The low large-scale CMB variance, concentrated away from the Galactic plane, remains anomalous at about 2.8 to 3 sigma even after random rotations of the sky are taken into account.
A comparison of CMB Angular Power Spectrum Estimators at Large Scales: the TT case
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abstract
In the context of cosmic microwave background (CMB) data analysis, we compare the efficiency at large scale of two angular power spectrum algorithms, implementing, respectively, the quadratic maximum likelihood (QML) estimator and the pseudo spectrum (pseudo-Cl) estimator. By exploiting 1000 realistic Monte Carlo (MC) simulations, we find that the QML approach is markedly superior in the range l=[2-100]. At the largest angular scales, e.g. l < 10, the variance of the QML is almost 1/3 (1/2) that of the pseudo-Cl, when we consider the WMAP kq85 (kq85 enlarged by 8 degrees) mask, making the pseudo spectrum estimator a very poor option. Even at multipoles l=[20-60], where pseudo-Cl methods are traditionally used to feed the CMB likelihood algorithms, we find an efficiency loss of about 20%, when we considered the WMAP kq85 mask, and of about 15% for the kq85 mask enlarged by 8 degrees. This should be taken into account when claiming accurate results based on pseudo-Cl methods. Some examples concerning typical large scale estimators are provided.
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Is the lack of power anomaly in the CMB correlated with the orientation of the Galactic plane?
The low large-scale CMB variance, concentrated away from the Galactic plane, remains anomalous at about 2.8 to 3 sigma even after random rotations of the sky are taken into account.