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Hough Transform×Análise de Contorno×
ÁreaVisão computacionalVisão computacional
FamíliaMachine learningMachine learning
Ano de origem19621985
Autor originalPaul HoughSatoshi Suzuki and Keiichi Abe
TipoFeature extraction and pattern recognitionShape and contour analysis
Fonte seminalHough, P. V. C. (1962). Method and means for recognizing complex patterns. U.S. Patent 3,069,654. link ↗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 ↗
Outros nomesHough Line Detection, Generalized Hough TransformEdge-based contours, Boundary analysis
Relacionados55
ResumoThe Hough Transform is a technique for detecting lines, circles, and other geometric shapes in digital images. Originally patented by Paul Hough in 1962 and popularized in computer vision by Duda and Hart in 1972, the Hough Transform converts edge points in image space to curves in a parameter space (accumulator space), where collinear or co-circular points cluster and become easily identifiable.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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ScholarGateComparar métodos: Hough Transform · Contour Analysis. Recuperado em 2026-06-17 de https://scholargate.app/pt/compare