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A Study on Deep Reinforcement Learning Framework for DME Pulse DesignA Study on Deep Reinforcement Learning Framework for DME Pulse Design

Other Titles
A Study on Deep Reinforcement Learning Framework for DME Pulse Design
Authors
이정연김의호
Issue Date
2021
Publisher
사단법인 항법시스템학회
Keywords
distance measuring equipment (DME); alternative position; navigation and timing (APNT); reinforcement learning; deep learning
Citation
Journal of Positioning, Navigation, and Timing, v.10, no.2, pp.113 - 120
Journal Title
Journal of Positioning, Navigation, and Timing
Volume
10
Number
2
Start Page
113
End Page
120
URI
https://scholarworks.bwise.kr/hongik/handle/2020.sw.hongik/15835
DOI
10.11003/JPNT.2021.10.2.113
ISSN
2288-8187
Abstract
The Distance Measuring Equipment (DME) is a ground-based aircraft navigation system and is considered as an infrastructure that ensures resilient aircraft navigation capability during the event of a Global Navigation Satellite System (GNSS) outage. The main problem of DME as a GNSS back up is a poor positioning accuracy that often reaches over 100 m. In this paper, a novel approach of applying deep reinforcement learning to a DME pulse design is introduced to improve the DME distance measuring accuracy. This method is designed to develop multipath-resistant DME pulses that comply with current DME specifications. In the research, a Markov Decision Process (MDP) for DME pulse design is set using pulse shape requirements and a timing error. Based on the designed MDP, we created an Environment called PulseEnv, which allows the agent representing a DME pulse shape to explore continuous space using the Soft Actor Critical (SAC) reinforcement learning algorithm.
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