A targeted spectral interpolation algorithm for the detection of continuous gravitational waves
arXiv:1603.00412 · doi:10.1088/1361-6382/34/1/015010
Abstract
We present an improved method of targeting continuous gravitational-wave signals in data from the LIGO and Virgo detectors with a higher efficiency than the time-domain Bayesian pipeline used in many previous searches. Our spectral interpolation algorithm, SplInter, removes the intrinsic phase evolution of the signal from source rotation and relative detector motion. We do this in the frequency domain and generate a time series containing only variations in the signal due to the antenna pattern. Although less flexible than the classic heterodyne approach, SplInter allows for rapid analysis of putative signals from isolated (and some binary) pulsars, and efficient follow-up searches for candidate signals generated by other search methods. The computational saving over the heterodyne approach can be many orders of magnitude, up to a factor of around fifty thousand in some cases, with a minimal impact on overall sensitivity for most targets.
21 pages, 10 figures, version accepted for publication
References in corpus (6)
- Characterization of the LIGO detectors during their sixth science run
- Upper limits on gravitational wave emission from 78 radio pulsars
- Gravitational waves from known pulsars: results from the initial detector era
- Implementation of barycentric resampling for continuous wave searches in gravitational wave data
- First results and future prospects for dual-harmonic searches for gravitational waves from spinning neutron stars
- Using generalized PowerFlux methods to estimate the parameters of periodic gravitational waves