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نظریه مقیاس-فضا×آشکارساز لبه Canny×
حوزهبینایی ماشینبینایی ماشین
خانوادهMachine learningMachine learning
سال پیدایش19831986
پدیدآورAndrew Witkin and Tony LindebergJohn Canny
نوعTheoretical framework for multi-scale processingImage gradient analysis
منبع بنیادینLindeberg, T. (1994). Scale-space theory: A basic tool for analyzing structures at different scales. Journal of Applied Statistics, 21(2), 225–270. DOI ↗Canny, J. (1986). A computational approach to edge detection. IEEE Transactions on Pattern Analysis and Machine Intelligence, 8(6), 679–698. DOI ↗
نام‌های دیگرMulti-scale analysis, Gaussian scale-spaceCanny operator, Canny edge detector
مرتبط55
خلاصهScale-space theory, developed by Witkin and Lindeberg, provides a principled mathematical framework for analyzing images at multiple scales simultaneously. By treating scale as an explicit dimension and using Gaussian blurring, scale-space theory enables detection and analysis of features at appropriate scales, solving the fundamental problem of 'which scale should I analyze at?'The Canny edge detector, introduced by John Canny in 1986, is a multi-stage algorithm for identifying edges in digital images where significant intensity changes occur. Canny's method is optimal for step edges in additive Gaussian noise and remains the gold standard for edge detection in computer vision due to its mathematical elegance and practical effectiveness.
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ScholarGateمقایسهٔ روش‌ها: Scale-Space Theory · Canny Edge Detection. بازیابی‌شده در 2026-06-18 از https://scholargate.app/fa/compare