首页> 外文会议>Internet Computing for Science and Engineering (ICICSE), 2012 Sixth International Conference on >Segmentation of Cerebral Venous Vessel in SWI Based on Multi-adaptive Threshold with Vessel Enhancement and Background Effects Elimination
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Segmentation of Cerebral Venous Vessel in SWI Based on Multi-adaptive Threshold with Vessel Enhancement and Background Effects Elimination

机译:基于血管增强和自适应背景消除的多自适应阈值的SWI脑静脉血管分割

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摘要

Accurate segmentation and extraction of the cerebral veins in susceptibility weighted MR image is helpful to clinical diagnosis. This paper demonstrates a multi-step combination approach, which uses region dividing method to suppress the high-frequency background effects caused by in homogeneity in the bottom brain, utilizes Vessel Enhance Diffusion filter to enhance the continuity of the vein and suppress the nucleus area, and develops a multi-adaptive threshold method to combine tubular structure based method and gray scale based method to finally realize the accurate segmentation of the vein. The results showed that the approach can detect the very small vessels of the brain and segment the vein from the brain tissue effectively.
机译:磁化加权MR图像中脑静脉的准确分割和提取有助于临床诊断。本文演示了一种多步骤组合方法,该方法使用区域划分方法来抑制由底部大脑的同质性引起的高频背景效应,利用血管增强扩散过滤器来增强静脉的连续性并抑制细胞核区域,并开发了一种多自适​​应阈值方法,将基于管状结构的方法和基于灰度的方法相结合,最终实现了对静脉的精确分割。结果表明,该方法可以检测出非常小的大脑血管,并有效地从脑组织中分离出静​​脉。

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