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A neural network sensitivity analysis in the presence of random fluctuations

机译:随机波动下的神经网络灵敏度分析

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In this work we investigate the sensitivity analysis of the noise applied to a neural network. The goal of this study is to try to understand the network's behavior and the outputs sensitivity from the perturbation of weights during the training process. From an engineering point of view, noise is perceived as detrimental to the system and the quality of the output, but in biological neural systems, we can observe noise fluctuations, which possess certain abilities to improve information processing. By means of sensitivity analysis tools we show quantitatively the acceptable level of noise which provides optimal solution to the random fluctuations without sacrificing the behavior of the network. The three different indicators utilized in this endeavor allow us to observe whether the noise variance is detrimental or beneficial, and whether it acts as a source of fluctuation.
机译:在这项工作中,我们研究了应用于神经网络的噪声的敏感性分析。这项研究的目的是试图从训练过程中权重的扰动中了解网络的行为和输出灵敏度。从工程的角度来看,噪声被认为对系统和输出质量有害,但是在生物神经系统中,我们可以观察到噪声波动,这些波动具有一定的改善信息处理能力。通过灵敏度分析工具,我们可以定量显示可接受的噪声水平,该噪声水平可以为随机波动提供最佳解决方案,而不会牺牲网络的行为。在这项工作中使用的三个不同指标使我们能够观察到噪声方差是有害的还是有益的,以及它是否是波动的来源。

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