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基于血管的配准用于校正脑移位的验证。

Validation of vessel-based registration for correction of brain shift.

作者信息

Reinertsen I, Descoteaux M, Siddiqi K, Collins D L

机构信息

Montreal Neurological Institute (MNI), McGill University, Montréal, Canada.

出版信息

Med Image Anal. 2007 Aug;11(4):374-88. doi: 10.1016/j.media.2007.04.002. Epub 2007 Apr 19.

DOI:10.1016/j.media.2007.04.002
PMID:17524702
Abstract

The displacement and deformation of brain tissue is a major source of error in image-guided neurosurgery systems. We have designed and implemented a method to detect and correct brain shift using pre-operative MR images and intraoperative Doppler ultrasound data and present its validation with both real and simulated data. The algorithm uses segmented vessels from both modalities, and estimates the deformation using a modified version of the iterative closest point (ICP) algorithm. We use the least trimmed squares (LTS) to reduce the number of outliers in the point matching procedure. These points are used to drive a thin-plate spline transform to achieve non-linear registration. Validation was completed in two parts. First, the technique was tested and validated using realistic simulations where the results were compared to the known deformation. The registration technique recovered 75% of the deformation in the region of interest accounting for deformations as large as 20 mm. Second, we performed a PVA-cryogel phantom study where both MR and ultrasound images of the phantom were obtained for three different deformations. The registration results based on MR data were used as a gold standard to evaluate the performance of the ultrasound based registration. On average, deformations of 7.5 mm magnitude were corrected to within 1.6 mm for the ultrasound based registration and 1.07 mm for the MR based registration.

摘要

脑组织的位移和变形是图像引导神经外科手术系统中误差的主要来源。我们设计并实现了一种利用术前磁共振成像(MR)图像和术中多普勒超声数据来检测和校正脑移位的方法,并通过真实数据和模拟数据对其进行了验证。该算法使用来自两种模态的分割血管,并使用迭代最近点(ICP)算法的改进版本来估计变形。我们使用最小截尾二乘法(LTS)来减少点匹配过程中的异常值数量。这些点用于驱动薄板样条变换以实现非线性配准。验证分两部分完成。首先,使用逼真的模拟对该技术进行测试和验证,将结果与已知变形进行比较。配准技术在感兴趣区域恢复了75%的变形,变形量高达20毫米。其次,我们进行了聚乙烯醇(PVA)-冷冻凝胶体模研究,针对三种不同变形获取了体模的MR和超声图像。基于MR数据的配准结果被用作金标准来评估基于超声的配准性能。平均而言,基于超声的配准将7.5毫米大小的变形校正到1.6毫米以内,基于MR的配准校正到1.07毫米以内。

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