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Segmentation of ischemic stroke area from CT brain images

机译:从CT脑图像分割缺血性卒中区域

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Due to its wide availability, speed, and price, Computer Tomography (CT) without contrast injection has been the first imaging modality for the evaluation of acute ischemic stroke. However, the early signs of brain ischemia are subtle and not visible on CT scan. For this regard, we propose, in this paper, an approach for ischemic detection based on contrast enhancement of CT brain images. Our method has three stages: preprocessing, image enhancement and classification. First, skull bones and noise are removed; then a multi-scale contrast enhancement algorithm based on Laplacian Pyramid (LP) is developed to enhance the contrast of the brain CT images for identification of hypo-attenuation of acute stroke. Finally, “fuzzy c means” classification is applied to extract the ischemic area from normal tissues. The execution of our method gives impressive results.
机译:由于其广泛的可用性,速度和价格,不使用造影剂注射的计算机断层扫描(CT)已成为评估急性缺血性中风的首个成像方式。但是,脑缺血的早期迹象很细微,在CT扫描中不可见。为此,我们提出一种基于CT脑图像对比增强的缺血检测方法。我们的方法分为三个阶段:预处理,图像增强和分类。首先,去除颅骨和噪音;然后开发了一种基于拉普拉斯金字塔(LP)的多尺度对比度增强算法,以增强大脑CT图像的对比度,以识别急性中风的低衰减。最后,应用“模糊c均值”分类从正常组织中提取缺血区域。我们方法的执行给出了令人印象深刻的结果。

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