胸片时间相减的多层分块图像配准方法

Qian Yu, Lifeng He, T. Nakamura, K. Suzuki, Y. Chao
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引用次数: 2

摘要

肺癌是世界上最常见的癌症。早期发现对降低肺癌死亡率至关重要。胸部x线摄影已被广泛和频繁地用于肺癌的检测和诊断。为了评估胸片的病理变化,放射科医生经常将同一患者在不同时间拍摄的先前胸片与当前胸片进行比较。一个时间减法图像,即从当前的x光片中减去之前的x光片,通常用于支持这种比较工作。提出了一种多层分块配准胸片时间相减的方法。首先,利用肋间互信息进行全局匹配;然后,采用多层分划方法将全局匹配后的图像划分为四组寺庙子区域。对于每组中的单个局部子区域,我们使用遗传算法在前一图像中有效地找到其对应的区域。根据遗传算法的结果,根据四组寺庙子区域构造新的匹配图像,并对匹配图像进行相减,构造时间相减图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A multilayered partitioning image registration method for chest-radiograph temporal subtraction
Lung cancer has been the most common cancer in the world. Early detection is the most important for reducing the death due to lung cancer. Chest radiography has been widely and frequently used for detection and diagnosis on lung cancer. To assess pathological changes in chest radiographs, radiologists often compare the previous chest radiograph and the current one obtained from the same patient at different times. A temporal subtraction image, which is constructed subtracting the previous radiograph from the current one, is often used to support this comparison work. This paper presents a multilayered partitioning image registration method for chest-radiograph temporal subtraction. First, we used global matching based on the mutual information of ribs. Then, we divide the images after global matching into four groups of temple subareas used multilayered partitioning method. For individual local subarea in each group, we use a genetic algorithm to efficiently find its corresponding area in the previous image. By the result of genetic algorithm, we construct the new matching image according to the four groups of temple subareas, and subtract the matching image to construct the temporal subtraction image.
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