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Neural network emulation of reionization to constrain new physics with early- and late-time probes

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arxiv 2503.11261 v1 pith:SKOFTK6G submitted 2025-03-14 astro-ph.CO

classification astro-ph.CO
keywords reionizationdarkdepthmatterneuralopticalparameteraccurate
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abstract

The optical depth to reionization, a key parameter of the $\Lambda$CDM model, can be computed within astrophysical frameworks for star formation by modeling the evolution of the intergalactic medium. Accurate evaluation of this parameter is thus crucial for joint statistical analyses of CMB data and late-time probes such as the 21 cm power spectrum, requiring consistent integration into cosmological solvers. However, modeling the optical depth with sufficient precision in a computationally feasible manner for MCMC analyses is challenging due to the complexities of the nonlinear astrophysics. We introduce NNERO (Neural Network Emulator for Reionization and Optical depth), a framework that leverages neural networks to emulate the evolution of the free-electron fraction during cosmic dawn and reionization. We demonstrate its effectiveness by simultaneously constraining cosmological and astrophysical parameters in both standard cold dark matter and non-cold dark matter scenarios, including models with massive neutrinos and warm dark matter, showcasing its potential for efficient and accurate parameter inference.

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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. No way ou$\tau$: Epoch of Reionization Observations Do not Support Large Values of the Optical Depth to Reionization

    astro-ph.CO 2026-07 conditional novelty 6.0 of 10

    Epoch-of-reionization hydrogen probes, combined with CMB and BAO data but no CMB polarization, yield tau_reio = 0.067 +/- 0.011 and leave the dynamical-dark-energy preference at ~2 sigma.

  2. 21 cm Cosmology Sensitivity to Small-Scale Structure: Warm vs Neutrino-Interacting Dark Matter

    astro-ph.CO 2025-11 conditional novelty 6.0 of 10

    21 cm forecasts show HERA can detect νDM interactions down to ~3×10⁻³⁵ cm² (assuming zero modelling error) but cannot distinguish νDM from warm dark matter.

  3. Open Source Planning & Control System with Language Agents for Autonomous Scientific Discovery

    cs.AI 2025-07 conditional novelty 6.0 of 10

    A multi-agent LLM system with a Planning & Control strategy performs an autonomous Union2.1 cosmology fit and beats single-LLM baselines on a 50-problem DS-1000 subset.

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