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VItamin
Hyper-fast gravitational wave posterior parameter estimation using variational inference. Code used for "Bayesian parameter estimation" paper. Note: This is being repackaged and moving to another repository soon (hagabbar/vitamin_b).vitamin_c
This will be the first official public release of the VItamin code base. VItamin is a python package for producing fast gravitational wave posterior samples.cnn_matchfiltering
Pipeline used for classifying BBH, NSBH, and BNS signals in LIGO data. Code used for "Matching Matched Filtering" paper.Glasgow_Machine_Learning_Course-2019
A hands-on machine learning course for physics and astronomy PhD students at the University of Glasgow. Courses designed by John Armstrong and Hunter Gabbard.cINNamon
Invertible neural network for gravitational wave parameter estimationmatching_cnn_paper
Matching matched filtering with deep learning in gravitational-wave astronomyGenNet
Returns posterior estimates on GW waveform parameters given a GW waveform buried in noise.VItamin_technical_paper
This is a technical follow-up, to the "OG" VItamin paper.pycbc_detection_statistic
Attempt during Fulbright Fellowship to make neural network GW classification pipeline.ligo_ml
General LIGO machine learning repositoryVItamin_paper
Estimating Bayesian parameter estimation using conditional variational autoencoders.OzGrav_demo
Demonstration of VItamin code for OzGravPangeo-for-AI-assisted-Climate-Tipping-point-Modelling
This repository contains the code snippets and hybrid models from the DARPA AI-Assisted Climate Tipping Point Modeling (ACTM) program.pca_aux_cop
Pipeline to search for couplings and/or trends between different degrees of freedom within the LIGO detectors. Fulbright Fellowship detector characterization project.Love Open Source and this site? Check out how you can help us