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Intelligent Reflecting Surfaces for Compute-and-Forward

机译:用于计算和前进的智能反射表面

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Compute-and-forward is a promising strategy to tackle interference and obtain high rates between the transmitting users in a wireless network. However, the quality of the wireless channels between the users substantially limits the achievable computation rate in such systems. In this paper, we introduce the idea of using intelligent reflecting surfaces (IRSs) to enhance the computing capability of the compute-and-forward systems. For this purpose, we consider a multiple access channel (MAC) where a number of users aim to send data to a base station (BS) in a wireless network, where the BS is interested in decoding a linear combination of the data from different users in the corresponding finite field. Considering the compute-and-forward framework, we show that through carefully designing the IRS parameters, such a scenario’s computation rate can be significantly improved. More specifically, we formulate an optimization problem which aims to maximize the computation rate of the system through optimizing the IRS phase shift parameters. We then propose an alternating optimization (AO) approach to solve the formulated problem with low complexity. Finally, via various numerical results, we demonstrate the effectiveness of the IRS technology for enhancing the performance of the compute-and-forward systems, which indicates its great potential for future wireless networks with massive computation requirements, such as 6G.
机译:计算和前进是一种有希望的策略来解决干扰,并在无线网络中获得发射用户之间的高速度。然而,用户之间的无线信道的质量基本上限制了这种系统中可实现的计算速率。在本文中,我们介绍了使用智能反射表面(IRS)来增强计算和前进系统的计算能力的想法。为此目的,我们考虑多个接入信道(MAC),其中许多用户旨在将数据发送到无线网络中的基站(BS),其中BS有兴趣解码来自不同用户的数据的线性组合在相应的有限场中。考虑到计算和前进框架,我们表明,通过仔细设计IRS参数,可以显着提高这种情况的计算速率。更具体地,我们制定了优化问题,该优化问题旨在通过优化IRS相移参数来最大化系统的计算速率。然后,我们提出了一种交替的优化(AO)方法来解决低复杂性的配制问题。最后,通过各种数值结果,我们展示了IRS技术来提高计算和前进系统的性能的有效性,这表明其未来无线网络具有大量计算要求的巨大潜力,例如6G。

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