arXiv:2510.21732cs.ROcs.CV2025-10

用机械臂搅拌解决虫害陷阱中重叠虫体计数不准问题

Automated Pest Counting in Water Traps through Active Robotic Stirring for Occlusion Handling

  • 用机械臂动态搅拌打破虫体重叠,提升可见度
  • 四圈搅拌模式误差最低,平均绝对误差仅4.384
  • 自适应速度控制可提速44.7%,适合高密度场景

现有基于图像的虫害计数方法依赖单张静态图像,在虫体重叠时易出错。本文提出一种通过主动机械臂搅拌实现水 trap 虫害自动计数的方法。首先构建基于机械臂的搅拌系统,重新分布虫体以暴露被遮挡个体。接着评估六种搅拌模式在不同虫密场景下的计数表现,确定最优方案。最后提出一种基于计数置信度变化率的启发式闭环控制机制,根据连续帧间置信度变化自适应调节搅拌速度。实验表明,四圈搅拌模式误差最低,整体平均绝对误差为4.384,平均计数置信度达0.721。相比恒定速度搅拌,自适应搅拌可将任务执行时间减少高达44.7%,且在不同虫密条件下表现更稳定。此外,在高密度重叠场景下,该方法相较单图计数,平均绝对误差降低最多达3.428。

原文摘要 · Abstract (English)

Existing image-based pest counting methods rely on single static images and often produce inaccurate results under occlusion. To address this issue, this paper proposes an automated pest counting method in water traps through active robotic stirring. First, an automated robotic arm-based stirring system is developed to redistribute pests and reveal occluded individuals for counting. Then, the effects of different stirring patterns on pest counting performance are investigated. Six stirring patterns are designed and evaluated across different pest density scenarios to identify the optimal one. Finally, a heuristic counting confidence-driven closed-loop control system is proposed for adaptive-speed robotic stirring, adjusting the stirring speed based on the average change rate of counting confidence between consecutive frames. Experimental results show that the four circles is the optimal stirring pattern, achieving the lowest overall mean absolute counting error of 4.384 and the highest overall mean counting confidence of 0.721. Compared with constant-speed stirring, adaptive-speed stirring reduces task execution time by up to 44.7% and achieves more stable performance across different pest density scenarios. Moreover, the proposed pest counting method reduces the mean absolute counting error by up to 3.428 compared to the single static image counting method under high-density scenarios where occlusion is severe.

虫害监测机器人搅拌自动计数图像处理

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