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October 3, 2025Agriculture2 citationsOpen Access

Performance Evaluation of a UAV-Based Graded Precision Spraying System: Analysis of Spray Accuracy, Response Errors, and Field Efficacy

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YLYang LyuSYSeung-Hwa YuCLChun-Gu Lee

Key Points

  • The UAV-based spraying system achieved high spray accuracy, notably in high-spray zones.
  • Spray entry and exit deviations averaged 0.878 m and 0.955 m, indicating response time challenges.
  • Field tests showed significant increases in grain development with higher fertilization levels (p < 0.001).
  • Further improvements are needed to refine UAV path tracking for optimal spray performance.

Abstract

Advances in sensor technology have significantly improved the efficiency and precision of agricultural spraying. Unmanned aerial vehicles (UAVs) are widely utilized for applying plant protection products (PPPs) and fertilizers, offering enhanced spatial control and operational flexibility. This study evaluated the performance of an autonomous UAV-based precision spraying system that applies variable rates based on zone levels defined in a prescription map. The system integrates real-time kinematic global navigation satellite system positioning with a proximity-triggered spray algorithm. Field experiments on a rice field were conducted to assess spray accuracy and fertilization efficacy with liquid fertilizer. Spray deposition patterns on water-sensitive paper showed that the graded strategy distinguished among zone levels, with the highest deposition in high-spray zones, moderate in medium zones, and minimal in no-spray zones. However, entry and exit deviations—used to measure system response delays—averaged 0.878 m and 0.955 m, respectively, indicating slight lags in spray activation and deactivation. Fertilization results showed that higher application levels significantly increased the grain-filling rate and thousand-grain weight (both p 0.05). This suggests that increased fertilization primarily enhances grain development rather than overall plant structure. Overall, the system shows strong potential to optimize inputs and yields, though UAV path tracking errors and system response delays require further refinement to enhance spray uniformity and accuracy under real-world applications.

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Cite This Study

Lyu et al. (2025) studied this question.

synapsesocial.com/papers/68e0450fa99c246f578b3e2dhttps://doi.org/10.3390/agriculture15192070
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