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A saliency dispersion measure for improving saliency-based image quality metrics

机译:显着性分散措施,用于改善基于显着性的图像质量指标

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摘要

Objective image quality metrics (IQMs) potentially benefit from the addition of visual saliency. However, challenges to optimising the performance of saliency-based IQMs remain. A previous eye-tracking study has shown that gaze is concentrated in fewer places in images with highly salient features than in images lacking salient features. From this, it can be inferred that the former are more likely to benefit from adding a saliency term to an IQM. To understand whether these ideas still hold when using computational saliency instead of eyetracking data, we first conducted a statistical evaluation using 15 state of the art saliency models and 10 well-known IQMs. We then used the results to devise an algorithm which adaptively incorporates saliency in IQMs for natural scenes, based on saliency dispersion. Experimental results demonstrate this can give significant improvements
机译:客观的图像质量指标(IQM)可能会受益于视觉显着性的增加。但是,优化基于显着性的IQM的性能仍然面临挑战。以前的眼动研究表明,与没有显着特征的图像相比,凝视集中在具有显着特征的图像中的位置更少。由此可以推断,前者更有可能从IQM中增加显着性术语而受益。为了了解在使用计算显着性而不是追踪数据时这些想法是否仍然成立,我们首先使用15个最先进的显着性模型和10个著名的IQM进行了统计评估。然后,我们使用结果来设计一种算法,该算法根据显着性分散性将IQMs中的显着性自适应地合并到自然场景中。实验结果表明,这可以显着改善

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