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Author

Yindi Jing

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Preprint Jul 2026

Movable Antenna for Integrated Sensing and Communication in Air Sea Ground Networks

Integrated sensing and communication (ISAC) is a new paradigm for efficiently combining sensing and communication functionalities by leveraging shared hardware and radio resources. Despite its promise, ISAC yields conflicting beamforming goals and competition over the same resources. Movable antennas enable effective exploitation of spatial degrees of freedom through dynamic position/orientation control, thereby enhancing the performance of ISAC systems. This paper proposes a movable antenna framework for ISAC in air sea ground networks. A multi-objective optimization problem is formulated with the objectives of maximizing the communication rate of a set of aerial, sea, and ground devices and the sensing rate of a set of targets. The location and orientation of the antenna sub-arrays, as well as the transmit/receive beamforming, are optimized under practical constraints on the movable antennas'location and orientation. A solution is developed based on a $K$-means clustering approach to optimize the sub-arrays'orientation and a particle swarm optimization to place the sub-arrays in optimized locations. The transmit and receive beamforming are designed using a successive convex approximation and a generalized eigenvector method, respectively. Simulation results illustrate that the developed movable antenna framework improves the ISAC objective and provides a remarkable trade-off between the communication data rate and the targets'sensing rate when compared with the conventional stationary antenna array scenario.

Ahmed A. Al-habob, O. Dobre, Yindi Jing · 0 citations
2026

Uplink Sum–Rate Maximization for UAV-Mounted HAP Wireless-Powered OTFS–NOMA With Delay–Doppler Alignment

We consider sum–rate maximization of a wireless-powered network with an uncrewed aerial vehicle-mounted hybrid access point for off-grid and energy-autonomous deployment. Non-orthogonal multiple access (NOMA) over orthogonal time–frequency space (OTFS) maps symbols to the delay–Doppler domain for doubly selective channels. Each OTFS frame includes uplink (UL) pilots, downlink (DL) wireless power transfer (WPT), and UL OTFS–NOMA data with pilot-based, grid-quantized delay–Doppler alignment and ideal successive interference cancellation. We jointly optimize the DL WPT covariance, UL beamforming, the DL/UL time split, and per-sensor UL energies via alternating optimization (AO) and a single successive convex approximation (SCA) step. Simulation results show that the proposed AO/SCA scheme achieves an average sum–rate gain of 85.4% over the max-energy beamforming with single-pass UL/time optimization benchmark. Despite its higher complexity, the proposed AO/SCA offers a good performance–complexity tradeoff.

Reza Jafari, Yindi Jing, Abraham O. Fapojuwo · 0 citations