Detecting gravitational waves from precessing binaries of spinning compact objects. II. Search implementation for low-mass binaries
Alessandra Buonanno, Yanbei Chen, Yi Pan, Hideyuki Tagoshi, and, Michele Vallisneri

TL;DR
This paper evaluates and improves a computationally efficient template family for detecting gravitational waves from precessing compact binaries, focusing on low-mass systems like black hole-neutron star pairs, and proposes a physically motivated modification.
Contribution
It assesses the performance of the BCV2 detection template family for asymmetric-mass binaries and introduces a physically motivated modification called BCV2P.
Findings
High signal-matching efficiency with fitting factors 0.94 to 0.98.
Proposed BCV2P template achieves comparable performance and reliable parameter estimation.
Estimated the number of templates needed for LIGO sensitivity searches.
Abstract
Detection template families (DTFs) are built to capture the essential features of true gravitational waveforms using a small set of phenomenological waveform parameters. Buonanno, Chen, and Vallisneri [Phys. Rev. D 67, 104025 (2003)] proposed the ``BCV2'' DTF to perform computationally efficient searches for signals from precessing binaries of compact stellar objects. Here we test the signal-matching performance of the BCV2 DTF for asymmetric--mass-ratio binaries, and specifically for double--black-hole binaries with component masses (m1,m2): (6~12Msun, 1~3Msun), and for black-hole--neutron-star binaries with component masses (m1,m2) = (10Msun, 1.4Msun); we take all black holes to be maximally spinning. We find a satisfactory signal-matching performance, with fitting factors averaging between 0.94 and 0.98. We also scope out the region of BCV2 parameters needed for a template-based…
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