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Robust and highly performant ring detection algorithm for 3d particle tracking using 2d microscope imaging

机译:使用2d显微镜成像进行3d粒子跟踪的鲁棒高性能环检测算法

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Three-dimensional particle tracking is an essential tool in studying dynamics under the microscope, namely, fluid dynamics in microfluidic devices, bacteria taxis, cellular trafficking. The 3d position can be determined using 2d imaging alone by measuring the diffraction rings generated by an out-of-focus fluorescent particle, imaged on a single camera. Here I present a ring detection algorithm exhibiting a high detection rate, which is robust to the challenges arising from ring occlusion, inclusions and overlaps, and allows resolving particles even when near to each other. It is capable of real time analysis thanks to its high performance and low memory footprint. The proposed algorithm, an offspring of the circle Hough transform, addresses the need to efficiently trace the trajectories of many particles concurrently, when their number in not necessarily fixed, by solving a classification problem, and overcomes the challenges of finding local maxima in the complex parameter space which results from ring clusters and noise. Several algorithmic concepts introduced here can be advantageous in other cases, particularly when dealing with noisy and sparse data. The implementation is based on open-source and cross-platform software packages only, making it easy to distribute and modify. It is implemented in a microfluidic experiment allowing real-time multi-particle tracking at 70 Hz, achieving a detection rate which exceeds 94% and only 1% false-detection.
机译:三维粒子跟踪是在显微镜下研究动力学的重要工具,即微流控设备,细菌出租车和细胞运输中的流体动力学。可以单独使用2d成像来确定3d位置,方法是测量由单个相机成像的离焦荧光粒子产生的衍射环。在这里,我提出了一种具有高检测率的环检测算法,该算法对由环咬合,夹杂和重叠引起的挑战具有鲁棒性,即使彼此靠近也可以分辨粒子。由于其高性能和低内存占用,它能够进行实时分析。所提出的算法是圆霍夫变换的后代,通过解决分类问题,解决了需要同时有效跟踪多个粒子的轨迹(当它们的数量不一定固定时)的需求,并克服了在复合物中找到局部最大值的难题环簇和噪声导致的参数空间。在其他情况下,尤其是在处理噪声和稀疏数据时,此处介绍的几种算法概念可能会很有用。该实现仅基于开放源代码和跨平台软件包,因此易于分发和修改。它在微流体实验中实现,可以在70 Hz的频率下实时跟踪多粒子,检测率超过94%,错误检测率仅为1%。

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