nmma: An extended Bayesian framework for Nuclear Multimessenger Astronomy in the Era of Next-Generation Detectors
Henrik Rose, Hauke Koehn, Thibeau Wouters, Peter T. H. Pang, Mattia Bulla, Michael W. Coughlin, Tim Dietrich
astro-ph.IM, astro-ph.CO, astro-ph.HE
Submitted: 2026-07-03
Comments: 12(+8) pages, 6(+4) figures. To be submitted to A&A by next week, comments welcome
Code: https://github.com/nuclear-multimessengerastronomy/nmma
License: http://creativecommons.org/licenses/by/4.0/
The gist: Context.
Terminology
Abstract
Context. The joint analysis of different (astro-)physical messengers, in particular gravitational-wave data and electromagnetic follow-up observations, allows us to establish, explore and deepen links between different physical fields. As new survey capacities and improved detection methods will lead to a significant increase in the number of multimessenger detections in the upcoming decades, efficient and versatile software frameworks are essential to maximise the scientific outcome of such multimessenger studies. Aims. We present a major upgrade to the Nuclear Multimessenger Astronomy (nmma) framework, incorporating various recent developments in theoretical modelling and machine learning in a modularised and easily extendable Bayesian framework. For the first time, this allows direct sampling on nuclear parameters alongside gravitational-wave, kilonova and afterglow parameters. Methods. We combine fast surrogate models for electromagnetic transients with speed-ups from emulators that map nuclear parameters to macroscopic neutron-star properties. Additional acceleration methods for the evaluation of state-of-the-art waveform approximants enable full Bayesian analyses of multimessenger events at the speed required in the era of next-generation detectors. Results. We demonstrate the capabilities of the upgraded nmma framework through a series of representative applications. Reanalysing the 2017 multi-messenger detection of a neutron-star merger, we achieve 20- to 60-fold speed-ups while using more detailed physical models compared to previous studies. Moreover, we demonstrate for a hypothetical future detection how we can simultaneously constrain nuclear parameters and the Hubble parameter with robustly quantified uncertainties.
Sources
- Open Data from LIGO, Virgo, and KAGRA through the First Part of the Fourth Observing Run
- Multi-epoch afterglow rebrightenings in GRB 250129A: Evidence for successive shock interactions
- Rapid and robust simulation-based inference for kilonovae
- GstLAL: A software framework for gravitational wave discovery
- GRB 241030A: a bright afterglow challenging forward shock emission
- A Horizon Study for Cosmic Explorer: Science, Observatories, and Community
- AT2025ulz and S250818k: Investigating early time observations of a subsolar mass gravitational-wave binary neutron star merger candidate
- Kilonova modelling and parameter inference: Understanding uncertainties and evaluating compatibility between observations and models
- A NICER View of PSR J0030+0451: Updated Constraints from Six Years of NICER Observations
- A NICER view of the 1.4 solar-mass edge-on pulsar PSR J0614-3329
- Gravitational-wave inference at GPU speed: A bilby-like nested sampling kernel within blackjax-ns
- Searching for Activation Functions
- Deep TOV to characterize Neutron Stars
- PyCBC Live Search for Compact Binary Mergers in Advanced LIGO and Virgo's Fourth Observing Run
- Incorporating neutron star physics into gravitational wave inference with neural priors
- Analyzing GW231109 235456 and understanding its potential implications for population studies, nuclear physics, and multi-messenger astronomy
- Relative Binning and Fast Likelihood Evaluation for Gravitational Wave Parameter Estimation
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