Addressing the spin question in gravitational-wave searches: Waveform templates for inspiralling compact binaries with nonprecessing spins
P. Ajith

TL;DR
This paper introduces a new gravitational waveform template family for inspiralling binaries with non-precessing spins, achieving high accuracy and effectiveness in detecting spinning compact binaries, especially in the comparable-mass regime.
Contribution
The paper develops a reduced-spin template family that reparametrizes spin effects, significantly improving detection prospects for spinning binaries in gravitational-wave searches.
Findings
High overlaps (>0.99) with non-precessing binaries across mass ratios and spins.
Effective for detecting a broad range of spinning binaries in the comparable-mass regime.
Moderate spins in neutron stars cause notable mismatches with non-spinning templates.
Abstract
This paper presents a post-Newtonian (PN) template family of gravitational waveforms from inspiralling compact binaries with non-precessing spins, where the spin effects are described by a single "reduced-spin" parameter. This template family, which reparametrizes all the spin-dependent PN terms in terms of the leading-order (1.5PN) spin-orbit coupling term \emph{in an approximate way}, has very high overlaps (fitting factor > 0.99) with non-precessing binaries with arbitrary mass ratios and spins. We also show that this template family is "effectual" for the detection of a significant fraction of generic spinning binaries in the comparable-mass regime (m_2/m_1 <~ 10), providing an attractive and feasible way of searching for gravitational waves (GWs) from spinning low-mass binaries. We also show that the secular (non-oscillatory) spin-dependent effects in the phase evolution (which are…
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