Avoiding selection bias in gravitational wave astronomy
arXiv:1206.3461 · doi:10.1088/1367-2630/15/5/053027
Abstract
When searching for gravitational waves in the data from ground-based gravitational wave detectors it is common to use a detection threshold to reduce the number of background events which are unlikely to be the signals of interest. However, imposing such a threshold will also discard some real signals with low amplitude, which can potentially bias any inferences drawn from the population of detected signals. We show how this selection bias is naturally avoided by using the full information from the search, considering both the selected data and our ignorance of the data that are thrown away, and considering all relevant signal and noise models. This approach produces unbiased estimates of parameters even in the presence of false alarms and incomplete data. This can be seen as an extension of previous methods into the high false rate regime where we are able to show that the quality of parameter inference can be optimised by lowering thresholds and increasing the false alarm rate.
13 pages, 2 figures
References in corpus (7)
- Some Aspects of Measurement Error in Linear Regression of Astronomical Data
- Improved Dark Energy Constraints from ~100 New CfA Supernova Type Ia Light Curves
- Cosmology with the lights off: Standard sirens in the Einstein Telescope era
- Searching for gravitational waves from binary coalescence
- Search for gravitational waves from binary inspirals in S3 and S4 LIGO data
- The Loudest Event Statistic: General Formulation, Properties and Applications
- Cross-Calibration of Cluster Mass-Observables
Cited by in corpus (25)
- A gravitational-wave standard siren measurement of the Hubble constant
- Astrophysical Implications of the Binary Black-Hole Merger GW150914
- Extracting distribution parameters from multiple uncertain observations with selection biases
- Reconstructing phenomenological distributions of compact binaries via gravitational wave observations
- Counting And Confusion: Bayesian Rate Estimation With Multiple Populations
- Gravitational-wave astrophysics with effective-spin measurements: asymmetries and selection biases
- Distinguishing compact binary population synthesis models using gravitational-wave observations of coalescing binary black holes
- Listening to the sound of dark sector interactions with gravitational wave standard sirens
- Cosmological inference using only gravitational wave observations of binary neutron stars
- Time-dependence of the astrophysical stochastic gravitational wave background
- Unbiased Hubble constant estimation from binary neutron star mergers
- Gravitational wave population inference with deep flow-based generative network
- Digging the population of compact binary mergers out of the noise
- Evidence for a correlation between binary black hole mass ratio and black-hole spins
- Constraining Compact Object Formation with 2M0521
- Which black hole is spinning? Probing the origin of black-hole spin with gravitational waves
- Two per cent measurement of from Cepheids alone
- The imprint of superradiance on hierarchical black hole mergers
- No evidence for a dip in the binary black hole mass spectrum
- Implications of binary black hole detections on the merger rates of double neutron stars and neutron star-black holes
- Probing dynamical spacetimes with gravitational waves
- Optimal follow-up observations of gravitational wave events with small optical telescopes
- Reducing systematic uncertainties in gravitational-wave population analyses by increasing the detection threshold
- Probing the peak of star formation with the stochastic background of binary black hole mergers
- Characterizing Binary Black Hole Subpopulations in GWTC-4 with Binned Gaussian Processes: On the Origins of the Peak