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Three-dimensional tracking and behaviour monitoring of multiple fruit flies

机译:多个果蝇的三维跟踪和行为监控

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摘要

The increasing interest in the investigation of social behaviours of a group of animals has heightened the need for developing tools that provide robust quantitative data. Drosophila melanogaster has emerged as an attractive model for behavioural analysis; however, there are still limited ways to monitor fly behaviour in a quantitative manner. To study social behaviour of a group of flies, acquiring the position of each individual over time is crucial. There are several studies that have tried to solve this problem and make this data acquisition automated. However, none of these studies has addressed the problem of keeping track of flies for a long period of time in three-dimensional space. Recently, we have developed an approach that enables us to detect and keep track of multiple flies in a three-dimensional arena for a long period of time, using multiple synchronized and calibrated cameras. After detecting flies in each view, correspondence between views is established using a novel approach we call the ‘sequential Hungarian algorithm’. Subsequently, the three-dimensional positions of flies in space are reconstructed. We use the Hungarian algorithm and Kalman filter together for data association and tracking. We evaluated rigorously the system's performance for tracking and behaviour detection in multiple experiments, using from one to seven flies. Overall, this system presents a powerful new method for studying complex social interactions in a three-dimensional environment.
机译:人们对研究一组动物的社会行为的兴趣与日俱增,因此对开发可提供可靠的定量数据的工具的需求日益增加。果蝇已经成为一种有吸引力的行为分析模型。但是,仍然存在有限的方法来以定量方式监视飞行行为。为了研究一群苍蝇的社交行为,随着时间的推移获得每个人的位置至关重要。有几项研究试图解决此问题并使这些数据采集自动化。但是,这些研究都没有解决在三维空间中长时间跟踪苍蝇的问题。最近,我们开发了一种方法,使我们能够使用多个同步且经过校准的相机,长时间检测并跟踪三维运动场中的多个苍蝇。在检测到每个视图中的苍蝇后,便使用一种称为“顺序匈牙利算法”的新颖方法来建立视图之间的对应关系。随后,苍蝇在空间中的三维位置被重建。我们将匈牙利算法和卡尔曼滤波器一起用于数据关联和跟踪。我们使用1到7只苍蝇,严格评估了该系统在多个实验中用于跟踪和行为检测的性能。总体而言,该系统提供了一种强大的新方法,用于研究三维环境中的复杂社会互动。

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