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Detecting kangaroos in the wild: the first step towards automated animal surveillance

机译:在野外发现袋鼠:自动化动物监测的第一步

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摘要

Recent studies in computer vision have provided new solutions to real-world problems. In this paper, we focus on using computer vision methods to assist in the study of kangaroos in the wild. In order to investigate the feasibility, we built a kangaroo image dataset from collected data from several national parks across the State of Queensland. To achieve reasonable detection accuracy, we explored a multi-pose approach and proposed a framework based on the state-of-the-art Deformable Part Model (DPM). Experiments show that the proposed framework outperformed the state-of-the-art methods on the proposed dataset. Also, the proposed vision tools are able to help our field biologists in studying kangaroo related problems such as population tracking for activity analysis.
机译:最近在计算机视觉方面的研究为现实世界的问题提供了新的解决方案。在本文中,我们专注于使用计算机视觉方法来协助野外袋鼠的研究。为了调查可行性,我们从昆士兰州多个国家公园收集的数据中构建了袋鼠图像数据集。为了达到合理的检测精度,我们探索了一种多姿势方法,并基于最新的可变形零件模型(DPM)提出了一个框架。实验表明,所提出的框架优于所提出的数据集上的最新方法。同样,提出的视觉工具能够帮助我们的野外生物学家研究与袋鼠有关的问题,例如进行活动分析的人口追踪。

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