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Model reduction of linear time-varying systems over finite horizons

机译:有限时域上线性时变系统的模型简化

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We consider the problem of approximating a linear time-varying p×m discrete-time state space model S of high dimension by another linear time-varying p×m discrete-time state space model S of much smaller dimension, using an error criterion defined over a finite time interval. We derive the gradients of the norm of the approximation error and show how this can be solved via a fixed point iteration. We compare this to the classical H_2 norm approximation problem for the infinite horizon time-invariant case and show that our solution extends this to the time-varying and finite horizon case.
机译:我们使用定义的误差准则,考虑用另一个尺寸较小的线性时变p×m离散时间状态空间模型S近似高维的线性时变p×m离散时间状态空间模型S的问题在有限的时间间隔内。我们导出近似误差范数的梯度,并说明如何通过定点迭代来解决。我们将其与无限时域时不变情况下的经典H_2范数逼近问题进行了比较,证明了我们的解决方案将其扩展到时变有限时态情况。

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