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Quality Assessment for Natural and Screen Content Images

机译:自然和筛选内容图像的质量评估

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Quality assessment (QA) of screen content images (SCIs) has gained more and more popularity. SCIs are very different from natural images (NIs) which have been dealing with by most researchers in the literature. QA methods specifically designed for NIs also can be used to evaluate the quality of SCIs. Yet, their performances are unsatisfactory. This may due to the statistical differences of SCIs and NIs. In this paper, SCIs and NIs QA methods in the literature are being compared and studied for both SCIs and NIs benchmarked databases. It is found out that methods that incorporate gradient features work well for both SCIs and NIs. This points out a possible way to utilize gradient features to come out with a QA method that works for both SCIs and NIs simultaneously. Hence, application related to SCIs and NIs such as deep learning and multitasking for person tracking system can be improved with the QA method.
机译:屏幕内容图像(SCI)的质量评估(QA)越来越受欢迎。 Scis与来自文学中大多数研究人员一直在处理的自然图像(NIS)非常不同。专为NIS专门设计的QA方法也可用于评估SCI的质量。然而,他们的表演令人不满意。这可能是由于SCI和NIS的统计差异。在本文中,对文献中的SCI和NIS QA方法进行了比较,研究了SCI和NIS基准数据库。它发现包含梯度特征的方法适用于SCI和NIS。这指出了利用梯度特征来使用QA方法的可能方法,该方法同时为SCI和NIS工作。因此,可以通过QA方法改善与SCI和NIS相关的SCI和NIS,例如人物跟踪系统的应用程序跟踪系统。

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