A deep learning neural network to extract of P- and S-wave transit times from Vertical Seismic Profile (VSP)
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https://purr.purdue.edu/publications/4548/1
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<p>This work was motivated by our need to repetitively determine thousands of transit times from ensembles of forward modelled CSG&rsquo;s for use in a minimization inversion that focusses on obtaining in situ anisotropic elastic constants. By leveraging the capabilities of a deep learning neural network, specifically a three-layer U-net architecture with PyTorch, this could significantly reduce the labor intensity for similar inversion problem&nbsp;with good accuracy. Note:&nbsp;the current implementation has been trained exclusively on a specific complex 3D geological model with two contrasting rock types in a noise-free environment.</p>
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Purdue University Research Repository
创建时间:
2024-07-17



