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Interaction models for multiple-resident activity recognition in a smart home

  • Yi Ting Chiang*
  • , Kuo Chung Hsu
  • , Ching Hu Lu
  • , Li Chen Fu
  • , Jane Yung Jen Hsu
  • *此作品的通信作者
  • National Taiwan University

研究成果: 圖書/報告稿件的類型會議稿件同行評審

55 引文 斯高帕斯(Scopus)

摘要

Multi-resident activity recognition is among a key enabler in many context-aware applications in a smart home. However, most of prior researches ignore the potential interactions among residents in order to simplify problem complexity. On the other hand, multiple-resident activities are usually recognized using cameras or wearable sensors. However, due to human-centric concerns, it is more preferable to avoid using obtrusive sensors. In this paper, we propose dynamic Bayesian networks which extend coupled hidden Markov models (CHMMs) by adding some vertices to model both individual and cooperative activities. In order to improve performance of the model, we categorize sensor observations based on data association and some domain knowledge to model multiple-resident activity patterns. We then validate the performance using a multi-resident dataset from WSU (Washington State University), which only includes non-obtrusive sensors. The experimental result shows that our model performs better than other baseline classifiers.

原文英語
主出版物標題IEEE/RSJ 2010 International Conference on Intelligent Robots and Systems, IROS 2010 - Conference Proceedings
頁面3753-3758
頁數6
DOIs
出版狀態已出版 - 2010
對外發佈
事件23rd IEEE/RSJ 2010 International Conference on Intelligent Robots and Systems, IROS 2010 - Taipei, 台灣
持續時間: 18 10 201022 10 2010

出版系列

名字IEEE/RSJ 2010 International Conference on Intelligent Robots and Systems, IROS 2010 - Conference Proceedings

Conference

Conference23rd IEEE/RSJ 2010 International Conference on Intelligent Robots and Systems, IROS 2010
國家/地區台灣
城市Taipei
期間18/10/1022/10/10

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