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Blind structural similarity estimation of digital images using quantized discrete cosine transform coefficients

机译:使用量化离散余弦变换系数的数字图像盲结构相似性估计

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摘要

Objective image quality assessment is used to develop a quantitative measure in order to predict perceived image quality by exploiting a variety of known properties of the human visual system (HVS). A new paradigm for quality assessment of the image is based on the structural similarity (SSIM) index, which takes advantage of characteristics of the HVS. In order to estimate SSIM, we need to know the source image to quantify the visibility of errors between the distorted image and the referenced image. In many practical applications, however, the reference image is not available and a blind quality assessment should be utilized. In this paper, an algorithm for statistical estimation of the SSIM based on the probability density functions (pdfs) of quantized discrete cosine transform (DCT) coefficients is presented. In the proposed method, we assume that the pdfs of the original DCT coefficients follow a specific distribution. The parameters of this distribution are then obtained from the quantization step size and quantized DCT coefficients of the distorted image, which are then used to calculate the SSIM metric. Our proposed method is, therefore, applicable to the encoding schemes that involve DCT quantization such as JPEG encoding. Numerical results show that the proposed SSIM estimation method provides relative errors that are generally smaller than those of the available peak signal-to-noise ratio estimation schemes for DCT-based images.
机译:客观图像质量评估用于开发定量方法,以便通过利用人类视觉系统(HVS)的各种已知属性来预测感知的图像质量。用于图像质量评估的新范例基于结构相似性(SSIM)索引,该索引利用了HVS的特性。为了估计SSIM,我们需要知道源图像以量化失真图像和参考图像之间错误的可见性。但是,在许多实际应用中,参考图像不可用,应该使用盲法质量评估。本文提出了一种基于量化离散余弦变换(DCT)系数的概率密度函数(pdf)的SSIM统计估计算法。在提出的方法中,我们假设原始DCT系数的pdf遵循特定分布。然后从失真图像的量化步长和量化的DCT系数中获得此分布的参数,然后将其用于计算SSIM度量。因此,我们提出的方法适用于涉及DCT量化的编码方案,例如JPEG编码。数值结果表明,所提出的SSIM估计方法提供的相对误差通常小于基于DCT图像的可用峰值信噪比估计方案的相对误差。

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