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Dilated filters for edge detection algorithms
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Edges are a basic and fundamental feature in image processing, that are used directly or indirectly in huge amount of applications. Inspired by the expansion of image resolution and processing power dilated convolution techniques appeared. Dilated convolution have impressive results in machine learning, we discuss here the idea of dilating the standard filters which are used in edge detection algorithms. In this work we try to put together all our previous and current results by using instead of the classical convolution filters a dilated one. We compare the results of the edge detection algorithms using the proposed dilation filters with original filters or custom variants. Experimental results confirm our statement that dilation of filters have positive impact for edge detection algorithms form simple to rather complex algorithms.
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Cited by 1 Pith paper
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Defective Edge Detection Using Cascaded Ensemble Canny Operator
A short paper claims a quaternion Canny variant reaches about 99 percent accuracy for edge detection, but the algorithm, evaluation protocol, and code are all underspecified.
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