SEGMENTASI CITRA PARU-PARU MENGGUNAKAN METODE KONTUR AKTIF DENGAN VALIDASI ROC

Sintha Syaputri, Z. Zulkarnain
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引用次数: 1

Abstract

Segmentation is the process of separating parts of objects from the background by dividing images that have different object intensities with each other such as in imaging of body parts. Active contour segmentation was used for medical imaging that resistant to noise around objects. This study used 5 chest X-Ray images, specifically to the lungs with a grayscale format measuring 256 x 256 pixels, through the preprocessing process and filtering  a Gaussian filter, each image was inputted to the R2015a version of the matlab GUI program. Then the segmentation had done by using the active contour method. In this method a curve in the form of a small circle was placed on the edge of object to be segmented. The curve will move according to the shape of the outer edge of the lung based on the values of active contour parameters such as Alpha, Beta, Gamma, Kappa, WEline, WEdge, WEterm and Iteration. Validation was done by using the ROC (Receiver Operating Characteristic) method and were obtained an average percentage with an accuracy value of 96.26%, a specificity of 96.47% and a sensitivity of 76.54%.
分割肺部意象使用与中华民国验证的活动等位化方法
分割是通过对物体强度不同的图像进行分割,将物体的部分从背景中分离出来的过程,如人体部位的成像。将主动轮廓分割应用于医学成像中,以抵抗物体周围的噪声。本研究使用5张胸部x射线图像,具体到肺部,灰度格式为256 × 256像素,通过预处理处理和高斯滤波器滤波,每张图像输入到R2015a版的matlab GUI程序中。然后利用活动轮廓法对图像进行分割。该方法在待分割对象的边缘上放置小圆形状的曲线。根据Alpha、Beta、Gamma、Kappa、WEline、WEdge、WEterm、Iteration等活动轮廓参数的值,曲线将根据肺外缘的形状移动。采用受试者工作特征(ROC)法进行验证,平均准确率为96.26%,特异性为96.47%,灵敏度为76.54%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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