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Optimal non-coherent data detection for massive SIMO wireless systems: A polynomial complexity solution

机译:大规模SIMO无线系统的最佳非相干数据检测:多项式复杂度解决方案

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摘要

© 2015 IEEE. This paper considers the joint maximum likelihood (ML) channel estimation and data detection problem for massive SIMO (single input multiple output) wireless systems. We propose efficient algorithms achieving the exact ML non-coherent data detection, for both constant-modulus constellations and nonconstant-modulus constellations. Despite a large number of unknown channel coefficients in massive SIMO systems, we show that the expected computational complexity is linear in the number of receive antennas and polynomial in channel coherence time. To the best of our knowledge, our algorithms are the first efficient algorithms to achieve the exact joint ML channel estimation and data detection performance for massive SIMO systems with general constellations. Simulation results show our algorithms achieve considerable performance gains at a low computational complexity.
机译:©2015 IEEE。本文考虑了大规模SIMO(单输入多输出)无线系统的联合最大似然(ML)信道估计和数据检测问题。对于恒模星座和非恒模星座,我们提出有效的算法来实现精确的ML非相干数据检测。尽管在大规模SIMO系统中存在大量未知的信道系数,但我们表明,预期的计算复杂度在接收天线数量上是线性的,而在信道相干时间上是多项式。据我们所知,我们的算法是第一种为具有一般星座的大规模SIMO系统实现精确的联合ML信道估计和数据检测性能的高效算法。仿真结果表明,我们的算法以较低的计算复杂度实现了可观的性能提升。

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