Despite recent progress in numerical simulations of the coalescence of binary black hole systems, highly asymmetric spinning systems and the construction of accurate physical templates remain challenging and computationally expensive. We explore the feasibility of a prompt and robust test of whether the signals exhibit evidence for generic features that can educate new simulations. We form catalogs of numerical relativity waveforms with distinct physical effects and compute the relative probability that a gravitational wave signal belongs to each catalog. We introduce an algorithm designed to perform this task for coalescence signals using principal component analysis of waveform catalogs and Bayesian model selection and demonstrate its effectiveness.
@article{arxiv.1406.5426,
title = {Investigating Binary Black Hole Mergers with Principal Component Analysis},
author = {James Clark and Laura Cadonati and James Healy and Ik Siong Heng and Josh Logue and Nicholas Mangini and Lionel London and Larne Pekowsky and Deirdre Shoemaker},
journal= {arXiv preprint arXiv:1406.5426},
year = {2015}
}
Comments
6 pages, 3 figures, proceedings of 3rd Session of the Sant Cugat Forum on Astrophysics