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2D Discrete Fourier Transform with simultaneous edge artifact removal for real-time applications

机译:2D离散傅里叶变换,具有同时边缘伪影拆除实时应用

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Two-Dimensional (2D) Discrete Fourier Transform (DFT) is a basic and computationally intensive algorithm, with a vast variety of applications. 2D images are, in general, non-periodic, but are assumed to be periodic while calculating their DFTs. This leads to cross-shaped artifacts in the frequency domain due to spectral leakage. These artifacts can have critical consequences if the DFTs are being used for further processing. In this paper we present a novel FPGA-based design to calculate high-throughput 2D DFTs with simultaneous edge artifact removal. Standard approaches for removing these artifacts using apodization functions or mirroring, either involve removing critical frequencies or a surge in computation by increasing image size. We use a periodic-plus-smooth decomposition based artifact removal algorithm optimized for FPGA implementation, while still achieving real-time (≥23 frames per second) performance for a 512×512 size image stream. Our optimization approach leads to a significant decrease in external memory utilization thereby avoiding memory conflicts and simplifies the design. We have tested our design on a PXIe based Xilinx Kintex 7 FPGA system communicating with a host PC which gives us the advantage to further expand the design for industrial applications.
机译:二维(2D)离散傅里叶变换(DFT)是一种基本和计算密集型算法,具有广泛的应用。通常,2D图像通常是非周期性的,但是假设在计算其DFT时是周期性的。这导致由于光谱泄漏导致频域的交叉形伪像。如果DFTS用于进一步处理,则这些伪影可能具有危急后果。在本文中,我们介绍了一种基于FPGA的设计,以计算具有同时边缘伪像去除的高通量2D DFT。使用停留功能或镜像去除这些工件的标准方法,无论都涉及通过增加图像尺寸来消除临界频率或计算中的浪涌。我们使用针对FPGA实现优化的周期性加上光滑的分解算法,同时仍实现512×512尺寸图像流的实时(≥23帧)性能。我们的优化方法导致外部内存利用率的显着降低,从而避免了内存冲突并简化了设计。我们在与主机PC通信的基于PXIE的Xilinx Kintex 7 FPGA系统上测试了我们的设计,这为我们提供了进一步扩展工业应用设计的优势。

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