Challenges and opportunities for the construction of the next IntCal and SHCal radiocarbon calibration curves

Radiocarbon (14C) provides the most frequently used approach to dating the last 55 000 years. However, owing to fluctuations in past levels of 14C, all radiocarbon dating requires calibration to convert the 14C measurement obtained from a sample into a calendar age. This is achieved by comparing the sample's 14C determination against a suitable calibration curve constructed from 14C measurements of reference samples that have known, or independently estimated, calendar age. The internationally agreed standards for these 14C calibration curves are provided by the IntCal working group, which ensures comparability between derived chronologies. The IntCal curves are periodically updated as significant new reference 14C datasets and Earth system insights become available. Since the last IntCal update in 2020, we have seen a substantial increase in the volume of reference 14C datasets available for use in calibration curve construction, in particular, measurements of annual growth rings in trees that represent individual calendar years. The rapid increase in reference 14C datasets provides exciting new opportunities for the radiocarbon community, but also presents challenges to ensure that 14C calibration remains reliable and accurate for all users. In this paper, we present some of these challenges and opportunities, and discuss some of the ideas under consideration for the next set of IntCal curve updates, which are planned to be released within the next year. This article is part of the Theo Murphy meeting issue 'Radiocarbon and cosmic radiation events'.

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Journal
Philosophical Transactions of the Royal Society A Mathematical Physical and Engineering Sciences
Published
2026-09-10
DOI
https://doi.org/10.1098/rsta.2025.0265
Primary Topic
Archaeology and ancient environmental studies
Type
article
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article

Challenges and opportunities for the construction of the next IntCal and SHCal radiocarbon calibration curves

Christopher Bronk Ramsey, Alex Bayliss, Timothy J. Heaton, E. Marian Scott et al.
Philosophical Transactions of the Royal Society A Mathematical Physical and Engineering Sciences
Archaeology and ancient environmental studies
article

Challenges and opportunities for the construction of the next IntCal and SHCal radiocarbon calibration curves

Christopher Bronk Ramsey, Alex Bayliss, Timothy J. Heaton, E. Marian Scott, Maarten Blaauw
article en

Abstract

Radiocarbon (14C) provides the most frequently used approach to dating the last 55 000 years. However, owing to fluctuations in past levels of 14C, all radiocarbon dating requires calibration to convert the 14C measurement obtained from a sample into a calendar age. This is achieved by comparing the sample's 14C determination against a suitable calibration curve constructed from 14C measurements of reference samples that have known, or independently estimated, calendar age. The internationally agreed standards for these 14C calibration curves are provided by the IntCal working group, which ensures comparability between derived chronologies. The IntCal curves are periodically updated as significant new reference 14C datasets and Earth system insights become available. Since the last IntCal update in 2020, we have seen a substantial increase in the volume of reference 14C datasets available for use in calibration curve construction, in particular, measurements of annual growth rings in trees that represent individual calendar years. The rapid increase in reference 14C datasets provides exciting new opportunities for the radiocarbon community, but also presents challenges to ensure that 14C calibration remains reliable and accurate for all users. In this paper, we present some of these challenges and opportunities, and discuss some of the ideas under consideration for the next set of IntCal curve updates, which are planned to be released within the next year. This article is part of the Theo Murphy meeting issue 'Radiocarbon and cosmic radiation events'.

Philosophical Transactions of the Royal Society A Mathematical Physical and Engineering SciencesVol. 384(2329)
Queen's University Belfast (GB), University of Leeds (GB), University of Bristol (GB), Oxford Archaeology (GB), University of Glasgow (GB)
Openalex Percentile: Top 61%
Archaeology and ancient environmental studies
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