SeeTree - a modular, open-source system for tree detection and orchard localization

IF 5.7 Q1 AGRICULTURAL ENGINEERING
Jostan Brown, Cindy Grimm, Joseph R. Davidson
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引用次数: 0

Abstract

Accurate localization is an important functional requirement for precision orchard management. However, there are few off-the-shelf commercial solutions available to growers. In this paper, we present SeeTree, a modular, open source embedded system for tree trunk detection and orchard localization that is deployable on any vehicle. Building on our prior work on vision-based in-row localization using particle filters, SeeTree includes several new capabilities. First, it provides capacity for full orchard localization including out-of-row headland turning. Second, it includes the flexibility to integrate either visual, GNSS, or wheel odometry in the motion model. During field experiments in a commercial orchard, the system converged to the correct location 99% of the time over 800 trials, even when starting with large uncertainty in the initial particle locations. When turning out of row, the system correctly tracked 99% of the turns (860 trials representing 43 unique row changes). To help support adoption and future research and development, we make our dataset, design files, and source code freely available to the community.
SeeTree -一个模块化的开源系统,用于树木检测和果园定位
准确定位是果园精细化管理的重要功能要求。然而,很少有现成的商业解决方案可供种植者使用。在本文中,我们介绍了SeeTree,一个模块化的开源嵌入式系统,用于树干检测和果园定位,可部署在任何车辆上。在我们之前使用粒子过滤器进行基于视觉的行内定位的基础上,SeeTree包含了几个新功能。首先,它提供了全果园定位的能力,包括行外岬角转弯。其次,它包括在运动模型中集成视觉,GNSS或车轮里程计的灵活性。在一个商业果园的现场实验中,该系统在800次试验中有99%的时间收敛到正确的位置,即使在初始粒子位置有很大的不确定性时也是如此。当转出一行时,系统正确地跟踪了99%的转弯(860次试验代表43个独特的行变化)。为了帮助支持采用和未来的研究和开发,我们将我们的数据集、设计文件和源代码免费提供给社区。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
4.20
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0.00%
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