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Analog simulator of integro-differential equations with classical memristors

机译:古典忆物的积分微分方程模拟模拟器

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摘要

An analog computer makes use of continuously changeable quantities of a system, such as its electrical, mechanical, or hydraulic properties, to solve a given problem. While these devices are usually computationally more powerful than their digital counterparts, they suffer from analog noise which does not allow for error control. We will focus on analog computers based on active electrical networks comprised of resistors, capacitors, and operational amplifiers which are capable of simulating any linear ordinary differential equation. However, the class of nonlinear dynamics they can solve is limited. In this work, by adding memristors to the electrical network, we show that the analog computer can simulate a large variety of linear and nonlinear integro-differential equations by carefully choosing the conductance and the dynamics of the memristor state variable. We study the performance of these analog computers by simulating integro-differential models related to fluid dynamics, nonlinear Volterra equations for population growth, and quantum models describing non-Markovian memory effects, among others. Finally, we perform stability tests by considering imperfect analog components, obtaining robust solutions with up to 13% relative error for relevant timescales.
机译:模拟计算机利用可持续的系统,例如其电气,机械或液压性能,以解决给定的问题。虽然这些设备通常比其数字对应力更强大,但它们遭受模拟噪声,其不允许错误控制。我们将专注于基于由电阻器,电容器和运算放大器组成的有源电网的模拟计算机,该电容器和运算放大器能够模拟任何线性常微分方程。然而,他们可以解决的非线性动态的类是有限的。在这项工作中,通过将忆阻器添加到电气网络,我们表明模拟计算机可以通过仔细选择Memitristor状态变量的电导和动态来模拟各种线性和非线性积分微分方程。我们通过模拟与流体动力学相关的积分微分模型,非线性Volterra方程来研究这些模拟计算机的性能,以及描述非马上记忆效应的量子模型等。最后,我们通过考虑不完美的模拟组件来执行稳定性测试,从而获得强大的解决方案,对于相关时间尺寸,最高可达误差的相对误差高达13%。

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