Related Experiment Videos
Joint optimization of HBS 3D trajectory and power allocation transmission for energy- efficient NOMA downlink in 6G
Osamah Thamer Hassan Alzubaidi1,2, Hayder Faeq Alhashimi3,4, Kaharudin Dimyati5
1Centre of Advanced Communication, Research and Innovation (ACRI), Department of Electrical Engineering, Faculty of Engineering, Universiti Malaya (UM), Kuala Lumpur, 50603, Malaysia. osamah.th@uokerbala.edu.iq.
Abstract:
The rapid growth of devices in the Internet of Everything (IoE) poses significant challenges in achieving high-capacity and energy-efficient connectivity in 6G wireless networks. Hovered base stations (HBSs) provide a promising solution for enhancing physical-layer performance; however, their mobility and inefficient transmit power allocation (PA) may increase interference and energy consumption. In this paper, a multi-HBS-based NOMA transmission framework is proposed for downlink 6G networks, where each HBS serves multiple IoE devices. The proposed framework jointly optimizes HBS three-dimensional (3D) trajectory, transmit PA, and dynamic decoding order execution to maximize total sum rate (TSR) and total energy efficiency (TEE) under minimum data-rate constraints. The resulting optimization problem is non-convex due to the coupling among optimization variables and constraints. To efficiently solve this problem, a low-complexity and fast-converging hybrid optimization framework integrating a developed genetic algorithm and modified gray wolf optimization is adopted. Simulation results demonstrate that the proposed framework significantly outperforms existing benchmark schemes, achieving up to 23.6% improvement in TSR and 35.8% improvement in TEE. These results confirm the effectiveness of the proposed joint optimization framework for improving overall network performance.
Related Concept Videos
Maximum Power Transfer
By substituting the entire circuit with...
Transmission Line Design Considerations
Maximum Power Flow and Line Loadability
Design of Transmission Shafts
The Maximum Power Transfer Theorem
The load connected draws the current, and the circuit delivers the power to the load. The alternating current flowing through the load is determined using the rectangular form of voltages, currents, network impedance, and load impedance. The average power delivered to the load is obtained from the product of the square of current and load resistance.
Methods of Medium Optimization