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Minimally Parametric Power Spectrum Reconstruction from the Lyman-alpha Forest

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arxiv 1010.1519 v2 pith:BZD2DGWN submitted 2010-10-07 astro-ph.CO

classification astro-ph.CO
keywords powerspectrumdataalphalymanshapeableanalysis
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Current results from the Lyman alpha forest assume that the primordial power spectrum of density perturbations follows a simple power law form, with running. We present the first analysis of Lyman alpha data to study the effect of relaxing this strong assumption on primordial and astrophysical constraints. We perform a large suite of numerical simulations, using them to calibrate a minimally parametric framework for describing the power spectrum. Combined with cross-validation, a statistical technique which prevents over-fitting of the data, this framework allows us to reconstruct the power spectrum shape without strong prior assumptions. We find no evidence for deviation from scale-invariance; our analysis also shows that current Lyman alpha data do not have sufficient statistical power to robustly probe the shape of the power spectrum at these scales. In contrast, the ongoing Baryon Oscillation Sky Survey (BOSS) will be able to do so with high precision. Furthermore, this near-future data will be able to break degeneracies between the power spectrum shape and astrophysical parameters.

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Cited by 9 Pith papers

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

  1. Probing the fate of large primordial perturbations with exoplanets

    astro-ph.CO 2026-06 conditional novelty 6.5 of 10

    Observed ultra-wide exoplanets already constrain the amplitude and scale of primordial power-spectrum peaks that produce ultra-compact minihalos, with misalignment signatures as a future probe.

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    Galactic halo substructure requires primordial curvature perturbations of amplitude ≳10^-9 at wavenumbers 10–30 Mpc^-1.

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    Tensor perturbations from FOPT and domain-wall sources are claimed to induce second-order scalar perturbations large enough to form primordial black holes, potentially all of the dark matter.

  4. Are Primordial Black Holes Truly Fine-Tuned?

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    Using a normalized sensitivity measure γ=c/c̄, the authors find γ≈1 for three single-field ultra-slow-roll inflation models and conclude PBH production is not technically unnatural.

  5. Observable CMB B-modes from Cosmological Phase Transitions

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    Phase transitions in dark sectors can generate CMB B-modes with amplitudes competitive with inflation but peaking at smaller angular scales.

  6. How large are curvature perturbations from slow first-order phase transitions? A gauge-invariant analysis

    hep-ph 2026-01 conditional novelty 4.0 of 10

    Slow first-order phase transitions generate comoving curvature perturbations too small to form primordial black holes, with a new fitting template for the power spectrum.

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    hep-ph 2025-07 conditional novelty 4.0 of 10

    Scalar-induced gravitational waves from small-scale curvature perturbations can imprint detectable CMB B-mode polarization, giving future experiments a new window on the primordial power spectrum at k ~ 1-10 Mpc^-1.

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