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Phenomenology of Avalanche Recordings from Distributed Acoustic Sensing

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NIAID Data Ecosystem2026-05-02 收录
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https://zenodo.org/record/7385432
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This is the electronic supplemental data for the publication entitled  "Phenomenology of Avalanche Recordings from Distributed Acoustic Sensing" submitted to the Journal of Geophysical Research (JGR): Earth Surface.  The main_jupyter_notebook.ipynb shows an example workflow on how to read the data and utilize the Bayesian Gaussian Mixture Model on the extracted features to predict different classes (/clusters) within the avalanche recordings.  The pre-print will be available on ESSOAr (currently processing submission, as of Dec1., 2022): https://doi.org/10.1002/essoar.10512949.1   Requirements Code was written in python 3.9.13 (from conda-forge), and the following packages are required (the version in the brackets are for which the code was tested): jupyter (versions see below) jupyter                       1.0.0 jupyter_client             7.3.5 jupyter_console         6.4.3  jupyter_core              4.11.2 jupyter_server           1.18.1 jupyterlab                  3.4.4  jupyterlab_pygments 0.1.2 jupyterlab_server       2.15.2 jupyterlab_widgets     1.0.0 numpy (1.23.3) pandas (1.4.4) scipy (1.9.3) matplotlib (versions see below) matplotlib-base     3.5.2 matplotlib-inline    0.1.6 cmocean (2.0  from channel conda-forge) sklearn (scikit-learn) (1.1.3)
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2024-07-15
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