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    • Radiocarbon, Volume 32 (1990)
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    An Overview of All Three Stages of the International Radiocarbon Intercomparison

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    Author
    Scott, E. Marian
    Aitchison, T. C.
    Harkness, D. D.
    Cook, G. T.
    Baxter, M. S.
    Issue Date
    1990-01-01
    Keywords
    review
    accuracy
    samples
    standard materials
    interlaboratory comparison
    errors
    techniques
    absolute age
    
    Metadata
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    Citation
    Scott, E. M., Aitchison, T. C., Harkness, D. D., Cook, G. T., & Baxter, M. S. (1990). An overview of all three stages of the international radiocarbon intercomparison. Radiocarbon, 32(3), 309-319.
    Publisher
    Department of Geosciences, The University of Arizona
    Journal
    Radiocarbon
    Description
    From the International Workshop on Intercomparison of Radiocarbon Laboratories.
    URI
    http://hdl.handle.net/10150/652932
    DOI
    10.1017/S0033822200012935
    Additional Links
    http://radiocarbon.webhost.uits.arizona.edu/
    Abstract
    The International Collaborative Study involved a wide range of sample materials and ages and, on completion, assessed each stage independently (Scott et al 1989; Aitchison et al 1990). We combine here the three stages of the study and provide an overview of the uncertainties in the dating procedure as a whole and in its component processes. Three key optimal performance indices, related to internal and external precision and to bias, have been defined to allow quantitative assessment of Internal Consistency and External Consistency (Aitchison et al 1990). We believe that these measures provide quantitative descriptions of a laboratory's reproducibility, accuracy and precision. For the internal consistency, we have defined the Internal Error Multiplier of the quoted error and, for the external consistency of any laboratory relative to an appropriate baseline, we have defined two indices, the Systematic Bias and External Error Multiplier of the quoted error. We have evaluated the three indices over the three stages and have assessed the relative performances of gas counting, accelerator and liquid scintillation laboratories. The quoted errors describe adequately the variability in duplicate results, but there is evidence of systematic biases and underestimation of interlaboratory variability. We have considered the contribution of pretreatment, synthesis counting to the overall variability for each laboratory type. We found that, for liquid scintillation (LS) and gas counting (GC) laboratories, ca 66% of the total variation is due to counting and sample synthesis whereas, for accelerator mass spectrometry (AMS) laboratories, the major sources of variability are the sampling and pretreatment processes.
    Type
    Proceedings
    text
    Language
    en
    ISSN
    0033-8222
    ae974a485f413a2113503eed53cd6c53
    10.1017/S0033822200012935
    Scopus Count
    Collections
    Radiocarbon, Volume 32, Number 3 (1990)

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