结合MSER、SURF和SIFT描述符的脑动脉瘤计算机辅助检测系统

Inès Rahmany, Becem Arfaoui, Nawrès Khlifa, H. Megdiche
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引用次数: 9

摘要

计算机辅助检测(CAD)系统用于检测脑动脉瘤(CA)在预防颅内蛛网膜下腔出血(HSA)中发挥重要作用,其实用性已被报道。本文提出了一种CAD检测DSA血管造影图像中CA的方法,该方法结合了最大稳定极值区域(MSER)、加速鲁棒特征(SURF)和尺度不变特征变换(SIFT)这三种鲁棒特征/兴趣点检测器方法。在提供的基准上,拟议的CAD的结果非常令人鼓舞。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cerebral Aneurysm Computer-Aided Detection System by combing MSER, SURF and SIFT descriptors
Computer-Assisted Detection (CAD) systems for detecting Cerebral Aneurysms (CA) present an important influence in the prevention of Intracranial HSA (Subarachnoid Hemorrhage), their usefulness haves been reported. We propose in this paper, a CAD to detect CA in DSA angiographic images by combining different methods for robust features/interest points detector which are Maximally Stable Extremal Regions (MSER), Speed Up Robust Features (SURF) and Scale Invariant Feature Transform (SIFT). The results on the proposed CAD over the provided benchmark are very encouraging.
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