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February 16, 20260 citationsOpen Access

Wampee-YOLO: A High-Precision Detection Model for Dense Clustered Wampee in Natural Orchard Scenario

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ZLZhiwei LiYXYusha XieJWJingjie Wang

Key Points

  • The primary aim is to develop a robust detection model for clustered wampee fruit in orchards.
  • Developed Wampee-YOLO based on YOLO11n architecture
  • Integrated RFEMAConv and AIFI modules for improved detection
  • Used Triplet Attention for better feature representation
  • Conducted ablation studies to evaluate performance gains
  • Achieved mAP50 of 90.3% and precision of 92.1%
  • 3.4% improvement in mAP50 over YOLO11n baseline
  • Enhanced performance through AFPN-Pro2345 module

Abstract

Wampee (Clausena lansium) harvesting currently relies heavily on manual labor, but automation is significantly hindered by clustered fruit growth patterns, small fruit sizes, and complex orchard backgrounds, which make accurate detection highly challenging. This study proposes Wampee-YOLO, a lightweight and high-precision model based on the YOLO11n architecture, specifically designed for real-time wampee detection in natural orchard environments. The proposed model integrates several architectural enhancements: the RFEMAConv module for expanded receptive fields, an AIFI module for improved small target interaction, and a C2PSA-MSCADYT structure to boost multi-scale adaptability. Additionally, a Triplet Attention mechanism strengthens multi-dimensional feature representation, while an AFPN-Pro2345 neck structure optimizes cross-scale feature fusion. Experimental results demonstrate that Wampee-YOLO achieves an mAP50 of 90.3%, a precision of 92.1%, and F1 score of 87%. This represents a significant 3.4% mAP50 improvement over the YOLO11n baseline, with a slight increase to 3.28 M parameters. Ablation studies further confirm that the AFPN-Pro2345 module provides the most substantial performance gain, increasing mAP50 by 2.4%. The model effectively balances computational efficiency with detection accuracy. These findings indicate that Wampee-YOLO offers a robust and efficient visual detection solution suitable for deployment on resource-constrained edge devices in smart orchard applications.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69926503eb1f82dc367a0e32https://doi.org/10.3390/horticulturae12020232
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