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오현동

Oh, Hyondong
Autonomous Systems Lab.
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A Hybrid Approach of Learning and Model-Based Channel Prediction for Communication Relay UAVs in Dynamic Urban Environments

Author(s)
Ladosz, PawelOh, HyondongZheng, GanChen, Wen-Hua
Issued Date
2019-07
DOI
10.1109/LRA.2019.2903850
URI
https://scholarworks.unist.ac.kr/handle/201301/26598
Fulltext
https://ieeexplore.ieee.org/document/8663422
Citation
IEEE ROBOTICS AND AUTOMATION LETTERS, v.4, no.3, pp.2370 - 2377
Abstract
This letter presents the trajectory planning of small unmanned aerial vehicles (UAVs) for a communication relay mission in an urban environment. In particular, we focus on predicting the communication strength between air and ground nodes accurately to allow relay UAVs to maximize the communication performance improvement of networked nodes. In urban environments, this prediction is not easily achievable even with good mathematical models as each model is characterized by a series of parameters which are not trivial to obtain or estimate apriori and can vary during the mission. To address the difficulty, this work proposes to integrate a learning-based measurement technique with a probabilistic communication channel model. This hybrid approach is able to predict communication model parameters based on signal strength data that UAVs observe during the mission online, thus achieving better performance compared with the model-based approach in an urban environment. The predicted parameters are based on four discrete urban environment types. Numerical simulations validate the performance and benefit of the proposed approach.
Publisher
EEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
ISSN
2377-3766
Keyword (Author)
Aerial Systems: applicationslearning and adaptive systemsmotion and path planning
Keyword
UNMANNED AERIAL VEHICLESTRACKING

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