Title: | NEURAL NETWORKS FOR PRECISE MEASUREMENT IN COMPUTER VISION SYSTEMS |
Authors: | SU, CT CHANG, CA TIEN, FC 工業工程與管理學系 Department of Industrial Engineering and Management |
Keywords: | PRECISE MEASUREMENT;DIMENSIONAL INSPECTION;COORDINATE CALIBRATION;ERROR CORRECTION;MEASUREMENT CORRECTION;NEURAL NETWORKS;BACK PROPAGATION;COMPUTER VISION |
Issue Date: | 1-Nov-1995 |
Abstract: | Although computer vision systems have been successfully applied to some inspection tasks, they were generally not considered as precise measurement tools due to dimensional distortion and errors. This paper presents procedures to correct these errors for precise measurement. The first step is to formulate calibration models for image coordinate systems using neural networks. Then neural networks to model dimensional errors from the initial measurement are structured in a learning stage using standard parts. Finally these models are used to correct measurement errors in measurement tasks. These proposed procedures are implemented as an example. |
URI: | http://hdl.handle.net/11536/1672 |
ISSN: | 0166-3615 |
Journal: | COMPUTERS IN INDUSTRY |
Volume: | 27 |
Issue: | 3 |
Begin Page: | 225 |
End Page: | 236 |
Appears in Collections: | Articles |
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