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Radiocarbon calibration

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radiocarbon dates, the wiggles in the calibration curve best match the wiggles in the curve of sample dates. This "wiggle-matching" technique can lead to more precise dating than is possible with individual radiocarbon dates. Since the data points on the calibration curve are five years or more apart, and since at least five points are required for a match, there must be at least a 25-year span of tree ring (or similar) data for this match to be possible. Wiggle-matching can be used in places where there is a plateau on the calibration curve, and hence can provide a much more accurate date than the intercept or probability methods are able to produce. The technique is not restricted to tree rings; for example, a stratified
202: 122:, or the study of tree rings, led to the first such sequence: tree rings from individual pieces of wood show characteristic sequences of rings that vary in thickness due to environmental factors such as the amount of rainfall in a given year. Those factors affect all trees in an area and so examining tree-ring sequences from old wood allows the identification of overlapping sequences. In that way, an uninterrupted sequence of tree rings can be extended far into the past. The first such published sequence, based on bristlecone pine tree rings, was created in the 1960s by 93: 104: 160:. The INTCAL13 data includes separate curves for the Northern and Southern Hemispheres, as they differ systematically because of the hemisphere effect; there is also a separate marine calibration curve. The calibration curve for the southern hemisphere is known as the SHCal as opposed to the IntCal for the northern hemisphere. The most recent version being published in 2020. There is also a different curve for the period post 1955 due to atomic bomb testing creating higher levels of radiocarbon which vary based on latitude, known as bomb cal. 307: 190:
in the calibration curve at that point. A normal distribution is shown at left; this is the input data, in radiocarbon years. The central darker part of the normal curve is the range within one standard deviation of the mean; the lighter grey area shows the range within two standard deviations of the mean. The output is along the bottom axis; it is a trimodal graph, with peaks at around 710 AD, 740 AD, and 760 AD. Again, the 1σ confidence ranges are in dark grey, and the 2σ confidence ranges are in light grey.
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which can be seen on the graph labelled "Calibration error and measurement error". This graph shows INTCAL13 data for the calendar years 3100 BP to 3500 BP. The solid line is the INTCAL13 calibration curve, and the dotted lines show the standard error range, as with the sample error, this is one standard deviation. Simply reading off the range of radiocarbon years against the dotted lines, as is shown for sample t
951: 51:, the inventor of radiocarbon dating, pointed out as early as 1955 the possibility that the ratio might have varied over time. Discrepancies began to be noted between measured ages and known historical dates for artefacts, and it became clear that a correction would need to be applied to radiocarbon ages to obtain calendar dates. Uncalibrated dates may be stated as "radiocarbon years ago", abbreviated 126:. Hans Suess used the data to publish the first calibration curve for radiocarbon dating in 1967. The curve showed two types of variation from the straight line: a long-term fluctuation with a period of about 9,000 years, and a shorter-term variation, often referred to as "wiggles", with a period of decades. Suess said that he drew the line showing the wiggles by "cosmic 353:
When several radiocarbon dates are obtained for samples which are known or suspected to be from the same object, it may be possible to combine the measurements to get a more accurate date. Unless the samples are definitely of the same age (for example, if they were both physically taken from a single
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The intercept method is based solely on the position of the intercepts on the graph. These are taken to be the boundaries of the 68% confidence range, or one standard deviation. However, this method does not make use of the assumption that the original radiocarbon age range is a normally distributed
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Variations in the calibration curve can lead to very different resulting calendar year ranges for samples with different radiocarbon ages. The graph to the right shows the part of the INTCAL13 calibration curve from 1000 BP to 1400 BP, a range in which there are significant departures from a linear
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For a set of samples with a known sequence and separation in time such as a sequence of tree rings, the samples' radiocarbon ages form a small subset of the calibration curve. The resulting curve can then be matched to the actual calibration curve by identifying where, in the range suggested by the
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Once testing has produced a sample age in radiocarbon years with an associated error range of plus or minus one standard deviation (usually written as ±σ), the calibration curve can be used to derive a range of calendar ages for the sample. The calibration curve itself has an associated error term,
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In the example CALIB output shown at left, the input data is 1270 BP, with a standard deviation of 10 radiocarbon years. The curve selected is the northern hemisphere INTCAL13 curve, part of which is shown in the output; the vertical width of the curve corresponds to the width of the standard error
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showing the relative probabilities for calendar ages. This has to be done by numerical methods rather than by a formula because the calibration curve is not describable as a formula. Programs to perform these calculations include OxCal and CALIB. These can be accessed online; they allow the user to
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Over the next 30 years, many calibration curves were published by using a variety of methods and statistical approaches. They were superseded by the INTCAL series of curves, beginning with INTCAL98, published in 1998, and updated in 2004, 2009, 2013 and 2020. The improvements to these curves are
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can be applied when there are several radiocarbon dates to be calibrated. For example, if a series of radiocarbon dates is taken from different levels in a given stratigraphic sequence, Bayesian analysis can help determine if some of the dates should be discarded as anomalies, and can use the
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to determine if the samples have the same true mean. Once this is done the error for the pooled mean age can be calculated, giving a final answer of a single date and range, with a narrower probability distribution (i.e., greater accuracy) as a result of the combined measurements.
324:, in red on the graph, shows this situation: a radiocarbon age range of about 1260 BP to 1280 BP converts to three separate ranges between about 1190 BP and 1260 BP. A third possibility is that the curve is flat for some range of calendar dates; in this case, illustrated by t 354:
item) a statistical test must be applied to determine if the dates do derive from the same object. This is done by calculating a combined error term for the radiocarbon dates for the samples in question, and then calculating a pooled mean age. It is then possible to apply a
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P. Semal; A. Hauzeur; H. Rougier; I. Crevecoeur; M. Germonpré; S. Pirson; P. Haesaerts; C. Jungels; D. Flas; M. Toussaint; B. Maureille; H. Bocherens; T. Higham; J. van der Pflicht (2013). "Radiocarbon dating of human remains and associated archaeological material".
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in blue on the graph to the right, the resulting calendar year range is quite narrow. Where the curve varies significantly both up and down, a single radiocarbon date range may produce two or more separate calendar year ranges. Example
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variable: not all dates in the radiocarbon age range are equally likely, and so not all dates in the resulting calendar year age are equally likely. Deriving a calendar year range by means of intercepts does not take this into account.
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enter a date range at one standard deviation confidence for the radiocarbon ages, select a calibration curve, and produce probabilistic output both as tabular data and in graphical form.
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To produce a curve that can be used to relate calendar years to radiocarbon years, a sequence of securely-dated samples is needed, which can be tested to determine their radiocarbon age.
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Different radiocarbon dates, with similar standard errors, can give widely different resulting calendar year ranges, depending on the shape of the calibration curve at each point.
228: 328:, in green on the graph, a range of about 30 radiocarbon years, from 1180 BP to 1210 BP, results in a calendar year range of about a century, from 1080 BP to 1180 BP. 907: 303:, is used for the range, and this range is used to read the result directly from the graph itself without reference to the lines showing the calibration error. 144:
level is global, such that a small number of samples from a specific year are sufficient for calibration, which was experimentally verified in the 1980s.
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The Northern Hemisphere curves from INTCAL13 and INTCAL20. There are separate graphs for the Southern Hemisphere and for the calibration of marine data.
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relationship between radiocarbon age and calendar age. In places where the calibration curve is steep, and does not change direction, as in example t
72:(BP) is established for reporting dates derived from radiocarbon analysis, where "present" is 1950. Uncalibrated dates are stated as "uncal BP", and 955: 406:
Enk, J.; Devault, A.; Debruyne, R.; King, C. E.; Treangen, T.; O'Rourke, D.; Salzberg, S. L. l; Fisher, D.; MacPhee, R.; Poinar, H. (2011).
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sequence in New Zealand, known to predate human colonization of the islands, has been dated to 1314 AD ± 12 years by wiggle-matching.
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Before the widespread availability of personal computers made probabilistic calibration practical, a simpler "intercept" method was used.
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Suess, H.E. (1970). "Bristlecone-pine calibration of the radiocarbon time-scale 5200 B.C. to the present". In Olsson, Ingrid U. (ed.).
524:"The IntCal20 Approach to Radiocarbon Calibration Curve Construction: A New Methodology Using Bayesian Splines and Errors-in-Variables" 522:
Heaton, Timothy J.; Blaauw, Maarten; Blackwell, Paul G.; Ramsey, Christopher Bronk; Reimer, Paula J.; Scott, E. Marian (August 2020).
222:, in red, gives too large a range of calendar years. The error term should be the root of the sum of the squares of the two errors: 920: 896: 868: 849: 830: 181:
Modern methods of calibration take the original normal distribution of radiocarbon age ranges and use it to generate a
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measurements produce ages in "radiocarbon years", which must be converted to calendar ages by a process called
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The output of CALIB for input values of 1260–1280 BP, using the northern hemisphere INTCAL13 curve
285:{\displaystyle \sigma _{\text{total}}={\sqrt {\sigma _{\text{sample}}^{2}+\sigma _{\text{calib}}^{2}}}} 201: 79:
Similarly, BC or BCE means 'Before Christ' or 'Before Current Era', and cal BC is used accordingly.
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ratio, which is a key element in calculating radiocarbon ages, has not been constant historically.
213:) methods of determining a calendar year range from a calibration curve with a given error 8: 434: 407: 362: 16: 710: 916: 892: 864: 845: 826: 545: 439: 306: 690: 635: 625: 614:"The IntCal20 Northern Hemisphere Radiocarbon Age Calibration Curve (0–55 cal kBP)" 535: 502: 492: 429: 419: 408:"Complete Columbian mammoth mitogenome suggests interbreeding with woolly mammoths" 119: 123: 481:"IntCal13 and Marine13 radiocarbon age calibration curves 0–50,000 years cal BP" 497: 69: 695: 103: 92: 964: 549: 424: 48: 476: 443: 153: 456: 299:, in green on the graph, shows this procedure—the resulting error term, σ 157: 640: 630: 613: 540: 523: 507: 76:(corrected) dates as "cal BP". Used alone, the term BP is ambiguous. 182: 133:
The calibration method also assumes that the temporal variation in
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information to improve the output probability distributions.
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Part of the INTCAL13 calibration curve, showing correct (t
863:. Oxford: Oxford University Committee for Archaeology. 405: 739:
Stuiver, M.; Reimer, P.J. Reimer; Reimer, R. (2013).
231: 882:. New York: John Wiley & Sons. pp. 303–311. 738: 348: 284: 23:. Calibration is needed because the atmospheric 962: 654: 880:Radiocarbon Variations and Absolute Chronology 570: 568: 392: 390: 388: 764: 762: 582: 580: 148:based on new data gathered from tree rings, 565: 556: 450: 385: 759: 471: 469: 82: 858: 694: 639: 629: 577: 539: 506: 496: 433: 423: 376: 305: 200: 172: 515: 466: 963: 905: 886: 839: 820: 734: 732: 611: 598: 596: 594: 592: 475: 915:. Chichester: John Wiley & Sons. 877: 776: 774: 655:Stuiver, M.; Braziunas, T.F. (1993). 679:ages of marine samples to 10,000 BC" 562:Taylor (1987), pp. 19–21. 823:Science-based Dating in Archaeology 729: 715:Oxford Radiocarbon Accelerator Unit 589: 396:Aitken (1990), p. 66–67. 13: 771: 335: 14: 982: 944: 956:Calibration of radiocarbon dates 949: 844:. London: British Museum Press. 717:. Oxford University. 23 May 2014 168: 102: 91: 814: 801: 792: 783: 741:"CALIB Radiocarbon Calibration" 703: 648: 605: 363:Bayesian statistical techniques 349:Combination of calibrated dates 460:Anthropologica et Præhistorica 399: 1: 747:. Queen's University, Belfast 745:CALIB 14C Calibration Program 369: 859:Gillespie, Richard (1986) . 807:Gillespie (1986), pp. 30−32. 193: 7: 861:Radiocarbon User's Handbook 798:Walker (2005), pp. 207−209. 789:Aitken (1990), pp. 103−105. 382:Taylor (1987), p. 133. 10: 987: 891:. London: Academic Press. 840:Bowman, Sheridan (1995) . 586:Suess (1970), p. 303. 498:10.2458/azu_js_rc.55.16947 163: 909:Quaternary Dating Methods 780:Walker (2005), pp. 35−37. 696:10.1017/S0033822200013874 602:Bowman (1995), pp. 43–49. 574:Bowman (1995), pp. 16–20. 612:Reimer, Paula J (2020). 425:10.1186/gb-2011-12-5-r51 657:"Modelling atmospheric 83:Construction of a curve 768:Aitken (1990), p. 101. 479:; et al. (2013). 311: 286: 214: 178: 958:at Wikimedia Commons 906:Walker, Mike (2005). 887:Taylor, R.E. (1987). 821:Aitken, M.J. (1990). 309: 287: 204: 176: 156:data, and U-Th dated 462:. 123/2012: 331–356. 229: 825:. London: Longman. 631:10.1017/RDC.2020.41 541:10.1017/RDC.2020.46 279: 261: 971:Radiocarbon dating 889:Radiocarbon Dating 842:Radiocarbon Dating 312: 282: 265: 247: 215: 209:) and incorrect (t 179: 17:Radiocarbon dating 954:Media related to 922:978-0-470-86927-7 898:978-0-12-433663-6 870:978-0-947816-03-2 851:978-0-7141-2047-8 832:978-0-582-49309-4 280: 272: 254: 239: 978: 953: 940: 938: 937: 931: 925:. 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Index

Radiocarbon dating
Willard Libby
Before Present
A graph showing a calibration line from 0 to under 50,000 years
A graph showing a calibration line from 0 to overr 50,000 years
Dendrochronology
Wesley Ferguson
varves
foraminifera
speleothems

histogram


tephra
T test
Bayesian statistical techniques



"Complete Columbian mammoth mitogenome suggests interbreeding with woolly mammoths"
doi
10.1186/gb-2011-12-5-r51
PMC
3219973
PMID
21627792


Reimer, Paula J.

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