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Design and Architecture of Spatial Multiplexing MIMO Decoders for FPGAs

机译:FPGA空间复用MIMO解码器的设计和架构

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摘要

Spatial multiplexing multiple-input-multiple-output (MIMO) communication systems have recently drawn significant attention as a means to achieve tremendous gains in wireless system capacity and link reliability. The optimal hard decision detection for MIMO wireless systems is the maximum likelihood(ML) detector. ML detection is attractive due to its superior performance (in terms of BER). However, direct implementation grows exponentially with the number of antennas and the modulation scheme, making its ASIC or FPGA implementation infeasible for all but low-density modulation schemes using asmall number of antennas. Sphere decoding (SD) solves the ML detection problem in a computationally efficient manner. However, even with this complexity reduction, real-time implementation on a DSP processor is generally not feasible and high-performance parallel computing platforms such as FPGAsare increasingly being employed for this class of applications. The sphere detection problem affords many opportunities for algorithm and micro-architecture optimizations and tradeoffs. This paper provides an overview of techniques to simplify and minimize FPGA resource utilization of sphere detectors for high performance low-latency systems.
机译:空间多路复用多输入多输出(MIMO)通信系统最近作为一种在无线系统容量和链路可靠性方面获得巨大收益的方法而受到了广泛的关注。 MIMO无线系统的最佳硬决策检测是最大似然(ML)检测器。 ML检测由于其优越的性能(以BER计)而具有吸引力。但是,直接实现方式随着天线数量和调制方案的增加而呈指数增长,这使得它的ASIC或FPGA实现对于使用少量天线的所有低密度调制方案来说都是行不通的。球面解码(SD)以计算有效的方式解决了ML检测问题。然而,即使降低了复杂性,在DSP处理器上进行实时实现通常还是不可行的,此类应用程序越来越多地采用高性能并行计算平台(如FPGA)。球体检测问题为算法和微体系结构的优化与权衡提供了许多机会。本文概述了为高性能低延迟系统简化和最小化球面检测器的FPGA资源利用的技术。

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