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首页> 外文期刊>Journal of computational science >Real-time automated image segmentation technique for cerebral aneurysm on reconfigurable system-on-chip
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Real-time automated image segmentation technique for cerebral aneurysm on reconfigurable system-on-chip

机译:可重配置片上系统的脑动脉瘤实时自动图像分割技术

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摘要

Cerebral aneurysm is a weakness in a blood vessel that may enlarge and bleed into the surrounding area, which is a life-threatening condition. Therefore, early and accurate diagnosis of aneurysm is highly required to help doctors to decide the right treatment. This work aims to implement a real-time automated segmentation technique for cerebral aneurysm on the Zynq system-on-chip (SoC), and virtualize the results on a 3D plane, utilizing virtual reality (VR) facilities, such as Oculus Rift, to create an interactive environment for training purposes. The segmentation algorithm is designed based on hard thresholding and Haar wavelet transformation. The system is tested on six subjects, for each consists 512 × 512 DICOM slices, of 16 bits 3D rotational angiography. The quantitative and subjective evaluation show that the segmented masks and 3D generated volumes have admitted results. In addition, the hardware implement results show that the proposed implementation is capable to process an image using Zynq SoC in an average time of 5.2 ms.
机译:脑动脉瘤是血管的弱点,可能会扩大并渗入周围区域,这是威胁生命的状况。因此,高度需要及早和准确地诊断动脉瘤,以帮助医生决定正确的治疗方法。这项工作旨在在Zynq片上系统(SoC)上实现脑动脉瘤的实时自动分割技术,并利用Oculus Rift等虚拟现实(VR)设施在3D平面上虚拟化结果,从而创建用于培训目的的交互式环境。基于硬阈值和Haar小波变换设计了分割算法。该系统在六个对象上进行了测试,每个对象包括512××512 DICOM切片,16比特3D旋转血管造影。定量和主观评估表明,分割的蒙版和3D生成的体积已接受结果。此外,硬件实现结果表明,所提出的实现能够使用Zynq SoC在平均5.2µms的时间内处理图像。

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