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Evaluating manual versus automated benthic foraminiferal δ18O alignment techniques for developing chronostratigraphies in marine sediment records

  • Expedition 383 Scientists
  • Columbia University
  • Kiel University
  • University of Massachusetts Boston
  • Alfred Wegener Institute - Helmholtz Centre for Polar and Marine Research
  • University of California at Santa Barbara
  • Texas A&M University
  • Leibniz Institute for Baltic Sea Research
  • University of Delaware
  • Yale University
  • Florida State University
  • Japan Agency for Marine-Earth Science and Technology
  • Rutgers - The State University of New Jersey, New Brunswick
  • National Taiwan University
  • Universidade Federal do Rio de Janeiro
  • University of Milan - Bicocca
  • Laboratoire des Sciences du Climat et de l'Environnement
  • Max Planck Institute for Chemistry
  • University of Otago
  • University of California at Santa Cruz
  • University of Portsmouth
  • Korea Institute of Ocean Science & Technology
  • Indian Institute of Technology Bhubaneswar
  • University of Massachusetts
  • Oregon State University
  • Universidade Federal Fluminense
  • CAS - South China Sea Institute of Oceanology
  • National Institute of Polar Research

Research output: Contribution to journalJournal articlepeer-review

Abstract

Paleoceanographic interpretations of Plio-Pleistocene climate variability over the past 5 million years rely on the evaluation of event timing of proxy changes in sparse records across multiple ocean basins. In turn, orbital-scale chronostratigraphic controls for these records are often built from stratigraphic alignment of benthic foraminiferal stable oxygen isotope (δ18O) records to a preferred dated target stack or composite. This chronostratigraphic age model approach yields age model uncertainties associated with alignment method, target selection, the assumption that the undated record and target experienced synchronous changes in benthic foraminiferal δ18O values, and the assumption that any possible stratigraphic discontinuities within the undated record have been appropriately identified. However, these age model uncertainties and their impact on paleoceanographic interpretations are seldom reported or discussed. Here, we investigate and discuss these uncertainties for conventional manual and automated tuning techniques based on benthic foraminiferal δ18O records and evaluate their impact on sedimentary age models over the past 3.5g Myr using three sedimentary benthic foraminiferal δ18O records as case studies. In one case study, we present a new benthic foraminiferal δ18O record for International Ocean Discovery Program (IODP) Site U1541 (54°13′g S, 125°25′g W), recently recovered from the South Pacific on IODP Expedition 383. The other two case studies examine published benthic foraminiferal δ18O records of Ocean Drilling Program (ODP) Site 1090 and the ODP Site 980/981 composite. Our analysis suggests average age uncertainties of 3 to 5g kyr associated with manually derived versus automated alignment, 1 to 3g kyr associated with automated probabilistic alignment itself, and 2 to 6g kyr associated with the choice of tuning target. Age uncertainties are higher near stratigraphic segment ends and where local benthic foraminiferal δ18O stratigraphy differs from the tuning target. We conclude with recommendations for community best practices for the development and characterization of age uncertainty of sediment core chronostratigraphies based on benthic foraminiferal δ18O records.

Original languageEnglish
Pages (from-to)125-145
Number of pages21
JournalGeochronology
Volume6
Issue number2
DOIs
StatePublished - 2024.04.17

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