Toward an accurate mass function for precision cosmology
arXiv:1206.5302 · doi:10.1093/mnras/stt301
Abstract
Cosmological surveys aim to use the evolution of the abundance of galaxy clusters to accurately constrain the cosmological model. In the context of LCDM, we show that it is possible to achieve the required percent level accuracy in the halo mass function with gravity-only cosmological simulations, and we provide simulation start and run parameter guidelines for doing so. Some previous works have had sufficient statistical precision, but lacked robust verification of absolute accuracy. Convergence tests of the mass function with, for example, simulation start redshift can exhibit false convergence of the mass function due to counteracting errors, potentially misleading one to infer overly optimistic estimations of simulation accuracy. Percent level accuracy is possible if initial condition particle mapping uses second order Lagrangian Perturbation Theory, and if the start epoch is between 10 and 50 expansion factors before the epoch of halo formation of interest. The mass function for halos with fewer than ~1000 particles is highly sensitive to simulation parameters and start redshift, implying a practical minimum mass resolution limit due to mass discreteness. The narrow range in converged start redshift suggests that it is not presently possible for a single simulation to capture accurately the cluster mass function while also starting early enough to model accurately the numbers of reionisation era galaxies, whose baryon feedback processes may affect later cluster properties. Ultimately, to fully exploit current and future cosmological surveys will require accurate modeling of baryon physics and observable properties, a formidable challenge for which accurate gravity-only simulations are just an initial step.
revised in response to referee suggestions, MNRAS accepted
References in corpus (16)
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Formation of Galaxy Clusters
- Transients from Initial Conditions in Cosmological Simulations
- The halo mass function from the dark ages through the present day
- Discreteness effects in simulations of Hot/Warm dark matter
- The Halo Mass Function: High-Redshift Evolution and Universality
- Constraining the Scatter in the Mass-Richness Relation of maxBCG Clusters With Weak Lensing and X-ray Data
- The Cosmic Code Comparison Project
- The Structure of Halos: Implications for Group and Cluster Cosmology
- The Effect of Gas Physics on the Halo Mass Function
- An analytic model for the bispectrum of galaxies in redshift space
- Discreteness Effects in Lambda Cold Dark Matter Simulations: A Wavelet-Statistical View
- Towards quantitative control on discreteness error in the non-linear regime of cosmological N body simulations
- Dark energy constraints from lensing-detected galaxy clusters
- Comments on the size of the simulation box in cosmological N-Body simulations
- Quantification of discreteness effects in cosmological N-body simulations: II. Evolution up to shell crossing
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- The redshift evolution of massive galaxy clusters in the MACSIS simulations
- The effect of AGN feedback on the halo mass function
- Accurate initial conditions for cosmological N-body simulations: Minimizing truncation and discreteness errors
- The High- Universe Confronts Warm Dark Matter: Galaxy Counts, Reionization and the Nature of Dark Matter
- Towards accurate cosmological predictions for rapidly oscillating scalar fields as dark matter
- Dark Sky Simulations: Early Data Release
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- Verifying the consistency relation for the scale-dependent bias from local primordial non-Gaussianity
- A comparison of structure formation in minimally and non-minimally coupled quintessence models
- Rhapsody. I. Structural Properties and Formation History From a Statistical Sample of Re-simulated Cluster-size Halos
- The biasing of baryons on the cluster mass function and cosmological parameter estimation
- Cluster abundance in chameleon gravity I: toward an accurate halo mass function prediction
- Cosmology with galaxy-galaxy lensing on non-perturbative scales: Emulation method and application to BOSS LOWZ
- 2HOT: An Improved Parallel Hashed Oct-Tree N-Body Algorithm for Cosmological Simulation
- Impact of baryons on the cluster mass function and cosmological parameter determination
- The Hunt for Primordial Interactions in the Large Scale Structures of the Universe
- Cosmic variance limited Baryon Acoustic Oscillations from the DEUS-FUR CDM simulation
- Neutrino constraints: what large-scale structure and CMB data are telling us?
- Precision modelling of the matter power spectrum in a Planck-like Universe
- Reconstructing the gravitational field of the local universe
- Effects of the initial conditions on cosmological -body simulations
- Perturbation theory with dispersion and higher cumulants: non-linear regime
- A semi-analytic model comparison: testing cooling models against hydrodynamical simulations
- Novel Adaptive softening for collisionless N-body simulations: Eliminating spurious halos
- Another baryon miracle? Testing solutions to the "missing dwarfs" problem
- Counts of galaxy clusters as cosmological probes: the impact of baryonic physics
- Testing approximate predictions of displacements of cosmological dark matter halos
- The impact of systematic uncertainties in N-body simulations on the precision cosmology from galaxy clustering: a halo model approach
- Constraints On Duty Cycles Of Quasars At Z 6
- Novel Conservative Methods for Adaptive Force Softening in Collisionless and Multi-Species N-Body Simulations
- The Ultramarine Simulation: properties of dark matter haloes before redshift 5.5
- Approximate methods for the generation of dark matter halo catalogs in the age of precision cosmology
- The Effect of Corner Modes in the Initial Conditions of Cosmological Simulations
- On the universality of the halo mass function beyond CDM cosmology
- Decaying Dark Matter: Simulations and Weak-Lensing Forecast
- Tidal adaptive softening and artificial fragmentation in cosmological simulations
- Universality of the halo mass function in modified gravity cosmologies