• 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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  • 最后使用增量式概念格生成算法搜索结果片段进行概念从中产生每个主题

    Finally, incremental algorithm of producing concept lattice is used to carry on concept clustering to the passage of search results, and produced the theme of each cluster result from it.

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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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  • 通过概念识别孤立点运用规划识别技术贝叶斯因果网络实现目标预测、识别,最终实现系统自学习。

    The system applies conceptual clustering technology to recognize outliers, and uses plan recognition and causal network to predict and recognize the target.

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  • 根据构建概念过程概念聚类特性本文引出了概念格图形的近似自相似性这一特征作为信息的评估系数。

    Based on the characteristics of conceptual cluster during the construction of concept lattices, this paper gave a characteristic of approximate self-similarity to value the information classification.

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  • 这种检索方法文本聚类的基础上,基于概念空间传统关键词检索相结合能够帮助用户快速准确地定位所需要查找的信息

    Based on concept space and text clustering technique as well as traditional keyword searching method, it could help users to locate the information they need quickly and precisely.

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  • 介绍模糊数学基本概念建立用于缺陷模糊模式识别两种数学模型,即模糊模糊聚类法。

    The concept of fuzzy mathematics is described and two fuzzy pattern recognition models of flaws based on fuzzy set method and fuzzy cluster method have been established.

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  • 通过模糊c均值算法聚类特性分析引入了约束函数模式相似度的概念提出了改进FCM算法。

    With the clustering feature analyzed, restrained function and pattern similarity are introduced. Then the algorithm of improved FCM is presented.

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  • 针对潜在概念文本主题之间模糊关系提出一种基于信息论的潜在概念获取文本聚类方法

    To emphasize the fuzzy relation among words, latent concepts, text and topics, an information theory based approach to latent concept extraction and text clustering is proposed.

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  • 通过群数据来源特性进行分析定义离群贡献度概念提出了一种基于特征赋权的离群数据聚类算法

    By analyzing the origin and feature of outliers, a concept of exceptional contribution degree is defined and then an algorithm for re-clustering outliers based on feature weighting is proposed.

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  • 本文介绍了数据挖掘基本概念说明了数据挖掘的一个重要功能

    Introduces the basic conception of Data Mining and explains the hierachical cluster is a main function of Data Mining.

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  • 属性测度概念基础上,运用属性聚类网络方法解决模式识别问题

    Based on concepts of attribute measurement, we used attribute clustering network approach to resolve some problems of pattern recognition.

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  • 这里问题在于,这个概念上来说不再的,从而导致了将来可能有很多理由修改

    The issue with this is that your class won't be conceptually cohesive and it will give it many reasons to change.

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  • 分析方法核心概念基础提出一种基于核方法的聚类算法

    Based on the analysis of the core concepts of the kernel methods, a clustering algorithm based on kernel methods was put forward.

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  • 本文借助于样品之间差异有序样品的差异序列两个概念提出了有序样品聚类的差异序列法法

    In this paper, with the aid of the two concepts of diversity between two samples and diversity sequence of ordered samples, diversity sequence method is presented for clustering ordered samples.

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  • 基于形式概念分析概念相似度,给出一种新的多背景文本模糊聚类方法模型

    A novel multi-context text fuzzy clustering method and its model based on formal concept analysis and concept similarity is proposed.

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  • 面对满足二维空间邻接条件聚类问题,定义了邻接矩阵概念

    In order to dealing with the clustering considering the condition of planar adjacency relationship, the concept adjacency matrix is defined.

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  • 借助于任意两个样品之间差异度和有序样品差异矩阵概念提出有序样品聚类的全差异矩阵

    With the aid of the two concepts of diversity between any two samp le sand total diversity martrix of orderd samples, diversity matrix method is presented for clustering orderd samples.

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  • 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)方法来文本

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

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  • 针对属性稀疏数据问题,提出高属性维稀疏信息系统概念给出一种新的基于稀疏特征差异动态抽象聚类方法

    The concepts of high attribute dimensional information system are firstly proposed, and a new dynamic clustering method on the basis of sparse feature difference degree is presented.

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  • 考虑它们结果不一定全部好的,因此提出了一个信任度系数概念根据系数从中选择较优那些成员进行融合。

    Considering that their results are not all good, the concept of a confidence factor is proposed. According to the value of factor, we combine the clustering members that are better.

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  • 本文首先介绍增量算法以及研究现状,提出了增量聚类算法等价性概念

    This paper firstly introduces the classification of incremental clustering algorithms and the research state, defines the concept of algorithm equivalence.

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  • 利用网较完备知识体系构造概念词典概念层次结构,实现了知网为背景知识的基于概念中文文本聚类算法

    Using HowNet's complete knowledge system to construct Concept Dictionary and Concept Hierarchy, we realized a kind of Chinese text clustering algorithm based on concept.

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  • 其次采用机器学习技术,包括文本聚类,文本概念抽取,从概念层次理解文本信息

    Secondly, the system can distinguish the domain of the web page and understand the document at the concept level by text classification, clustering and concept extraction based machine learning.

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  • 提出了一种语言概念空间中的概念对象的信息检索方法以及适合于方法的聚类算法

    An information retrieval model based on language concept space and a clustering method which serves the IR model is propsed.

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  • 方法利用概念信息聚类特性突破传统方法相关度计算方法的设计思路拓宽概念应用范围。

    This method breaks through the traditional design ideas, for the usage of information clustering of concept lattice Characteristics. And it also broadens the application of concept lattices.

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  • 然后研究如何概念描述概念对比数据挖掘方法描述评估客户细分一工作对在数据挖掘模块中使用聚类算法进行客户细分的完善和补充。

    The emphasis of research is that how to describe and evaluate the refinement result of customer by two data mining methods - concept description and concept parallel.

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  • TCU SS算法利用两个概念列表单词间语义相似度作为文档间相近程度度量以图为基础进行分析避免有些聚类算法形状限制

    TCUSS algorithm measures the document similarity by semantic similarity of concepts in concept lists, then clusters the document based on graph analysis, thus avoiding the restrict of clusters shape.

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  • TCU SS算法利用两个概念列表单词间语义相似度作为文档间相近程度度量以图为基础进行分析避免有些聚类算法形状限制

    TCUSS algorithm measures the document similarity by semantic similarity of concepts in concept lists, then clusters the document based on graph analysis, thus avoiding the restrict of clusters shape.

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