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半監(jiān)督式野生動物夜間目標端到端檢測

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End-to-end recognition nighttime wildlife based on semi-supervised learning

LU Han1,CUI Bolun2,WAN Huayang1, ZHANG Gueng1,SHEN Chen1,WANG Chil*

(1. School , , ,

2. & Electricity, lOoo94,China) *Correspondingauthor,E-mail:wangchi@shu.edu.cn

Abstract: This study addresses the challenges low accuracy efficiency in the detection wildlife at night,as well as the dificulties associated with manual comprehensive labeling.An end-to-end recognition model for nightime wildlife based on semi-supervised learning(SAN-YOLO)was proposed investigated.A feature atention mechanism a pixel attention mechanism were integrated within the YOLOv8 framework to enhance the adaptability feature representation capabilities the detector for nocturnal mages. Subsequently,a semi-supervised training network based on a teacher-student learning paradigm was constructed,allowing the student model to learn from a substantial number unlabeled original images by generating appropriately asigning pseudo-labels. The efficacy the constructed dataset was then evaluated. Experimental results demonstrate that the mean Average Precision (mAP) SAN

YOLO reaches 69.7% with only 5% annotated data,surpassing the 59.6% mAP achieved with full su pervision in its conventional detector exceeding the baseline model's performance 57.1% . Consequently,the proposed detection method exhibits robust performance with a limited number labeled datasets for nocturnal animals validates the effectiveness attention mechanisms in the domain nighttime object detection.

Key words: object detection;semi-supervised learning;infrared nightvision;wildlife conservation; teacher-student model; attention mechanism

1引言

野生動物是寶貴的自然資源,在生態(tài)系統(tǒng)中發(fā)揮著重要作用1,開展長期、精準且系統(tǒng)的野生動物監(jiān)測對于實施科學的保護策略具有重要意義。(剩余14921字)

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