Division of Electronics & Information System, DGIST (Daegu Gyeongbuk Institute of Science and Technology), Daegu 42988, Korea.
Sungboo IND Ltd., Chilgok 39909, Korea.
Sensors (Basel). 2021 Dec 24;22(1):114. doi: 10.3390/s22010114.
To address the problems of inefficient agricultural production and labor shortages, there has been active research to develop autonomously driven agricultural machines, using advanced sensors and ICT technology. Autonomously driven speed sprayers can also reduce accidents such as the pesticide poisoning of farmers, and vehicle overturn that frequently occur during spraying work in orchards. To develop a commercial, autonomously driven speed sprayer, we developed a prototype of an autonomously driven agricultural vehicle, and conducted performance evaluations in an orchard environment. A prototype of the agricultural vehicle was created using a rubber-tracked vehicle equipped with two AC motors. A prototype of the autonomous driving hardware consisted of a GNSS module, a motion sensor, an embedded board, and an LTE module, and it was made for less than $1000. Additional software, including a sensor fusion algorithm for positioning and a path-tracking algorithm for autonomous driving, were implemented. Then, the performance of the autonomous driving agricultural vehicle was evaluated based on two trajectories in an apple farm. The results of the field test determined the RMS, and the maximums of the path-following errors were 0.10 m, 0.34 m, respectively.
为了解决农业生产效率低下和劳动力短缺的问题,人们一直在积极研究开发自主驾驶的农业机器,利用先进的传感器和 ICT 技术。自主驾驶的喷雾机能减少农民农药中毒和果园喷雾作业中车辆侧翻等事故的发生。为了开发商用的自主驾驶喷雾机,我们开发了一种自主驾驶农业车辆的原型,并在果园环境中进行了性能评估。农业车辆的原型是使用配备有两个交流电机的橡胶履带车创建的。自主驾驶硬件的原型由 GNSS 模块、运动传感器、嵌入式板和 LTE 模块组成,成本不到 1000 美元。此外,还实现了包括定位传感器融合算法和自主驾驶路径跟踪算法在内的软件。然后,根据苹果农场中的两条轨迹评估了自主驾驶农业车辆的性能。田间试验的结果确定了路径跟踪误差的 RMS 和最大值分别为 0.10 米和 0.34 米。