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Evaluation of Spatial Filtering Techniques in Retinal Fundus Images

机译:视网膜眼底图像的空间滤波技术评价

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The denoising of the fundus images is an essential pre-processing step in glaucoma diagnosis to ensure sufficient quality for the Computer Aided Diagnosing (CAD) system. In this paper, we present an evaluation approach for different denoising filters of eye fundus images that suffer from two different types of noises (Gaussian noise and Salt & Pepper noise), which had been applied to the retinal images and then various Spatial filtering techniques like linear (Gaussian, mean), nonlinear filtering (median) and adaptive filtering have been implemented to three types of images (original images, images with salt and pepper noise and images with Gaussian noise) and their performance are compared to each other based on evaluation parameters: Mean Squared Error (MSE), Peak Signal Noise Ratio (PSNR) and Structural Similarity (SSIM). The results showed that the adaptive median filter has the best performance in salt & paper noise and the adaptive filter has the best performance for Gaussian noise, but their performance is close to each other. In conclusion, six spatial filters applied to RIM-ONE fundus image database and found that, the adaptive median filter has the best performance compared to other filters to remove these noises and increase the quality of the resulting images, which can be implemented to the CAD system.
机译:眼底图像的去噪是青光眼诊断中必不可少的预处理步骤,以确保为计算机辅助诊断(CAD)系统提供足够的质量。在本文中,我们提出了一种针对眼底图像的不同降噪滤波器的评估方法,该方法具有两种不同类型的噪声(高斯噪声和盐和胡椒噪声),这些噪声已应用于视网膜图像,然后应用了各种空间滤波技术,例如线性(高斯,均值),非线性滤波(中值)和自适应滤波已应用于三种类型的图像(原始图像,盐和胡椒噪声图像以及高斯噪声图像),并且根据评估结果将它们的性能进行了相互比较参数:均方误差(MSE),峰值信号噪声比(PSNR)和结构相似度(SSIM)。结果表明,自适应中值滤波器在盐和纸噪声方面具有最佳性能,而自适应滤波器在高斯噪声方面具有最佳性能,但是它们的性能彼此接近。总之,将六个空间滤波器应用于RIM-ONE眼底图像数据库,发现与其他滤波器相比,自适应中值滤波器在去除这些噪声和提高最终图像质量方面具有最佳性能,可将其应用于CAD系统。

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