Remote UAV Online Path Planning via Neural Network Based Opportunistic Control
October 11, 2019 Β· Declared Dead Β· π IEEE Wireless Communications Letters
"No code URL or promise found in abstract"
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Authors
Hamid Shiri, Jihong Park, Mehdi Bennis
arXiv ID
1910.04969
Category
cs.NI: Networking & Internet
Cross-listed
cs.LG
Citations
47
Venue
IEEE Wireless Communications Letters
Last Checked
6 months ago
Abstract
This letter proposes a neural network (NN) aided remote unmanned aerial vehicle (UAV) online control algorithm, coined oHJB. By downloading a UAV's state, a base station (BS) trains an HJB NN that solves the Hamilton-Jacobi-Bellman equation (HJB) in real time, yielding the optimal control action. Initially, the BS uploads this control action to the UAV. If the HJB NN is sufficiently trained and the UAV is far away, the BS uploads the HJB NN model, enabling to locally carry out control decisions even when the connection is lost. Simulations corroborate the effectiveness of oHJB in reducing the UAV's travel time and energy by utilizing the trade-off between uploading delays and control robustness in poor channel conditions.
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