基于RGB-D成像和张量加速的葡萄园可变速率喷雾系统

IF 8.9 1区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY
Qi Gao , Alberto Carraro , Qiang Huang , Francesco Marinello , Marco Sozzi
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引用次数: 0

摘要

可持续的葡萄园管理需要精确和有效的应用植物保护产品,以尽量减少对环境的影响,同时确保植物健康。本研究提出了一种可变速率喷洒系统,该系统集成了RGB-D相机和配备gpu的边缘计算平台,可以准确、实时地调节葡萄园的喷雾流量。采用基于张量的RGB-D数据表示来加速整个处理管道。基于这种结构,采用快速近似网格划分方法,从点云中快速生成三维网格。为了结合RGB图像的语义信息,采用实例分割模型检测葡萄藤树冠和格柱。生成的冠层掩模用于隔离冠层网格,而网格柱作为参考平面,通过网格投影估算冠层体积。基于计算体积,生成脉宽调制信号,动态控制喷雾流量。通过现场实验对系统的有效性和实时性进行了评价。结果表明,估算冠层体积是调节施肥量的可靠指标。与均匀喷洒相比,该系统在确保液滴覆盖的同时,减少了57.4%的植保产品消耗。此外,即使在入门级硬件上,该系统也表现出令人满意的实时性能。总的来说,提出的可变速率喷洒系统为精确的葡萄栽培提供了准确、实时和经济的解决方案,突出了其在可持续葡萄园管理中的商业部署潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A variable-rate spraying system for vineyards based on RGB-D imaging and tensor acceleration
Sustainable vineyard management requires precise and efficient application of plant protection products to minimise environmental impact while ensuring plant health. This study presents a variable-rate spraying system that integrates an RGB-D camera with a GPU-equipped edge computing platform to enable accurate, real-time adjustment of spray flow rates in vineyards. A tensor-based representation of RGB-D data is employed to accelerate the entire processing pipeline. Based on this structure, a fast approximate meshing method is applied to rapidly generate 3D meshes from point clouds. To incorporate semantic information from RGB images, an instance segmentation model is used to detect grapevine canopies and trellis posts. The resulting canopy masks are used to isolate the canopy meshes, while the trellis posts serve as reference planes for canopy volume estimation via mesh projection. Based on the computed volume, pulse-width modulation signals are generated to dynamically control spray flow rates. Field experiments were conducted to evaluate the system’s effectiveness and real-time performance. The results demonstrated that the estimated canopy volume is a reliable indicator for regulating application rates. Compared to uniform-rate spraying, the proposed system reduced plant protection product consumption by 57.4% while ensuring adequate droplet coverage. Additionally, the system demonstrated satisfactory real-time performance even on entry-level hardware. Overall, the proposed variable-rate spraying system offers an accurate, real-time, and cost-effective solution for precision viticulture, highlighting its potential for commercial deployment in sustainable vineyard management.
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来源期刊
Computers and Electronics in Agriculture
Computers and Electronics in Agriculture 工程技术-计算机:跨学科应用
CiteScore
15.30
自引率
14.50%
发文量
800
审稿时长
62 days
期刊介绍: Computers and Electronics in Agriculture provides international coverage of advancements in computer hardware, software, electronic instrumentation, and control systems applied to agricultural challenges. Encompassing agronomy, horticulture, forestry, aquaculture, and animal farming, the journal publishes original papers, reviews, and applications notes. It explores the use of computers and electronics in plant or animal agricultural production, covering topics like agricultural soils, water, pests, controlled environments, and waste. The scope extends to on-farm post-harvest operations and relevant technologies, including artificial intelligence, sensors, machine vision, robotics, networking, and simulation modeling. Its companion journal, Smart Agricultural Technology, continues the focus on smart applications in production agriculture.
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