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Intelligent fall detection and notification system for an IOT based smart home environment

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dc.contributor.advisor Jayasekara AGBP
dc.contributor.advisor Perera GIUS
dc.contributor.author Kalinga NMT
dc.date.accessioned 2021
dc.date.available 2021
dc.date.issued 2021
dc.identifier.citation Kalinga, N.M.T. (2021). Intelligent fall detection and notification system for an IOT based smart home environment [Master's theses, University of Moratuwa]. Institutional Repository University of Moratuwa. http://dl.lib.uom.lk/handle/123/21351
dc.identifier.uri http://dl.lib.uom.lk/handle/123/21351
dc.description.abstract Throughout the history of technology, various mechanisms to support the elderly and the disabled have been introduced as a remedy for the inadequacy of caregivers to provide them with the required assistance in leading an independent and secure living. Among all those mechanisms, smart homes and social robotics appear to play a signi cant and e ective role in assuring a comfortable and safe environment for the elderly and the disabled who prefer to live independently without causing an extra burden on their families. However, most of the existing assistive systems lack the required levels of accuracy and timeliness which causes increased probability of resulting them in higher risk of damage after encountering an emergency while staying alone at their homes. Therefore, in order to ensure the availability of timely assistance and support, the introduction and development of e ective emergency detection and noti cation systems is an essential necessity in the present world. This research work introduces a Smart Home System consisting of three subsystems integrated together over an IoT Cloud with the main objective of improving the quality of life of the elderly and the disabled by providing them with ample support in performing their activities of daily living without compromising safety and independence. The proposed system presents a novel vision based method of detecting falls from standing or walking positions that is also capable of distinguishing the identi ed falls among three types so that the medical attention could be easily focused. A special subsystem is also introduced for the identi cation of sitting postures and detection of falls from wheelchairs for the people with mobility impairments.The fall detection and posture identi cation are carried out with a social robot called MIRob which receives visual input through a Microsoft Kinect Sensor. A novel emergency noti cation system is also presented where, the noti cation is performed by implementing a Q-Learning algorithm using a Reinforcement Learning agent via an Android application. Through experimental studies the overall proposed system has promised to guarantee acceptable levels of accuracy and timeliness in providing assistance to the elderly and the disabled. en_US
dc.language.iso en en_US
dc.subject EMERGENCY NOTIFICATION en_US
dc.subject SOCIAL ROBOTICS en_US
dc.subject SMART HOMES en_US
dc.subject INDEPENDENT LIVING en_US
dc.subject FALL DETECTION en_US
dc.subject POSTURE IDENTIFICATION en_US
dc.subject WHEELCHAIR USERS en_US
dc.subject ELECTRICAL ENGINEERING– Dissertation en_US
dc.title Intelligent fall detection and notification system for an IOT based smart home environment en_US
dc.type Thesis-Abstract en_US
dc.identifier.faculty Engineering en_US
dc.identifier.degree MSc In Electrical Engineering by research en_US
dc.identifier.department Department of Electrical Engineering en_US
dc.date.accept 2021
dc.identifier.accno TH4849 en_US


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