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首页> 外文期刊>Computers and Electrical Engineering >An imaging-inspired no-reference underwater color image quality assessment metric
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An imaging-inspired no-reference underwater color image quality assessment metric

机译:一个成像激励的无参考水下彩色图像质量评估度量

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摘要

Underwater color image quality assessment (IQA) plays an important role in analysis and applications of underwater imaging as well as image processing algorithms. This paper presents a new metric inspired by the imaging analysis on underwater absorption and scattering characteristics, dubbed the CCF. This metric is feature-weighted with a combination of colorfulness index, contrast index and fog density index, which can quantify the color loss caused by absorption, the blurring caused by forward scattering and the foggy caused by backward scattering, respectively. Then multiple linear regression is used to calculate three weighted coefficients. A new underwater image database is built to illustrate the performance of the proposed metric. Experimental results show a strong correlation between the proposed metric and mean opinion score (MOS). The proposed CCF metric outperforms many of the leading atmospheric IQA metrics, and it can effectively assess the performance of underwater image enhancement and image restoration methods. (C) 2017 Elsevier Ltd. All rights reserved.
机译:水下彩色图像质量评估(IQA)在水下成像的分析和应用中起重要作用以及图像处理算法。本文提出了一种新的度量,其对水下吸收和散射特性的成像分析引起的,称为CCF。该度量标准具有炫彩指数,对比度指数和雾密度指数的组合,可以分别量化吸收引起的颜色损耗,分别由前向散射引起的模糊和由后向散射引起的雾。然后使用多元线性回归来计算三个加权系数。建立一个新的水下图像数据库,以说明所提出的度量的性能。实验结果表明,拟议的指标和平均意见分数(MOS)之间存在强烈的相关性。所提出的CCF公制优于许多领先的大气IQA指标,并且可以有效地评估水下图像增强和图像恢复方法的性能。 (c)2017 Elsevier Ltd.保留所有权利。

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