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A Method For Implementing Fractional Order Differentiator and Integrator Based on Digital Oscilloscope

机译:一种基于数字示波器实现分数级差分因子和积分器的方法

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摘要

With the popularity of high-performance processors and mathematical modeling techniques, it is possible to use digital signal processing method to achieve fractional differential/integral operations. Currently, fractional operations are widely used in many fields such as system control, chaotic systems, and fault detection. In order to simplify the implementation of FPGA-based fractional operations, this paper proposes a method of implementing a digital oscilloscope based on FPGA and using logic resources to implement the fractional arithmetic defined by Grünwald-Letnikov(G-L). In addition, the number of calculation points for fractional operations is fixed and the sampling interval is variable. The simulation and hardware implementation results of fractional order operation of some conventional periodic signals with some selected fractional orders have been presented. The testbech results show that the use of four parallel calculations can increase the calculation speed by about 3.75 times. Sine wave is used to verify the calculation results of some fractional parameters. Experimental results show that high-precision floating-point calculation and large dynamic range measurement technology can improve the accuracy of fractional calculation. The phase accuracy of fractional arithmetic is improved by using waveform synchronization display technology of digital oscilloscope. Additionally, the consistency of simulation and experimental results proves the applicability of fractional order operation in digital oscilloscope.
机译:随着高性能处理器和数学建模技术的普及,可以使用数字信号处理方法来实现分数差分/积分操作。目前,分数操作广泛用于许多领域,如系统控制,混沌系统和故障检测。为了简化基于FPGA的分数操作的实现,本文提出了一种基于FPGA实现数字示波器的方法,并使用逻辑资源实现Grünwald-letnikov(G-L)定义的分数算术。另外,固定分数操作的计算点数,采样间隔是可变的。已经介绍了一些具有一些选定的分数终端的一些传统周期信号的分数顺序操作的模拟和硬件实现结果。 TestBech结果表明,使用四个并行计算可以将计算速度提高约3.75倍。正弦波用于验证某些分数参数的计算结果。实验结果表明,高精度浮点计算和大型动态范围测量技术可以提高分数计算的准确性。通过使用数字示波器的波形同步显示技术改进了分数算术的相位精度。另外,模拟和实验结果的一致性证明了数字示波器分数顺序操作的适用性。

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