• A new weighted hybrid C-means clustering based on the K-nearest-neighbour rule is presented in this paper.

    该文提出了基于K近邻加权混合C均值聚类算法。

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  • Firstly, the advantages of fuzzy C-means clustering and possibilistic C-means clustering are utilized in this paper.

    首先该文利用模糊C均值可能性C均值聚类的优点,设计出一种混合C均值聚类算法。

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  • According to the characteristics of traffic flow, it USES fuzzy C-means clustering algorithm to deal with these fuzzy factors.

    根据交通特性运用模糊C均值聚类算法交通流各要素进行模糊分析处理

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  • The classical C-means clustering algorithm (CMA) is a well-known clustering method to partition an image into homogeneous regions.

    经典C -均值算法CMA图像分割C类的常用方法,但依赖于初始聚类中心的选择。

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  • A new method integrated with fluctuation method and fuzzy C-means clustering was put forward and solved the above difficult problems.

    文中提出波动模糊c -均值聚类结合的状态评级则有效解决了上述问题。

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  • The results revealed that fuzzy c-means clustering algorithm could be used to delineate management zones by using the given variables.

    利用选取的变量,模糊c均值聚类算法可以较好进行管理分区划分。

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  • Based on the traditional fuzzy C-means clustering algorithm, a new fuzzy C-means clustering algorithm for interval data clustering is proposed.

    传统模糊c -均值算法基础提出一种新型区间数据模糊聚类算法。

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  • The improved fuzzy C-means clustering algorithm has better robustness and makes the cluster results insensitive to the predefined cluster number.

    改进后模糊C-均值算法具有更好棒性,且放松了隶属度条件,使得最终结果预先确定的聚类数目不敏感

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  • To improve the accuracy of text clustering, fuzzy c-means clustering based on topic concept sub-space (TCS2FCM) is introduced for classifying texts.

    为了改善文本准确度,提出用基于主题概念空间模糊c -均值聚类(TCS2FCM)方法来分类文本

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  • Aiming at the characteristic of recognizing grain pest, a method is proposed with fuzzy theory. Fuzzy C-means clustering is introduced and remarked firstly.

    针对谷物害虫图像识别特点提出了基于模糊理论的害虫图像识别方法

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  • Considering fuzzy C-means clustering algorithms are sensitive to initialization and easy fall - en to local minimum, a novel optimization method is proposed.

    针对模糊C均值聚类算法初始值敏感陷入局部的缺陷,提出一种新的优化方法

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  • Fuzzy C-means clustering is one of the important learning algorithms in the field of pattern recognition, which has been applied early to image segmentation.

    模糊c -均值聚类模式识别中的重要算法之一很早就应用图像分割中

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  • 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.

    分别采用模糊c -均值类方法快速全局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。

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  • Firstly, the advantages of fuzzy C-means clustering and possibilistic C-means clustering are utilized in this paper. We design a new hybrid C-means clustering accordingly.

    首先该文利用模糊C均值可能性C均值聚类优点设计混合C均值聚类算法。

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  • And then based on the K-nearest-neighbour rule, the weighted matrix of samples is computed. Lastly, weighted hybrid C-means clustering based on the K-nearest-neighbour rule is presented.

    然后K近邻规则为基础,计算样本加权矩阵最后得到基于K近邻加权的混合C均值聚类算法

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  • An efficient segmentation method based upon fuzzy c-means (FCM) clustering principles is proposed. The approach utilizes a pyramid data structure for the hierarchical ana - lysis of color images.

    这里提出一种高效基于模糊c均值(FCM)聚类彩色图像分割方法,它利用塔形数据结构彩色图像进行多层分割。

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  • A new non-Euclidean distance was introduced to replace the Euclidean distance in the IPCM, and then a new fuzzy clustering, called novel improved possibilistic C-means (NIPCM) clustering was proposed.

    通过引入新的欧式距离以替代IPCM目标函数中的欧式距离,提出了一种称为新的改进型可能C -均值聚类(NIPCM)算法。

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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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  • 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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  • An improved color segmentation algorithm is presented based on weighting fuzzy c-means (FCM) clustering algorithm.

    加权模糊c -均值(FCM)聚类算法基础上,对分色算法进行了改进

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  • It is a procedure of the label following an unsupervised fuzzy clustering that fuzzy c-means (FCM) algorithm is applied to image segmentation.

    算法用于图像分割一种监督模糊聚类再标定过程

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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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  • This paper proposes a modified fuzzy C-means (MFCM) clustering algorithm to cluster all images before retrieval.

    论文采用了种基于改进模糊C均值算法聚类图像

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  • Then use Fuzzy C-means to do document clustering based on the results of similarity calculation above.

    然后采用模糊c均值根据上述计算文档相似度结果对文档进行聚类

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  • Aimed at the disadvantages of fuzzy C-means in fault diagnosis of steam turbine set, a weighted fuzzy clustering method based on particle swarm optimization is put forward.

    针对模糊c -均值算法汽轮机故障诊断中的不足提出了粒子优化加权模糊聚类分析方法

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  • Aimed at the disadvantages of fuzzy C-means in fault diagnosis of steam turbine set, a weighted fuzzy clustering method based on particle swarm optimization is put forward.

    针对模糊c -均值算法汽轮机故障诊断中的不足提出了粒子优化加权模糊聚类分析方法

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