使用内点法和半定规划的近最大似然检测

H. Laamari, J. Belfiore, N. Ibrahim
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引用次数: 0

摘要

本文将数字通信系统的最大似然检测问题重新表述为半定规划问题。这个问题得到了缓和。采用内点法有效地求解由松弛引起的半定程序。从该内点法给出的解中,使用随机化方法提取初始ML检测问题解的近似解。本文提出的检测方法将具有接近机器学习的性能和多项式复杂度。
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Near maximum likelihood detection using an interior point method and semidefinite programming
In this paper a maximum likelihood detection problem for a digital communication system is reformulated as a semidefinite programming (SDP) problem. A relaxation of this problem is done. An interior point method will be used to efficiently solve the semidefinite program arising from the relaxation. From the solution given by this interior point method, an approximate of the solution of the initial ML detection problem will be extracted using a randomization method. The detection method presented in this paper will have near ML performances with a polynomial complexity.
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