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多时相荧光显微镜中基于粒子跟踪的多帧数据关联技术的定量比较。

Quantitative comparison of multiframe data association techniques for particle tracking in time-lapse fluorescence microscopy.

机构信息

Biomedical Imaging Group Rotterdam, Erasmus MC-University Medical Center Rotterdam, Departments of Medical Informatics and Radiology, P.O. Box 2040, Rotterdam 3000 CA, The Netherlands.

Biomedical Imaging Group Rotterdam, Erasmus MC-University Medical Center Rotterdam, Departments of Medical Informatics and Radiology, P.O. Box 2040, Rotterdam 3000 CA, The Netherlands.

出版信息

Med Image Anal. 2015 Aug;24(1):163-189. doi: 10.1016/j.media.2015.06.006. Epub 2015 Jun 27.

Abstract

Biological studies of intracellular dynamic processes commonly require motion analysis of large numbers of particles in live-cell time-lapse fluorescence microscopy imaging data. Many particle tracking methods have been developed in the past years as a first step toward fully automating this task and enabling high-throughput data processing. Two crucial aspects of any particle tracking method are the detection of relevant particles in the image frames and their linking or association from frame to frame to reconstruct the trajectories. The performance of detection techniques as well as specific combinations of detection and linking techniques for particle tracking have been extensively evaluated in recent studies. Comprehensive evaluations of linking techniques per se, on the other hand, are lacking in the literature. Here we present the results of a quantitative comparison of data association techniques for solving the linking problem in biological particle tracking applications. Nine multiframe and two more traditional two-frame techniques are evaluated as a function of the level of missing and spurious detections in various scenarios. The results indicate that linking techniques are generally more negatively affected by missing detections than by spurious detections. If misdetections can be avoided, there appears to be no need to use sophisticated multiframe linking techniques. However, in the practically likely case of imperfect detections, the latter are a safer choice. Our study provides users and developers with novel information to select the right linking technique for their applications, given a detection technique of known quality.

摘要

生物细胞内动态过程的研究通常需要在活细胞延时荧光显微镜成像数据中分析大量粒子的运动。在过去的几年中,已经开发出许多粒子跟踪方法,作为实现此任务自动化并实现高通量数据处理的第一步。任何粒子跟踪方法的两个关键方面是在图像帧中检测相关粒子,以及将它们从一帧链接或关联到下一帧以重建轨迹。在最近的研究中,已经广泛评估了检测技术的性能以及特定的检测和链接技术组合用于粒子跟踪。另一方面,文献中缺乏对链接技术本身的全面评估。在这里,我们展示了用于解决生物粒子跟踪应用中链接问题的数据关联技术的定量比较结果。在各种情况下,将九种多帧技术和两种更传统的两帧技术作为缺失和虚假检测的水平的函数进行评估。结果表明,与虚假检测相比,链接技术通常更容易受到缺失检测的影响。如果可以避免误检,则似乎没有必要使用复杂的多帧链接技术。但是,在实际情况下,检测不完美,后者是更安全的选择。我们的研究为用户和开发人员提供了新的信息,以便在已知检测技术质量的情况下为他们的应用选择正确的链接技术。

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