2019
DOI: 10.1155/2019/9594301
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Research on Coal-Rock Fracture Image Edge Detection Based on Tikhonov Regularization and Fractional Order Differential Operator

Abstract: Aiming at the conventional image edge detection algorithm, the first-order differential edge detection method is easy to lose the image details and the second-order differential edge detection method is more sensitive to noise. To deal with the problem, the Tikhonov regularization method is adopted to reconstruct the input coal-rock infrared images, so as to reduce the noise interference, and then, the reconstructed image is transformed by gray level. Finally, we consider the frequency characteristics and long… Show more

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Cited by 5 publications
(3 citation statements)
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References 33 publications
(23 reference statements)
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“…where N G is the numbers of the actual edges, N E is the number of the detected edges by the algorithm, α is the scaling constant, and d(k) is the displacement of the detected edge from the actual edge. This measure has been used by researchers, including Yahya et al [ [61], they addressed FOM as the quality factor Q.…”
Section: ) Entropymentioning
confidence: 99%
See 1 more Smart Citation
“…where N G is the numbers of the actual edges, N E is the number of the detected edges by the algorithm, α is the scaling constant, and d(k) is the displacement of the detected edge from the actual edge. This measure has been used by researchers, including Yahya et al [ [61], they addressed FOM as the quality factor Q.…”
Section: ) Entropymentioning
confidence: 99%
“…In the work by Liu and Ren [61], in addition to the processing time, they also have reported the memory footprint, which was measured in megabytes (MB). Higher value of memory footprint indirectly indicates that the algorithm is more complex.…”
Section: ) Processing Time or Computational Complexitymentioning
confidence: 99%
“…So far, a large number of scholars have conducted extensive research on coal-rock interface identification methods, and proposed a variety of coal-rock interface identification methods. The most influential methods are gamma-ray inspection, 5 ultrasonic inspection, 6 infrared inspection, 7 image inspection 8,9 and so on. However, because the working environment of the shearer is noisy, dusty and dark, the collected sound and image signals contain more interference information.…”
Section: Introductionmentioning
confidence: 99%