arXiv:2503.02275cs.ROcs.SY2025-03被引 4

仿昆虫觅食行为,实现无人机在果园中实时精准导航

ForaNav: Insect-inspired Online Target-oriented Navigation for MAVs in Tree Plantations

  • 借鉴昆虫觅食机制,动态调整飞行路径
  • 检测准确率高,运行效率优于轻量级深度模型
  • 无需预知位置,适合复杂农田环境的自动化作业

自主微型飞行器(MAVs)在精准农业中日益重要,可提升效率并降低人力成本。然而,现有系统多依赖易受农村环境影响的GPS导航,飞行路径受限于预设路线,导致效率低下。为此,本文提出ForaNav,一种仿昆虫觅食行为的树间自主导航策略。该方法采用改进的基于方向梯度直方图(HOG)的树木检测技术,融合色调-饱和度直方图与全局HOG特征方差及分层HOG提取,有效区分油棕树与视觉相似物体。受昆虫觅食启发,无人机根据检测到的树木动态调整路径,并在目标短暂丢失时启动恢复机制以保持航向。实验表明,该检测方法对不同树种具有良好的泛化能力,且在CPU占用、温度和帧率方面优于轻量级深度学习模型,适用于实时应用。真实场景下的飞行测试显示,无人机可在未预先知晓位置的情况下成功探测并接近所有树木,验证了其在农业自动化中的有效性。

原文摘要 · Abstract (English)

Autonomous Micro Air Vehicles (MAVs) are becoming essential in precision agriculture to enhance efficiency and reduce labor costs through targeted, real-time operations. However, existing unmanned systems often rely on GPS-based navigation, which is prone to inaccuracies in rural areas and limits flight paths to predefined routes, resulting in operational inefficiencies. To address these challenges, this paper presents ForaNav, an insect-inspired navigation strategy for autonomous navigation in plantations. The proposed method employs an enhanced Histogram of Oriented Gradient (HOG)-based tree detection approach, integrating hue-saturation histograms and global HOG feature variance with hierarchical HOG extraction to distinguish oil palm trees from visually similar objects. Inspired by insect foraging behavior, the MAV dynamically adjusts its path based on detected trees and employs a recovery mechanism to stay on course if a target is temporarily lost. We demonstrate that our detection method generalizes well to different tree types while maintaining lower CPU usage, lower temperature, and higher FPS than lightweight deep learning models, making it well-suited for real-time applications. Flight test results across diverse real-world scenarios show that the MAV successfully detects and approaches all trees without prior tree location, validating its effectiveness for agricultural automation.

无人机导航精准农业仿生算法实时检测

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