论文标题

使用低分辨率ADC的功率有效混合MIMO接收器的低分辨率ADC进行了鲁棒的特定任务波束

Robust Task-Specific Beamforming with Low-Resolution ADCs for Power-Efficient Hybrid MIMO Receivers

论文作者

Tasci, Eyyup, Zirtiloglu, Timur, Yasar, Alperen, Eldar, Yonina C., Shlezinger, Nir, Yazicigil, Rabia Tugce

论文摘要

多输入多输出(MIMO)系统利用空间多样性来促进多用户通信,并通过横向成形来以高光谱效率。随着MIMO系统使用多个天线和射频(RF)链,它们的实施和消耗高功率通常是昂贵的。降低MIMO接收器成本的一种常见方法是通过使用混合模拟/数字波束成形(HBF),利用与天线更少的RF链。但是,附加的模拟电路涉及活跃的组件,其消耗功率可能超过RF链减少的功率。实现发电的MIMO系统的另一种方法是使用低分辨率类似物转换器(ADC),这通常会损害信号恢复精度。在这项工作中,我们通过使用特定于任务的量化技术以相同的方式以硬件的方式共同优化模拟和数字处理,提出了一个具有低定量率ADC的功率混合MIMO接收器。为了减轻模拟前端的功耗,我们利用了由稀疏的低分辨率矢量调节器组成的有效模拟硬件体系结构,同时考虑了其设计属性以保持恢复精度并减轻拥挤环境中的干扰物。为了说明非理想硬件引起的常见不匹配和不准确的频道状态信息,我们提出了一个强大的不匹配意识设计。在数值模拟和功率分析的支持下,我们的功率效率MIMO接收器使用高分辨率ADC实现了与耗电完全数字的MIMO接收器相当的信号恢复性能。此外,我们的接收器的表现优于任务无形的HBF接收器,其低速ADC的恢复精度低于较低的功率,并成功应对硬件不匹配。

Multiple-input multiple-output (MIMO) systems exploit spatial diversity to facilitate multi-user communications with high spectral efficiency by beamforming. As MIMO systems utilize multiple antennas and radio frequency (RF) chains, they are typically costly to implement and consume high power. A common method to reduce the cost of MIMO receivers is utilizing less RF chains than antennas by employing hybrid analog/digital beamforming (HBF). However, the added analog circuitry involves active components whose consumed power may surpass that saved in RF chain reduction. An additional method to realize power-efficient MIMO systems is to use low-resolution analog-to-digital converters (ADCs), which typically compromises signal recovery accuracy. In this work, we propose a power-efficient hybrid MIMO receiver with low-quantization rate ADCs, by jointly optimizing the analog and digital processing in a hardware-oriented manner using task-specific quantization techniques. To mitigate power consumption on the analog front-end, we utilize efficient analog hardware architecture comprised of sparse low-resolution vector modulators, while accounting for their properties in design to maintain recovery accuracy and mitigate interferers in congested environments. To account for common mismatches induced by non-ideal hardware and inaccurate channel state information, we propose a robust mismatch aware design. Supported by numerical simulations and power analysis, our power-efficient MIMO receiver achieves comparable signal recovery performance to power-hungry fully-digital MIMO receivers using high-resolution ADCs. Furthermore, our receiver outperforms the task-agnostic HBF receivers with low-rate ADCs in recovery accuracy at lower power and successfully copes with hardware mismatches.

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