The Atacama Cosmology Telescope: DR4 Maps and Cosmological Parameters
Simone Aiola, Erminia Calabrese, Lo\"ic Maurin, Sigurd Naess, Benjamin, L. Schmitt, Maximilian H. Abitbol, Graeme E. Addison, Peter A. R. Ade, David, Alonso, Mandana Amiri, Stefania Amodeo, Elio Angile, Jason E. Austermann,, Taylor Baildon, Nick Battaglia, James A. Beall

TL;DR
This paper presents high-resolution CMB maps from the Atacama Cosmology Telescope, constrains cosmological parameters including H0, and confirms the consistency of the ΛCDM model with new observational data.
Contribution
The paper provides the fourth data release with detailed maps and cosmological constraints, demonstrating the ACT's capability to measure key cosmological parameters and test the ΛCDM model.
Findings
Measured H0 = 67.6 ± 1.1 km/s/Mpc, consistent with Planck.
Found no evidence for deviations from ΛCDM, including curvature and lensing.
Confirmed consistency between ACT, WMAP, and Planck data.
Abstract
We present new arcminute-resolution maps of the Cosmic Microwave Background temperature and polarization anisotropy from the Atacama Cosmology Telescope, using data taken from 2013-2016 at 98 and 150 GHz. The maps cover more than 17,000 deg, the deepest 600 deg with noise levels below 10 K-arcmin. We use the power spectrum derived from almost 6,000 deg of these maps to constrain cosmology. The ACT data enable a measurement of the angular scale of features in both the divergence-like polarization and the temperature anisotropy, tracing both the velocity and density at last-scattering. From these one can derive the distance to the last-scattering surface and thus infer the local expansion rate, . By combining ACT data with large-scale information from WMAP we measure km/s/Mpc, at 68% confidence, in excellent agreement with the…
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