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A support vector machine based sub-band CQI feedback compression scheme for 3GPP LTE systems

机译:用于3GPP LTE系统的基于支持向量机的子带CQI反馈压缩方案

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Contemporary wireless communication standards, such as the long term evolution (LTE) standard, exploit several techniques, including link adaptation and frequency selective scheduling (FSS), to offer high data rate services. The efficacy of these techniques rely on the evolved Node B (eNB) having accurate channel state information through the use of a high signaling overhead process whereby channel quality indicator (CQI) feedback reports are sent by the user equipment (UE) to the eNB. In this work, we exploit a machine learning technique to address this problem and propose a novel sub-band CQI feedback compression scheme based on support vector machines to reduce this signaling overhead. The proposed compression scheme was implemented and tested in an LTE system level simulator and has shown efficacy with an overall CQI feedback signaling reduction of up to 88.7% whilst maintaining stable sector throughput, when compared to the standard third generation partnership project (3GPP) CQI feedback mechanism.
机译:当代的无线通信标准(例如长期演进(LTE)标准)利用了多种技术(包括链路自适应和频率选择性调度(FSS))来提供高数据速率服务。这些技术的功效依赖于演进的节点B(eNB)通过使用高信令开销过程而具有准确的信道状态信息,由此信道质量指示符(CQI)反馈报告由用户设备(UE)发送到eNB。在这项工作中,我们利用机器学习技术来解决此问题,并提出了一种基于支持向量机的新型子带CQI反馈压缩方案,以减少这种信令开销。与标准的第三代合作伙伴计划(3GPP)CQI相比,建议的压缩方案已在LTE系统级仿真器中实施和测试,并显示出功效,总体CQI反馈信令减少了88.7%,同时保持了稳定的扇区吞吐量。反馈机制。

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