Paper
15 August 2023 Research on drug box fault detection based on improved YoLov4
Zedong Wu, ZhiQiang Zhang, Wenhui Zhu, Baohui Wu, KaiXuan Liu, Yining Hao
Author Affiliations +
Proceedings Volume 12719, Second International Conference on Electronic Information Technology (EIT 2023); 127194H (2023) https://doi.org/10.1117/12.2685856
Event: Second International Conference on Electronic Information Technology (EIT 2023), 2023, Wuhan, China
Abstract
In order to solve the problem of fault detection and identification of drug boxes on the conveyor belt of automatic drug vending machine, a target detection algorithm based on machine vision and deep neural network of efficient channel and spatial attention mechanism was proposed, named AT-YOLOV4. Firstly, the data set of Western medicine box fault detection was constructed. Secondly, the target detection model YOLOv4 with One-Stage structure was adopted, and the backbone network of the model was improved. In the Backbone network of this model, the efficient channel and spatial attention mechanism is integrated into the backbone module of YOLOv4 model. The improved model was compared with the unimproved YOLOv4 model, YOLOv3 model, YOLOv3-SPP model and YOLOv5s model for the correlation algorithm index experiments. Results The AT-YOLOV4 model with the efficient channel attention mechanism can effectively improve the recognition rate of the drug box and reduce the weight of the model. The AT-YOLOv4 model was significantly superior to other models in accuracy, recall rate and mean accuracy, and the mean accuracy of drug box identification reached 99.6%.
© (2023) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Zedong Wu, ZhiQiang Zhang, Wenhui Zhu, Baohui Wu, KaiXuan Liu, and Yining Hao "Research on drug box fault detection based on improved YoLov4", Proc. SPIE 12719, Second International Conference on Electronic Information Technology (EIT 2023), 127194H (15 August 2023); https://doi.org/10.1117/12.2685856
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KEYWORDS
Object detection

Education and training

Detection and tracking algorithms

Data modeling

Medicine

Performance modeling

Feature extraction

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