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4G Mobile Networks:An Analysis of Spectrum Allocation, Software Radio Architectures and Interfacing Technology

机译:4G移动网络:频谱分配,软件无线电架构和接口技术分析

摘要

This thesis has investigated 4G radio access networks covering spectrum allocation methodologies, eNB software radios and architectures including interfacing performance aspects relevant for IMT-Advanced requirements. Dynamic spectrum allocation is an alternative to xed allocation methodologies. Al- though 100 MHz of spectrum per antenna will require frequencies re-allocation - initial rollouts with bandwidths of 40 MHz leveraging Carrier Aggregation and MIMO antenna techniques are foreseen within a 3-years time horizon. MultiRAN and high-power eNB congurations are expected to operate in the 1.7-2.6 GHz bands. Likewise, SingleRAN low-power congurations will operate in the 2.6-3.8 GHz bands allowing equipment manu- factures to focus on a limited number of systems and congurations. An SCR architecture is proposed based on SoC integration of both digital and analog functions allowing mod- ularity and exibility with a reduced footprint and equipment cost reduction. Baseband to radio interfaces were analyzed representing the future of open and dis- tributed eNB architectures. A contribution on carrier grade capacity analysis and interface interoperability enhancements was presented. Likewise, system synchronization and delay management - relevant because of the remote nature of OBSAI/CPRI equipment support- ing reliable multi-hop applications - were thoroughly analyzed. A new architecture for a serial receiver circuitry - the main source of interface delay measurement inaccuracy - is presented enabling 100 ps of theoretical resolution for delay variance.
机译:本文研究了涵盖频谱分配方法,eNB软件无线电和架构的4G无线电接入网络,其中包括与IMT-Advanced要求相关的接口性能方面。动态频谱分配是固定分配方法的替代方法。尽管每个天线100 MHz的频谱将需要重新分配频率-预计在3年的时间范围内将利用载波聚合和MIMO天线技术首次推出40 MHz带宽。多RAN和高功率eNB配置有望在1.7-2.6 GHz频带中运行。同样,SingleRAN低功耗配置将在2.6-3.8 GHz频带内运行,从而使设备制造专注于有限数量的系统和配置。基于数字和模拟功能的SoC集成,提出了SCR体系结构,可实现模块化和灵活性,并减少占位面积并降低设备成本。分析了基带到无线接口,代表了开放式和分布式eNB体系结构的未来。提出了对运营商级容量分析和接口互操作性增强的贡献。同样,对系统同步和延迟管理(由于OBSAI / CPRI设备支持可靠的多跳应用程序的远程特性而引起的相关性)进行了彻底分析。提出了一种用于串行接收器电路的新架构-接口延迟测量不准确的主要根源-可以实现100 ps的理论延迟延迟分辨率。

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