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Application of Latent Dirichlet Allocation Algorithm on User Review Analysis: A Case Study on Online Games

研究成果: 書貢獻/報告類型會議論文篇章

1   連結會在新分頁中打開 引文 斯高帕斯(Scopus)

摘要

The online gaming market has grown rapidly. To study online game-related issues, most researchers either relied on consumer survey questionnaire data or focused on experts' comments to evaluate consumers' perceptions of an online game. Only a few studies explored user reviews using user-generated content (UGC) of game players on social networks. UGC contains rich information about players' feelings, helping game developers understand players' gaming experiences and thoughts. Therefore, we analyzed the UGC of three role-playing games (RPG) by text mining techniques, including word identification and Latent Dirichlet Allocation (LDA) algorithms. We explored players' experiences and attitudes toward the three RPG games. The player review content was extracted from the Steam website for several topics such as game characters, game graphics, and game stories, which are regarded as key attributes of an online game. It was found that most players focused on the rules and objectives of role-playing games. Since the three games have different contents, their LDA topic models showed different topic attributes. The study results provide an applicable method for game developers to identify the topics players and suggestions for necessary improvements.

原文英語
主出版物標題2024 IEEE 4th International Conference on Electronic Communications, Internet of Things and Big Data, ICEIB 2024
編輯Teen-Hang Meen
發行者Institute of Electrical and Electronics Engineers Inc.
頁面251-256
頁數6
ISBN(電子)9798350360721
DOIs
出版狀態已發佈 - 2024
事件4th IEEE International Conference on Electronic Communications, Internet of Things and Big Data, ICEIB 2024 - Taipei, 臺灣
持續時間: 2024 4月 192024 4月 21

出版系列

名字2024 IEEE 4th International Conference on Electronic Communications, Internet of Things and Big Data, ICEIB 2024

會議

會議4th IEEE International Conference on Electronic Communications, Internet of Things and Big Data, ICEIB 2024
國家/地區臺灣
城市Taipei
期間2024/04/192024/04/21

ASJC Scopus subject areas

  • 電腦科學應用
  • 人工智慧
  • 電腦網路與通信
  • 電腦視覺和模式識別
  • 資訊系統
  • 資訊系統與管理

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