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  1. 論文誌(ジャーナル)
  2. Vol.63
  3. No.3

Grasping Users' Awareness for Environments from their SNS Posts

https://ipsj.ixsq.nii.ac.jp/records/217580
https://ipsj.ixsq.nii.ac.jp/records/217580
9e9af607-b5fb-46af-a7ad-e8609614ef14
名前 / ファイル ライセンス アクション
IPSJ-JNL6303007.pdf IPSJ-JNL6303007.pdf (1.8 MB)
Copyright (c) 2022 by the Information Processing Society of Japan
オープンアクセス
Item type Journal(1)
公開日 2022-03-15
タイトル
タイトル Grasping Users' Awareness for Environments from their SNS Posts
タイトル
言語 en
タイトル Grasping Users' Awareness for Environments from their SNS Posts
言語
言語 eng
キーワード
主題Scheme Other
主題 [特集:若手研究者] overtourism, ecotourism, prediction on eco-friendly users, environmental awareness, social network services
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
Kyushu University
著者所属
Deloitte Tohmatsu Consulting LLC
著者所属
Seoul National University
著者所属
Fukuoka University
著者所属
Kyushu University
著者所属(英)
en
Kyushu University
著者所属(英)
en
Deloitte Tohmatsu Consulting LLC
著者所属(英)
en
Seoul National University
著者所属(英)
en
Fukuoka University
著者所属(英)
en
Kyushu University
著者名 Tokinori, Suzuki

× Tokinori, Suzuki

Tokinori, Suzuki

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Naoto, Kashiwagi

× Naoto, Kashiwagi

Naoto, Kashiwagi

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Jounghun, Lee

× Jounghun, Lee

Jounghun, Lee

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Kun, Qian

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Kun, Qian

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Daisuke, Ikeda

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Daisuke, Ikeda

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著者名(英) Tokinori, Suzuki

× Tokinori, Suzuki

en Tokinori, Suzuki

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Naoto, Kashiwagi

× Naoto, Kashiwagi

en Naoto, Kashiwagi

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Jounghun, Lee

× Jounghun, Lee

en Jounghun, Lee

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Kun, Qian

× Kun, Qian

en Kun, Qian

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Daisuke, Ikeda

× Daisuke, Ikeda

en Daisuke, Ikeda

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論文抄録
内容記述タイプ Other
内容記述 Overtourism has a negative impact on tourist sites all over the world. Serious problems are environmental issues, such as littering, caused by the rush of too many visitors. It is important to change people's mindset to be more environmentally aware for improving this situation. In particular, if we can find people with a high awareness about environments, we can work effectively to promote eco-friendly behavior by taking them as the start. However, grasping individual awareness is inherently difficult. For this challenge, we utilize SNS data, which are available in large volume, with a hypothesis that people's subconsciousness influences their posts. In this paper, we address two research topics for grasping such awareness. First, we propose a classification task, in which a system is given users' SNS posts about tourist sites, and classifies them into types of their focuses. Experimental results show widely-used classifiers can solve the task at about 0.84 of accuracy using our created dataset. Second, we investigate the relation of the focuses and such awareness with a questionnaire survey targeting over 2,700 people, and show that users' awareness influences focuses of SNS posts with both of a statistical analysis and an analysis using real-world data.
------------------------------
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.30(2022) (online)
DOI http://dx.doi.org/10.2197/ipsjjip.30.190
------------------------------
論文抄録(英)
内容記述タイプ Other
内容記述 Overtourism has a negative impact on tourist sites all over the world. Serious problems are environmental issues, such as littering, caused by the rush of too many visitors. It is important to change people's mindset to be more environmentally aware for improving this situation. In particular, if we can find people with a high awareness about environments, we can work effectively to promote eco-friendly behavior by taking them as the start. However, grasping individual awareness is inherently difficult. For this challenge, we utilize SNS data, which are available in large volume, with a hypothesis that people's subconsciousness influences their posts. In this paper, we address two research topics for grasping such awareness. First, we propose a classification task, in which a system is given users' SNS posts about tourist sites, and classifies them into types of their focuses. Experimental results show widely-used classifiers can solve the task at about 0.84 of accuracy using our created dataset. Second, we investigate the relation of the focuses and such awareness with a questionnaire survey targeting over 2,700 people, and show that users' awareness influences focuses of SNS posts with both of a statistical analysis and an analysis using real-world data.
------------------------------
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.30(2022) (online)
DOI http://dx.doi.org/10.2197/ipsjjip.30.190
------------------------------
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 63, 号 3, 発行日 2022-03-15
ISSN
収録物識別子タイプ ISSN
収録物識別子 1882-7764
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