Evolutionary Algorithms for Near-optimum Detection of Multi-beam Satellite Signals

被引:0
|
作者
Sacchi, Claudio [1 ]
Rahman, Talha Faizur [2 ]
Stallo, Cosimo [3 ]
Ruggieri, Marina [3 ]
机构
[1] Univ Trento, Dept Informat Engn & Comp Sci DISI, Via Sommar 9, I-38123 Trento, Italy
[2] COMSATS Inst Informat Technol, Ctr Adv Study Telecommun CAST, Islamabad, Pakistan
[3] Univ Roma Tor Vergata, Dept Elect Engn, Via Politecn 1, I-00133 Rome, Italy
关键词
GENETIC ALGORITHMS; OPTIMIZATION; DESIGN;
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Multi-beam satellites represent one of the enabling technologies for future terabit satellite systems. It is known that, increasing the reuse factor of frequency sub-bands, it is possible to boost multi-beam satellite capacity, provided that co-channel interference is conveniently reduced at the Earth station side. To this aim, suitable multi-user detection techniques are required. The optimum detection is based on the maximum-likelihood (ML) criterion, which involves a prohibitive computational burden for large reuse factors. Alternative state-of-the-art suboptimal solutions are based on Minimum Mean Square Error (MMSE) detection and iterative interference cancellation. In this work, we aim at testing near-optimum multi-beam detection techniques based on evolutionary algorithms, namely: Genetic Algorithms (GAs) and Particle Swarm Optimization (PSOs), both them well suited for solving complex nonlinear optimization problems with tolerable computational complexity. In particular, we shall consider GA and PSO-assisted maximum likelihood detection, thus exploiting the capability of GA and PSO of finding near-optimum ML solution within a search space of reasonable cardinality. A simulation testbed will be implemented by considering a multi-beam Single Feed per Beam Antenna System (SFBA) with combined transmission and reception antennas. Results obtained by evolutionary-aided ML detection will be compared with those yielded suboptimal MMSE multibeam detection and with the single-user bound. Simulation results show the near-optimal potential of the proposed evolutionary techniques, in particular when the theoretical ML detection exhibits unaffordable computational burden.
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页数:8
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