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基于互信息最大化的多模态图像配准中的插值伪影。

Interpolation artifacts in multimodality image registration based on maximization of mutual information.

作者信息

Tsao Jeffrey

机构信息

Institute for Biomedical Engineering, Swiss Federal Institute of Technology, Zurich, Building ETF, Room C 108, Sternwartstrasse 7, 8092 Zurich, Switzerland.

出版信息

IEEE Trans Med Imaging. 2003 Jul;22(7):854-64. doi: 10.1109/TMI.2003.815077.

Abstract

Mutual information (MI) is an increasingly popular match metric for multimodality image registration. However, its value is affected by interpolation, which may limit registration accuracy. The purpose of this study was to characterize the artifacts from eight interpolators and to investigate efficient strategies to overcome these artifacts. The interpolators were: 1) nearest neighbor; 2) linear; 3) cubic Catmull-Rom; 4) Hamming-windowed sinc; 5) partial volume; 6) NN with jittered sampling (JIT); 7) NN with histogram blurring (BLUR); and 8) NN with JIT and BLUR. The impact of interpolation on MI was evaluated in two dimensions over different translational and rotational misregistration. Interpolation caused spurious fluctuations in MI whenever the voxel grids had coinciding periodicities and were nearly aligned. The artifacts did not lessen by using intensity interpolators with wider support (e.g., cubic Catmull-Rom, Hamming-windowed sinc). PV could lead to either arch artifacts or inverted-arch artifacts, depending on the relative voxel sizes. Several strategies reduced artifacts and improved registration robustness: JIT, BLUR, avoiding an extreme number of intensity bins, and resampling the images in a rotated orientation with different relative voxel sizes (e.g., pi/3). These findings also apply to related methods, including normalized MI, joint entropy, and Hill's third moment.

摘要

互信息(MI)是一种在多模态图像配准中越来越受欢迎的匹配度量。然而,其值会受到插值的影响,这可能会限制配准精度。本研究的目的是表征八种插值器产生的伪影,并研究克服这些伪影的有效策略。这些插值器分别是:1)最近邻;2)线性;3)三次卡特穆尔-罗姆;4)汉明窗 sinc;5)部分体积;6)带抖动采样的最近邻(JIT);7)带直方图模糊的最近邻(BLUR);8)带JIT和BLUR的最近邻。在二维中,针对不同的平移和旋转配准误差评估了插值对MI的影响。只要体素网格具有一致的周期性且几乎对齐,插值就会在MI中引起虚假波动。使用具有更宽支持范围的强度插值器(例如,三次卡特穆尔-罗姆、汉明窗 sinc)并不会减少伪影。部分体积根据相对体素大小可能导致拱形伪影或倒拱形伪影。几种策略减少了伪影并提高了配准鲁棒性:JIT、BLUR、避免极端数量的强度 bins,以及以不同的相对体素大小(例如,π/3)在旋转方向上对图像进行重采样。这些发现也适用于相关方法,包括归一化互信息、联合熵和希尔第三矩。

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