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Model selection applied to reconstruction of the Primordial Power Spectrum

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arxiv 1203.1252 v2 pith:Y2CW6PH3 submitted 2012-03-06 astro-ph.CO

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keywords spectrummodelbayesianparameterisationprimordialcosmologicalevidencenodes
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The preferred shape for the primordial spectrum of curvature perturbations is determined by performing a Bayesian model selection analysis of cosmological observations. We first reconstruct the spectrum modelled as piecewise linear in \log k between nodes in k-space whose amplitudes and positions are allowed to vary. The number of nodes together with their positions are chosen by the Bayesian evidence, so that we can both determine the complexity supported by the data and locate any features present in the spectrum. In addition to the node-based reconstruction, we consider a set of parameterised models for the primordial spectrum: the standard power-law parameterisation, the spectrum produced from the Lasenby & Doran (LD) model and a simple variant parameterisation. By comparing the Bayesian evidence for different classes of spectra, we find the power-law parameterisation is significantly disfavoured by current cosmological observations, which show a preference for the LD model.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Inverse-Scattering Reconstruction of Inflation from Scalar and Tensor Primordial Spectra

    astro-ph.CO 2026-06 unverdicted novelty 7.0 of 10

    An inverse-scattering method reconstructs inflationary potentials from primordial power spectra using Jost functions derived from the Mukhanov-Sasaki equation.

  2. A simple supergravity model of inflation constrained with Planck 2018 data

    astro-ph.CO 2019-09 conditional novelty 4.0 of 10

    A single-parameter supergravity inflation model, previously ruled out for one parameter value, becomes compatible with Planck 2018 data when the slope parameter is slightly nonzero.

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