Seminar
Neural posterior estimation for gravitational-wave inference
Stephen Green
Thursday, 10th of July, 2025 from 2:30 p.m. to 4 p.m.
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DF Seminar Room (2-8.3), 2nd floor of Physics Building
I will describe how deep learning and simulation-based inference address gravitational-wave data analysis challenges, including high event rates and rapid electromagnetic follow-up.
The approach uses simulated data to train neural networks, such as normalizing flows, to accurately represent posterior distributions. Once trained, these models enable extremely rapid inference—reducing analyses to seconds. I will highlight recent advances in population inference and binary neutron star parameter estimation, demonstrating the promise of these techniques for next-generation detectors.