湖北农业科学 ›› 2025, Vol. 64 ›› Issue (10): 179-183.doi: 10.14088/j.cnki.issn0439-8114.2025.10.027

• 信息工程 • 上一篇    下一篇

基于YOLOv8的无人机影像农田地表残膜检测

张天乐a,b,c, 王麒哲a,b,c, 杨寒冰a,b,c, 刘城铭a,b,c, 赵新苗a,b,c   

  1. 新疆农业大学,a.计算机与信息工程学院; b.智能农业教育部工程研究中心; c.新疆农业信息化工程技术研究中心,乌鲁木齐 830052
  • 收稿日期:2025-03-20 出版日期:2025-10-25 发布日期:2025-11-14
  • 通讯作者: 赵新苗(1990-),女,山东菏泽人,实验师,硕士,主要从事农业工程方面的研究工作。
  • 作者简介:张天乐(2005-),男,河南商丘人,在读本科生,专业方向为人工智能,(电话)17737069117(电子信箱)3289387500@qq.com。
  • 基金资助:
    新疆农业大学自治区级大学生创新项目(dxscx2024341)

Detection of farmland surface residual plastic film from UAV images based on YOLOv8

ZHANG Tian-lea,b,c, WANG Qi-zhea,b,c, YANG Han-binga,b,c, LIU Cheng-minga,b,c, ZHAO Xin-miaoa,b,c   

  1. a.School of Computer and Information Engineering; b. Engineering Research Center of Intelligent Agriculture, Ministry of Education; c. Xinjiang Agricultural Informatization Engineering Technology Research Center,Xinjiang Agricultural University, Urumqi 830052, China
  • Received:2025-03-20 Published:2025-10-25 Online:2025-11-14

摘要: 农田地表地膜残留对土壤和作物生长有负面影响,高效评估地膜残留情况是关键。提出了一种基于YOLOv8的深度学习检测方法,对无人机拍摄的RGB图像进行自动化识别,采用新疆昌吉华兴农场采集的农田数据,通过LabelMe进行标注,并对数据进行预处理和增强。结果表明,YOLOv8在残膜检测任务中表现良好,mAP@0.5达到86.5%,实现高效、精准的残膜检测。

关键词: 地表残膜, 无人机影像, 农田监测, YOLOv8

Abstract: Residual plastic film negatively impacted soil quality and crop growth, making efficient assessment of its distribution a crucial issue. A deep learning-based detection method using YOLOv8 for the automatic identification of residual plastic film in UAV-captured RGB images was proposed. The research utilized farmland data collected from Huaxing Farm in Changji, Xinjiang, with annotations performed using LabelMe, followed by data preprocessing and augmentation. Experimental results demonstrated that YOLOv8 performed well in residual plastic film detection, achieving an mAP@0.5 of 86.5%, enabling efficient and accurate detection, providing technological support for agricultural environmental monitoring and pollution management.

Key words: residual plastic film, UAV, monitoring, YOLOv8

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