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首页> 外文期刊>Journal of applied mathematics >Video Object Tracking in Neural Axons with Fluorescence Microscopy Images
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Video Object Tracking in Neural Axons with Fluorescence Microscopy Images

机译:利用荧光显微镜图像跟踪神经轴突中的视频对象

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Neurofilament is an important type of intercellular cargos transmitted in neural axons. Given fluorescence microscopy images, existing methods extract neurofilament movement patterns by manualtracking. In this paper, we describe two automated tracking methods for analyzing neurofilament movement based on two different techniques: constrained particle filtering and tracking-by-detection. First, we introduce the constrained particle filtering approach. In this approach, the orientation and position of a particle are constrained by the axon’s shape such that fewer particles are necessary for tracking neurofilament movement than object tracking techniques based on generic particle filtering. Secondly, a tracking-by-detection approach to neurofilament tracking is presented. For this approach, the axon is decomposed into blocks, and the blocks encompassing the moving neurofilaments are detected by graph labeling using Markov random field. Finally, we compare two tracking methods by performing tracking experiments on real time-lapse image sequences of neurofilament movement, and the experimental results show that both methods demonstrate good performance in comparison with the existing approaches, and the tracking accuracy of the tracing-by-detection approach is slightly better between the two.
机译:神经丝是在神经轴突中传递的细胞间货物的重要类型。给定荧光显微镜图像,现有方法通过手动跟踪提取神经丝运动模式。在本文中,我们基于两种不同的技术描述了两种用于分析神经丝运动的自动跟踪方法:受约束的粒子过滤和检测跟踪。首先,我们介绍约束粒子滤波方法。在这种方法中,轴突的形状限制了粒子的方向和位置,因此与基于通用粒子滤波的对象跟踪技术相比,跟踪神经丝运动所需的粒子更少。其次,提出了一种通过检测跟踪的神经丝跟踪方法。对于这种方法,将轴突分解成块,并通过使用马尔可夫随机场的图形标记来检测包含运动神经丝的块。最后,我们通过对神经丝运动的实时延时图像序列进行跟踪实验,比较了两种跟踪方法,实验结果表明,与现有方法相比,这两种方法都表现出良好的性能,并且跟踪跟踪的准确性也很高。两者之间的检测方法稍好一些。

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