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August 16, 20260 citationsOpen Access

Detection Rate and Parameter-Estimation Forecasts for Stellar-Mass Binary Black Holes Across Next-Generation Gravitational-Wave Detectors.

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DCDevika Chandiran

Key Points

  • To forecast detection rates and parameter-estimation precision for stellar-mass binary black hole populations across current and next-generation gravitational-wave detectors.
  • Simulated a population of 5,000 compact binaries using a Salpeter initial mass function and Peters (1964) merger timescales.
  • Calculated matched-filter signal-to-noise ratios using pycbc with IMRPhenomD waveforms for Advanced LIGO O5, Einstein Telescope, and Cosmic Explorer.
  • Derived horizon distances, detectable population fractions, and Fisher matrix uncertainties for chirp mass, mass ratio, and luminosity distance.
  • Einstein Telescope and Cosmic Explorer achieve signal-to-noise ratios 12.6 and 44.7 times higher than Advanced LIGO for a GW150914-like source at 410 Mpc, with horizon distances reaching ~80,000 Mpc and ~320,000 Mpc, respectively.
  • Within a population distributed to 5,000 Mpc, Einstein Telescope and Cosmic Explorer detect 100% of merging binaries compared to 9% for Advanced LIGO.
  • Fisher-matrix forecasts demonstrate a 12-fold and 42-fold improvement in luminosity distance precision for Einstein Telescope and Cosmic Explorer relative to Advanced LIGO at chirp mass Mc = 10 M⊙.

Abstract

We present detection rate and parameter-estimation forecasts for stellar-mass binary black hole (BBH) populations across three gravitational-wave detector configurations: Advanced LIGO at design sensitivity (aLIGO O5), the Einstein Telescope (ET), and Cosmic Explorer (CE). Using a population of 5,000 compact binaries drawn from a Salpeter initial mass function with Peters (1964) merger timescales, we compute matched-filter signal-to-noise ratios (SNR) using pycbc with IMRPhenomD waveforms, and derive horizon distances, detectable fractions, and Fisher matrix parameter uncertainties for chirp mass, mass ratio, and luminosity distance. We find that ET and CE achieve SNRs 12.6 and 44.7 times higher than aLIGO for a GW150914-like source at 410 Mpc, with sky-averaged horizon distances reaching ∼80,000 Mpc and ∼320,000 Mpc, respectively. Within a population distributed to 5,000 Mpc, ET and CE detect 100% of merging binaries compared to 9% for aLIGO. Fisher-matrix forecasts show that ET and CE improve luminosity distance precision by factors of 12 and 42, respectively, relative to aLIGO at Mc = 10 M⊙. These results demonstrate that next-generation detectors will achieve complete detection of the stellar-mass BBH population and enable precision parameter estimation across cosmological distances.

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Cite This Study

Devika Chandiran (2026) studied this question.

synapsesocial.com/papers/6a817a01f2fb91fc834ad811https://doi.org/10.5281/zenodo.21925607
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