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Three-Dimensional Pose Estimation for Laboratory Mouse From Monocular Images

机译:从单眼图像的实验室老鼠的三维姿势估计

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Video-based activity and behavior analysis of mice has garnered wide attention in biomedical research. Animal facilities hold large numbers of mice housed in "home-cages" densely stored within ventilated racks. Automated analysis of mice activity in their home-cages can provide a new set of sensitive measures for detecting abnormalities and time-resolved deviation from the baseline behavior. Large-scale monitoring in animal facilities requires minimal footprint hardware that integrates seamlessly with the ventilated racks. The compactness of hardware imposes the use of fisheye lenses positioned in close proximity to the cage. In this paper, we propose a systematic approach to accurately estimate the 3D pose of the mouse from single-monocular fisheye-distorted images. Our approach employs a novel adaptation of a structured forest algorithm. We benchmark our algorithm against existing methods. We demonstrate the utility of the pose estimates in predicting mouse behavior in a continuous video.
机译:基于鼠标的视频活动和行为分析已在生物医学研究中引起广泛关注。动物设施将大量的老鼠安置在密集放置在通风架中的“家笼”中。小鼠笼中活动的自动分析可以提供一套新的敏感措施,用于检测异常情况和与基线行为的时间分辨偏差。动物设施中的大规模监控需要占用空间最小的硬件,该硬件可与通风架无缝集成。硬件的紧凑性要求使用紧靠笼子放置的鱼眼镜头。在本文中,我们提出了一种系统的方法,可以从单眼鱼眼失真图像中准确估计鼠标的3D姿势。我们的方法采用了结构化森林算法的新颖改编。我们对照现有方法对算法进行基准测试。我们展示了姿势估计在预测连续视频中的鼠标行为方面的实用性。

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