Published July 3, 2024 | Version v2

Trained Random Forest Model for PNW Seismic Event Classification Trained on 150s waveforms (P-50, P+100), 50 Hz, and 1-10 Hz BP Filtered

Description

This dataset contains three trained  random forest models named as following - 

  • P_10_100_F_1_10_50.joblib - This is a model trained on 110s long waveforms (origin time - 10, origin time +100) in case of earthquakes and explosions and (first arrival pick -10, first arrival pick + 100) in case of surface events, the waveforms are tapered using 10% cosine taper, bandpass filtered between 1-10 Hz using Butterworth four corner filter, normalized and resampled to 50 Hz. 
  • P_50_100_F_1_10_50.joblib 
  • P_10_30_F_1_15_50.joblib. 

And also the standard scaler parameters for each features that will be used to normalize them. 

Files

scaler_params_P_10_100_F_1_10_50.csv

Files (583.7 MB)

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