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Low-bit rate feedback strategies for iterative IA-precoded MIMO-OFDM-based systems

机译:基于迭代IA预编码MIMO-OFDM的系统的低比特率反馈策略

摘要

Interference alignment (IA) is a promising technique that allows high-capacity gains in interference channels, but which requires the knowledge of the channel state information (CSI) for all the system links. We design low-complexity and low-bit rate feedback strategies where a quantized version of some CSI parameters is fed back from the user terminal (UT) to the base station (BS), which shares it with the other BSs through a limited-capacity backhaul network. This information is then used by BSs to perform the overall IA design. With the proposed strategies, we only need to send part of the CSI information, and this can even be sent only once for a set of data blocks transmitted over time-varying channels. These strategies are applied to iterative MMSE-based IA techniques for the downlink of broadband wireless OFDM systems with limited feedback. A new robust iterative IA technique, where channel quantization errors are taken into account in IA design, is also proposed and evaluated. With our proposed strategies, we need a small number of quantization bits to transmit and share the CSI, when comparing with the techniques used in previous works, while allowing performance close to the one obtained with perfect channel knowledge.
机译:干扰对齐(IA)是一种有前途的技术,它可以在干扰信道中实现大容量增益,但是需要了解所有系统链路的信道状态信息(CSI)。我们设计了低复杂度和低比特率反馈策略,其中一些CSI参数的量化版本从用户终端(UT)反馈到基站(BS),基站通过有限容量与其他BS共享回传网络。然后,BS使用此信息来执行整体IA设计。通过提出的策略,我们只需要发送一部分CSI信息,对于通过时变信道传输的一组数据块,甚至可以只发送一次。这些策略适用于基于MMSE的迭代IA技术,用于具有有限反馈的宽带无线OFDM系统的下行链路。还提出并评估了一种新的鲁棒迭代IA技术,该技术在IA设计中考虑了信道量化误差。通过我们提出的策略,与以前的工作中使用的技术相比,我们需要少量的量化比特来传输和共享CSI,同时允许性能接近使用完善的信道知识获得的性能。

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