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Field-programmable gate array implementation of low-density parity-check codes decoder and hardware testbed

机译:低密度奇偶校验码解码器和硬件测试平台的现场可编程门阵列实现

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The prototyping design of the channel coding in communication systems such as IEEE 802.16e (WiMAX) has become more sophisticated because of the increasing need for interoperability. Understanding its performance in the design and implementation of forward error correction codes in a real-time manner is necessary for rapid prototyping in research areas that are primarily based on emulation and stand-alone tests. This paper presents the design, implementation, experimental verification, and validation of the proposed LDPC decoder using a real-time FPGA based baseband test. The design of the LDPC decoder is described. In addition, a description of the hardware components that covers the important parts of the system from RF to channel decoding is included. The overall architecture of the baseband digital signal processing is simply illustrated, and details of the data acquisition module are provided. On the implementation and testing results, the throughput and latency at all the code rates specified in IEEE 802.16e are shown. Furthermore, the results for the architectural complexity and performance in terms of the bit error rates over the testbed show that the proposed flexible design for IEEE 802.16e exhibits potential under a practical environment.
机译:由于对互操作性的需求日益增加,在诸如IEEE 802.16e(WiMAX)之类的通信系统中,信道编码的原型设计已经变得更加复杂。对于主要基于仿真和独立测试的研究领域中的快速原型制作,必须实时了解其在前向纠错码的设计和实现中的性能。本文介绍了使用基于实时FPGA基带测试的LDPC解码器的设计,实现,实验验证和验证。描述了LDPC解码器的设计。此外,还包括对硬件组件的描述,这些组件涵盖了从RF到信道解码的系统重要部分。简单说明了基带数字信号处理的总体架构,并提供了数据采集模块的详细信息。在实施和测试结果上,显示了IEEE 802.16e中指定的所有编码速率下的吞吐量和延迟。此外,就测试床上的误码率而言,体系结构复杂性和性能的结果表明,针对IEEE 802.16e提出的灵活设计在实际环境中具有潜力。

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