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A Method Towards Cerebral Aneurysm Detection in Clinical Settings

机译:临床环境中脑动脉瘤的检测方法

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摘要

Cerebral aneurysms are among most prevalent and devastating cerebrovascular diseases of adult population worldwide. The resulting sequelae of untimely/inadequate therapeutic intervention include subarachnoid hemorrhage. Geometric modeling of aneurysm being the first step in the treatment planning, the scientists therefore focus more on segmentation of aneurysm rather than its detection. A successful aneurysm detection among the bunch of vessels would certainly facilitate and ease the segmentation process. In this work, we present a novel method for aneurysm detection; the key contributions are: contrast enhancement of input image using stochastic resonance concept in wavelet domain, adaptive thresholding, and modified Hough Circle Transform. Experimental results show that the proposed method is efficient in detecting the location and type of aneurysm.
机译:脑动脉瘤是全世界成年人口中最普遍和最具破坏性的脑血管疾病之一。不合时宜/不适当的治疗干预导致的后遗症包括蛛网膜下腔出血。动脉瘤的几何建模是治疗计划的第一步,因此,科学家将更多的精力放在动脉瘤的分割上,而不是对其进行检测。成功地检测血管束中的动脉瘤肯定会促进和简化分割过程。在这项工作中,我们提出了一种新的动脉瘤检测方法。关键贡献在于:利用小波域中的随机共振概念增强输入图像的对比度,自适应阈值处理和改进的霍夫圆变换。实验结果表明,该方法能够有效地检测动脉瘤的位置和类型。

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