Semi-blind Sparse Channel Estimation and Data Detection by Successive Convex Approximation

Ouahbi Rekik, K. Abed-Meraim, M. Pesavento, Anissa Zergaïnoh-Mokraoui
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Abstract

The aim of this paper is to propose a semi-blind solution, for joint sparse channel estimation and data detection, based on the successive convex approximation approach. The optimization is performed on an approximate convex problem, rather than the original nonconvex one. By exploiting available data and system structure, an iterative procedure is proposed where the channel coefficients and data symbols are updated simultaneously at each iteration. Also an optimized step size, introduced according to line search procedure, is used for convergence improvement with guaranteed convergence to a stationary point. Simulation results show that the proposed solution exhibits fast convergence with very attractive channel and data estimation performance.
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基于连续凸逼近的半盲稀疏信道估计与数据检测
本文的目的是提出一种基于连续凸逼近方法的联合稀疏信道估计和数据检测的半盲解决方案。优化是在一个近似凸问题上进行的,而不是原来的非凸问题。利用现有的数据和系统结构,提出了在每次迭代中同时更新信道系数和数据符号的迭代方法。此外,根据直线搜索过程引入了优化步长,以保证收敛到一个平稳点。仿真结果表明,该方法收敛速度快,具有良好的信道和数据估计性能。
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