托盘
计算机科学
跟踪(教育)
人工智能
计算机视觉
工程类
心理学
机械工程
教育学
作者
Shengchang Zhang,Jie Xiang,Weijian Han
标识
DOI:10.48550/arxiv.2004.08965
摘要
The use of automated guided vehicles (AGVs) has played a pivotal role in manufacturing and distribution operations, providing reliable and efficient product handling. In this project, we constructed a deep learning-based pallets detection and tracking architecture for pallets detection and position tracking. By using data preprocessing and augmentation techniques and experiment with hyperparameter tuning, we achieved the result with 25% reduction of error rate, 28.5% reduction of false negative rate, and 20% reduction of training time.
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