Cosmology with Large Scale Structure Probes

Start year
2012
Organizational Unit

Related grants:

    General
    Description

    The Cosmic Microwave Background (CMB) contains the statistical information about the early seeds of the structure formation in our Universe. Its natural counterpart in the local universe is the distribution of galaxies that arises as a result of gravitational growth of those primordial and small density fluctuations. The characterization of the distribution of inhomogeneities at large-scale in the local Universe provides a powerful tool, complementary to the CMB, to determine the origin and the energy content of the Universe, the expansion rate of the Universe during the cosmic history, and the detailed process of formation of the large-scale structures (LSS). The study of the LSS in the coming years will attempt to address the following open questions in cosmology:

    What is the dark matter, and which is its detailed contribution to the energy content of the Universe?

    What is the dark energy, and how it affects the dynamics of the Universe?

    What is the connection between large scale structure and galaxy formation?

    Do fundamental constants vary along the history of the Universe?

    Is there evidence for primordial non-Gaussianities giving information on the details of the inflationary expansion epoch of the Universe?

    In order to contribute to the possible answer to those questions, in this project we will use several large scale structure probes:

    The distribution and large-scale clustering of the galaxies, and its evolution with time. The matter power spectrum (P(k)) and the two-point correlation function (ξ(r)) contain certain geometric features associated to some characteristic length-scales in the Universe, as the horizon at matter-radiation equality, or the acoustic horizon at last scattering. In particular, the latter determines the Baryon Acoustic Oscillation (BAO) scale.

    The higher order statistics: the three-point statistics characterizes the deviation from Gaussinity and therefore the structure formation through gravitational instability, the galaxy bias, and the primordial non-Gaussianities.

    The distribution of the cosmic voids in the Universe. Both the statistics of big voids, as well as the characterization of the void expansion, provides a complementary tool to determine the matter density and the equation of state of the dark energy. Cosmic voids contain information of the higher order statistics of galaxies and can be used to further constrain the BAO scale.

    The cosmic web can be used to characterize the formation of structures and relate the large scale structure with galaxy formation processes.

    The distribution and abundance of galaxy clusters, as well as the evolution with time. Among other parameters, the cluster mass function depends both on the matter density as well as in the amplitude of the power spectrum. The time evolution of the mass function n(M,z) is also govern by the growth of structures in the Universe, thus being also sensitive to the equation of state of the dark energy.

    Principal investigator
    Project staff
    1. eBOSS: cosmological analysis from the quasar sample. Marcos Pellejero Ibañez and F. S. Kitaura participated in the construction of the likelihood and the cosmological parameter estimation (including as coauthors Kitaura & Pellejero Ibañez: 2018MNRAS.473.4773A).
    2. EUCLID: comparison project of mock galaxy catalogue generating codes showing the accuracy and speed of the PATCHY code (including as coauthors Balaguera-Antolínez, Kitaura & Pellejero Ibañez:https://arxiv.org/abs/1806.09497, https://arxiv.org/abs/1806.09477, https://arxiv.org/abs/1806.09499)
    3. Development of an accurate Bias mapping method for large scale structure analysis (Balaguera-Antolínez, Kitaura, Pellejero Ibañez et al 2018:https://arxiv.org/abs/1806.05870)
    4. Presentation of the UNITSIM project to provide simulations for the theoretical model comparison for DESI and EUCLID (including as coauthors Kitaura & Pellejero Ibañez:http://www.unitsims.org/ https://arxiv.org/abs/1811.02111)
    5. Presentation of BARCODE (Bos, Kitaura & Weygaert 2018: https://arxiv.org/abs/1810.05189, http://adsabs.harvard.edu/abs/2018ascl.soft10002B)

    Related publications

    The miniJPAS survey: A preview of the Universe in 56 colors 2021A&A...653A..31B
    Euclid Preparation. XIV. The Complete Calibration of the Color-Redshift Relation (C3R2) Survey: Data Release 3 2021ApJS..256....9S
    Relation of internal attenuation, dust emission, and the size of spiral galaxies. Calibration at low-z and how to use it as a cosmological test at high-z 2021A&A...652A..83L
    Dark Energy Survey Year 3 results: Curved-sky weak lensing mass map reconstruction 2021MNRAS.505.4626J
    The Cluster HEritage project with XMM-Newton: Mass Assembly and Thermodynamics at the Endpoint of structure formation. I. Programme overview 2021A&A...650A.104C
    Cosmological parameter forecasts by a joint 2D tomographic approach to CMB and galaxy clustering 2021PhRvD.103j3502B
    Simultaneous modelling of matter power spectrum and bispectrum in the presence of baryons 2021MNRAS.503.3596A
    Density weighted angular redshift fluctuations: a new cosmological observable 2021MNRAS.503L..56H
    Euclid preparation. XI. Mean redshift determination from galaxy redshift probabilities for cosmic shear tomography 2021A&A...647A.117E
    Exact Semianalytical Calculation of Rotation Curves with Bekenstein-Milgrom Nonrelativistic MOND 2021ApJ...909..137L
    Higher order Hamiltonian Monte Carlo sampling for cosmological large-scale structure analysis 2021MNRAS.502.3976H
    COSMIC BIRTH: efficient Bayesian inference of the evolving cosmic web from galaxy surveys 2021MNRAS.502.3456K
    Cosmology and the massive photon frequency shift in the Standard-Model Extension 2021EPJC...81....4S
    Dark Energy Survey Year 1 results: the lensing imprint of cosmic voids on the cosmic microwave background 2021MNRAS.500..464V
    Constraining primordial non-Gaussianity with postreconstructed galaxy bispectrum in redshift space 2021PhRvD.103b3506S
    BIRTH of the COSMOS field: primordial and evolved density reconstructions during cosmic high noon 2021MNRAS.500.3194A
    Planck intermediate results. LVI. Detection of the CMB dipole through modulation of the thermal Sunyaev-Zeldovich effect: Eppur si muove II 2020A&A...644A.100P
    Euclid preparation. X. The Euclid photometric-redshift challenge 2020A&A...644A..31E
    Euclid preparation. VIII. The Complete Calibration of the Colour-Redshift Relation survey: VLT/KMOS observations and data release 2020A&A...642A.192E
    Euclid preparation. VII. Forecast validation for Euclid cosmological probes 2020A&A...642A.191E
    A common explanation of the Hubble tension and anomalous cold spots in the CMB 2020MNRAS.499..320K
    Biases in galaxy cluster velocity dispersion and mass estimates in the small N<SUB>gal</SUB> regime 2020A&A...641A..41F
    Optical validation and characterisation of Planck PSZ1 sources at the Canary Islands observatories. II. Second year of ITP13 observations 2020A&A...638A.146B
    The bias of dark matter tracers: assessing the accuracy of mapping techniques 2020MNRAS.493..586P
    One simulation to have them all: performance of the Bias Assignment Method against N-body simulations 2020MNRAS.491.2565B
    Euclid preparation. V. Predicted yield of redshift 7 &lt; z &lt; 9 quasars from the wide survey 2019A&A...631A..85E
    Improving baryon acoustic oscillation measurement with the combination of cosmic voids and galaxies 2020MNRAS.491.4554Z
    Optical validation and characterization of Planck PSZ2 sources at the Canary Islands observatories. II. Second year of LP15 observations 2019A&A...631A.148A
    Dark Energy Survey year 1 results: the relationship between mass and light around cosmic voids 2019MNRAS.490.3573F
    All-sky angular power spectra from cleaned WISE×SuperCOSMOS galaxy number counts 2019JCAP...08..037X
    Optical validation and characterization of Planck PSZ2 sources at the Canary Islands observatories. I. First year of LP15 observations 2019A&A...628A..13S
    Bayesian cosmic density field inference from redshift space dark matter maps 2019MNRAS.488.2573B
    UNIT project: Universe N-body simulations for the Investigation of Theoretical models from galaxy surveys 2019MNRAS.487...48C
    Optical Identifications of Galaxy Clusters Among Objects from the Second Planck Catalogue of Sunyaev-Zeldovich Sources 2019AstL...45...49Z
    Clustering properties of TGSS radio sources 2019A&A...623A.148D
    Comparing approximate methods for mock catalogues and covariance matrices II: power spectrum multipoles 2019MNRAS.485.2806B
    More out of less: an excess integrated Sachs-Wolfe signal from supervoids mapped out by the Dark Energy Survey 2019MNRAS.484.5267K
    Comparing approximate methods for mock catalogues and covariance matrices - I. Correlation function 2019MNRAS.482.1786L
    Comparing approximate methods for mock catalogues and covariance matrices - III: bispectrum 2019MNRAS.482.4883C
    BAM: bias assignment method to generate mock catalogues 2019MNRAS.483L..58B

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    Related conferences

    • Winter School 2022 Poster
      XXXIII Canary Islands Winter School of Astrophysics: Astroparticle Physics and Cosmology
      The XXXIII Canary Islands Winter School of Astrophysics, organized by the Instituto de Astrofísica de Canarias (IAC), focuses on Astroparticle Physics and Cosmology. The school, to be held in San
      "Salón de actos" at the Museo de la Ciencia y el Cosmos (MCC) Avda. Los Menceyes 70 38205 San Cristóbal de La Laguna
      Spain
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