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Accelerating massive MIMO uplink detection on GPU for SDR systems

机译:在SDR系统的GPU上加速大规模MIMO上行链路检测

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We present a reconfigurable GPU-based uplink detector for massive MIMO software-defined radio (SDR) systems. To enable high throughput, we implement a configurable linear minimum mean square error (MMSE) soft-output detector and reduce the complexity without sacrificing its error-rate performance. To take full advantage of the GPU computing resources, we exploit the algorithm's inherent parallelism and make use of efficient CUDA libraries and the GPU's hierarchical memory resources. We furthermore use multi-stream scheduling and multi-GPU workload deployment strategies to pipeline streaming-detection tasks with little host-device memory copy overhead. Our flexible design is able to switch between a high accuracy Cholesky-based detection mode and a high throughput conjugate gradient (CG)-based detection mode, and supports various antenna configurations. Our GPU implementation exceeds 250 Mb/s detection throughput for a 128×16 antenna system.
机译:我们为大规模MIMO软件定义的无线电(SDR)系统提供了一种基于可重构GPU的上行链路检测器。为了实现高吞吐量,我们实现了可配置的线性最小均方误差(MMSE)软输出检测器,并在不牺牲其误码率性能的情况下降低了复杂度。为了充分利用GPU的计算资源,我们利用了算法固有的并行性,并利用了高效的CUDA库和GPU的分层内存资源。此外,我们还使用多流调度和多GPU工作负载部署策略来流化流检测任务,而主机设备内存副本的开销却很少。我们灵活的设计能够在基于高精度Cholesky的检测模式和基于高通量共轭梯度(CG)的检测模式之间切换,并支持各种天线配置。对于128×16天线系统,我们的GPU实现超过250 Mb / s的检测吞吐量。

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