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Automated Seedling Height Assessment for Tree Nurseries Using Point Cloud Processing

机译:使用点云处理对苗圃场进行自动苗高评估

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This paper presents a prototype of an automated seedling height assessment system for tree nurseries. The proposed system can acquire and store real-time 3D point-cloud data of seedlings; and perform offline identification, measurement, and report generation of seedling heights with an overall system accuracy that meets a 5mm accuracy specification. Periodic growth information of seedlings allows quantifying effects of different factors on the overall seedling development process for research and production optimization purposes. However, current manual sampling approaches used at these facilities produce quite limited data samples, and the process is rather time-consuming and labor intensive for industrial scale operations. In contrast, the proposed system is capable of significantly increasing the measurement sample size, measurement resolution, and frequency of measurement by automating the seedling measurement process using a scanning laser profilometer and an application specific point-cloud processing algorithm. The performance of the proposed profilometry solution for point-cloud generation is compared with several other point-cloud generation methods such as a 3D structured light sensing, light intensity detection and ranging (LiDAR), stereovision, and photogrammetry. This comparison results demonstrate a superior performance of the laser-profilometer over other sensing solutions available for seedling height measurement. The proposed system is experimentally validated for its measurement accuracy and repeatability. The field-test of the measurement system was conducted at Centre for Agriculture and Forestry Development, Wooddale, Newfoundland and Labrador (NL), Canada, and the results demonstrate the practical applicability and technological readiness of the proposed system for field deployment.
机译:本文提出了用于苗圃的自动苗高评估系统的原型。该系统可以获取和存储幼苗的实时3D点云数据;并以符合5mm精度规格的整体系统精度执行脱机识别,测量和报告幼苗高度的过程。幼苗的定期生长信息可以量化不同因素对整个幼苗发育过程的影响,以进行研究和生产优化。但是,在这些设施上使用的当前手动采样方法只能产生非常有限的数据样本,并且该过程对于工业规模的操作而言既费时又费力。相反,所提出的系统能够通过使用扫描激光轮廓仪和专用点云处理算法来自动化幼苗测量过程,从而显着增加测量样品的大小,测量分辨率和测量频率。将提议的轮廓线解决方案用于点云生成的性能与其他几种点云生成方法(例如3D结构光感测,光强度检测和测距(LiDAR),立体视觉和摄影测量)进行了比较。该比较结果表明,激光轮廓仪的性能优于可用于幼苗高度测量的其他传感解决方案。所提出的系统通过实验验证了其测量精度和可重复性。测量系统的现场测试是在加拿大纽芬兰的伍德代尔和拉布拉多(NL)的农业和林业发展中心进行的,结果证明了该系统在现场部署中的实际适用性和技术就绪性。

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