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通过快速随机优化鲁棒体素相似性度量实现磁共振成像/磁共振成像和磁共振成像/单光子发射计算机断层扫描脑图像配准

Registration of MR/MR and MR/SPECT brain images by fast stochastic optimization of robust voxel similarity measures.

作者信息

Nikou C, Heitz F, Armspach J P, Namer I J, Grucker D

机构信息

Faculté de Médecine, Institut de Physique Biologique, Strasbourg, France.

出版信息

Neuroimage. 1998 Jul;8(1):30-43. doi: 10.1006/nimg.1998.0335.

Abstract

This paper describes a robust, fully automated algorithm to register intrasubject 3D single and multimodal images of the human brain. The proposed technique accounts for the major limitations of the existing voxel similarity-based methods: sensitivity of the registration to local minima of the similarity function and inability to cope with gross dissimilarities in the two images to be registered. Local minima are avoided by the implementation of a stochastic iterative optimization technique (fast simulated annealing). In addition, robust estimation is applied to reject outliers in case the images show significant differences (due to lesion evolution, incomplete acquisition, non-Gaussian noise, etc.). In order to evaluate the performance of this technique, 2D and 3D MR and SPECT human brain images were artificially rotated, translated, and corrupted by noise. A test object was acquired under different angles and positions for evaluating the accuracy of the registration. The approach has also been validated on real multiple sclerosis MR images of the same patient taken at different times. Furthermore, robust MR/SPECT image registration has permitted the representation of functional features for patients with partially complex seizures. The fast simulated annealing algorithm combined with robust estimation yields registration errors that are less than 1 degree in rotation and less than 1 voxel in translation (image dimensions of 128(3)). It compares favorably with other standard voxel similarity-based approaches.

摘要

本文描述了一种强大的全自动算法,用于配准人类大脑的个体内三维单模态和多模态图像。所提出的技术解决了现有基于体素相似性方法的主要局限性:配准对相似性函数局部最小值的敏感性以及无法处理待配准的两幅图像中的显著差异。通过实施一种随机迭代优化技术(快速模拟退火)来避免局部最小值。此外,在图像显示出显著差异(由于病变演变、采集不完整、非高斯噪声等)的情况下,应用稳健估计来剔除异常值。为了评估该技术的性能,对二维和三维磁共振成像(MR)及单光子发射计算机断层扫描(SPECT)人脑图像进行了人工旋转、平移并添加噪声。获取了一个测试对象在不同角度和位置的图像,以评估配准的准确性。该方法还在同一患者不同时间拍摄的真实多发性硬化症MR图像上得到了验证。此外,稳健的MR/SPECT图像配准使得能够呈现部分复杂性癫痫患者的功能特征。结合稳健估计的快速模拟退火算法产生的配准误差在旋转方面小于1度,在平移方面小于1个体素(图像尺寸为128×128×128)。与其他基于体素相似性的标准方法相比,它具有优势。

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