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Application-level robustness and redundancy in linear systems

机译:线性系统中的应用程序级鲁棒性和冗余

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The paper quantifies the degradation in performance of a linear model induced by perturbations affecting its identified parameters. We extend sensitivity analyses available in the literature, by considering a generalization-based figure of merit instead of the inaccurate training one. Effective off-line techniques reducing the impact of perturbations on generalization performance are introduced to improve the robustness of the model. It is shown that further robustness can be achieved by optimally redistributing the information content of the given model over topologically more complex linear models of neural network type. Despite the additional robustness achievable, it is shown that the price we have to pay might be too high and the additional resources would be better used to implement a n-ary modular redundancy scheme
机译:本文量化了线性模型性能的下降,该线性模型是由影响确定的参数的扰动引起的。通过考虑基于一般化的绩效指标而不是不准确的培训指标,我们扩展了文献中可用的敏感性分析。引入了有效的离线技术来减少干扰对泛化性能的影响,以提高模型的鲁棒性。结果表明,通过在神经网络类型的拓扑更复杂的线性模型上最优地重新分配给定模型的信息内容,可以实现更高的鲁棒性。尽管可以实现额外的鲁棒性,但事实表明,我们必须付出的代价可能太高,并且额外的资源会更好地用于实现n元模块化冗余方案

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