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一种用于测试跨模态图像配准准确性的指标:验证与应用

A metric for testing the accuracy of cross-modality image registration: validation and application.

作者信息

Black K J, Videen T O, Perlmutter J S

机构信息

Department of Radiology Washington University School of Medicine, St. Louis, MO 63110-1093, USA.

出版信息

J Comput Assist Tomogr. 1996 Sep-Oct;20(5):855-61. doi: 10.1097/00004728-199609000-00038.

Abstract

PURPOSE

Our goals were to (a) develop and validate a sensitive measure of image registration, applicable between as well as within imaging modalities; and (b) quantify the accuracy of the automated image registration (AIR) algorithm in retrospectively registering MR and PET images of baboon brain.

METHOD

We studied five monkeys, each with a surgically implanted "cap" that was bolted to an acrylic headholder containing fiducial markers. Anatomic MRI and PET H2 15O blood flow images were aligned using AIR (ignoring the fiducials).

RESULTS

(a) Fiducial points were localized to about one-tenth the voxel size. Distances computed from the fiducial points were correct to within 0.2% (MRI) and 1.4% (PET). (b) The mean error remaining after AIR, measured at the five fiducial points, varied from 2.9 to 5.3 mm. The average registration error within the brain was calculated to be 2.20 mm (maximum, 3.57 mm). This error was not primarily rotational about the center of the brain and was worsened by heavy smoothing of the PET images.

CONCLUSION

(a) We have defined a reliable, sensitive metric that can stringently test the accuracy of various image registration techniques. (b) The AIR algorithm leaves modest error after aligning PET blood flow and anatomic MR images of baboon brain.

摘要

目的

我们的目标是:(a)开发并验证一种灵敏的图像配准测量方法,该方法适用于不同成像模态之间以及同一成像模态内部;(b)量化自动图像配准(AIR)算法在对狒狒脑的磁共振成像(MR)和正电子发射断层扫描(PET)图像进行回顾性配准时的准确性。

方法

我们研究了五只猴子,每只猴子都通过手术植入了一个“帽”,该“帽”用螺栓固定在一个含有基准标记物的丙烯酸头架上。使用AIR(忽略基准标记物)对解剖学MR图像和PET H2 15O血流图像进行配准。

结果

(a)基准点定位到约为体素大小的十分之一。根据基准点计算出的距离在MRI中误差在0.2%以内,在PET中误差在1.4%以内。(b)在五个基准点处测量的AIR后剩余的平均误差在2.9至5.3毫米之间变化。大脑内部的平均配准误差经计算为2.20毫米(最大值为3.57毫米)。该误差并非主要围绕脑中心旋转,并且PET图像的重度平滑会使其加剧。

结论

(a)我们定义了一种可靠、灵敏的指标,可严格测试各种图像配准技术的准确性。(b)AIR算法在对狒狒脑的PET血流图像和解剖学MR图像进行配准后仍存在一定误差。

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