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An improved edge detection algorithm for X-Ray images based on the statistical range

机译:基于统计范围的改进型X射线图像边缘检测算法

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摘要

Edge detection is the prior stage to object recognition and considered as a pillar for image processing task. It is a process to detect such locations from images in terms of pixels where their intensity changing is abruptly. There are many types of images such as medical images, satellite images, articular images, industrial images, general purpose images etc. X-Ray is a type of medical image in which electronic radiation is passed into the human body to capture image of inner parts for better disease diagnoses by orthopaedics or radiologist. In this research paper, we have proposed an improved method to detect edges from human being's X-Ray images based on Gaussian filter and statistical range. Gaussian filter is used for image preprocessing and enhancement. Whereas, Statistical range is used to calculate difference between maximum and minimum pixels from every 3X3 image matrix partition. These two can work to detect edges from X-Ray images. We have also presented a comprehensive comparison of our proposed method with four existing latest methods/algorithms of edge detection. Apart from X-Ray images, experiments have also been conducted on human X-Ray images to detect edges. Further, we have found that our proposed method is superior in terms of MSE, RMSE, PSNR and computation time to detect edges from X-Ray images of human being.
机译:边缘检测是物体识别的第一步,被认为是图像处理任务的基础。这是一种从像素强度突然变化的像素中检测此类位置的过程。存在许多类型的图像,例如医学图像,卫星图像,关节图像,工业图像,通用图像等。X射线是医学图像类型,其中电子辐射会传递到人体中以捕获内部零件的图像。通过骨科医师或放射科医生进行更好的疾病诊断。在本文中,我们提出了一种基于高斯滤波器和统计范围的从人的X射线图像检测边缘的改进方法。高斯滤波器用于图像预处理和增强。而统计范围用于计算每个3X3图像矩阵分区中最大像素和最小像素之间的差异。这两个可以用来检测X射线图像的边缘。我们还介绍了我们提出的方法与四种现有的边缘检测最新方法/算法的全面比较。除X射线图像外,还对人体X射线图像进行了实验以检测边缘。此外,我们发现,我们提出的方法在从人的X射线图像检测边缘方面,在MSE,RMSE,PSNR和计算时间方面均具有优势。

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