Catalog-based pseudo-s
arXiv:2407.21013 · doi:10.1088/1475-7516/2025/01/028
Abstract
We present a formalism to extract the angular power spectrum of fields sampled at a finite number of points with arbitrary positions -- a common situation for several catalog-based astrophysical probes -- through a simple extension of the standard pseudo- algorithm. A key complication in this case is the need to handle the shot noise component of the associated discrete angular mask which, for sparse catalogs, can lead to strong coupling between very different angular scales. We show that this problem can be solved easily by estimating this contribution analytically and subtracting it. The resulting estimator is immune to small-scale pixelization effects and aliasing, and, more interestingly, unbiased against the contribution from measurement noise uncorrelated between different sources. We demonstrate the validity of the method in the context of cosmic shear datasets, and showcase its usage in the case of other spin-0 and spin-1 astrophysical fields of interest. We incorporate the method in the public code (https://github.com/LSSTDESC/NaMaster).
33 pages, 10 figures. Comments welcome!
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Cited by in corpus (6)
- Euclid preparation. LIX. Angular power spectra from discrete observations
- Clustering properties of the CatWISE2020 quasar catalogue and their impact on the cosmic dipole anomaly
- Probing baryonic feedback with fast radio bursts: joint analyses with cosmic shear and galaxy clustering
- Pixelization effects in cosmic shear angular power spectra
- Systematics mitigation for catalogue-based angular power spectra
- Built-in precision: Improving cluster cosmology through the self-calibration of a galaxy cluster sample