Automated Processing Method for Chinese NOTAMs Based on Knowledge Graph

Author:

Dong Bing1,Luo Chuang1,Hao Kuangong1,Liu Anquan1,Li Xinqian1

Affiliation:

1. Civil Aviation Flight University of China, 618307 Guanghan, People’s Republic of China

Abstract

Notice to airmen (NOTAMs) constitutes a vital element in civil aviation operational intelligence. Historically, the processing of these notices has been manual. However, with the significant increase in the number of NOTAMs, issues including low efficiency, time-consuming processes, and high error rates associated with manual processing have become apparent. To address these challenges, we propose an enhanced approach utilizing the Bi-GRU-CRF-Attention model, based on a dataset of 105,797 NOTAMs collected from the Intelligence Center between September 2020 and April 2023. In this methodology, we employ preprocessing techniques to train the model using processed NOTAMs. Subsequently, the trained model is utilized for named entity recognition, identifying entities within the notices, such as status, facilities, and reasons and segmenting sentences into words. Following this, an advanced BERT-DPCNN method is employed to classify the identified entities, yielding triplets comprising NOTAM entities, their categories, and corresponding processing methods. By integrating rule-based approaches, we configure a NOTAM knowledge graph using neo4j. This process establishes an automated NOTAM processing system. This system can autonomously determine the category of a NOTAM upon reception and utilize the Cypher language to query for the appropriate processing method.

Funder

Supported by the Central University Basic Research Funding Project

The project was funded by the Key scientific Research Project of Civil Aviation Flight College of China

Publisher

American Institute of Aeronautics and Astronautics (AIAA)

Reference25 articles.

1. XuZ. “Design and Realization of Navigation Notice Management System for Southwest Air Traffic Control Administration (SWATCA),” Ph.D. Dissertation, Univ. of Electronic Science and Technology of China, Chengdu, China, 2015.

2. NOTAM Text Analysis and Classification Based on Attention Mechanism

3. Natural language processing for aviation safety reports: From classification to interactive analysis

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