首页> 外文会议>IEEE International Conference on Image Processing;ICIP 2012 >Objective quality assessment for image super-resolution: A natural scene statistics approach
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Objective quality assessment for image super-resolution: A natural scene statistics approach

机译:图像超分辨率的客观质量评估:自然场景统计方法

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There has been an increasing number of image super-resolution (SR) algorithms proposed recently to create images with higher spatial resolution from low-resolution (LR) images. Nevertheless, how to evaluate the performance of such SR and interpolation algorithms remains an open problem. Subjective assessment methods are useful and reliable, but are expensive, time-consuming, and difficult to be embedded into the design and optimization procedures of SR and interpolation algorithms. Here we make one of the first attempts to develop an objective quality assessment method of a given resolution-enhanced image using the available LR image as a reference. Our algorithm follows the philosophy behind the natural scene statistics (NSS) approach. Specifically, we build statistical models of frequency energy falloff and spatial continuity based on high quality natural images and use the departures from such models to quantify image quality degradations. Subjective experiments have been carried out that verify the effectiveness of the proposed approach.
机译:最近提出了越来越多的图像超分辨率(SR)算法,以从低分辨率(LR)图像创建具有更高空间分辨率的图像。然而,如何评估这种SR和插值算法的性能仍然是一个悬而未决的问题。主观评估方法是有用且可靠的,但是昂贵,费时且难以嵌入到SR和插值算法的设计和优化过程中。在这里,我们进行了以可用的LR图像为参考,开发给定分辨率增强图像的客观质量评估方法的首次尝试之一。我们的算法遵循自然场景统计(NSS)方法背后的理念。具体来说,我们基于高质量的自然图像建立频率能量衰减和空间连续性的统计模型,并使用与此类模型的偏差来量化图像质量下降。已经进行了主观实验,以验证所提出方法的有效性。

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