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Group Determination of Parameters and Training with Noise Addition: Joint Application to Improve the Resilience of the Neural Network Solution of a Model Inverse Problem to Noise in Data

机译:小组确定参数和噪声训练的训练:联合应用,以提高模型反问题的神经网络解弹性对数据中的噪声

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Solution of inverse problems is usually sensitive to noise in the input data, as problems of this type are usually ill-posed or ill-conditioned. While neural networks have high noise resilience by themselves, this may be not enough in case of incorrect inverse problems. In their previous studies, the authors have demonstrated that the method of group determination of parameters, as well as noise addition during training of a neural network, can improve the resilience of the solution to noise in the input data. This study is devoted to the investigation of joint application of these methods. It has been performed on a model problem, for which the direct function is set explicitly as a polynomial.
机译:逆问题的解决方案通常对输入数据中的噪声敏感,因为这种类型的问题通常是不良或不均匀的。虽然神经网络本身具有高噪声弹性,但在不正确的逆问题的情况下,这可能是不够的。在以前的研究中,作者已经证明了组的测定方法,以及在神经网络的训练期间的噪声添加,可以改善对输入数据中噪声的解决方案的恢复。本研究致力于调查这些方法的联合应用。它已经在模型问题上执行,直接函数被明确地设置为多项式。

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