基于中值滤波器的CT图像去噪研究综述

Arwa Alhadi Omer, Obai Ibrahim Hassan, A. Ahmed, Alwaleed Abdelrahman
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引用次数: 12

摘要

医学影像是循证医学诊断的重要工具之一。然而,椒盐噪声可能会破坏原始图像,降低整体图像质量。使用计算机断层扫描(CT)图像数据库。在MATLAB环境下实现了滤波器的执行和评估算法。本文研究了标准中值滤波器(SMF)、自适应中值滤波器(AMF)、中心权重中值滤波器(CWMF)和渐进式切换中值滤波器(PSMF)四种基于中值的滤波器在医学图像中的应用性能。通过统计(纹理)和数学方法评估滤波过程的抗噪性和边缘保持性,通过峰值信噪比(PSNR)、均方误差(MSE)、相关比(CORR)和图像增强因子(IEF)进行降噪,并通过自动边缘检测作为边缘的视觉评价。结果表明,自适应中值滤波器(AMF)能够去除CT图像中的椒盐噪声,保持了图像的边缘和物体的细节信息,整体滤波器的对比表明,AMF具有较好的去噪效果和令人满意的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Denoising CT Images using Median based Filters: a Review
medical imaging is one of the essential tools for evidence-based medical diagnosis. However, salt and pepper noise could corrupt the original image, reducing the overall image quality. Computed tomography (CT) images database were used. The filter execution and evaluation algorithm were implemented using MATLAB environment. This article was conducted to study the performance of four different median based filters standard median filter (SMF), adaptive median filter AMF, center weight median filter (CWMF), and progressive switching median filter (PSMF), when applied to medical images. Noise immunity and edge-preserving were evaluated to characterizing the filtrations processes, by means of statistical (texture) and mathematical measures Peak Signal to Noise Ratio (PSNR), Mean Square Error (MSE), Correlation Ratio (CORR), and Image Enhancement Factor (IEF) for noise reduction, and automatic edge detection as visual evaluation for edges. The results shown that the Adaptive Median Filter(AMF) can remove the salt and pepper noise from CT image, the AMF algorithm maintain the edge of the image and detail information of the objects, And the overall filters comparison indicates a quite effective noise removal and satisfactory performance of AMF among others.
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