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An Enhanced Yolov5 Algorithm Based on Distill Model for Biomass Material Detection

  • Shidan Chi
  • , Ruoxi Liang
  • , Xiaochen Wang
  • , Anxin Chen
  • , Ming Huang
  • , Weilin Li
  • Shandong Electric Power Engineering Consulting Institute Corp., Ltd.
  • Northwestern Polytechnical University Xian

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

In response to the intelligent needs of automatic feeding detection systems in the biomass power generation industry, this paper proposes an enhanced YOLOv5 algorithm based on a distillation model. An image dataset containing various types of biomass materials, such as wood chips, straw, and leaves, was constructed. The model was optimized through data augmentation and transfer learning to enhance its generalization ability and accuracy. By combining high-resolution image acquisition with distillation model optimization, this approach effectively addresses issues like complex environments and image blurriness in biomass power plants, providing a more reliable data foundation for subsequent detection. Using the enhanced YOLOv5 model for object detection, combined with three-dimensional information obtained from depth cameras, precise positioning of biomass materials is achieved. Experimental results show that this method significantly improves performance in biomass material detection tasks, with an average precision (mAP) reaching 92.2%, an improvement of 6.5% compared to original YOLOv5 models. This effectively enhances detection accuracy and stability, providing technical support for the automation upgrade of biomass power plants.

源语言英语
主期刊名2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9798331524036
DOI
出版状态已出版 - 2025
活动20th IEEE Conference on Industrial Electronics and Applications, ICIEA 2025 - Yantai, 中国
期限: 3 8月 20256 8月 2025

丛书

姓名2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025

会议

会议20th IEEE Conference on Industrial Electronics and Applications, ICIEA 2025
国家/地区中国
Yantai
时期3/08/256/08/25

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