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  1. 論文誌(ジャーナル)
  2. Vol.55
  3. No.4

Community Discovery for Knowledge Collaborations in Collective intelligence Systems

https://ipsj.ixsq.nii.ac.jp/records/100827
https://ipsj.ixsq.nii.ac.jp/records/100827
5d8abd85-097b-4198-b8d8-ea3f5afe19aa
名前 / ファイル ライセンス アクション
IPSJ-JNL5504010.pdf IPSJ-JNL5504010 (921.2 kB)
Copyright (c) 2014 by the Information Processing Society of Japan
オープンアクセス
Item type Journal(1)
公開日 2014-04-15
タイトル
タイトル Community Discovery for Knowledge Collaborations in Collective intelligence Systems
タイトル
言語 en
タイトル Community Discovery for Knowledge Collaborations in Collective intelligence Systems
言語
言語 eng
キーワード
主題Scheme Other
主題 [特集:Multiagent-based Societal Systems] community discovery, knowledge collaborative community, multi-domain problem solving, collective intelligence
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
著者所属
Auckland University of Technology
著者所属
Auckland University of Technology
著者所属
Wollongong University
著者所属
Wollongong University
著者所属(英)
en
Auckland University of Technology
著者所属(英)
en
Auckland University of Technology
著者所属(英)
en
Wollongong University
著者所属(英)
en
Wollongong University
著者名 Jing, Jiang

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Jing, Jiang

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Quan, Bai

× Quan, Bai

Quan, Bai

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Minjie, Zhang

× Minjie, Zhang

Minjie, Zhang

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Shaojie, Yuan

× Shaojie, Yuan

Shaojie, Yuan

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著者名(英) Jing, Jiang

× Jing, Jiang

en Jing, Jiang

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Quan, Bai

× Quan, Bai

en Quan, Bai

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Minjie, Zhang

× Minjie, Zhang

en Minjie, Zhang

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Shaojie, Yuan

× Shaojie, Yuan

en Shaojie, Yuan

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論文抄録
内容記述タイプ Other
内容記述 Knowledge collaborative communities play an important role in collective intelligence systems. To discover a knowledge collaborative community, we need to consider not only the structure of a network but also the performance of knowledge collaboration among members within the community. Traditional community discovery approaches are not suitable to discover knowledge collaborative communities since most of them focus too much on the network topologies, and ignore some other important factors. In this paper, we propose two community discovery approaches, which can be used in different sizes of networks, and take more knowledge collaboration factors into account. Compared with some other existing approaches, the proposed approach can perform better in forming knowledge collaborative communities for multi-domain problem solving.

------------------------------
This is a preprint of an article intended for publication Journal of
Information Processing(JIP). This preprint should not be cited. This
article should be cited as: Journal of Information Processing Vol.22(2014) No.2 (online)
DOI http://dx.doi.org/10.2197/ipsjjip.22.243
------------------------------
論文抄録(英)
内容記述タイプ Other
内容記述 Knowledge collaborative communities play an important role in collective intelligence systems. To discover a knowledge collaborative community, we need to consider not only the structure of a network but also the performance of knowledge collaboration among members within the community. Traditional community discovery approaches are not suitable to discover knowledge collaborative communities since most of them focus too much on the network topologies, and ignore some other important factors. In this paper, we propose two community discovery approaches, which can be used in different sizes of networks, and take more knowledge collaboration factors into account. Compared with some other existing approaches, the proposed approach can perform better in forming knowledge collaborative communities for multi-domain problem solving.

------------------------------
This is a preprint of an article intended for publication Journal of
Information Processing(JIP). This preprint should not be cited. This
article should be cited as: Journal of Information Processing Vol.22(2014) No.2 (online)
DOI http://dx.doi.org/10.2197/ipsjjip.22.243
------------------------------
書誌レコードID
収録物識別子タイプ NCID
収録物識別子 AN00116647
書誌情報 情報処理学会論文誌

巻 55, 号 4, 発行日 2014-04-15
ISSN
収録物識別子タイプ ISSN
収録物識別子 1882-7764
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