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A Soft-Output MIMO Detector With Achievable Information Rate based Partial Marginalization

机译:基于部分边际化可实现信息速率的软输出MIMO检测器

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摘要

In this paper, we propose a soft-output detector for multiple-input multiple-output (MIMO) channels that utilize achievable information rate (AIR) based partial marginalization (PM). The proposed AIR based PM (AIR-PM) detector has superior performance compared to previously proposed PM designs and other soft-output detectors such as K-best, while at the same time yielding lower computational complexity, a detection latency that is independent of the number of transmit layers, and straightforward inclusion of soft-input information. Using a tree representation of the MIMO signal, the key property of the AIR-PM is that the connections among all child layers are broken. Therefore, least-square estimates used for marginalization are obtained independently and in parallel, which have better quality than the zero-forcing decision feedback estimates used in previous PM designs. Such a property of the AIR-PM detector is designed via a mismatched detection model that maximizes the AIR. Furthermore, we show that the chain rule holds for the AIR calculation, which facilitates an information theoretic characterization of the AIR-PM detector.
机译:在本文中,我们为多输入多输出(MIMO)信道提出了一种软输出检测器,该信道利用了基于可达到的信息速率(AIR)的部分边缘化(PM)。与之前提出的PM设计和其他软输出检测器(例如K-best)相比,提出的基于AIR的PM(AIR-PM)检测器具有更高的性能,同时产生的计算复杂度更低,而检测延迟与检测时间无关。传输层的数量,并直接包含软输入信息。使用MIMO信号的树形表示,AIR-PM的关键特性是所有子层之间的连接都断开了。因此,独立和并行获得用于边缘化的最小二乘估计,其质量比以前的PM设计中使用的零强制决策反馈估计更好。 AIR-PM检测器的这种特性是通过使AIR最大化的不匹配检测模型来设计的。此外,我们表明链规则适用于AIR计算,这有助于AIR-PM检测器的信息理论表征。

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