TY - GEN
T1 - Trajectory Optimization of Cellular-Connected UAV for Information Collection and Transmission
AU - Guo, Xianzhen
AU - Zhang, Shuowen
AU - Liu, Liang
N1 - Funding Information:
To maximally harness the benefits of cellular-enabled UAV communication, the UAV’s trajectory needs to be judiciously designed to ensure satisfactory communication performance during its flight. Note that the information communicated between the UAVs and the GBSs can be categorized into two types: low-rate control information for ensuring the safety of UAVs, and high-rate payload information when the UAV needs to acquire information and deliver it to the cellular network This work was supported by National Natural Science Foundation of China under Grant 62101474. This work was also supported by Shenzhen Virtual University Park Management Center under Grant R2021A006.
Publisher Copyright:
© 2022 IEEE.
PY - 2022/12
Y1 - 2022/12
N2 - In this paper, we consider a cellular-connected un-manned aerial vehicle (UAV) with an information collection and transmission mission for multiple ground targets. Specifically, the UAV is required to collect a fixed amount of information of each target by hovering at a pre-determined location (via e.g., photography/videography/sensing), and transmit all the collected information to the cellular network during its flight. We aim to jointly optimize the UAV's trajectory and the information collection order of the ground targets to minimize the mission completion time. The formulated problem is NP-hard due to the need of visiting the information collection locations for all targets; moreover, the UAV's trajectories over different time durations are coupled in non-convex constraints for ensuring information transmission completion. To handle this difficult problem, we first propose a structured communication protocol between the UAV and the cellular network, which decouples the UAV's trajectory designs in different time durations. Then, under the proposed protocol, we establish an equivalent graph-based model for the considered problem, and devise a low-complexity algorithm for finding an approximate solution by exploiting the problem structure and leveraging graph theory. Numerical results show that our proposed design achieves efficient information collection and transmission, and outperforms various benchmark schemes.
AB - In this paper, we consider a cellular-connected un-manned aerial vehicle (UAV) with an information collection and transmission mission for multiple ground targets. Specifically, the UAV is required to collect a fixed amount of information of each target by hovering at a pre-determined location (via e.g., photography/videography/sensing), and transmit all the collected information to the cellular network during its flight. We aim to jointly optimize the UAV's trajectory and the information collection order of the ground targets to minimize the mission completion time. The formulated problem is NP-hard due to the need of visiting the information collection locations for all targets; moreover, the UAV's trajectories over different time durations are coupled in non-convex constraints for ensuring information transmission completion. To handle this difficult problem, we first propose a structured communication protocol between the UAV and the cellular network, which decouples the UAV's trajectory designs in different time durations. Then, under the proposed protocol, we establish an equivalent graph-based model for the considered problem, and devise a low-complexity algorithm for finding an approximate solution by exploiting the problem structure and leveraging graph theory. Numerical results show that our proposed design achieves efficient information collection and transmission, and outperforms various benchmark schemes.
UR - http://www.scopus.com/inward/record.url?scp=85146968897&partnerID=8YFLogxK
U2 - 10.1109/GLOBECOM48099.2022.10001296
DO - 10.1109/GLOBECOM48099.2022.10001296
M3 - Conference article published in proceeding or book
AN - SCOPUS:85146968897
T3 - 2022 IEEE Global Communications Conference, GLOBECOM 2022 - Proceedings
SP - 5977
EP - 5982
BT - 2022 IEEE Global Communications Conference, GLOBECOM 2022 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2022 IEEE Global Communications Conference, GLOBECOM 2022
Y2 - 4 December 2022 through 8 December 2022
ER -