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Animal recognition in the Mojave Desert: Vision tools for field biologists

机译:莫哈韦沙漠中的动物识别:现场生物学家的视觉工具

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The outreach of computer vision to non-traditional areas has enormous potential to enable new ways of solving real world problems. One such problem is how to incorporate technology in the effort to protect endangered and threatened species in the wild. This paper presents a snapshot of our interdisciplinary team's ongoing work in the Mojave Desert to build vision tools for field biologists to study the currently threatened Desert Tortoise and Mohave Ground Squirrel. Animal population studies in natural habitats present new recognition challenges for computer vision, where open set testing and access to just limited computing resources lead us to algorithms that diverge from common practices. We introduce a novel algorithm for animal classification that addresses the open set nature of this problem and is suitable for implementation on a smartphone. Further, we look at a simple model for object recognition applied to the problem of individual species identification. A thorough experimental analysis is provided for real field data collected in the Mojave desert.
机译:将计算机视觉推广到非传统领域具有巨大的潜力,可以实现解决现实世界问题的新方法。这样的问题之一就是如何将技术纳入保护野生濒危物种的工作。本文简要介绍了我们的跨学科团队在莫哈韦沙漠中正在进行的工作,以期为野外生物学家构建视觉工具,以研究目前濒临灭绝的沙漠乌龟和莫哈韦地松鼠。在自然栖息地进行的动物种群研究为计算机视觉提出了新的识别挑战,在开放视野中进行的测试以及对有限计算资源的访问使我们找到了不同于常规方法的算法。我们介绍了一种用于动物分类的新颖算法,该算法解决了此问题的开放集性质,适合在智能手机上实现。此外,我们看一个简单的对象识别模型,该模型适用于单个物种识别的问题。对在莫哈韦沙漠中收集的实际数据进行了全面的实验分析。

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