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TieteenalaKonenäköKonenäkö
MenetelmäperheMachine learningMachine learning
Syntyvuosi19991985
KehittäjäStauffer and GrimsonSatoshi Suzuki and Keiichi Abe
TyyppiTemporal image analysisShape and contour analysis
AlkuperäislähdeStauffer, C., & Grimson, W. E. L. (1999). Adaptive background mixture models for real-time tracking. IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 246–252. DOI ↗Suzuki, S., & Abe, K. (1985). Topological structural analysis of digitized binary images by border following. Computer Vision, Graphics, and Image Processing, 30(1), 32–46. DOI ↗
RinnakkaisnimetForeground detection, Video segmentationEdge-based contours, Boundary analysis
Liittyvät55
TiivistelmäBackground subtraction is a video processing technique that separates moving foreground objects from a static or slowly changing background by comparing each frame to a learned or estimated background model. Widely used in video surveillance and motion detection, background subtraction enables robust foreground detection even in complex scenes with illumination changes.Contour analysis is the process of detecting and analyzing the boundaries of objects in images by identifying connected edges and extracting shape information. The Suzuki-Abe algorithm provides an efficient method for finding contours in binary images, enabling shape-based object classification and segmentation.
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  1. v1
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  3. PUBLISHED

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ScholarGateVertaile menetelmiä: Background Subtraction · Contour Analysis. Haettu 2026-06-17 osoitteesta https://scholargate.app/fi/compare