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Cosmological parameters from large scale structure - geometric versus shape information

The matter power spectrum as derived from large scale structure (LSS) surveys contains two important and distinct pieces of information: an overall smooth shape and the imprint of baryon acoustic oscillations (BAO). We investigate the separate impact of these two types of information on cosmological...

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Autores principales: Hamann, Jan, Hannestad, Steen, Lesgourgues, Julien, Rampf, Cornelius, Wong, Yvonne Y.Y.
Lenguaje:eng
Publicado: 2010
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2010/07/022
http://cds.cern.ch/record/1254640
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author Hamann, Jan
Hannestad, Steen
Lesgourgues, Julien
Rampf, Cornelius
Wong, Yvonne Y.Y.
author_facet Hamann, Jan
Hannestad, Steen
Lesgourgues, Julien
Rampf, Cornelius
Wong, Yvonne Y.Y.
author_sort Hamann, Jan
collection CERN
description The matter power spectrum as derived from large scale structure (LSS) surveys contains two important and distinct pieces of information: an overall smooth shape and the imprint of baryon acoustic oscillations (BAO). We investigate the separate impact of these two types of information on cosmological parameter estimation, and show that for the simplest cosmological models, the broad-band shape information currently contained in the SDSS DR7 halo power spectrum (HPS) is by far superseded by geometric information derived from the baryonic features. An immediate corollary is that contrary to popular beliefs, the upper limit on the neutrino mass m_\nu presently derived from LSS combined with cosmic microwave background (CMB) data does not in fact arise from the possible small-scale power suppression due to neutrino free-streaming, if we limit the model framework to minimal LambdaCDM+m_\nu. However, in more complicated models, such as those extended with extra light degrees of freedom and a dark energy equation of state parameter w differing from -1, shape information becomes crucial for the resolution of parameter degeneracies. This conclusion will remain true even when data from the Planck surveyor become available. In the course of our analysis, we introduce a new dewiggling procedure that allows us to extend consistently the use of the SDSS HPS to models with an arbitrary sound horizon at decoupling. All the cases considered here are compatible with the conservative 95%-bounds \sum m_\nu < 1.16 eV, N_eff = 4.8 \pm 2.0.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2010
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spelling cern-12546402023-10-26T05:13:07Zdoi:10.1088/1475-7516/2010/07/022http://cds.cern.ch/record/1254640engHamann, JanHannestad, SteenLesgourgues, JulienRampf, CorneliusWong, Yvonne Y.Y.Cosmological parameters from large scale structure - geometric versus shape informationAstrophysics and AstronomyThe matter power spectrum as derived from large scale structure (LSS) surveys contains two important and distinct pieces of information: an overall smooth shape and the imprint of baryon acoustic oscillations (BAO). We investigate the separate impact of these two types of information on cosmological parameter estimation, and show that for the simplest cosmological models, the broad-band shape information currently contained in the SDSS DR7 halo power spectrum (HPS) is by far superseded by geometric information derived from the baryonic features. An immediate corollary is that contrary to popular beliefs, the upper limit on the neutrino mass m_\nu presently derived from LSS combined with cosmic microwave background (CMB) data does not in fact arise from the possible small-scale power suppression due to neutrino free-streaming, if we limit the model framework to minimal LambdaCDM+m_\nu. However, in more complicated models, such as those extended with extra light degrees of freedom and a dark energy equation of state parameter w differing from -1, shape information becomes crucial for the resolution of parameter degeneracies. This conclusion will remain true even when data from the Planck surveyor become available. In the course of our analysis, we introduce a new dewiggling procedure that allows us to extend consistently the use of the SDSS HPS to models with an arbitrary sound horizon at decoupling. All the cases considered here are compatible with the conservative 95%-bounds \sum m_\nu < 1.16 eV, N_eff = 4.8 \pm 2.0.The matter power spectrum as derived from large scale structure (LSS) surveys contains two important and distinct pieces of information: an overall smooth shape and the imprint of baryon acoustic oscillations (BAO). We investigate the separate impact of these two types of information on cosmological parameter estimation, and show that for the simplest cosmological models, the broad-band shape information currently contained in the SDSS DR7 halo power spectrum (HPS) is by far superseded by geometric information derived from the baryonic features. An immediate corollary is that contrary to popular beliefs, the upper limit on the neutrino mass m_\nu presently derived from LSS combined with cosmic microwave background (CMB) data does not in fact arise from the possible small-scale power suppression due to neutrino free-streaming, if we limit the model framework to minimal LambdaCDM+m_\nu. However, in more complicated models, such as those extended with extra light degrees of freedom and a dark energy equation of state parameter w differing from -1, shape information becomes crucial for the resolution of parameter degeneracies. This conclusion will remain true even when data from the Planck surveyor become available. In the course of our analysis, we introduce a new dewiggling procedure that allows us to extend consistently the use of the SDSS HPS to models with an arbitrary sound horizon at decoupling. All the cases considered here are compatible with the conservative 95%-bounds \sum m_\nu < 1.16 eV, N_eff = 4.8 \pm 2.0.arXiv:1003.3999CERN-PH-TH-2010-064LAPTH-016-10TTK-10-27CERN-PH-TH-2010-064LAPTH-016-10TTK-10-27oai:cds.cern.ch:12546402010-03-23
spellingShingle Astrophysics and Astronomy
Hamann, Jan
Hannestad, Steen
Lesgourgues, Julien
Rampf, Cornelius
Wong, Yvonne Y.Y.
Cosmological parameters from large scale structure - geometric versus shape information
title Cosmological parameters from large scale structure - geometric versus shape information
title_full Cosmological parameters from large scale structure - geometric versus shape information
title_fullStr Cosmological parameters from large scale structure - geometric versus shape information
title_full_unstemmed Cosmological parameters from large scale structure - geometric versus shape information
title_short Cosmological parameters from large scale structure - geometric versus shape information
title_sort cosmological parameters from large scale structure - geometric versus shape information
topic Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2010/07/022
http://cds.cern.ch/record/1254640
work_keys_str_mv AT hamannjan cosmologicalparametersfromlargescalestructuregeometricversusshapeinformation
AT hannestadsteen cosmologicalparametersfromlargescalestructuregeometricversusshapeinformation
AT lesgourguesjulien cosmologicalparametersfromlargescalestructuregeometricversusshapeinformation
AT rampfcornelius cosmologicalparametersfromlargescalestructuregeometricversusshapeinformation
AT wongyvonneyy cosmologicalparametersfromlargescalestructuregeometricversusshapeinformation