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首页> 外文期刊>Journal of VLSI signal processing systems for signal, image, and video technology >IEEE 802.11ac MIMO Transceiver Baseband Processing on a VLIW Processor
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IEEE 802.11ac MIMO Transceiver Baseband Processing on a VLIW Processor

机译:VLIW处理器上的IEEE 802.11ac MIMO收发器基带处理

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Wireless standards are evolving rapidly due to the exponential growth in the number of portable devices along with the applications with high data rate requirements. Adaptable software based signal processing implementations for these devices can make the deployment of the constantly evolving standards faster and less expensive. The flagship technology from the IEEE WLAN family, the IEEE 802.11ac, aims at achieving very high throughputs in local area connectivity scenarios. This article presents a software based implementation for the Multiple Input and Multiple Output (MIMO) transmitter and receiver baseband processing conforming to the IEEE 802.11ac standard which can achieve transmission bit rates beyond 1Gbps. This work focuses on the Physical layer frequency domain processing. Various configurations, including 2x2 and 4x4 MIMO are considered for the implementation. To utilize the available data and instruction level parallelism, a DSP core with vector extensions is selected as the implementation platform. Then, the feasibility of the presented software-based solution is assessed by studying the number of clock cycles and power consumption of the different scenarios implemented on this core. Such Software Defined Radio based approaches can potentially offer more flexibility, high energy efficiency, reduced design efforts and thus shorter time-to-market cycles in comparison with the conventional fixed-function hardware methods.
机译:由于便携式设备数量的增长以及对高数据速率的要求,无线标准正在迅速发展。这些设备的基于自适应软件的信号处理实现方式可以使不断发展的标准的部署更快,更便宜。 IEEE WLAN系列的旗舰技术IEEE 802.11ac旨在在局域网连接场景中实现很高的吞吐量。本文为符合IEEE 802.11ac标准的多输入多输出(MIMO)发射器和接收器基带处理提供了一种基于软件的实现,该实现可以实现超过1Gbps的传输比特率。这项工作集中在物理层频域处理上。该实现考虑了各种配置,包括2x2和4x4 MIMO。为了利用可用的数据和指令级并行性,选择具有矢量扩展的DSP内核作为实现平台。然后,通过研究在此内核上实现的不同方案的时钟周期数和功耗来评估所提出的基于软件的解决方案的可行性。与传统的固定功能硬件方法相比,这种基于软件无线电的方法可以潜在地提供更大的灵活性,更高的能源效率,减少的设计工作并因此可以缩短上市时间。

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