A micro motion sensing system for micromanipulation tasks
An optical-based motion sensing system has been developed for real-time sensing of instrument motion in micromanipulation. The main components of the system consist of a pair of position sensitive detectors (PSDs), lenses, an infrared (IR) diode that illuminates the workspace of the system, a non-re...
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sg-ntu-dr.10356-974952022-02-16T16:26:57Z A micro motion sensing system for micromanipulation tasks Tan, U Xuan Latt, Win Tun Georgiou, Andreas Sidarta, Ananda Ekaputera Riviere, Cameron N Ang, Wei Tech School of Mechanical and Aerospace Engineering An optical-based motion sensing system has been developed for real-time sensing of instrument motion in micromanipulation. The main components of the system consist of a pair of position sensitive detectors (PSDs), lenses, an infrared (IR) diode that illuminates the workspace of the system, a non-reflective intraocular shaft, and a white reflective ball attached at the end of the shaft. The system calculates 3D displacement of the ball inside the workspace using the centroid position of the IR rays that are reflected from the ball and strike the PSDs. In order to eliminate inherent nonlinearity of the system, calibration using a feedforward neural network is proposed and presented. Handling of different ambient light and environment light conditions not to affect the system accuracy is described. Analyses of the whole optical system and effect of instrument orientation on the system accuracy are presented. Sensing resolution, dynamic accuracies at a few different frequencies, and static accuracies at a few different orientations of the instrument are reported. The system and the analyses are useful in assessing performance of hand-held microsurgical instruments and operator performance in micromanipulation tasks. 2013-07-25T01:09:34Z 2019-12-06T19:43:18Z 2013-07-25T01:09:34Z 2019-12-06T19:43:18Z 2011 2011 Journal Article Latt, W. T., Tan, U-X., Georgiou, A., Sidarta, A. E., Riviere, C. N., & Ang, W. T. (2012). A micro motion sensing system for micromanipulation tasks. Sensors and Actuators A: Physical, 173(1), 254-266. 0924-4247 https://hdl.handle.net/10356/97495 http://hdl.handle.net/10220/12129 10.1016/j.sna.2011.09.009 22423177 en Sensors and actuators A : physical © 2011 Elsevier B.V. |
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An optical-based motion sensing system has been developed for real-time sensing of instrument motion in micromanipulation. The main components of the system consist of a pair of position sensitive detectors (PSDs), lenses, an infrared (IR) diode that illuminates the workspace of the system, a non-reflective intraocular shaft, and a white reflective ball attached at the end of the shaft. The system calculates 3D displacement of the ball inside the workspace using the centroid position of the IR rays that are reflected from the ball and strike the PSDs. In order to eliminate inherent nonlinearity of the system, calibration using a feedforward neural network is proposed and presented. Handling of different ambient light and environment light conditions not to affect the system accuracy is described. Analyses of the whole optical system and effect of instrument orientation on the system accuracy are presented. Sensing resolution, dynamic accuracies at a few different frequencies, and static accuracies at a few different orientations of the instrument are reported. The system and the analyses are useful in assessing performance of hand-held microsurgical instruments and operator performance in micromanipulation tasks. |
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School of Mechanical and Aerospace Engineering |
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School of Mechanical and Aerospace Engineering Tan, U Xuan Latt, Win Tun Georgiou, Andreas Sidarta, Ananda Ekaputera Riviere, Cameron N Ang, Wei Tech |
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Tan, U Xuan Latt, Win Tun Georgiou, Andreas Sidarta, Ananda Ekaputera Riviere, Cameron N Ang, Wei Tech |
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Tan, U Xuan Latt, Win Tun Georgiou, Andreas Sidarta, Ananda Ekaputera Riviere, Cameron N Ang, Wei Tech A micro motion sensing system for micromanipulation tasks |
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Tan, U Xuan |
title |
A micro motion sensing system for micromanipulation tasks |
title_short |
A micro motion sensing system for micromanipulation tasks |
title_full |
A micro motion sensing system for micromanipulation tasks |
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A micro motion sensing system for micromanipulation tasks |
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A micro motion sensing system for micromanipulation tasks |
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micro motion sensing system for micromanipulation tasks |
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2013 |
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https://hdl.handle.net/10356/97495 http://hdl.handle.net/10220/12129 |
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