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Système complet d’acquisition vidéo, de suivi de trajectoires et de modélisation comportementalepour des environnements 3D naturellement encombrés : Application à la surveillance apicole

机译:用于自然拥挤3D环境的完整视频采集,轨迹跟踪和行为建模系统:在养蜂监控中的应用

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摘要

This manuscript provides the basis for a complete chain of videosurveillence for naturally cluttered environments. In the latter, we identify and solve the wide spectrum of methodological and technological barriers inherent to : 1) the acquisition of video sequences in natural conditions, 2) the image processing problems, 3) the multi-target tracking ambiguities, 4) the discovery and the modeling of recurring behavioral patterns, and 5) the data fusion. The application context of our work is the monitoring of honeybees, and in particular the study of the trajectories bees in flight in front of their hive. In fact, this thesis is part a feasibility and prototyping study carried by the two interdisciplinary projects EPERAS and RISQAPI (projects undertaken in collaboration with INRA institute and the French National Museum of Natural History). It is for us, computer scientists, and for biologists who accompanied us, a completely new area of investigation for which the scientific knowledge, usually essential for such applications, are still in their infancy.Unlike existing approaches for monitoring insects, we propose to tackle the problem in the three-dimensional space through the use of a high frequency stereo camera. In this context, we detail our new target detection method which we called HIDS segmentation. Concerning the computation of trajectories, we explored several tracking approaches, relying on more or less a priori, which are able to deal with the extreme conditions of the application (e.g. many targets, small in size, following chaotic movements). Once the trajectories are collected, we organize them according to a given hierarchical data structure and apply a Bayesian nonparametric approach for discovering emergent behaviors within the colony of insects. The exploratory analysis of the trajectories generated by the crowded scene is performed following an unsupervised classification method simultaneously over different levels of semantic, and where the number of clusters for each level is not defined a priori, but rather estimated from the data only. This approach is has been validated thanks to a ground truth generated by a Multi-Agent System. Then we tested it in the context of real data.
机译:该手稿为自然混乱的环境提供了完整的视频监控链的基础。在后者中,我们确定并解决了以下固有的方法论和技术障碍:1)在自然条件下获取视频序列; 2)图像处理问题; 3)多目标跟踪模糊性; 4)发现以及重复性行为模式的建模,以及5)数据融合。我们工作的应用环境是监视蜜蜂,尤其是研究蜜蜂在蜂巢前飞行的轨迹。实际上,本论文是由两个跨学科项目EPERAS和RISQAPI(与INRA研究所和法国国家自然历史博物馆合作进行的项目)进行的可行性和原型研究的一部分。对于我们,计算机科学家和陪伴我们的生物学家来说,这是一个全新的研究领域,对于此类应用通常必不可少的科学知识仍处于起步阶段。与现有的监测昆虫的方法不同,我们建议解决通过使用高频立体摄像机解决三维空间中的问题。在这种情况下,我们将详细介绍称为HIDS分段的新目标检测方法。关于轨迹的计算,我们或多或少地依赖于先验探索了几种跟踪方法,这些方法能够处理应用程序的极端条件(例如,许多目标,尺寸小,跟随混沌运动)。一旦收集了轨迹,我们就会根据给定的层次数据结构对其进行组织,并应用贝叶斯非参数方法来发现昆虫群体内的紧急行为。对拥挤场景生成的轨迹的探索性分析是在无监督分类方法的同时,在语义的不同级别上进行的,其中每个级别的簇数不是先验定义的,而是仅根据数据进行估计的。多代理系统生成的基本事实已验证了此方法。然后,我们在真实数据的上下文中对其进行了测试。

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  • 作者

    Chiron Guillaume;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 fr
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