Title :
Analytical framework for multiuser uplink MIMO space-time scheduling design with convex utility functions
Author_Institution :
Dept. of Electr. & Electron. Eng., Hong Kong Univ. of Sci. & Technol., China
Abstract :
In this paper, we derive a novel analytical framework for designing optimal multiple-input multiple-output (MIMO) uplink space-time scheduling algorithms with respect to general convex utility functions. The novel approach we take is to discretize the search space and apply integer-programming techniques. We assume that mobile terminal has nT transmit antennas while the base station has nR receive antennas. With multiple antennas at the transmitter and the receiver, joint beam-forming has to be considered. In order that our proposed framework is practicable and can be implemented with a reasonable cost in a real environment, we impose a linear spatial processing constraint at the physical layer of the base station. We apply the framework to two commonly used system utility functions, namely, maximal throughput and proportional fair. We devise an optimal scheduling algorithm based on our framework as a performance reference and observe that transmit antennas and receive antennas have different roles in the system performance. On the other hand, we study how far we are from the optimal performance on a widely used heuristic called the greedy algorithm in 3G1x and Universal Mobile Terrestrial Service (UMTS) systems. We found that it is optimal when nR=1 but there is quite a large performance penalty when nR>1 compared with the optimal reference. We further propose another heuristic algorithm [called the genetic algorithm(GA)] and found that the GA is quite promising in terms of performance complexity tradeoff, especially for large K (number of mobile users), nT, and nR.
Keywords :
3G mobile communication; MIMO systems; antenna arrays; genetic algorithms; integer programming; mobile radio; radio links; radio receivers; radio transmitters; receiving antennas; scheduling; transmitting antennas; UMTS; Universal Mobile Terrestrial Service; base station; convex utility functions; genetic algorithm; greedy algorithm; integer-programming technique; joint beam-forming; linear spatial processing constraint; maximal throughput; mobile terminal; mobile user; multiple antennas; multiple input multiple output algorithm; multiuser uplink MIMO space-time scheduling; optimal scheduling algorithm; proportional fair; receive antennas; receiver; transmit antennas; transmitter; Algorithm design and analysis; Base stations; Costs; MIMO; Mobile antennas; Optimal scheduling; Receiving antennas; Scheduling algorithm; Transmitters; Transmitting antennas; Genetic algorithm; MIMO; multiple antenna; multiple-input multiple-output; optimal algorithm; proportional fairness; scheduling; utility functions;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2004.834684