Validating the Fisher approach for stage IV spectroscopic surveys
Author
dc.contributor.author
Yahia Cherif, S.
Author
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Blanchard, A.
Author
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Camera, S.
Author
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Casas, S.
Author
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Ilic, S.
Author
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Markovic, K.
Author
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Pourtsidou, A.
Author
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Sakr, Z.
Author
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Sapone, Doménico
Author
dc.contributor.author
Tutusaus, I.
Admission date
dc.date.accessioned
2022-04-06T19:19:40Z
Available date
dc.date.available
2022-04-06T19:19:40Z
Publication date
dc.date.issued
2021
Cita de ítem
dc.identifier.citation
A & A 649, A52 (2021)
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Identifier
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10.1051/0004-6361/201937312
Identifier
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https://repositorio.uchile.cl/handle/2250/184753
Abstract
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In recent years, forecasting activities have become an important tool in designing and optimising large-scale structure surveys. To
predict the performance of such surveys, the Fisher matrix formalism is frequently used as a fast and easy way to compute constraints
on cosmological parameters. Among them lies the study of the properties of dark energy which is one of the main goals in modern
cosmology. As so, a metric for the power of a survey to constrain dark energy is provided by the figure of merit (FoM). This is
defined as the inverse of the surface contour given by the joint variance of the dark energy equation of state parameters fw0;wag in the
Chevallier-Polarski-Linder parameterization, which can be evaluated from the covariance matrix of the parameters. This covariance
matrix is obtained as the inverse of the Fisher matrix. The inversion of an ill-conditioned matrix can result in large errors on the
covariance coe cients if the elements of the Fisher matrix are estimated with insu cient precision. The conditioning number is a
metric providing a mathematical lower limit to the required precision for a reliable inversion, but it is often too stringent in practice
for Fisher matrices with sizes greater than 2 2. In this paper, we propose a general numerical method to guarantee a certain precision
on the inferred constraints, such as the FoM. It consists of randomly vibrating (perturbing) the Fisher matrix elements with Gaussian
perturbations of a given amplitude and then evaluating the maximum amplitude that keeps the FoM within the chosen precision. The
steps used in the numerical derivatives and integrals involved in the calculation of the Fisher matrix elements can then be chosen
accordingly in order to keep the precision of the Fisher matrix elements below this maximum amplitude. We illustrate our approach
by forecasting stage IV spectroscopic surveys cosmological constraints from the galaxy power spectrum. We infer the range of steps
for which the Fisher matrix approach is numerically reliable. We explicitly check that using steps that are larger by a factor of two
produce an inaccurate estimation of the constraints. We further validate our approach by comparing the Fisher matrix contours to
those obtained with a Monte Carlo Markov chain (MCMC) approach – in the case where the MCMC posterior distribution is close to
a Gaussian – and finding excellent agreement between the two approaches.
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Patrocinador
dc.description.sponsorship
MIUR through Rita Levi Montalcini project 'PROMETHEUS - Probing and Relating Observables with Multi-wavelength Experiments To Help Enlightening the Universe's Structure'
Ministry of Education, Universities and Research (MIUR)
National Aeronautics & Space Administration (NASA) 80NM0018D0004
Spanish Government ESP2017-89838-C3-1-R
H2020 programme of the European Commission 776247
UK Research & Innovation (UKRI) MR/S016066/1
Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)
CONICYT FONDECYT 1200171
UKRI MR/S016066/1
Funding Data Source:UKRI
Appeared in source as:UKRI
Total Award Amount: £1,199,608.00 GBP
Grant Project Title:Exploring the Universe with radio and optical galaxy surveys
Start Date (YYYY-MM-DD): 2019-04-30
End Date (YYYY-MM-DD): 2023-04-29
Grant Status:Active
Principal Investigator:Alkistis Pourtsidou
Unique Identifier: 0000-0001-9110-5550
Principal Investigator Institution:Queen Mary, University of London
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Lenguage
dc.language.iso
en
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Publisher
dc.publisher
EDP Sciences S A
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Type of license
dc.rights
Attribution-NonCommercial-NoDerivs 3.0 United States