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首页> 外文期刊>Physical review, E >Using a reservoir computer to learn chaotic attractors, with applications to chaos synchronization and cryptography
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Using a reservoir computer to learn chaotic attractors, with applications to chaos synchronization and cryptography

机译:使用水库计算机来学习混沌吸引子,应用于混沌同步和加密

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Using the machine learning approach known as reservoir computing, it is possible to train one dynamical system to emulate another.We show that such trained reservoir computers reproduce the properties of the attractor of the chaotic system sufficiently well to exhibit chaos synchronization. That is, the trained reservoir computer, weakly driven by the chaotic system, will synchronize with the chaotic system. Conversely, the chaotic system, weakly driven by a trained reservoir computer, will synchronize with the reservoir computer. We illustrate this behavior on the Mackey-Glass and Lorenz systems. We then show that trained reservoir computers can be used to crack chaos based cryptography and illustrate this on a chaos cryptosystem based on the Mackey-Glass system. We conclude by discussing why reservoir computers are so good at emulating chaotic systems.
机译:使用称为储库计算的机器学习方法,可以训练一个动态系统以仿真另一个动态系统。我们示出了这种训练的储存器计算机可以获得充分良好的混沌系统的吸引子的特性以表现出混沌同步。 也就是说,培训的储存器计算机,由混沌系统弱驱动,将与混沌系统同步。 相反,由训练有素的水库计算机弱驱动的混沌系统将与水库计算机同步。 我们说明了Mackey-Glass和Lorenz系统上的这种行为。 然后,我们显示培训的储存器计算机可用于破解基于混沌的加密,并在基于Mackey-Glass系统的混沌密码系统上说明这一点。 我们通过讨论为什么水库计算机在模拟混沌系统时擅长。

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