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首页> 外文期刊>International journal of computational vision and robotics >Adaptive multi-threshold based de-noising filter for medical image applications
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Adaptive multi-threshold based de-noising filter for medical image applications

机译:基于自适应多阈值的降噪滤波器,用于医学图像应用

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摘要

Medical image processing is the emerging research area and many researchers contributed to medical image processing by proposing new techniques for medical image enhancement and abnormality detection. Interpretation of medical images is a challenging problem because of the unavoidable noise produced by the medical imaging devices and interference. In this work, a new framework is proposed for noise detection and reduction. This framework comprises two phases. First phase is the noise detection phase which is performed using the newly proposed adaptive multi-threshold scheme (AMT). In second phase, modification of noisy pixel is done using edge preserving median filter (EPM), which conserves the edge component and controls the blurring effect with preservation of fine details of interior region. The proposed work is tested with benchmark images and few medical images. It produces promising result and the results are compared with existing two-stage noise reduction techniques. Popular performance metrics such PSNR and SSIM are used for evaluation. Quantitative analysis and experimental results demonstrate that the proposed method is more efficient and suitable for medical image pre-processing.
机译:医学图像处理是新兴的研究领域,许多研究人员通过提出用于医学图像增强和异常检测的新技术为医学图像处理做出了贡献。由于医学成像设备产生不可避免的噪声和干扰,因此医学图像的解释是一个具有挑战性的问题。在这项工作中,提出了一种用于噪声检测和降低的新框架。该框架包括两个阶段。第一阶段是使用新提出的自适应多阈值方案(AMT)执行的噪声检测阶段。在第二阶段,使用保留边缘的中值滤波器(EPM)修改噪点像素,该滤波器保留边缘分量并控制模糊效果,同时保留内部区域的精细细节。拟议的工作用基准图像和少量医学图像进行了测试。它产生了可喜的结果,并将结果与​​现有的两阶段降噪技术进行了比较。常用的性能指标(例如PSNR和SSIM)用于评估。定量分析和实验结果表明,该方法更加有效,适用于医学图像的预处理。

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