Scale-dependent non-Gaussianities in the WMAP data as identified by using surrogates and scaling indices
C. Raeth, A. J. Banday, G. Rossmanith, H. Modest, R. Suetterlin, K. M., Gorski, J. Delabrouille, G. E. Morfill

TL;DR
This study detects significant, scale-dependent non-Gaussianities in WMAP CMB data using surrogate maps and scaling indices, challenging standard isotropic inflation models and suggesting possible cosmological origins.
Contribution
It introduces a model-independent method employing surrogate maps and scaling indices to identify scale-dependent non-Gaussianities in CMB data.
Findings
Significant non-Gaussianities found at large and small scales
Detection of ecliptic hemispherical asymmetries
Results are consistent across different ILC-like maps
Abstract
We present a model-independent investigation of the WMAP data with respect to scale- dependent non-Gaussianities (NGs) by employing the method of constrained randomization. For generating so-called surrogate maps a shuffling scheme is applied to the Fourier phases of the original data, which allows to test for the presence of higher order correlations (HOCs) on well-defined scales. Using scaling indices as test statistics we find highly significant signatures for non-Gaussianities when considering all scales. We test for NGs in the bands l = [2,20], l = [20,60], l = [60,120] and l = [120,300]. We find highly significant signatures for non-Gaussianities and ecliptic hemispherical asymmetries for l = [2, 20]. We also obtain highly significant deviations from Gaussianity for the band l = [120,300]. The result for the full l-range can be interpreted as a superposition of the signatures…
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