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Active colloids segmentation and tracking

机译:主动胶体分割与跟踪

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Active colloids constitute a novel class of materials which have drawn a lot of attention in recent years. They are composed of spherical metal particles converting chemical energy into motility, mimicking micro-organisms. Understanding their collective behavior is key to applications. In this context, we address the problem of segmenting and tracking colloids in long video sequences corrupted with severe illumination changes. We propose a very accurate method to recover the individual trajectory of each colloid. First, a region-adaptive level set method is used to segment individual colloids or small dusters. Combining with the circular Hough transform further refines the segmentation. Second, we recover simultaneously all the colloids' trajectories using a modified min-cost/max flow method on a weighted graph with colloids as vertices. No motion regularity is assumed to define graph edges and their cost. The proposed method is evaluated on a real benchmark composed of nine video sequences with annotations. In terms of CLEAR MOT metric - a standard metric for evaluating multiple target tracking algorithms our approach outperforms very significantly four standard methods. (C) 2016 Elsevier Ltd. All rights reserved.
机译:活性胶体构成了一类新颖的材料,近年来引起了很多关注。它们由球形金属颗粒组成,这些颗粒将化学能转化为能动性,模仿微生物。了解它们的集体行为是应用程序的关键。在这种情况下,我们解决了在长视频序列中由于严重的光照变化而损坏的分割和跟踪胶体的问题。我们提出了一种非常准确的方法来恢复每个胶体的轨迹。首先,使用区域自适应水平设置方法来分割单个胶体或小型除尘器。与圆形霍夫变换相结合,可以进一步细分细分。其次,我们使用修正的最小成本/最大流量方法在以胶体为顶点的加权图上同时恢复所有胶体的轨迹。假定没有运动规律性来定义图形边缘及其成本。在由9个带注释的视频序列组成的真实基准上评估了所提出的方法。在CLEAR MOT度量标准(一种用于评估多个目标跟踪算法的标准度量标准)方面,我们的方法明显优于四种标准方法。 (C)2016 Elsevier Ltd.保留所有权利。

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