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Perceptual quality assessment of color images using adaptive signal representation

机译:使用自适应信号表示法对彩色图像进行感知质量评估

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Perceptual image distortion measures can play a fundamental role in evaluating and optimizing imaging systems and image processing algorithms. Many existing measures are formulated to represent "just noticeable differences" (JNDs), as measured in psychophysical experiments on human subjects. But some image distortions, such as those arising from small changes in the intensity of the ambient illumination, are far more tolerable to human observers than those that disrupt the spatial structure of intensities and colors. Here, we introduce a framework in which we quantify these perceptual distortions in terms of "just intolerable differences" (JIDs). As in (Wang & Simoncelli, Proc. ICIP 2005), we first construct a set of spatio-chromatic basis functions to approximate (as a first-order Taylor series) a set of "non-structural" distortions that result from changes in lighting/imaging/viewing conditions. These basis functions are defined on local image patches, and are adaptive, in that they are computed as functions of the undistorted reference image. This set is then augmented with a complete basis arising from a linear approximation of the CIELAB color space. Each basis function is weighted by a scale factor to convert it into units corresponding to JIDs. Each patch of the error image is represented using this weighted overcomplete basis, and the overall distortion metric is computed by summing the squared coefficients over all such (overlapping) patches. We implement an example of this metric, incorporating invari-ance to small changes in the viewing and lighting conditions, and demonstrate that the resulting distortion values are more consistent with human perception than those produced by CIELAB or S-CIELAB.
机译:感知图像失真的措施可以在评估和优化成像系统和图像处理算法中发挥基本作用。制定了许多现有措施来表示“恰到好处的差异”(JND),这是在对人类受试者进行的心理物理实验中测得的。但是,与破坏强度和颜色的空间结构的那些图像失真相比,某些图像失真(例如由环境照明强度的微小变化引起的图像失真)对人类观察者的容忍度要高得多。在这里,我们介绍一个框架,在该框架中,我们根据“恰好无法忍受的差异”(JID)量化这些感知失真。像在(Wang&Simoncelli,Proc。ICIP 2005)中一样,我们首先构造一组时空色基函数,以近似(作为一阶泰勒级数)一组由照明变化导致的“非结构”失真/成像/观看条件。这些基本函数在局部图像块上定义,并且是自适应的,因为它们被计算为未失真参考图像的函数。然后,使用基于CIELAB颜色空间的线性近似的完整基础来扩充该集合。每个基函数都由比例因子加权,以将其转换为与JID对应的单位。误差图像的每个斑块都使用此加权的超完备基数表示,并且通过对所有此类(重叠)斑块上的平方系数求和来计算总失真度量。我们实现了该指标的一个示例,该规范将不变性纳入了观看和照明条件的微小变化,并证明了与CIELAB或S-CIELAB产生的失真值相比,失真值更符合人类的感知。

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