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

    J-PLUS: Spectroscopic validation of Hα emission line maps in spatially resolved galaxies 2025A&A...695A.200R
    Exploring the physical origins of halo assembly bias from early times 2025A&A...695A.159M
    The J-PAS survey: The effect of photometric redshift errors on cosmic voids 2025A&A...695A.174M
    Multiprobe cosmology from the abundance of SPT clusters and DES galaxy clustering and weak lensing 2025PhRvD.111f3533B
    Calibrating the absolute magnitude of type Ia supernovae in nearby galaxies using [O II] and implications for H<SUB>0</SUB> 2025MNRAS.538..782D
    It is not σ<SUB>8</SUB>: constraining the non-linear matter power spectrum with the Dark Energy Survey Year-5 supernova sample 2025MNRAS.537.3814S
    Galaxy cluster matter profiles: I. Self-similarity, mass calibration, and observable-mass relation validation employing cluster mass posteriors 2025A&A...695A..49S
    Reduction of the type Ia supernova host galaxy step in the outer regions of galaxies 2025MNRAS.538..181T
    The hierarchical growth of bright central galaxies and intracluster light as traced by the magnitude gap 2025MNRAS.538..622G
    Dark Energy Survey Year 3 results: Simulation-based cosmological inference with wavelet harmonics, scattering transforms, and moments of weak lensing mass maps. II. cosmological results 2025PhRvD.111f3504G
    Constraining cosmological parameters using void statistics from the SDSS survey 2025A&A...695A..19F
    Constraints on f(R) gravity from thermal-Sunyaev-Zel'dovich-effect-selected SPT galaxy clusters and weak lensing mass calibration from DES and HST 2025PhRvD.111d3519V
    DESI 2024 VI: cosmological constraints from the measurements of baryon acoustic oscillations 2025JCAP...02..021A
    The Dark Energy Survey Supernova Program: an updated measurement of the Hubble constant using the inverse distance ladder 2025MNRAS.537.1818C
    The construction of large-scale structure catalogs for the Dark Energy Spectroscopic Instrument 2025JCAP...01..125R
    Production of alternate realizations of DESI fiber assignment for unbiased clustering measurement in data and simulations 2025JCAP...01..127L
    Fiducial-cosmology-dependent systematics for the DESI 2024 BAO analysis 2025JCAP...01..144P
    DESI 2024 IV: Baryon Acoustic Oscillations from the Lyman alpha forest 2025JCAP...01..124A
    Evaluating cosmological biases using photometric redshifts for Type Ia Supernova cosmology with the Dark Energy Survey Supernova Program 2025MNRAS.536.1948C
    Milky Way Dark Matter Distribution or MOND Test from Vertical Stellar Kinematics with Gaia DR3 2025ApJ...978...45L
    Dark energy survey year 3 results: cosmology from galaxy clustering and galaxy-galaxy lensing in harmonic space 2025MNRAS.536.1586F
    Dark energy survey year 3 results: likelihood-free, simulation-based wCDM inference with neural compression of weak-lensing map statistics 2025MNRAS.536.1303J
    The baryonic mass estimates of the Milky Way halo in the form of high-velocity clouds 2025NewA..11502328T
    Copacabana: a probabilistic membership assignment method for galaxy clusters 2025MNRAS.536..931E
    Constraints on compact objects from the Dark Energy Survey 5-yr supernova sample 2025MNRAS.536..946S
    LiteBIRD science goals and forecasts. Mapping the hot gas in the Universe 2024JCAP...12..026R
    J-PLUS: The fraction of calcium white dwarfs along the cooling sequence 2024A&A...691A.211L
    J-PLUS: Bayesian object classification with a strum of BANNJOS 2024A&A...691A.221D
    J-PLUS: Beyond Spectroscopy. III. Stellar Parameters and Elemental-abundance Ratios for Five Million Stars from DR3 2024ApJ...974..192H
    Fast simulation mapping: From standard to modified gravity cosmologies using the bias assignment method 2024A&A...690A..27G
    Galaxy Ages with Redshift z = 2–4: Stellar Population Synthesis for Candidates in FourStar Galaxy Evolution Survey 2024ApJ...970..142G
    The Negative Baryon Acoustic Oscillation Shift in the Lyα Forest from Cosmological Simulations 2024ApJ...971L..22S
    The hierarchical cosmic web and assembly bias 2024JCAP...07..083C
    Age of Massive Galaxies at Redshift 8 2024ApJ...970...63L
    The Early Data Release of the Dark Energy Spectroscopic Instrument 2024AJ....168...58D
    CosmoMIA: cosmic web-based redshift space halo distribution 2024JCAP...07..001F
    Bayesian deep learning for cosmic volumes with modified gravity 2024A&A...684A.100G
    The miniJPAS survey: Maximising the photo-z accuracy from multi-survey datasets with probability conflation 2024A&A...684A..61H
    The cosmic web from perturbation theory 2024A&A...683A.215K
    Validation of the Scientific Program for the Dark Energy Spectroscopic Instrument 2024AJ....167...62D

    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
      Date
      -
      Past