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首页> 外文期刊>Research journal of applied science, engineering and technology >Blind Image Restoration Based on Signal-to-Noise Ratio and Gaussian Point Spread Function Estimation
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Blind Image Restoration Based on Signal-to-Noise Ratio and Gaussian Point Spread Function Estimation

机译:基于信噪比和高斯点扩展函数估计的盲图像恢复

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摘要

In order to improve the quality of restored image, a blind image restoration algorithm is proposed, in which both the Signal-to-Noise Ratio (SNR) and the Gaussian Point Spread Function (PSF) of the degraded image are estimated. Firstly, the SNR of the degraded image is estimated through local deviation method. Secondly, the PSF of the degraded image is estimated through error-parameter method. Thirdly, Utilizing the estimated SNR and PSF, high resolution image is restored through Wiener filtering restoration algorithm. Experimental results show that the quality and peak signal-to-noise of the restored image are better around the real value and justify the fact that the SNR an-d PSF estimation plays great important part in blind image restoration.
机译:为了提高恢复图像的质量,提出了一种盲图像恢复算法,该算法同时估计了退化图像的信噪比(SNR)和高斯点扩展函数(PSF)。首先,通过局部偏差法估计退化图像的信噪比。其次,通过误差参数法估计退化图像的PSF。第三,利用估计的SNR和PSF,通过维纳滤波恢复算法恢复高分辨率图像。实验结果表明,恢复图像的质量和峰值信噪比在真实值附近更好,证明了SNR和PSF估计在盲图像恢复中起着重要作用。

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