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Analysis of Weiner Filter Approximation Value Based on Performance of Metrics of Image Restoration

机译:基于图像复原指标性能的维纳滤波器近似值分析

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Image restoration is used to recover the image quality by reducing or eliminating the noise to go back to its original image. This study aims to investigate the performance of the Wiener Filter approximation value based on Mean Squared Error (MSE), Structural Similarly Index Image (SSIM), Root Mean Squared Error (RMSE) and Peak Signal Noise Ratio (PSNR) using the three (3) sample images in different dimensions and image quality with the integration of five (5) different Gaussian noise and K-filter approximation values. Based on experiment result, the Gaussian Noise value of 10 marked a good performance based on the MSE for all the sample images however for the RMSE it performs very well in Image2 and SSIM for Image3 and the PSNR is evident in Image2. Indeed, the application of the said filter depends on the quality of the given image basis for the application of suitable measurements to achieve optimal results.
机译:图像恢复用于通过减少或消除噪声以恢复其原始图像来恢复图像质量。这项研究的目的是使用以下三点(3)来研究基于均方误差(MSE),结构相似索引图像(SSIM),均方根误差(RMSE)和峰值信号噪声比(PSNR)的维纳滤波器近似值的性能。 )通过五(5)个不同的高斯噪声和K滤波器近似值的积分来采样不同尺寸和图像质量的图像。根据实验结果,对于所有样本图像,基于MSE的高斯噪声值为10都表现出良好的性能,但是对于RMSE,它在Image2和SSIM中对Image3的表现都非常好,而PSNR在Image2中则很明显。实际上,所述滤波器的应用取决于给定图像基础的质量,以便应用适当的测量以获得最佳结果。

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