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Towards Computer Vision and Deep Learning Facilitated Pollination Monitoring for Agriculture

机译:走向计算机愿景和深度学习促进农业授粉监测

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Globally, pollinators affect 35% of agricultural land and play a key role in food production. Consequently, monitoring is useful to understand the contribution insects make towards crop pollination. Traditional sampling techniques used in insect monitoring have several drawbacks, including that they are labour intensive and potentially unreliable. Some of these drawbacks may be overcome using computer vision and deep learning-based approaches to automate pollination monitoring. In this paper, we present a pipeline for computer vision-based pollination monitoring and propose a novel algorithm, Polytrack, that tracks multiple insects simultaneously in complex agricultural environments. Our algorithm uses deep learning and fore-ground/background segmentation to detect and track in-sects. We achieved precision and recall rates of 0.975 and 0.972 respectively when monitoring honeybees foraging in our test sites within the polytunnels of an industrial straw-berry farm. Polytrack includes a flower identification module to automate collection of insect-flower interaction data, and a low-resolution processing mode that reduces computational demands placed on the processor to bring the software towards the requirements of low-powered monitoring hardware.
机译:在全球范围内,粉丝器影响了35%的农业用地,并在食品生产中发挥关键作用。因此,监测可用于了解贡献昆虫对作物授粉。用于昆虫监测中使用的传统采样技术具有几个缺点,包括它们是劳动密集型和潜在不可靠的。可以使用计算机视觉和基于深度学习的方法来克服其中一些缺点来自动化授粉监测。在本文中,我们提出了一种基于计算机视觉的授粉监测的管道,并提出了一种新颖的算法,多轨,在复杂的农业环境中同时跟踪多种昆虫。我们的算法使用深度学习和前地/背景分割来检测和跟踪局部。当在工业草莓农场的Polytunnels的测试地点监测我们的测试地点时,我们分别实现了0.975和0.972的精度和召回率。 Polytrack包括一种花识别模块,用于自动收集昆虫花交互数据,以及降低处理器上的计算需求的低分辨率处理模式,使软件朝着低功耗监控硬件的要求。

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