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Hardware Decoding Accelerator of (73, 37, 13) QR Code for Power Line Carrier in UPIoT

机译:(73,37,13)的硬件解码加速器QR码为UPIET中的电力线载波

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摘要

The proposal of the ubiquitous power Internet of Things (UPIoT) has increased the demand for communication coverage and data collection of smart grid; the quantity and quality of communication networks are facing greater challenges. This brief applies (73, 37, 13) quadratic residue (QR) codes to power line carrier technology to improve the quality of local data communication in UPIoT. In order to improve the decoding performance of the QR codes, an induction method for the error pattern is proposed, which can divide the originally coupled error pattern into six parts and reuse the same module for decoding. This method greatly reduces the resource requirements, so that (73, 37, 13) QR code can be implemented on FPGA hardware. Notably, the hardware architecture is a modular framework, which can fit into an FPGA with different sizes. As an example (73, 37, 13), QR code is implemented on Intel Arria10 FPGA; the experimental result shows that the maximum decoding frequency of this architecture is 21.7 M Hz, which achieves 4121x speedup compared to CPU. Moreover, the proposed architecture benefits from high flexibility, such as modular design and decoding framework in the form of the pipeline which can be seen as an alternative scheme for decoding long-length QR codes.
机译:普遍存在的电网(UPIET)的提议增加了对智能电网的通信覆盖和数据收集的需求。通信网络的数量和质量面临更大的挑战。本简要适用(73,37,13)二次残差(QR)代码,以提供电力线载波技术,以提高UPIET中的本地数据通信质量。为了提高QR码的解码性能,提出了一种误差模式的感应方法,其可以将最初耦合的误差模式划分为六个部分并重用相同的模块进行解码。该方法大大降低了资源要求,因此(73,37,13)QR码可以在FPGA硬件上实现。值得注意的是,硬件架构是一个模块化框架,它可以装配到不同尺寸的FPGA。作为示例(73,37,13),QR码在Intel Arria10 FPGA上实现;实验结果表明,该架构的最大解码频率是21.7 M Hz,与CPU相比,实现了4121倍的加速。此外,所提出的建筑利用高灵活性,例如管道形式的模块化设计和解码框架,其可以被视为用于解码长度QR码的替代方案。

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