Precision requirements for interferometric gridding in 21-cm power spectrum analysis
A. R. Offringa, F. Mertens, S. van der Tol, B. Veenboer, B. K. Gehlot,, L. V. E. Koopmans, M. Mevius

TL;DR
This paper evaluates the accuracy of various interferometric gridding methods for 21-cm power spectrum analysis, identifying optimal parameters to minimize bias and recommending image domain gridding for EoR experiments.
Contribution
It provides a detailed analysis of gridding biases in 21-cm power spectrum estimation and establishes optimal parameter thresholds for accurate results.
Findings
Image domain gridding offers highest accuracy with lowest imaging time.
Kernel oversampling factor > 4000 is needed for bias below EoR signal levels.
W-projection requires > 500 w-quantization levels for minimal bias.
Abstract
We analyse the accuracy of radio interferometric gridding of visibilities with the aim to quantify the Epoch of Reionization (EoR) 21-cm power spectrum bias caused by gridding, ultimately to determine the suitability of different imaging algorithms and gridding settings for 21-cm power spectrum analysis. We simulate realistic LOFAR data, and construct power spectra with convolutional gridding and w-stacking, w-projection, image domain gridding and without w-correction. These are compared against directly Fourier transformed data. The influence of oversampling, kernel size, w-quantization, kernel windowing function and image padding are quantified. The gridding excess power is measured with a foreground subtraction strategy, for which foregrounds have been subtracted using Gaussian progress regression, as well as with a foreground avoidance strategy. Constructing a power spectrum that…
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