Time-delay estimation in unresolved lensed quasars

Author:

Biggio L1,Domi A23ORCID,Tosi S4,Vernardos G5ORCID,Ricci D6,Paganin L4,Bracco G4

Affiliation:

1. Eidgenössische Technische Hochschule Zürich , Rämistrasse 101, CH-8092 Zürich, Switzerland

2. Institute of Physics, University of Amsterdam , Science Park 904, 1098 XH Amsterdam, the Netherlands

3. Dutch National Institute for Subatomic Physics (Nikhef), University of Amsterdam , Science Park 105, 1098 XG Amsterdam, the Netherlands

4. Università degli Studi di Genova and Istituto Nazionale di Fisica Nucleare (INFN) – Sezione di Genova , via Dodecaneso 33, I-16146 Genoa, Italy

5. Institute of Physics, Laboratory of Astrophysics, Ecole Polytechnique Fédérale de Lausanne (EPFL), Observatoire de Sauverny , CH-1290 Versoix, Switzerland

6. Istituto Nazionale di Astrofisica (INAF), Osservatorio di Padova – Vicolo dell’Osservatorio , 5, I-35122 Padova, Italy

Abstract

ABSTRACTTime-delay cosmography can be used to infer the Hubble parameter H0 by measuring the relative time delays between multiple images of gravitationally lensed quasars. A few of such systems have already been used to measure H0: Their time delays were determined from the light curves of the multiple images obtained by regular, years long, monitoring campaigns. Such campaigns can hardly be performed by any telescope: many facilities are often oversubscribed with a large amount of observational requests to fulfill. While the ideal systems for time-delay measurements are lensed quasars whose images are well resolved by the instruments, several lensed quasars have a small angular separation between the multiple images, and would appear as a single, unresolved, image to a large number of telescopes featuring poor angular resolutions or located in not privileged geographical sites. Methods allowing to infer the time delay also from unresolved light curves would boost the potential of such telescopes and greatly increase the available statistics for H0 measurements. This work presents a study of unresolved lensed quasar systems to estimate the time delay using a deep learning-based approach that exploits the capabilities of one-dimensional convolutional neural networks. Experiments on state-of-the-art simulations of unresolved light curves show the potential of the proposed method and pave the way for future applications in time-delay cosmography.

Funder

Deutsche Forschungsgemeinschaft

Horizon 2020

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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