Path Integral Marginalization for Cosmology: Scale Dependent Galaxy Bias & Intrinsic Alignments
arXiv:1005.2063 · doi:10.1111/j.1365-2966.2010.17548.x
Abstract
We present a path-integral likelihood formalism that extends parameterized likelihood analyses to include continuous functions. The method finds the maximum likelihood point in function-space, and marginalizes over all possible functions, under the assumption of a Gaussian-distributed function-space. We apply our method to the problem of removing unknown systematic functions in two topical problems for dark energy research : scale-dependent galaxy bias in redshift surveys; and galaxy intrinsic alignments in cosmic shear surveys. We find that scale-dependent galaxy bias will degrade information on cosmological parameters unless the fractional variance in the bias function is known to 10%. Measuring and removing intrinsic alignments from cosmic shear surveys with a flat-prior can reduce the dark energy Figure-of-Merit by 20%, however provided that the scale and redshift-dependence is known to better than 10% with a Gaussian-prior, the dark energy Figure-of-Merit can be enhanced by a factor of two with no extra assumptions.
11 pages, 4 figures, submitted to MNRAS
References in corpus (10)
- Dark energy constraints from cosmic shear power spectra: impact of intrinsic alignments on photometric redshift requirements
- Report of the Dark Energy Task Force
- The WiggleZ Dark Energy Survey: Direct constraints on blue galaxy intrinsic alignments at intermediate redshifts
- The removal of shear-ellipticity correlations from the cosmic shear signal via nulling techniques
- Euclid Imaging Consortium Science Book
- Euclid Assessment Study Report for the ESA Cosmic Visions
- Scale Dependent Galaxy Bias in the SDSS as a function of Luminosity and Colour
- Cosmological Systematics Beyond Nuisance Parameters : Form Filling Functions
- Nonlinear corrections to the cosmological matter power spectrum and scale-dependent galaxy bias: implications for parameter estimation
- Determine the galaxy bias factors on large scales using bispectrum method
Cited by in corpus (14)
- Cosmology and Fundamental Physics with the Euclid Satellite
- Cosmology and fundamental physics with the Euclid satellite
- CFHTLenS tomographic weak lensing cosmological parameter constraints: Mitigating the impact of intrinsic galaxy alignments
- Galaxy alignments: An overview
- 3D Photometric Cosmic Shear
- Cosmological information in Gaussianised weak lensing signals
- Dark Energy Survey Year 3 results: Marginalisation over redshift distribution uncertainties using ranking of discrete realisations
- PINGU and the neutrino mass hierarchy: Statistical and systematic aspects
- Weak gravitational lensing of intrinsically aligned galaxies
- On Mitigation of the Uncertainty in Nonlinear Matter Clustering for Cosmic Shear Tomography
- Intrinsic size correlations in weak lensing
- Partition function approach to non-Gaussian likelihoods: Formalism and expansions for weakly non-Gaussian cosmological inference
- Path-integral Evidence
- Dark energy model selection with current and future data