Published February 14, 2022 | Version v1

Deep Learning for Efficient Microseismic Location using Source Migration-based Imaging

Authors/Creators

  • 1. USTC

Description

The uploaded .rar file contains data and network of mircoseismic location program.

'network.py' : network based on U-Net. The input is diffraction stacking images with the size of 1*64*64*64*32. The output has the same size as the input.

'Model_SeisLoca_Unet.hdf5' : The model of the network trained by 800 samples.

'ValidationSample_SNR1.mat' is corresponding to the validation sample showed in paper, and it includes 'input', 'label', and 'pred'. The 'pred' can be obtained  by running 'prediction.py' with correct setups.

'TestSample_SNR0.5.mat' is corresponding to the test sample with the SNR equals 1/2 showed in paper, and it includes 'input', 'label', and 'pred'. The 'pred' can be obtained  by running 'prediction.py' with correct setups.

'Draw_Synthetic_input_label_prediction.m' is a script to draw the input, label, and prediction.

Files

Files (337.9 MB)

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md5:b07f8b77a68db6f74c832001a1c1f131
337.9 MB Download