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The CosmoVerse White Paper: Addressing observational tensions in cosmology with systematics and fundamental physics

  • The CosmoVerse Network
  • University of Sheffield
  • University of Malta
  • Johns Hopkins University
  • Space Telescope Science Institute
  • National Centre for Nuclear Research
  • LUPM-UMR 5299, CNRS, Université Montpellier
  • University of Barcelona
  • University of Cape Town
  • Carnegie Mellon University
  • Harvard-Smithsonian Ctr. Astrophys.
  • Korea Astronomy and Space Science Institute
  • National Sun Yat-sen University
  • Bielefeld University
  • Newcastle University
  • Leiden University
  • UNC-Conicet
  • University of Geneva
  • National Observatory of Athens
  • University of Science and Technology of China
  • Universidad Católica del Norte
  • Atlantic Technological University
  • University of Edinburgh
  • KTH Royal Institute of Technology
  • Scuola Superiore Meridionale
  • National Institute for Nuclear Physics
  • University of Valencia
  • University of Naples Federico II
  • Osservatorio Astronomico di Capodimonte
  • University of Portsmouth
  • University of Hawai'i at Mānoa
  • University of Richmond
  • Polytechnic University of Catalonia
  • University of Manchester
  • CSIC - Instituto de Estructura de la Materia (IEM)
  • Université de Montpellier
  • University of Queensland
  • Transilvania University of Brasov
  • University of Ioannina
  • CSICIEEC)
  • Institute of Space Studies of Catalonia
  • European Space Agency - ESA
  • University of Salerno
  • City University of New York
  • Institute for Studies in Theoretical Physics and Mathematics, Tehran
  • University of Ferrara
  • Institut d'Astrophysique de Paris
  • National Astronomical Observatory of Japan (NAOJ)
  • University of Nevada, Las Vegas
  • University of Oxford

Research output: Contribution to journalReview articlepeer-review

206 Scopus citations

Abstract

The standard model of cosmology has provided a good phenomenological description of a wide range of observations both at astrophysical and cosmological scales for several decades. This concordance model is constructed by a universal cosmological constant and supported by a matter sector described by the standard model of particle physics and a cold dark matter contribution, as well as very early-time inflationary physics, and underpinned by gravitation through general relativity. There have always been open questions about the soundness of the foundations of the standard model. However, recent years have shown that there may also be questions from the observational sector with the emergence of differences between certain cosmological probes. In this White Paper, we identify the key objectives that need to be addressed over the coming decade together with the core science projects that aim to meet these challenges. These discordances primarily rest on the divergence in the measurement of core cosmological parameters with varying levels of statistical confidence. These possible statistical tensions may be partially accounted for by systematics in various measurements or cosmological probes but there is also a growing indication of potential new physics beyond the standard model. After reviewing the principal probes used in the measurement of cosmological parameters, as well as potential systematics, we discuss the most promising array of potential new physics that may be observable in upcoming surveys. We also discuss the growing set of novel data analysis approaches that go beyond traditional methods to test physical models. These new methods will become increasingly important in the coming years as the volume of survey data continues to increase, and as the degeneracy between predictions of different physical models grows. There are several perspectives on the divergences between the values of cosmological parameters, such as the model-independent probes in the late Universe and model-dependent measurements in the early Universe, which we cover at length. The White Paper closes with a number of recommendations for the community to focus on for the upcoming decade of observational cosmology, statistical data analysis, and fundamental physics developments.

Original languageEnglish
Article number101965
JournalPhysics of the Dark Universe
Volume49
DOIs
StatePublished - Sep 2025

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