Abstract
This article presents an intelligent deployment solution for tabling that utilizes deep learning techniques. The solution involves adapting deep learning semantic segmentation algorithms with DeepLab V3+ to extract multi-dimensional image features, enabling the mapping of relationships between mineral ore belt characteristics and operating parameters using a multi-output support vector regression model optimized using a sparrow search algorithm (ssa-msvr). The proposed solution integrates image recognition software and data processing method, which significantly improves the efficiency and effectiveness of mineral processing, providing a promising avenue for further research and development in this field.
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CITATION STYLE
Keshun, Y., & Huizhong, L. (2023). Intelligent Deployment Solution for Tabling Adapting Deep Learning. IEEE Access, 11, 22201–22208. https://doi.org/10.1109/ACCESS.2023.3234075
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