Development of a device-free fall detection system in home environment
In this report, a simple methodology was proposed to identify falling entity using a wireless sensor network located in an indoor environment. Most of the other methodologies such as installing a camera and wearing an electronics devices are being proposed but this method does not required any perso...
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sg-ntu-dr.10356-745612023-07-07T16:17:08Z Development of a device-free fall detection system in home environment Tan, Kevin Peng Hsien Cheah Chien Chern School of Electrical and Electronic Engineering DRNTU::Engineering In this report, a simple methodology was proposed to identify falling entity using a wireless sensor network located in an indoor environment. Most of the other methodologies such as installing a camera and wearing an electronics devices are being proposed but this method does not required any personnel to carry any devices and at the same time detecting the human falls without invading any privacies. For this methodology, the monitored environment will have eight sensor nodes and each different parallel layer and height will be deployed four sensor nodes to monitor the received signal strength indicator (RSSI). The sensor nodes are call Bluetooth Low Energy (BLE) which will be programmed using Waspmote Application Programming Interface (API) function. The BLE will be working in pairs, either one will be a Master or a Slave to collect the changes in RSSI data that used to detect the presences of human and human falls. The data will be concluded through a falling algorithm using Kalman filter and a Median approach. Different network orientation and several test results will be executed to prove the effectiveness of this methodology. Bachelor of Engineering 2018-05-21T08:51:48Z 2018-05-21T08:51:48Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/74561 en Nanyang Technological University 56 p. application/pdf |
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DRNTU::Engineering Tan, Kevin Peng Hsien Development of a device-free fall detection system in home environment |
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In this report, a simple methodology was proposed to identify falling entity using a wireless sensor network located in an indoor environment. Most of the other methodologies such as installing a camera and wearing an electronics devices are being proposed but this method does not required any personnel to carry any devices and at the same time detecting the human falls without invading any privacies. For this methodology, the monitored environment will have eight sensor nodes and each different parallel layer and height will be deployed four sensor nodes to monitor the received signal strength indicator (RSSI). The sensor nodes are call Bluetooth Low Energy (BLE) which will be programmed using Waspmote Application Programming Interface (API) function. The BLE will be working in pairs, either one will be a Master or a Slave to collect the changes in RSSI data that used to detect the presences of human and human falls. The data will be concluded through a falling algorithm using Kalman filter and a Median approach. Different network orientation and several test results will be executed to prove the effectiveness of this methodology. |
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Cheah Chien Chern |
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Cheah Chien Chern Tan, Kevin Peng Hsien |
format |
Final Year Project |
author |
Tan, Kevin Peng Hsien |
author_sort |
Tan, Kevin Peng Hsien |
title |
Development of a device-free fall detection system in home environment |
title_short |
Development of a device-free fall detection system in home environment |
title_full |
Development of a device-free fall detection system in home environment |
title_fullStr |
Development of a device-free fall detection system in home environment |
title_full_unstemmed |
Development of a device-free fall detection system in home environment |
title_sort |
development of a device-free fall detection system in home environment |
publishDate |
2018 |
url |
http://hdl.handle.net/10356/74561 |
_version_ |
1772828564244135936 |