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The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics

We present a new flexible, fast and accurate way to implement massive neutrinos, warm dark matter and any other non-cold dark matter relics in Boltzmann codes. For whatever analytical or numerical form of the phase-space distribution function, the optimal sampling in momentum space compatible with a...

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Detalles Bibliográficos
Autores principales: Lesgourgues, Julien, Tram, Thomas
Lenguaje:eng
Publicado: 2011
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2011/09/032
http://cds.cern.ch/record/1345134
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author Lesgourgues, Julien
Tram, Thomas
author_facet Lesgourgues, Julien
Tram, Thomas
author_sort Lesgourgues, Julien
collection CERN
description We present a new flexible, fast and accurate way to implement massive neutrinos, warm dark matter and any other non-cold dark matter relics in Boltzmann codes. For whatever analytical or numerical form of the phase-space distribution function, the optimal sampling in momentum space compatible with a given level of accuracy is automatically found by comparing quadrature methods. The perturbation integration is made even faster by switching to an approximate viscous fluid description inside the Hubble radius, which differs from previous approximations discussed in the literature. When adding one massive neutrino to the minimal cosmological model, CLASS becomes just 1.5 times slower, instead of about 5 times in other codes (for fixed accuracy requirements). We illustrate the flexibility of our approach by considering a few examples of standard or non-standard neutrinos, as well as warm dark matter models.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2011
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spelling cern-13451342019-09-30T06:29:59Zdoi:10.1088/1475-7516/2011/09/032http://cds.cern.ch/record/1345134engLesgourgues, JulienTram, ThomasThe Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relicsAstrophysics and AstronomyWe present a new flexible, fast and accurate way to implement massive neutrinos, warm dark matter and any other non-cold dark matter relics in Boltzmann codes. For whatever analytical or numerical form of the phase-space distribution function, the optimal sampling in momentum space compatible with a given level of accuracy is automatically found by comparing quadrature methods. The perturbation integration is made even faster by switching to an approximate viscous fluid description inside the Hubble radius, which differs from previous approximations discussed in the literature. When adding one massive neutrino to the minimal cosmological model, CLASS becomes just 1.5 times slower, instead of about 5 times in other codes (for fixed accuracy requirements). We illustrate the flexibility of our approach by considering a few examples of standard or non-standard neutrinos, as well as warm dark matter models.arXiv:1104.2935CERN-PH-TH-2011-084oai:cds.cern.ch:13451342011-04-18
spellingShingle Astrophysics and Astronomy
Lesgourgues, Julien
Tram, Thomas
The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title_full The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title_fullStr The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title_full_unstemmed The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title_short The Cosmic Linear Anisotropy Solving System (CLASS) IV: efficient implementation of non-cold relics
title_sort cosmic linear anisotropy solving system (class) iv: efficient implementation of non-cold relics
topic Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2011/09/032
http://cds.cern.ch/record/1345134
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