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Towards a non-singular pre-Big Bang cosmology

We discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $...

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Detalles Bibliográficos
Autores principales: Gasperini, M., Maggiore, M., Veneziano, G.
Lenguaje:eng
Publicado: 1997
Materias:
Acceso en línea:https://dx.doi.org/10.1016/S0550-3213(97)00149-1
http://cds.cern.ch/record/314383
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author Gasperini, M.
Maggiore, M.
Veneziano, G.
author_facet Gasperini, M.
Maggiore, M.
Veneziano, G.
author_sort Gasperini, M.
collection CERN
description We discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $(d+1)$ algebraic equations in $(d+1)$ unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big bang solutions. We illustrate the phenomenon in a first order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of $\alpha'$ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.
id cern-314383
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1997
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spelling cern-3143832019-11-29T03:18:00Zdoi:10.1016/S0550-3213(97)00149-1http://cds.cern.ch/record/314383engGasperini, M.Maggiore, M.Veneziano, G.Towards a non-singular pre-Big Bang cosmologyParticle Physics - TheoryWe discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $(d+1)$ algebraic equations in $(d+1)$ unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big bang solutions. We illustrate the phenomenon in a first order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of $\alpha'$ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.We discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $(d+1)$ algebraic equations in $(d+1)$ unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big bang solutions. We illustrate the phenomenon in a first order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of $\alpha'$ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.We discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $(d+1)$ algebraic equations in $(d+1)$ unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big bang solutions. We illustrate the phenomenon in a first order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of $\alpha'$ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.We discuss general features of the β -function equations for spatially flat, ( d + 1)-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in α′. In the special case of constant curvature and a linear dilaton these equations reduce to ( d + 1) algebraic equations in ( d + 1) unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big-bang solutions. We illustrate the phenomenon in a first-order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of α′ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.We discuss general features of the $\beta$-function equations for spatially flat, $(d+1)$-dimensional cosmological backgrounds at lowest order in the string-loop expansion, but to all orders in $\alpha'$. In the special case of constant curvature and a linear dilaton these equations reduce to $(d+1)$ algebraic equations in $(d+1)$ unknowns, whose solutions can act as late-time regularizing attractors for the singular lowest-order pre-big bang solutions. We illustrate the phenomenon in a first order example, thus providing an explicit realization of the previously conjectured transition from the dilaton to the string phase in the weak coupling regime of string cosmology. The complementary role of $\alpha'$ corrections and string loops for completing the transition to the standard cosmological scenario is also briefly discussed.hep-th/9611039CERN-TH-96-267IFUP-TH-62-96CERN-TH/96-267CERN-TH-96-267IFUP-TH-96-62oai:cds.cern.ch:3143831997
spellingShingle Particle Physics - Theory
Gasperini, M.
Maggiore, M.
Veneziano, G.
Towards a non-singular pre-Big Bang cosmology
title Towards a non-singular pre-Big Bang cosmology
title_full Towards a non-singular pre-Big Bang cosmology
title_fullStr Towards a non-singular pre-Big Bang cosmology
title_full_unstemmed Towards a non-singular pre-Big Bang cosmology
title_short Towards a non-singular pre-Big Bang cosmology
title_sort towards a non-singular pre-big bang cosmology
topic Particle Physics - Theory
url https://dx.doi.org/10.1016/S0550-3213(97)00149-1
http://cds.cern.ch/record/314383
work_keys_str_mv AT gasperinim towardsanonsingularprebigbangcosmology
AT maggiorem towardsanonsingularprebigbangcosmology
AT venezianog towardsanonsingularprebigbangcosmology