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Original Objective Edge Similarity Metric for denoising applications in MR images

机译:原始物镜边缘相似度指标在MR图像中的去噪应用

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摘要

Edge Similarity Metrics (ESMs) are necessary to objectively quantify the inadvertent blur at the edge pixels which occurs during denoising. They are helpful for evaluating edge-preserving capability of nonlinear filters. Most of the ESMs in literature, consider similarity of either strength of the edges or their direction individually. They lag in terms of concordance with subjective edge similarity ratings. An Objective Edge Similarity Metric (OESM) which considers all three attributes of edges; strength, direction and width together, is proposed in this paper. Pearson's Correlation shown by Gradient Magnitude Similarity Deviation (GMSD), Gradient Similarity Measure (GSM), Edge Strength Similarity Index Metric (ESSIM) and OESM with Subjective Edge Similarity Score (SESS) are -0.9669 ++/- 0.0028, 0.9566 +/- 0.0053, 0.9507 +/- 0.0057 and 0.9848 +/- 0.0038, respectively. OESM is able to measure the degree of edge similarity between images more efficiently than GMSD, GSM and ESSIM. It reflects the perceptual edge similarity between images more accurately than GMSD, GSM and ESSIM. (c) 2020 Nalecz Institute of Biocybernetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier B.V. All rights reserved.
机译:边缘相似度指标(ESMS)是必要的,客观地量化在去噪期间发生的边缘像素处的无意模糊。它们有助于评估非线性滤波器的边缘保存能力。大多数文献中的ESMS,考虑单独的边缘或其方向的相似性。他们在具有主观边缘相似性评级的一致性方面延迟。考虑边缘所有三个属性的目标边缘相似度(oesm);在本文中提出了强度,方向和宽度。 Pearson的相关性通过梯度幅度相似性偏差(GMSD),梯度相似度测量(GSM),边缘强度相似度指数度量(ESSIM)和具有主观边缘相似性评分(Sess)的OESM为-0.9669 ++ / - 0.0028,0.9566 +/- 0.0053,0.9507 +/- 0.0057和0.9848 +/- 0.0038,分别为0.0038。 OESM能够比GMSD,GSM和ESSIM更有效地测量图像之间的边缘相似度。它比GMSD,GSM和ESSIM更精确地反映图像之间的感知边缘相似性。 (c)2020纳尔梁兹生物庭院研究所和波兰科学院生物医学工程。 elsevier b.v出版。保留所有权利。

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