Using duration to learn activities of daily living in a smart home environment
Recognition of inhabitants' activities of daily living (ADLs) is an important task in smart homes to support assisted living for elderly people aging in place. However, uncertain information brings challenge to activity recognition which can be categorised into environmental uncertainties from...
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| Published in | 2010 4th International Conference on Pervasive Computing Technologies for Healthcare pp. 1 - 8 |
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| Main Authors | , , , , |
| Format | Conference Proceeding |
| Language | English |
| Published |
IEEE
2010
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| Subjects | |
| Online Access | Get full text |
| ISSN | 2153-1633 |
| DOI | 10.4108/ICST.PERVASIVEHEALTH2010.8804 |
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| Abstract | Recognition of inhabitants' activities of daily living (ADLs) is an important task in smart homes to support assisted living for elderly people aging in place. However, uncertain information brings challenge to activity recognition which can be categorised into environmental uncertainties from sensor readings and user uncertainties of variations in the ways to carry out activities in different contexts, or by different users within the same environment. To address the challenges of these two types of uncertainty, in this paper, we introduce the innovative idea of incorporating activity duration into the framework of learning inhabitants' behaviour patterns on carrying out ADLs in smart home environment. A probabilistic learning algorithm is proposed with duration information in the context of multi-inhabitants in a single home environment. The prediction is for both inhabitant and ADL using the learned model representing what activity is carried out and who performed it. Experiments are designed for the evaluation of duration information in identifying activities and inhabitants. Real data have been collected in a smart kitchen laboratory, and realistic synthetic data are generated for evaluation. Evaluations show encouraging results for higher-level activity identification and improvement on inhabitant and activity prediction in the challenging situation of incomplete observation due to unreliable sensors compared to models that are derived with no duration information. The approach also provides a potential opportunity to identify inhabitants' concept drift in long-term monitoring and respond to a deteriorating situation at as early stage as possible. |
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| AbstractList | Recognition of inhabitants' activities of daily living (ADLs) is an important task in smart homes to support assisted living for elderly people aging in place. However, uncertain information brings challenge to activity recognition which can be categorised into environmental uncertainties from sensor readings and user uncertainties of variations in the ways to carry out activities in different contexts, or by different users within the same environment. To address the challenges of these two types of uncertainty, in this paper, we introduce the innovative idea of incorporating activity duration into the framework of learning inhabitants' behaviour patterns on carrying out ADLs in smart home environment. A probabilistic learning algorithm is proposed with duration information in the context of multi-inhabitants in a single home environment. The prediction is for both inhabitant and ADL using the learned model representing what activity is carried out and who performed it. Experiments are designed for the evaluation of duration information in identifying activities and inhabitants. Real data have been collected in a smart kitchen laboratory, and realistic synthetic data are generated for evaluation. Evaluations show encouraging results for higher-level activity identification and improvement on inhabitant and activity prediction in the challenging situation of incomplete observation due to unreliable sensors compared to models that are derived with no duration information. The approach also provides a potential opportunity to identify inhabitants' concept drift in long-term monitoring and respond to a deteriorating situation at as early stage as possible. |
| Author | Nugent, Chris Scotney, Bryan Chaurasia, Priyanka McClean, Sally Shuai Zhang |
| Author_xml | – sequence: 1 surname: Shuai Zhang fullname: Shuai Zhang email: s.zhang@ulster.ac.uk organization: Sch. of Comput. & Inf. Eng., Univ. of Ulster, Coleraine, UK – sequence: 2 givenname: Sally surname: McClean fullname: McClean, Sally email: si.mcclean@ulster.ac.uk organization: Sch. of Comput. & Inf. Eng., Univ. of Ulster, Coleraine, UK – sequence: 3 givenname: Bryan surname: Scotney fullname: Scotney, Bryan email: bw.scotney@ulster.ac.uk organization: Sch. of Comput. & Inf. Eng., Univ. of Ulster, Coleraine, UK – sequence: 4 givenname: Priyanka surname: Chaurasia fullname: Chaurasia, Priyanka email: chaurasia-p@email.ulster.ac.uk organization: Sch. of Comput. & Inf. Eng., Univ. of Ulster, Coleraine, UK – sequence: 5 givenname: Chris surname: Nugent fullname: Nugent, Chris email: cd.nugent@ulster.ac.uk organization: Sch. of Comput. & Math., Univ. of Ulster, Newtownabbey, UK |
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| SubjectTerms | ADL Aging Dementia duration Home computing Intelligent sensors Monitoring Predictive models probabilistic learning reasoning Senior citizens Sensor phenomena and characterization smart home Smart homes Uncertainty |
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| Title | Using duration to learn activities of daily living in a smart home environment |
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