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一种判别结构相似性度量及其在用于内窥镜三维运动跟踪的视频-容积配准中的应用。

A discriminative structural similarity measure and its application to video-volume registration for endoscope three-dimensional motion tracking.

出版信息

IEEE Trans Med Imaging. 2014 Jun;33(6):1248-61. doi: 10.1109/TMI.2014.2307052.

Abstract

Endoscope 3-D motion tracking, which seeks to synchronize pre- and intra-operative images in endoscopic interventions, is usually performed as video-volume registration that optimizes the similarity between endoscopic video and pre-operative images. The tracking performance, in turn, depends significantly on whether a similarity measure can successfully characterize the difference between video sequences and volume rendering images driven by pre-operative images. The paper proposes a discriminative structural similarity measure, which uses the degradation of structural information and takes image correlation or structure, luminance, and contrast into consideration, to boost video-volume registration. By applying the proposed similarity measure to endoscope tracking, it was demonstrated to be more accurate and robust than several available similarity measures, e.g., local normalized cross correlation, normalized mutual information, modified mean square error, or normalized sum squared difference. Based on clinical data evaluation, the tracking error was reduced significantly from at least 14.6 mm to 4.5 mm. The processing time was accelerated more than 30 frames per second using graphics processing unit.

摘要

内窥镜 3-D 运动跟踪旨在将内窥镜介入手术中的术前和术中图像进行同步,通常采用视频-体绘制配准来优化内窥镜视频与术前图像之间的相似性。跟踪性能在很大程度上取决于相似性度量是否能够成功地描述由术前图像驱动的视频序列和体绘制图像之间的差异。本文提出了一种判别结构相似性度量方法,它使用结构信息的退化,并考虑图像相关性或结构、亮度和对比度,以提高视频-体绘制配准的性能。通过将所提出的相似性度量应用于内窥镜跟踪,与几种现有的相似性度量方法(如局部归一化互相关、归一化互信息、修正均方误差或归一化平方和差)相比,它被证明更加准确和鲁棒。基于临床数据评估,跟踪误差从至少 14.6mm 显著降低至 4.5mm。使用图形处理单元,处理时间加速了 30 多帧/秒。

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