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引用次数: 7

摘要

本文提出了一种新的两阶段模因算法来解决最大似然多用户检测问题。该算法采用标准进化规划(EP)进行基础级搜索,快速决策,将搜索导向最优区域(阶段1)。然后使用k-opt启发式局部搜索的局部优化进行微调(阶段2)。为了验证该方法的有效性,将该算法应用于10用户和20用户同步直接序列码分多址(DS-CDMA)系统。结果清楚地表明,该算法不仅提高了解的质量,而且在迭代次数方面提高了EP达到全局最优的效率。
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An effective memetic algorithm for the optimum multiuser detection problem
This work presents a new two-phase, memetic algorithm to solve the maximum-likelihood multiuser detection problem. The algorithm uses a standard evolutionary programming (EP) for the base level search, which makes a quick decision to direct the search towards the optimal region (phase-1). The local optimization by k-opt heuristic local search is then employed to do fine tuning (phase-2). In order to validate the effectiveness of the proposed method, the algorithm is applied to 10- and 20-user synchronous direct-sequence code-division multiple-access (DS-CDMA) systems. The results clearly show that the algorithm not only improves the solution quality but also makes the EP more efficient in terms of number of iterations to reach the global optimum.
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