A forecast that SKA 21-cm redshift drift observations could constrain CPL dark-energy parameters, but the claimed sub-cm/s constraints are not actual parameter errors because the paper reports signal derivatives instead of propagated uncertainties.
Real-time Cosmology with High Precision Spectroscopy and Astrometry
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abstract
Breakthroughs in physics and astrophysics are often driven by technological advances, with the recent detection of gravitational waves being one such example. This white paper focuses upon how improved astrometric and spectroscopic measurements from a new generation of precise, accurate, and stable astronomical instrumentation can address two of the fundamental mysteries of our time -- dark energy and dark matter -- and probe the nature of spacetime. Instrumentation is now on the cusp of enabling new cosmological measurements based on redshifts (cosmic redshift drift) and extremely precise time-series measurements of accelerations, astrophysical source positions (astrometry), and angles (cosmic parallax). These allow tests of the fundamental framework of the universe (the Friedmann equations of general relativity and whether cosmic expansion is physically accelerating) and its contents (dark energy evolution and dark matter behavior), while also anchoring the cosmic distance scale ($H_0$).
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Estimating constraints on cosmological parameters via the canonical and the differential redshift drift with SKA HI 21-cm observations
A forecast that SKA 21-cm redshift drift observations could constrain CPL dark-energy parameters, but the claimed sub-cm/s constraints are not actual parameter errors because the paper reports signal derivatives instead of propagated uncertainties.