智能农业中利用激光雷达预测鲜果束成熟度的研究进展

Abdul Dzuljalal Ikram bin Mat Seri, Mohd Sallehin bin Mohd Kassim, Siti Rahmah binti Abdul Rahman, Aznida Abu Bakar Sajak
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引用次数: 1

摘要

智慧农业是人道主义技术的一部分。油棕果是马来西亚主要的出口农产品之一。目前,确定油棕鲜果束成熟度的一般方法有人眼视觉、计算机视觉和激光成像技术。本研究旨在设计并构建基于激光雷达传感器和伺服电机的扫描系统,获取油棕鲜果串(FFB)的点云数据。本课题主要由LiDAR Lite V3、Arduino UNO和两台伺服电机组成。使用LiDAR传感器收集从Virescens油棕FFB反射的强度值,并将收集到的数据保存为CSV文件,以便进一步分析。本研究使用的方法是迭代瀑布模型。如果项目中需要任何改进,该模型支持重新设计,并且如果流程面临任何错误,该阶段可以循环回到以前的迭代。所提出的系统成功地从油棕鲜果束中产生点云,发现成熟油棕鲜果束的平均强度值低于未成熟油棕鲜果束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of Virescens Fresh Fruit Bunch Ripeness Prediction using LiDAR for Smart Agriculture
Smart Agriculture is a part of Humanitarian Technology. Oil palm fruit is one of the leading agricultural product exports by Malaysia. At present, the general methods used to determine the ripeness of oil palm fresh fruit bunch are using human vision, computer vision and laser-based imaging techniques. This research aims to design and build a scanning system based on a LiDAR sensor and servo motors and obtain point cloud data from oil palm fresh fruit bunch (FFB). The proposed project consists of LiDAR Lite V3, Arduino UNO and two servo motors as its main component. LiDAR sensor is used to collect the intensity value that reflects from the Virescens oil palm FFB, and the data collected are saved in a CSV file for further analysis. The methodology used in this research is the Iterative Waterfall model. This model supports redesign if there are any improvements needed in this project, and the phase can be looped back to the previous iteration if the process faces any errors. The system proposed works successfully to produce point clouds from oil palm fresh fruit bunch, and it is found that ripe oil palm fruit has a lower mean intensity value than unripe oil palm fresh fruit bunch.
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