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Guaranteed master for interval-based cosimulation

机译:保证基于间隔的母造系

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In this paper, we tackle the problem of guaranteed simulation of cyber-physical systems, an important model for current engineering systems. Their is always increasing complexity which leads to models of higher and higher dimensions, yet typically involving multiple subsystems or even multiple physics. Given this modularity, we more precisely explore cosimulation of such dynamical systems, with the aim of reaching higher dimensions of the simulated systems. In this paper, we present a guaranteed interval-based approach for cosimulation of continuous time systems. We propose an algorithm which first proves the existence and returns an enclosure of global solutions, using only local computations. This mitigates the curse of dimensionality faced by global (guaranteed) integration methods. Local computations are then realized with a safe estimate of the other sub-systems until the next macro-step. We increase the accuracy of the approach by using an interval extrapolation of the state of the other sub-systems. We finally propose some possible further improvements including adaptive macro-step size. Our method is fully guaranteed, taking into account all possible sources of error. It is implemented in a C++ prototype relying on the DynIbex library, and we illustrate our approach on multiple examples of the literature.
机译:在本文中,我们解决了网络 - 物理系统的保证仿真问题,是当前工程系统的重要模型。它们始终越来越复杂,导致较高和更高维度的模型,但通常涉及多个子系统甚至多个物理。鉴于这种模块化,我们更精确地探索了这种动态系统的化妆,其目的是达到模拟系统的更高尺寸。在本文中,我们提出了一种基于保证的基于间隔的方法,用于削皮连续时间系统。我们提出了一种算法,首先证明存在并返回全局解决方案的机箱,仅使用本地计算。这减轻了全球(保证)集成方法面临的维度的诅咒。然后通过安全估计来实现本地计算,直到下一个宏步骤。我们通过使用其他子系统的状态的间隔外推提高方法的准确性。我们终于提出了一些可能的进一步改进,包括自适应宏观步长。我们的方法完全保证,考虑到所有可能的错误源。它在依赖于Dynibex库的C ++原型中实现,我们在文献的多个例子上说明了我们的方法。

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