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Accelerating Large-Scale-Structure data analyses by emulating Boltzmann solvers and Lagrangian Perturbation Theory

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arxiv 2104.14568 v3 pith:NII6UEXD submitted 2021-04-29 astro-ph.CO

classification astro-ph.CO
keywords emulatorlinearspectrumanalysisdataemulatorsmatterpower
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abstract

The linear matter power spectrum is an essential ingredient in all theoretical models for interpreting large-scale-structure observables. Although Boltzmann codes such as CLASS or CAMB are very efficient at computing the linear spectrum, the analysis of data usually requires $10^4$-$10^6$ evaluations, which means this task can be the most computationally expensive aspect of data analysis. Here, we address this problem by building a neural network emulator that provides the linear theory (total and cold) matter power spectrum in about one millisecond with 0.2% (0.5%) accuracy over redshifts $z \le 3$ ($z \le 9$), and scales $10^{-4} \le k \, [h {\rm Mpc^{-1}}] < 50$. We train this emulator with more than 200,000 measurements, spanning a broad cosmological parameter space that includes massive neutrinos and dynamical dark energy. We show that the parameter range and accuracy of our emulator is enough to get unbiased cosmological constraints in the analysis of a Euclid-like weak lensing survey. Complementing this emulator, we train 15 other emulators for the cross-spectra of various linear fields in Eulerian space, as predicted by 2nd-order Lagrangian Perturbation theory, which can be used to accelerate perturbative bias descriptions of galaxy clustering. Our emulators are specially designed to be used in combination with emulators for the nonlinear matter power spectrum and for baryonic effects, all of which are publicly available at http://www.dipc.org/bacco.

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Cited by 3 Pith papers

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

  1. CLiENT: A new tool for emulating cosmological likelihoods using deep neural networks

    astro-ph.CO 2025-12 conditional novelty 6.0 of 10

    A neural-network tool that directly emulates cosmological likelihood functions, achieving ~0.1σ-accurate credible intervals with roughly 20,000 likelihood evaluations.

  2. Projecting Unequal Time Fields and Correlators of Large Scale Structure

    astro-ph.CO 2025-02 conditional novelty 6.0 of 10

    A new field-level projection produces first-order unequal-time corrections to single-tracer galaxy power spectra, both within and between redshift bins.

  3. Low-redshift constraints on structure growth from CMB lensing tomography

    astro-ph.CO 2025-10 conditional novelty 5.0 of 10

    Low-redshift galaxy clustering and CMB lensing tomography with hybrid effective field theory gives S8=0.79±0.06, consistent with Planck, while data alone prefer Ωm=0.245±0.024.

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