首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Electronic circuit design, implementation and FPGA-based realization of a new 3D chaotic system with single equilibrium point
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Electronic circuit design, implementation and FPGA-based realization of a new 3D chaotic system with single equilibrium point

机译:具有单个平衡点的新型3D混沌系统的电子电路设计,实现和基于FPGA的实现

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In this study, numerical, analog and digital circuit modellings were presented with 3 dimensional, continuous, autonomous new chaotic system. Lyapunov exponentials spectrum and bifurcation diagram were presented with timing series of the new chaotic system, phase portraits and Lyapunov exponentials, equilibrium points, dissipativity analyses. Then, analog-based electronic circuit of the new chaotic system is designed in OrCAD-Pspice. It has been observed that it is a very good match on phase portrait results obtained with the numerical analyses, analog circuit simulation Finally, the new chaotic system presented has been numerically realized in two different models by using Heun and RK4 algorithms with discrete time on FPGA, in order to develop embedded chaos-based engineering applications. In creating Heun and RK4-based two different models of the new chaotic system on FPGA, 32 byte IEEE 754-1985 floating point numerical format was used and coded in VHDL format. Designed chaotic systems were synthesized and tested with Xilinx ISE design tool. Chip statistics obtained from the Place&Route operation in Xilinx Virtex-6 family xc6v1x75t-3ff784 FPGA chip of the Heun and RK4-based designed chaotic system were presented. Max operation frequency of the new FPGA-based chaotic signal generator modelled by using two different numerical algorithms is determined as 390.067 MHz. Newly presented chotic system's computer-based numerical simulation was used to realize error analyses fort he design implemented on FPGA. According to the absolute error analysis results, the covergence of 34.456E-5 precision was obtained bwtween the PC-based numerical model and the FPGA-based new chaotic system model. (C) 2016 Elsevier GmbH. All rights reserved.
机译:在这项研究中,数字,模拟和数字电路建模与3维,连续,自治的新混沌系统一起提出。给出了Lyapunov指数谱和分叉图,给出了新混沌系统的时间序列,相图和Lyapunov指数,平衡点,耗散性分析。然后,在OrCAD-Pspice中设计了新型混沌系统的基于模拟的电子电路。已经观察到,与通过数值分析,模拟电路仿真获得的相像结果非常匹配,最后,通过在FPGA上使用具有离散时间的Heun和RK4算法在两个不同的模型中以数字方式实现了所呈现的新混沌系统,以开发基于嵌入式混沌的工程应用程序。在基于FPGA的新型混沌系统的基于Heun和RK4的两种不同模型的创建中,使用了32字节IEEE 754-1985浮点数字格式,并以VHDL格式进行了编码。使用Xilinx ISE设计工具对设计的混沌系统进行了合成和测试。介绍了从基于Heun和RK4设计的混沌系统的Xilinx Virtex-6系列xc6v1x75t-3ff784 FPGA芯片中的Place&Route操作获得的芯片统计信息。通过使用两种不同的数值算法建模的新型基于FPGA的混沌信号发生器的最大工作频率确定为390.067 MHz。新提出的chotic系统基于计算机的数值模拟被用来实现在FPGA上设计的误差分析。根据绝对误差分析结果,在基于PC的数值模型与基于FPGA的新混沌系统模型之间获得了34.456E-5精度的覆盖率。 (C)2016 Elsevier GmbH。版权所有。

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