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Adaptive Compression and Joint Detection for Fronthaul Uplinks in Cloud Radio Access Networks

机译:云无线电接入网络中前传上行链路的自适应压缩和联合检测

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Cloud radio access network (C-RAN) has recently attracted much attention as a promising architecture for future mobile networks to sustain the exponential growth of data rate. In C-RAN, one data processing center or baseband unit (BBU) communicates with users via distributed remote radio heads (RRHs), which are connected to the BBU via high capacity, low latency fronthaul links. In this paper, we study the compression on fronthaul uplinks and propose a joint decompression algorithm at the BBU. The central premise behind the proposed algorithm is to exploit the correlation between RRHs. Our contribution is threefold. First, we propose a joint decompression and detection (JDD) algorithm which jointly performs decompressing and detecting. The JDD algorithm takes into consideration both the fading and compression effect in a single decoding step. Second, block error rate (BLER) of the proposed algorithm is analyzed in closed-form by using pair-wise error probability analysis. Third, based on the analyzed BLER, we propose adaptive compression schemes subject to quality of service (QoS) constraints to minimize the fronthaul transmission rate while satisfying the pre-defined target QoS. As a dual problem, we also propose a scheme to minimize the signal distortion subject to fronthaul rate constraint. Numerical results demonstrate that the proposed adaptive compression schemes can achieve a compression ratio of 300% in experimental setups.
机译:云无线电接入网(C-RAN)作为一种有望成为未来移动网络来维持数据速率指数增长的有前途的架构,最近引起了广泛的关注。在C-RAN中,一个数据处理中心或基带单元(BBU)通过分布式远程无线电头(RRH)与用户进行通信,后者通过高容量,低延迟的前传链路连接到BBU。在本文中,我们研究了前传上行链路上的压缩,并在BBU上提出了联合解压缩算法。该算法背后的中心前提是利用RRH之间的相关性。我们的贡献是三倍。首先,我们提出一种联合解压缩和检测(JDD)算法,该算法联合执行解压缩和检测。 JDD算法在单个解码步骤中同时考虑了衰落和压缩效果。其次,通过成对错误概率分析,以封闭形式分析了所提算法的块误码率。第三,基于所分析的BLER,我们提出了一种受服务质量(QoS)约束的自适应压缩方案,以在满足预定目标QoS的同时最大程度地减少前传传输速率。作为一个双重问题,我们还提出了一种方案,以最大程度地减小受前传速率约束的信号失真。数值结果表明,所提出的自适应压缩方案在实验设置中可以实现300%的压缩率。

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