Paper
10 August 2023 Estimation about service time of flight ground support based on deep neural network
Zhiguo Yang, Xiaoming Yang, Tianqian Li, Wentao Peng, Yang Zhou, Fangmin Liao, Jing Tan, Zhengjiang Tang, Baiqiang Li, Bide Zhang, Xuan Lin
Author Affiliations +
Proceedings Volume 12748, 5th International Conference on Information Science, Electrical, and Automation Engineering (ISEAE 2023); 127482K (2023) https://doi.org/10.1117/12.2689371
Event: 5th International Conference on Information Science, Electrical and Automation Engineering (ISEAE 2023), 2023, Wuhan, China
Abstract
In order to improve the efficiency and decision-making ability of airport operation support, the realization of estimation about service time of flight ground support can reduce the time and economic losses caused by flight delays. Considering the complexity and particularity of the service process, this article started from the analysis of the flight ground support process and constructed a mathematical model of the service time. The method of Principal Component Analysis (PCA) was used to reduce the correlation between variables, and a service time prediction model of flight ground support based on Deep Neural Network (DNN) was established. Finally, the flight support operation data of an airport were selected for simulation and verification. Experimental results show that the average absolute error of service time prediction can reach 2.709 min, the proposed model can effectively estimate the service time of flight support and has higher accuracy.
© (2023) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Zhiguo Yang, Xiaoming Yang, Tianqian Li, Wentao Peng, Yang Zhou, Fangmin Liao, Jing Tan, Zhengjiang Tang, Baiqiang Li, Bide Zhang, and Xuan Lin "Estimation about service time of flight ground support based on deep neural network", Proc. SPIE 12748, 5th International Conference on Information Science, Electrical, and Automation Engineering (ISEAE 2023), 127482K (10 August 2023); https://doi.org/10.1117/12.2689371
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KEYWORDS
Neural networks

Principal component analysis

Education and training

Data modeling

Mathematical modeling

Error analysis

Data processing

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