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DBCW-YOLO: A Modified YOLOv5 for the Detection of Steel Surface Defects

In steel production, defect detection is crucial for preventing safety risks, and improving the accuracy of steel defect detection in industrial environments remains challenging due to the variable types of defects, cluttered backgrounds, low contrast, and noise interference. Therefore, this paper i...

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Bibliografiske detaljer
Principais autores: Jianfeng Han, Guoqing Cui, Zhiwei Li, Jingxuan Zhao
Format: Artigo
Sprog:Inglês
Udgivet: MDPI AG 2024-05-01
Serier:Applied Sciences
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Online adgang:https://www.mdpi.com/2076-3417/14/11/4594
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