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Featured researches published by C. Lazzaro.


Physical Review D | 2016

Proposed search for the detection of gravitational waves from eccentric binary black holes

V. Tiwari; Sergey Klimenko; N. Christensen; E. A. Huerta; S. R P Mohapatra; A. Gopakumar; M. Haney; P. Ajith; S. T. McWilliams; G. Vedovato; M. Drago; F. Salemi; G. A. Prodi; C. Lazzaro; S. Tiwari; G. Mitselmakher; F. Da Silva

Most compact binary systems are expected to circularize before the frequency of emitted gravitational waves (GWs) enters the sensitivity band of the ground based interferometric detectors. However, several mechanisms have been proposed for the formation of binary systems, which retain eccentricity throughout their lifetimes. Since no matched-filtering algorithm has been developed to extract continuous GW signals from compact binaries on orbits with low to moderate values of eccentricity, and available algorithms to detect binaries on quasicircular orbits are suboptimal to recover these events, in this paper we propose a search method for detection of gravitational waves produced from the coalescences of eccentric binary black holes (eBBH). We study the search sensitivity and the false alarm rates on a segment of data from the second joint science run of LIGO and Virgo detectors, and discuss the implications of the eccentric binary search for the advanced GW detectors.


Classical and Quantum Gravity | 2017

Enhancing the significance of gravitational wave bursts through signal classification

S. Vinciguerra; M. Drago; G. A. Prodi; S. Klimenko; C. Lazzaro; V. Necula; F. Salemi; V. Tiwari; M. C. Tringali; G. Vedovato

The quest to observe gravitational waves challenges our ability to discriminate signals from detector noise. This issue is especially relevant for transient gravitational waves searches with a robust eyes wide open approach, the so called all-sky burst searches. Here we show how signal classification methods inspired by broad astrophysical characteristics can be implemented in all-sky burst searches preserving their generality. In our case study, we apply a multivariate analyses based on artificial neural networks to classify waves emitted in compact binary coalescences. We enhance by orders of magnitude the significance of signals belonging to this broad astrophysical class against the noise background. Alternatively, at a given level of mis-classification of noise events, we can detect about 1/4 more of the total signal population. We also show that a more general strategy of signal classification can actually be performed, by testing the ability of artificial neural networks in discriminating different signal classes. The possible impact on future observations by the LIGO-Virgo network of detectors is discussed by analysing recoloured noise from previous LIGO-Virgo data with coherent WaveBurst, one of the flagship pipelines dedicated to all-sky searches for transient gravitational waves.

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S. R P Mohapatra

University of Massachusetts Amherst

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