On The Capacity of IRS-Assisted Gaussian SIMO Channels

Milad Dabiri, S. Loyka
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引用次数: 1

Abstract

Intelligent reflective surface (IRS) has recently emerged as a valuable addition to other key technologies for 5/6G to improve their energy efficiency and achievable rate at low cost. An IRS-assisted single-input multiple-output (SIMO) channel is studied here from an information-theoretic perspective. Its channel capacity includes an optimization over IRS phase shifts, which is not a convex problem and for which no closed-form solutions are known either. A number of closed-form bounds are obtained for the general case, which are tight in some special cases and thus provide a globally-optimal solution to the original problem. Based on a closed-form globally-optimal solution for the single reflector case, a computationally-efficient iterative algorithm is proposed for the general case. Its convergence to a local optimum is rigorously proved and a number of cases are identified where its convergence point is also globally optimal. Numerical experiments show that the algorithm converges fast in practice and its convergence point is close to a global optimum.
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irs辅助高斯SIMO信道容量研究
智能反射表面(IRS)最近成为5/6G其他关键技术的一个有价值的补充,以提高其能源效率和低成本的可实现率。本文从信息论的角度研究了irs辅助的单输入多输出(SIMO)信道。它的信道容量包括对IRS相移的优化,这不是一个凸问题,也没有已知的封闭形式的解决方案。在一般情况下,得到了许多封闭边界,在某些特殊情况下,这些封闭边界是紧的,从而提供了原问题的全局最优解。基于单反射面情况的闭型全局最优解,提出了一般情况下计算效率高的迭代算法。严格证明了其收敛于局部最优,并确定了若干收敛点也是全局最优的情况。数值实验表明,该算法收敛速度快,收敛点接近全局最优。
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