, aptly named the KMeansDriver.

    Mahout所有集群算法提供了驱动程序包括k - Means算法,更合适的名称应该是KMeansDriver。

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  • This paper discusses the fuzzy C-means algorithm (FCM), one of the fuzzy clustering methods and clustering validity measurements.

    本文讨论模糊中的模糊C均值算法聚类有效性测度。

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  • Local optimality and initialization dependence disadvantages of K-means are analyzed and a PSO-based K-means algorithm is proposed.

    针对K均值聚类算法依赖初始值的选择,且容易收敛于局部极值缺点,提出一种基于粒群优化的K均值算法。

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  • The action potentials' features are extracted by PCA, the action potential classification is implemented by the improved K-means algorithm.

    方法采用PCA提取动作电位特征使用改进K均值算法实现动作电位分类

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  • The initial clustering center of the traditional K-means algorithm was generated randomly from the data set, and the clustering result was unstable.

    传统K均值算法初始中心数据集中随机产生,聚类结果不稳定。

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  • Based on fuzzy C-Means algorithm (FCM) and fuzzy Min-Max Neural Networks, an integrated algorithm for fuzzy pattern recognition using hypercube set was proposed.

    结合模糊c均值算法(FCM)模糊最小最大神经网络算法,提出种基于超长方体模糊模式识别算法。

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  • 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.

    均值算法的聚类个数k指定,聚类结果数据输入顺序相关,而且孤立点影响

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  • A dot density weighted fuzzy C-means algorithm is proposed by using density size of data dot regarded as weighted value and distributing characteristic of datas own.

    利用数据密度大小作为,借助数据本身的分布特性,提出了一种点密度加权模糊c -均值算法

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  • In this article we combine the fuzzy C-means algorithm with fuzzy measures and fuzzy integrals and apply the two algorithms to the medicinal pathological image segmentation.

    本文经典模糊c -均值聚类算法模糊测度和模糊积分结合起来,两种算法应用于医学病理图象分割

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  • This article analyzes the deficiency of K-means algorithm and improves the algorithm with relative best partition and weight in the computation of distance of clusters and cases.

    针对K -平均算法存在缺陷,通过引入相对最佳随机划分方法以及计算样本中心时权重改进了K -平均算法。

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  • Although the traditional K - means algorithm has good convergence rate and can be realized easily, it can easily be trapped in a local optimum, and it is sensitive in initial setting.

    传统K-均值方法用于聚类具有收敛速度快、算法实现简单等特点,容易陷入局部最优对初始解敏感

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  • Clustering algorithms are the typical algorithms in the data mining, the K-means algorithm is the most basic algorithm, which has produced many classics and highly effective algorithms.

    数据挖掘中的典型算法其中的K -均值算法基本的算法,由该算法产生许多经典高效的算法。

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  • Inspired by the clone selection principle and memory mechanism of the vertebrate immune system, a hybrid algorithm combining C-means algorithm and artificial immune algorithm is presented.

    通过借鉴生物免疫系统中的克隆选择原理记忆机制提出一种人工免疫c -均值混合聚类算法

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  • Secondly, the anomaly detection model based on K-means algorithm and SOM network is constructed. It can classify the normal and abnormal network data stream so better to detect the unknown attack.

    提出了一种k-均值聚类算法SOM自组织神经网络算法相结合异常检测模型,使得系统可以更好分类正常数据异常数据流,以此来防范未知的攻击。

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  • Given a set of vectors, the next step is to run the k-Means clustering algorithm.

    创建了矢量之后,接下来需要运行k - Means集群算法。

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  • Given a set of vectors, the next step is to run the k-Means clustering algorithm.

    创建了矢量之后,接下来需要运行k - Means集群算法。

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