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No-reference image quality assessment based on gradient histogram response

delete2016-08-01
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PRE
AI
T
Tongfeng Sun
S
Shifei Ding *
陈
陈卫 (Wei Chen)
X
Xinzheng Xu
DOI:10.1016/j.compeleceng.2015.11.007delete
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摘要

摘要

En 中文
In view of the fact that objects with different natures usually respond differently to the same external stimulus, this paper proposes a no-reference image quality assessment based on gradient histogram response (GHR). GHR is the gradient histogram variation of an image object under a local transform. In the metric, through preprocessing, a test image is transformed to a noise image and a blur image, which are taken as two image objects. Each image object is exerted with a local transform as an object input, and its GHR as an object output is extracted in multiscale space. The two GHRs compose a global feature vector and are mapped to an image quality score. Experiments show that GHR outperforms state-of-the-art no-reference metrics statistically in the condition that test images are degraded by different types of distortions. Especially, the metric is feasible for the quality assessment of the images degraded by mixed distortions though the types of these images are not included in the training database. (C) 2015 Elsevier Ltd. All rights reserved.
Keyword:
Gradient histogram response
Object input
Object output
Local image transform
No-reference image quality assessment
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期刊

C
Computers and Electrical Engineering
IF:
4.9
论文数:
6.7K
被引数:
1.3W

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