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Application of neural networks in problems of determining geometrical properties of objects placed in geophysical elastic media

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Published under licence by IOP Publishing Ltd
, , Citation A E Morozov et al 2021 IOP Conf. Ser.: Mater. Sci. Eng. 1019 012027 DOI 10.1088/1757-899X/1019/1/012027

1757-899X/1019/1/012027

Abstract

The use of a neural network approach is associated with high requirements for software implementation. The main criteria is a high degree of accuracy in the recovery of the desired geological-physical model of the environment (GPME) and processing speed. The paper presents a description of the developed neural network architecture for solving the inverse problem of geophysics for determining the geometric properties of GPME objects. The performance of a single neural network and an ensemble of neural networks (NN) has been evaluated. The results are presented comparing the operating time of the NN when restoring models on various computing devices: CPU and GPU. The results of experiments on the restoration of various GPME using the developed NN based on the LSTM layer and the U-Net architecture are presented. This work was supported by the RFBR grant No. 19-07-00170.

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10.1088/1757-899X/1019/1/012027