Beware of commonly used approximations II: estimating systematic biases in the best-fit parameters
arXiv:2005.09666 · doi:10.1088/1475-7516/2020/10/017
Abstract
Cosmological parameter estimation from forthcoming experiments promise to reach much greater precision than current constraints. As statistical errors shrink, the required control over systematic errors increases. Therefore, models or approximations that were sufficiently accurate so far, may introduce significant systematic biases in the parameter best-fit values and jeopardize the robustness of cosmological analyses. We present a general expression to estimate a priori the systematic error introduced in parameter inference due to the use of insufficiently good approximations in the computation of the observable of interest or the assumption of an incorrect underlying model. Although this methodology can be applied to measurements of any scientific field, we illustrate its power by studying the effect of modeling the angular galaxy power spectrum incorrectly. We also introduce Multi_CLASS, a new, public modification of the Boltzmann code CLASS, which includes the possibility to compute angular cross-power spectra for two different tracers. We find that significant biases in most of the cosmological parameters are introduced if one assumes the Limber approximation or neglects lensing magnification in modern galaxy survey analyses, and the effect is in general larger for the multi-tracer case, especially for the parameter controlling primordial non-Gaussianity of the local type, .
21 pages (+5 pages of appendices +6 pages of references), 8 figures, 1 table. Multi_CLASS can be found in https://github.com/nbellomo/Multi_CLASS
References in corpus (12)
- Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics Beyond LambdaCDM
- The imprints of primordial non-gaussianities on large-scale structure: scale dependent bias and abundance of virialized objects
- Extended Limber Approximation
- Measuring primordial non-gaussianity without cosmic variance
- New Perspective on Galaxy Clustering as a Cosmological Probe: General Relativistic Effects
- Systematic Bias in Cosmic Shear: Beyond the Fisher Matrix
- On model selection forecasting, Dark Energy and modified gravity
- Probing dark energy with the shear-ratio geometric test
- Einstein's legacy in galaxy surveys
- On the insufficiency of arbitrarily precise covariance matrices: non-Gaussian weak lensing likelihoods
- Shot noise and biased tracers: a new look at the halo model
- Systematic errors in the measurement of neutrino masses due to baryonic feedback processes: Prospects for stage IV lensing surveys
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- Multi-wavelength spectroscopic probes: prospects for primordial non-Gaussianity and relativistic effects
- Synergy between CSST and third-generation gravitational-wave detectors: Inferring cosmological parameters using cross-correlation of dark sirens and galaxies
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- Delensing CMB B-modes using galaxy surveys: the effect of galaxy bias and matter clustering non-linearities
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