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A multi-resolution transform for deblurring of images in the presence of impulse noise for real-time images

机译:用于实时图像的脉冲噪声存在下图像的多分辨率变换

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Abstract: Noise in an image tends to reduce the quality of the image by modifying the contrast and resolution and thereby making the process of extraction of information from the image is a challenging task. Deblurring of images in the presence of noise as it may be impulsive or multiplicative is a challenging task. It is essentially an issue of the trade-off between deblurring and denoising. A non-subsampled Contourlet transform has been used in a hybrid approach to address the trade-off factor in this paper. Removal of blur using Point Spread Function (PSF) or other methods introduces an amplification of noise in high-frequency regions of the image. The proposed work exploits the directionality features of the Contourlet transform to provide a balance in the optimisation problem. The experimentations have been conducted on standard test images and performance measured in terms of Peak Signal to Noise Ratio and Mean Squared Error.
机译:摘要:通过修改对比度和分辨率,图像中的噪声倾向于降低图像的质量,从而使图像提取信息的过程是一个具有挑战性的任务。 在噪音存在下图像的去抑制,因为它可能是脉冲或乘法的是一个具有挑战性的任务。 它基本上是脱落与去噪之间的权衡问题。 在混合方法中使用了非分配的轮廓变换来解决本文的权衡因素。 使用点扩展功能(PSF)或其他方法去除模糊引入了图像的高频区域中的噪声的放大。 所提出的工作利用Contourlet变换的方向特征来在优化问题中提供平衡。 已经在标准测试图像和峰值信号与噪声比和均方误差衡量的性能上进行了实验。

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