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Closing the cosmological loop with the redshift drift

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arxiv 2110.12242 v1 pith:ET6CDA4Q submitted 2021-10-23 astro-ph.CO gr-qc

classification astro-ph.COgr-qc
keywords driftredshiftothercomparativeconstrainingexperimentgoalmeasurement
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The redshift drift (also known as the Sandage Test) is a model-independent probe of fundamental cosmology, enabling us to watch the universe expand in real time, and thereby to confirm (or not) the recent acceleration of the universe without any model-dependent assumptions. On the other hand, by choosing a fiducial model one can also use it to constrain the model parameters, thereby providing a consistency test for results obtained with other probes. The drift can be measured by the Extremely Large Telescope and also by the full SKA. Recently two alternative measurement methods have been proposed: the cosmic accelerometer, and the differential redshift drift. Here we summarize a comparative analysis of the various methods and their possible outcomes, using both Fisher Matrix and MCMC techniques. We find that no single method is uniformly better than the others. Instead, their comparative performance depends both on experimental parameters (including the experiment time and redshift at which the measurement is made) and also on the scientific goal (e.g., detecting the drift signal with high statistical significance, constraining the matter density, or constraining the dark energy properties). In other words, the experiment should be optimized for the preferred scientific goal.

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

  1. Redshift drift effect through the observation of HI 21cm signal with SKA

    astro-ph.CO 2025-01 reject novelty 3.0 of 10

    A forecast study claims SKA with 0.001 Hz spectral resolution could measure cosmic redshift drift at millimeter-per-second precision over 0.5 years, yielding tight dark energy constraints.

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