Human behavioural analysis with self-organizing map for ambient assisted living

This paper presents a system for automatically classifying the resting location of a moving object in an indoor environment. The system uses an unsupervised neural network (Self Organising Feature Map) fully implemented on a low-cost, low-power automated home-based surveillance system, capable of mo...

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Published inProceedings of ... IEEE International Conference on Fuzzy Systems pp. 2430 - 2437
Main Authors Appiah, Kofi, Hunter, Andrew, Lotfi, Ahmad, Waltham, Christopher, Dickinson, Patrick
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.07.2014
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ISSN1098-7584
DOI10.1109/FUZZ-IEEE.2014.6891833

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Abstract This paper presents a system for automatically classifying the resting location of a moving object in an indoor environment. The system uses an unsupervised neural network (Self Organising Feature Map) fully implemented on a low-cost, low-power automated home-based surveillance system, capable of monitoring activity level of elders living alone independently. The proposed system runs on an embedded platform with a specialised ceiling-mounted video sensor for intelligent activity monitoring. The system has the ability to learn resting locations, to measure overall activity levels and to detect specific events such as potential falls. First order motion information, including first order moving average smoothing, is generated from the 2D image coordinates (trajectories). A novel edge-based object detection algorithm capable of running at a reasonable speed on the embedded platform has been developed. The classification is dynamic and achieved in real-time. The dynamic classifier is achieved using a SOFM and a probabilistic model. Experimental results show less than 20% classification error, showing the robustness of our approach over others in literature with minimal power consumption. The head location of the subject is also estimated by a novel approach capable of running on any resource limited platform with power constraints.
AbstractList This paper presents a system for automatically classifying the resting location of a moving object in an indoor environment. The system uses an unsupervised neural network (Self Organising Feature Map) fully implemented on a low-cost, low-power automated home-based surveillance system, capable of monitoring activity level of elders living alone independently. The proposed system runs on an embedded platform with a specialised ceiling-mounted video sensor for intelligent activity monitoring. The system has the ability to learn resting locations, to measure overall activity levels and to detect specific events such as potential falls. First order motion information, including first order moving average smoothing, is generated from the 2D image coordinates (trajectories). A novel edge-based object detection algorithm capable of running at a reasonable speed on the embedded platform has been developed. The classification is dynamic and achieved in real-time. The dynamic classifier is achieved using a SOFM and a probabilistic model. Experimental results show less than 20% classification error, showing the robustness of our approach over others in literature with minimal power consumption. The head location of the subject is also estimated by a novel approach capable of running on any resource limited platform with power constraints.
Author Appiah, Kofi
Dickinson, Patrick
Waltham, Christopher
Hunter, Andrew
Lotfi, Ahmad
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  givenname: Patrick
  surname: Dickinson
  fullname: Dickinson, Patrick
  email: pdickinson@lincoln.ac.uk
  organization: Lincoln Sch. of Comput., Univ. of Lincoln, Lincoln, UK
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Snippet This paper presents a system for automatically classifying the resting location of a moving object in an indoor environment. The system uses an unsupervised...
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StartPage 2430
SubjectTerms Cameras
Hidden Markov models
Image edge detection
Monitoring
Training
Trajectory
Vectors
Title Human behavioural analysis with self-organizing map for ambient assisted living
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