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Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism

We present a new analytic approach to describe large scale structure formation in the mildly non-linear regime. The central object of the method is the time-dependent probability distribution function generating correlators of the cosmological observables at a given moment of time. Expanding the dis...

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Detalles Bibliográficos
Autores principales: Blas, Diego, Garny, Mathias, Ivanov, Mikhail M., Sibiryakov, Sergey
Lenguaje:eng
Publicado: 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1475-7516/2016/07/052
http://cds.cern.ch/record/2117189
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author Blas, Diego
Garny, Mathias
Ivanov, Mikhail M.
Sibiryakov, Sergey
author_facet Blas, Diego
Garny, Mathias
Ivanov, Mikhail M.
Sibiryakov, Sergey
author_sort Blas, Diego
collection CERN
description We present a new analytic approach to describe large scale structure formation in the mildly non-linear regime. The central object of the method is the time-dependent probability distribution function generating correlators of the cosmological observables at a given moment of time. Expanding the distribution function around the Gaussian weight we formulate a perturbative technique to calculate non-linear corrections to cosmological correlators, similar to the diagrammatic expansion in a three-dimensional Euclidean quantum field theory, with time playing the role of an external parameter. For the physically relevant case of cold dark matter in an Einstein--de Sitter universe, the time evolution of the distribution function can be found exactly and is encapsulated by a time-dependent coupling constant controlling the perturbative expansion. We show that all building blocks of the expansion are free from spurious infrared enhanced contributions that plague the standard cosmological perturbation theory. This paves the way towards the systematic resummation of infrared effects in large scale structure formation. We also argue that the approach proposed here provides a natural framework to account for the influence of short-scale dynamics on larger scales along the lines of effective field theory.
id cern-2117189
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2015
record_format invenio
spelling cern-21171892023-10-04T06:02:23Zdoi:10.1088/1475-7516/2016/07/052http://cds.cern.ch/record/2117189engBlas, DiegoGarny, MathiasIvanov, Mikhail M.Sibiryakov, SergeyTime-Sliced Perturbation Theory for Large Scale Structure I: General FormalismAstrophysics and AstronomyWe present a new analytic approach to describe large scale structure formation in the mildly non-linear regime. The central object of the method is the time-dependent probability distribution function generating correlators of the cosmological observables at a given moment of time. Expanding the distribution function around the Gaussian weight we formulate a perturbative technique to calculate non-linear corrections to cosmological correlators, similar to the diagrammatic expansion in a three-dimensional Euclidean quantum field theory, with time playing the role of an external parameter. For the physically relevant case of cold dark matter in an Einstein--de Sitter universe, the time evolution of the distribution function can be found exactly and is encapsulated by a time-dependent coupling constant controlling the perturbative expansion. We show that all building blocks of the expansion are free from spurious infrared enhanced contributions that plague the standard cosmological perturbation theory. This paves the way towards the systematic resummation of infrared effects in large scale structure formation. We also argue that the approach proposed here provides a natural framework to account for the influence of short-scale dynamics on larger scales along the lines of effective field theory.We present a new analytic approach to describe large scale structure formation in the mildly non-linear regime. The central object of the method is the time-dependent probability distribution function generating correlators of the cosmological observables at a given moment of time. Expanding the distribution function around the Gaussian weight we formulate a perturbative technique to calculate non-linear corrections to cosmological correlators, similar to the diagrammatic expansion in a three-dimensional Euclidean quantum field theory, with time playing the role of an external parameter. For the physically relevant case of cold dark matter in an Einstein-de Sitter universe, the time evolution of the distribution function can be found exactly and is encapsulated by a time-dependent coupling constant controlling the perturbative expansion. We show that all building blocks of the expansion are free from spurious infrared enhanced contributions that plague the standard cosmological perturbation theory. This paves the way towards the systematic resummation of infrared effects in large scale structure formation. We also argue that the approach proposed here provides a natural framework to account for the influence of short-scale dynamics on larger scales along the lines of effective field theory.We present a new analytic approach to describe large scale structure formation in the mildly non-linear regime. The central object of the method is the time-dependent probability distribution function generating correlators of the cosmological observables at a given moment of time. Expanding the distribution function around the Gaussian weight we formulate a perturbative technique to calculate non-linear corrections to cosmological correlators, similar to the diagrammatic expansion in a three-dimensional Euclidean quantum field theory, with time playing the role of an external parameter. For the physically relevant case of cold dark matter in an Einstein--de Sitter universe, the time evolution of the distribution function can be found exactly and is encapsulated by a time-dependent coupling constant controlling the perturbative expansion. We show that all building blocks of the expansion are free from spurious infrared enhanced contributions that plague the standard cosmological perturbation theory. This paves the way towards the systematic resummation of infrared effects in large scale structure formation. We also argue that the approach proposed here provides a natural framework to account for the influence of short-scale dynamics on larger scales along the lines of effective field theory.arXiv:1512.05807CERN-PH-TH-2015-298INR-TH-2015-034CERN-PH-TH-2015-298INR-TH-2015-034oai:cds.cern.ch:21171892015-12-17
spellingShingle Astrophysics and Astronomy
Blas, Diego
Garny, Mathias
Ivanov, Mikhail M.
Sibiryakov, Sergey
Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title_full Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title_fullStr Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title_full_unstemmed Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title_short Time-Sliced Perturbation Theory for Large Scale Structure I: General Formalism
title_sort time-sliced perturbation theory for large scale structure i: general formalism
topic Astrophysics and Astronomy
url https://dx.doi.org/10.1088/1475-7516/2016/07/052
http://cds.cern.ch/record/2117189
work_keys_str_mv AT blasdiego timeslicedperturbationtheoryforlargescalestructureigeneralformalism
AT garnymathias timeslicedperturbationtheoryforlargescalestructureigeneralformalism
AT ivanovmikhailm timeslicedperturbationtheoryforlargescalestructureigeneralformalism
AT sibiryakovsergey timeslicedperturbationtheoryforlargescalestructureigeneralformalism