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An Efficient FPGA Implementation of Orthogonal Matching Pursuit With Square-Root-Free QR Decomposition

机译:具有平方根无QR分解的正交匹配追踪的高效FPGA实现

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Compressive sensing (CS) is a novel signal processing technology to reconstruct the sparse signal at sub-Nyquist rate. Orthogonal matching pursuit (OMP) is one of the most widely used signal reconstruction algorithms. However, the least square problem (LSP) in OMP algorithm limits its performance. This paper presents a fast CS reconstruction algorithm implemented on field-programmable gate array (FPGA) using OMP. The proposed algorithm adopts an incremental QR decomposition (QRD) method to efficiently solve the LSP. The incremental QRD is further optimized to eliminate the square root operation to facilitate hardware implementation. The proposed architecture avoiding the complex square root unit mainly consists of some more basic computing units, where the computing process is broken down into several simple operations to map to the corresponding hardware for pipelining. The proposed implementation based on Xilinx Kintex-7 FPGA exploits the parallelism by a well-planned workload schedule and reaches an optimal tradeoff between the latency and frequency. The experimental results demonstrate that the proposed architecture can run at a frequency of 210 MHz with a reconstruction time of 238 mu s for 36-sparse 1024-length signal, which improves the signal reconstruction speed by 1.43x compared to the state-of-the-art implementations.
机译:压缩感测(CS)是一种新颖的信号处理技术,用于以次奈奎斯特速率重建稀疏信号。正交匹配追踪(OMP)是应用最广泛的信号重建算法之一。但是,OMP算法中的最小二乘问题(LSP)限制了其性能。本文提出了一种使用OMP在现场可编程门阵列(FPGA)上实现的快速CS重建算法。该算法采用增量QR分解(QRD)方法有效地解决了LSP问题。进一步优化了增量QRD,以消除平方根运算,从而有助于硬件实现。所提出的避免复杂平方根单元的体系结构主要由一些更基本的计算单元组成,其中计算过程分为几个简单的操作,以映射到相应的硬件进行流水线处理。拟议的基于Xilinx Kintex-7 FPGA的实现通过精心计划的工作量时间表利用并行性,并在延迟和频率之间达到了最佳折衷。实验结果表明,对于36稀疏1024长度的信号,该架构可以在210 MHz的频率下运行,重构时间为238μs,与信号状态相比,其重构速度提高了1.43倍。先进的实现。

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