博碩士論文 101423050 完整後設資料紀錄

DC 欄位 語言
DC.contributor資訊管理學系zh_TW
DC.creator黃學惇zh_TW
DC.creatorHsueh-tun Huangen_US
dc.date.accessioned2014-7-11T07:39:07Z
dc.date.available2014-7-11T07:39:07Z
dc.date.issued2014
dc.identifier.urihttp://ir.lib.ncu.edu.tw:88/thesis/view_etd.asp?URN=101423050
dc.contributor.department資訊管理學系zh_TW
DC.description國立中央大學zh_TW
DC.descriptionNational Central Universityen_US
dc.description.abstract近年來,網路的快速發展與社群網路大量個崛起,造成現代人越來越依賴網路社群等相關軟體。過去在相關的社群探勘方面的研究,不外乎以K-means演算法的變形、凝聚法、圖形化的方式抑或是建立在Girvan-Newman所提出的演算法架構之下。其中凝聚法往往搭配著核心節點與區域社群的概念使用,其中的癥結點在於,利用核心節點與區域社群概念的凝聚法,往往會忽略掉在社群邊緣的節點,進而在做最後的分配時,未能將其作妥善的分群。因此,本研究基於現有的凝聚法相關研究,找出居中度及相關性作為新的凝聚依據,根據此二指標將社群作出妥善的分群,並與(Lim & Datta, 2013; Qiong & Ting-Ting, 2010; Tiantian & Bin, 2012)等學者我提出的方法作比較,進而證明其改善之效果。zh_TW
dc.description.abstractQuick development of the Internet and huge explosion of the social network make people rely highly on the social network software in their daily life. Most researches on community detection in the past refer to K-means, agglomerative, graph or Girvan- Newman algorithm. The interest of this study has been directed to the algorithm of agglomerative. One possible deficiency of this method is that it always ignores the nodes which are on the edge of the community. Therefore, in the merging step, the nodes on the edge could be allocated to the wrong community. This study is aimed to improve the performance of the algorithm by finding the core node and the local community as new indexes for agglomerate. In the experiments, the results are compared with (Lim & Datta, 2013; Qiong & Ting-Ting, 2010; Tiantian & Bin, 2012) to show the effectiveness of the method developed in this study.en_US
DC.subject社群探勘zh_TW
DC.subject核心節點zh_TW
DC.subject區域社群zh_TW
DC.subject凝聚法zh_TW
DC.subject居中度zh_TW
DC.subject相關性zh_TW
DC.subjectcommunity detectionen_US
DC.subjectcore nodeen_US
DC.subjectlocal communityen_US
DC.subjectagglomerativeen_US
DC.subjectbetweennessen_US
DC.subjectrelationen_US
DC.title利用核心節點及區域社群以改善社群探勘之凝聚法技術的方法zh_TW
dc.language.isozh-TWzh-TW
DC.titleA Novel method based on the agglomerative technique to improve the community detection by finding the core node and the local communityen_US
DC.type博碩士論文zh_TW
DC.typethesisen_US
DC.publisherNational Central Universityen_US

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