论文标题
高斯双向通道的线性编码
Linear Coding for Gaussian Two-Way Channels
论文作者
论文摘要
我们考虑为高斯双向通道(GTWC)进行线性编码,其中每个用户通过线性编码其消息和过去接收到的符号(即反馈信息)来生成传输符号。在高斯单向通道(GOWC)中,Butman提出了一个完善的线性编码模型,该模型将反馈信息封装在发送信号中。但是,自GTWCS用户的编码过程耦合以来,GTWCS的这种模型尚未得到很好的研究。在本文中,我们旨在通过将GOWC中的现有信号模型扩展到GTWC中,以填补文献中的这一空白。借助我们为GTWCS开发的信号模型,我们制定了一个优化问题,以共同设计两个用户的编码/解码方案,旨在最大程度地减少其信噪比限制下的发射功率的加权总和。首先,我们在用户使用的任何任意编码方案下得出了线性解码方案的最佳形式。此外,我们提供了有关GTWC编码设计的新见解。特别是,我们表明,最佳的是,其中一个用户(i)不会在上次频道使用时向其他用户传输反馈信息,并且(ii)仅在上一个频道使用中传输其消息。通过这些解决方案行为,我们进一步简化了问题并通过迭代的双向优化方案解决问题。我们从数值上证明,与现有的对应物(例如非反馈方案和单向优化方案)相比,我们针对GTWCS的提议方案在发射功率方面取得了更好的性能。
We consider linear coding for Gaussian two-way channels (GTWCs), in which each user generates the transmit symbols by linearly encoding both its message and the past received symbols (i.e., the feedback information) from the other user. In Gaussian one-way channels (GOWCs), Butman has proposed a well-developed model for linear encoding that encapsulates feedback information into transmit signals. However, such a model for GTWCs has not been well studied since the coupling of the encoding processes at the users in GTWCs renders the encoding design non-trivial and challenging. In this paper, we aim to fill this gap in the literature by extending the existing signal models in GOWCs to GTWCs. With our developed signal model for GTWCs, we formulate an optimization problem to jointly design the encoding/decoding schemes for both the users, aiming to minimize the weighted sum of their transmit powers under signal-to-noise ratio constraints. First, we derive an optimal form of the linear decoding schemes under any arbitrary encoding schemes employed at the users. Further, we provide new insights on the encoding design for GTWCs. In particular, we show that it is optimal that one of the users (i) does not transmit the feedback information to the other user at the last channel use, and (ii) transmits its message only over the last channel use. With these solution behaviors, we further simplify the problem and solve it via an iterative two-way optimization scheme. We numerically demonstrate that our proposed scheme for GTWCs achieves a better performance in terms of the transmit power compared to the existing counterparts, such as the non-feedback scheme and one-way optimization scheme.