Revealing massive black hole astrophysics: The potential of hierarchical inference with extreme mass-ratio inspiral observations
arXiv:2601.15198 · doi:10.3847/1538-4357/ae75dc
Abstract
Gravitational waves from extreme mass-ratio inspirals (EMRIs) will enable sub-percent measurements of massive black hole parameters and provide access to the demographics of compact objects in galactic nuclei. During the LISA mission, multiple EMRIs are expected to be detected, allowing statistical studies of massive black hole populations and their formation pathways. We perform hierarchical Bayesian inference on simulated EMRI catalogues to assess how well LISA could constrain the astrophysical population using parametrised population models. We test our inference framework on a variety of populations, including heterogeneous and homogeneous mixtures of parametrised subpopulations, and scenarios in which the assumed model is deliberately misspecified. Our results show that population parameters governing distributions with sharp features can be tightly constrained. Mixed populations can be disentangled with as few as detections, and even with model misspecification, the inference retains sensitivity to key population features. These results demonstrate the capabilities and limitations of EMRI population inference, providing guidance for constructing realistic astrophysical population models for LISA analysis.
19 pages, 6 figures, 3 tables
References in corpus (31)
- Array Programming with NumPy
- A Semi-Analytic Model for the Co-evolution of Galaxies, Black Holes, and Active Galactic Nuclei
- Formation of Supermassive Black Holes by Direct Collapse in Pregalactic Halos
- The Illustris simulation: the evolving population of black holes across cosmic time
- Use and Abuse of the Fisher Information Matrix in the Assessment of Gravitational-Wave Parameter-Estimation Prospects
- Intermediate and Extreme Mass-Ratio Inspirals -- Astrophysics, Science Applications and Detection using LISA
- Starbursts near supermassive black holes: young stars in the Galactic Center, and gravitational waves in LISA band
- The origins of massive black holes
- FastEMRIWaveforms: New tools for millihertz gravitational-wave data analysis
- The Mock LISA Data Challenges: from Challenge 3 to Challenge 4
- Constraining the high redshift formation of black hole seeds in nuclear star clusters with gas inflows
- Nested Sampling with Normalising Flows for Gravitational-Wave Inference
- LISA extreme-mass-ratio inspiral events as probes of the black hole mass function
- Wet Extreme Mass Ratio Inspirals May Be More Common For Spaceborne Gravitational Wave Detection
- Probing black holes at low redshift using LISA EMRI observations
- Resonant relaxation near a massive black hole: the dependence on eccentricity
- The impact of mass segregation and star-formation on the rates of gravitational-wave sources from extreme mass ratio inspirals
- Assessing the data-analysis impact of LISA orbit approximations using a GPU-accelerated response model
- Fast and Fourier: Extreme Mass Ratio Inspiral Waveforms in the Frequency Domain
- Extreme mass ratio inspirals and tidal disruption events in nuclear clusters. I. Time dependent rates
- When models fail: an introduction to posterior predictive checks and model misspecification in gravitational-wave astronomy
- Can supernova kicks trigger EMRIs in the Galactic Centre?
- Extreme mass-ratio gravitational-wave sources: Mass segregation and post binary tidal-disruption captures
- Rapid determination of LISA sensitivity to extreme mass ratio inspirals with machine learning
- Hanging on the cliff: Extreme mass ratio inspiral formation with local two-body relaxation and post-Newtonian dynamics
- The ALPINE-CRISTAL-JWST Survey: Revealing Less Massive Black Holes in High-Redshift Galaxies
- Science Opportunities of Wet Extreme Mass-Ratio Inspirals
- Secondary spins of extreme mass ratio inspirals: A probe to the formation channels
- Gravitational Waves from Massive Black Hole Mergers in ASTRID: Predictions for LISA
- Co-evolution of Nuclear Star Clusters and Massive Black Holes: Extreme Mass-Ratio Inspirals
- Constraints on the extreme mass-ratio inspiral population from LISA data