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Mixed-Numerology Signals Transmission and Interference Cancellation for Radio Access Network Slicing

机译:混合数字信号传输和干扰消除无线电接入网络切片

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A clear understanding of mixed-numerology signals multiplexing and isolation in the physical layer is of importance to enable spectrum efficient radio access network (RAN) slicing, where the available access resource is divided into slices to cater to services/users with optimal individual design. In this paper, a RAN slicing framework is proposed and systematically analyzed from the physical layer perspective. According to the baseband and radio frequency (RF) configurations imparities among slices, we categorize four scenarios and elaborate on the numerology relationships of slices configurations. By considering the most generic scenario, system models are established for both uplink and downlink transmissions. Besides, a low out of band emission (OoBE) waveform is implemented in the system for the sake of signal isolation and inter-service/slice-band-interference (ISBI) mitigation. We propose two theorems as the basis of algorithms design in the established system, which generalize the original circular convolution property of discrete Fourier transform (DFT). Moreover, ISBI cancellation algorithms are proposed based on a collaboration detection scheme, where joint slices signal models are implemented. The framework proposed in the paper establishes a foundation to underpin extremely diverse use cases in 5G that implement on a common infrastructure.
机译:清楚地了解物理层中的混合数字信号的多路复用和隔离是重视的,可以实现频谱有效的无线电接入网络(RAN)切片,其中可用的访问资源被分成切片以满足具有最佳个人设计的服务/用户。在本文中,提出了一种从物理层视角来系统地分析了RAN切片框架。根据切片之间的基带和射频(RF)配置义务,我们将四种情况分类并详细阐述了切片配置的数字关系。通过考虑最通用的场景,为上行链路和下行链路传输建立了系统模型。此外,为了信号隔离和间歇/切片带干扰(ISBI)缓解,在系统中实现了低带发射(Oobe)波形。我们提出了两个定理作为建立系统中算法设计的基础,这概括了离散傅里叶变换(DFT)的原始循环卷积特性。此外,基于协作检测方案提出了ISBI消除算法,其中实现了联合切片信号模型。本文提出的框架建立了在普通基础设施上实施的5G极其多样化的用例基础。

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