Site type

Location

Coordinates (degrees)
046.673° N, 000.833° E
Coordinates (DMS)
046° 40' 00" E, 000° 49' 00" N
Country (ISO 3166)
France (FR)

radiocarbon date Radiocarbon dates (22)

Lab ID Context Material Taxon Method Uncalibrated age Calibrated age References
GrN-4421 bone NA NA 37600±700 BP Bem 2000–2001: Table 3 Dumitrescu 1974 Bird et al. 2022
GrN-4510 bone NA NA 31900±430 BP de Vreies et al. 1958:136 Bird et al. 2022
Ly-2752 bone NA NA 23420±710 BP http://pageperso.aol.fr/vdujardin/14C.html Bird et al. 2022
Ly-8779 bone NA NA 14320±90 BP Eubar Bird et al. 2022
MAMS-10803 bone NA NA 38540±270 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10805 bone NA NA 35160±280 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10807 bone NA NA 33240±230 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10808 bone-9713 NA NA 35150±280 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10810 bone NA NA 31470±180 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10811 bone Coelodonta antiquitatis Linty NA NA 32940±220 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10812 bone Coelodonta antiquitatis Linty NA NA 33960±280 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10814 bone Coelodonta antiquitatis Linty NA NA 33080±230 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10816 bone Coelodonta antiquitatis Linty NA NA 35250±280 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10823 bone NA NA 38430±420 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10824 bone NA NA 38210±420 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10826 bone Coelodonta antiquitatis Linty NA NA 33710±230 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10828 bone NA NA 40800±530 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10829 bone NA NA 41780±600 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Jacobs Z. 2015. JAS 54: 110-122. Bird et al. 2022
MAMS-10830 bone NA NA 40710±510 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022
MAMS-10831 bone NA NA 38970±440 BP Talamo S. 2012. Journal of Archaeological Science 39: 175-183. Bird et al. 2022

typological date Typological dates (0)

Classification Estimated age References

Bibliographic reference Bibliographic references

@misc{Bem 2000–2001: Table 3 Dumitrescu 1974,
  
}
@misc{de Vreies et al. 1958:136,
  
}
@misc{http://pageperso.aol.fr/vdujardin/14C.html,
  
}
@misc{Eubar,
  
}
@misc{Talamo S.  2012. Journal of Archaeological Science 39: 175-183.,
  
}
@misc{Talamo S.  2012. Journal of Archaeological Science 39: 175-183. Jacobs Z.  2015. JAS 54: 110-122.,
  
}
@misc{40358,
  
}
@misc{Pacciarelli/Scarano/Crispino 278 Appendix,
  
}
@article{p3k14c,
  title = {P3k14c, a Synthetic Global Database of Archaeological Radiocarbon Dates},
  author = {Bird, Darcy and Miranda, Lux and Vander Linden, Marc and Robinson, Erick and Bocinsky, R. Kyle and Nicholson, Chris and Capriles, José M. and Finley, Judson Byrd and Gayo, Eugenia M. and Gil, Adolfo and d’Alpoim Guedes, Jade and Hoggarth, Julie A. and Kay, Andrea and Loftus, Emma and Lombardo, Umberto and Mackie, Madeline and Palmisano, Alessio and Solheim, Steinar and Kelly, Robert L. and Freeman, Jacob},
  year = {2022},
  month = {jan},
  journal = {Scientific Data},
  volume = {9},
  number = {1},
  pages = {27},
  publisher = {Nature Publishing Group},
  issn = {2052-4463},
  doi = {10.1038/s41597-022-01118-7},
  abstract = {Archaeologists increasingly use large radiocarbon databases to model prehistoric human demography (also termed paleo-demography). Numerous independent projects, funded over the past decade, have assembled such databases from multiple regions of the world. These data provide unprecedented potential for comparative research on human population ecology and the evolution of social-ecological systems across the Earth. However, these databases have been developed using different sample selection criteria, which has resulted in interoperability issues for global-scale, comparative paleo-demographic research and integration with paleoclimate and paleoenvironmental data. We present a synthetic, global-scale archaeological radiocarbon database composed of 180,070 radiocarbon dates that have been cleaned according to a standardized sample selection criteria. This database increases the reusability of archaeological radiocarbon data and streamlines quality control assessments for various types of paleo-demographic research. As part of an assessment of data quality, we conduct two analyses of sampling bias in the global database at multiple scales. This database is ideal for paleo-demographic research focused on dates-as-data, bayesian modeling, or summed probability distribution methodologies.},
  copyright = {2022 The Author(s)},
  langid = {english},
  keywords = {Archaeology,Chemistry},
  month_numeric = {1}
}
{"bibtex_key":"Bem 2000–2001: Table 3 Dumitrescu 1974","bibtex_type":"misc"}{"bibtex_key":"de Vreies et al. 1958:136","bibtex_type":"misc"}{"bibtex_key":"http://pageperso.aol.fr/vdujardin/14C.html","bibtex_type":"misc"}{"bibtex_key":"Eubar","bibtex_type":"misc"}{"bibtex_key":"Talamo S.  2012. Journal of Archaeological Science 39: 175-183.","bibtex_type":"misc"}{"bibtex_key":"Talamo S.  2012. Journal of Archaeological Science 39: 175-183. Jacobs Z.  2015. JAS 54: 110-122.","bibtex_type":"misc"}{"bibtex_key":"40358","bibtex_type":"misc"}{"bibtex_key":"Pacciarelli/Scarano/Crispino 278 Appendix","bibtex_type":"misc"}[{"bibtex_key":"p3k14c","bibtex_type":"article","title":"{P3k14c, a Synthetic Global Database of Archaeological Radiocarbon Dates}","author":"{Bird, Darcy and Miranda, Lux and Vander Linden, Marc and Robinson, Erick and Bocinsky, R. Kyle and Nicholson, Chris and Capriles, José M. and Finley, Judson Byrd and Gayo, Eugenia M. and Gil, Adolfo and d’Alpoim Guedes, Jade and Hoggarth, Julie A. and Kay, Andrea and Loftus, Emma and Lombardo, Umberto and Mackie, Madeline and Palmisano, Alessio and Solheim, Steinar and Kelly, Robert L. and Freeman, Jacob}","year":"{2022}","month":"{jan}","journal":"{Scientific Data}","volume":"{9}","number":"{1}","pages":"{27}","publisher":"{Nature Publishing Group}","issn":"{2052-4463}","doi":"{10.1038/s41597-022-01118-7}","abstract":"{Archaeologists increasingly use large radiocarbon databases to model prehistoric human demography (also termed paleo-demography). Numerous independent projects, funded over the past decade, have assembled such databases from multiple regions of the world. These data provide unprecedented potential for comparative research on human population ecology and the evolution of social-ecological systems across the Earth. However, these databases have been developed using different sample selection criteria, which has resulted in interoperability issues for global-scale, comparative paleo-demographic research and integration with paleoclimate and paleoenvironmental data. We present a synthetic, global-scale archaeological radiocarbon database composed of 180,070 radiocarbon dates that have been cleaned according to a standardized sample selection criteria. This database increases the reusability of archaeological radiocarbon data and streamlines quality control assessments for various types of paleo-demographic research. As part of an assessment of data quality, we conduct two analyses of sampling bias in the global database at multiple scales. This database is ideal for paleo-demographic research focused on dates-as-data, bayesian modeling, or summed probability distribution methodologies.}","copyright":"{2022 The Author(s)}","langid":"{english}","keywords":"{Archaeology,Chemistry}","month_numeric":"{1}"}]
---
:bibtex_key: 'Bem 2000–2001: Table 3 Dumitrescu 1974'
:bibtex_type: :misc
---
:bibtex_key: de Vreies et al. 1958:136
:bibtex_type: :misc
---
:bibtex_key: http://pageperso.aol.fr/vdujardin/14C.html
:bibtex_type: :misc
---
:bibtex_key: Eubar
:bibtex_type: :misc
---
:bibtex_key: 'Talamo S.  2012. Journal of Archaeological Science 39: 175-183.'
:bibtex_type: :misc
---
:bibtex_key: 'Talamo S.  2012. Journal of Archaeological Science 39: 175-183. Jacobs
  Z.  2015. JAS 54: 110-122.'
:bibtex_type: :misc
---
:bibtex_key: '40358'
:bibtex_type: :misc
---
:bibtex_key: Pacciarelli/Scarano/Crispino 278 Appendix
:bibtex_type: :misc
---
- :bibtex_key: p3k14c
  :bibtex_type: :article
  :title: "{P3k14c, a Synthetic Global Database of Archaeological Radiocarbon Dates}"
  :author: "{Bird, Darcy and Miranda, Lux and Vander Linden, Marc and Robinson, Erick
    and Bocinsky, R. Kyle and Nicholson, Chris and Capriles, José M. and Finley, Judson
    Byrd and Gayo, Eugenia M. and Gil, Adolfo and d’Alpoim Guedes, Jade and Hoggarth,
    Julie A. and Kay, Andrea and Loftus, Emma and Lombardo, Umberto and Mackie, Madeline
    and Palmisano, Alessio and Solheim, Steinar and Kelly, Robert L. and Freeman,
    Jacob}"
  :year: "{2022}"
  :month: "{jan}"
  :journal: "{Scientific Data}"
  :volume: "{9}"
  :number: "{1}"
  :pages: "{27}"
  :publisher: "{Nature Publishing Group}"
  :issn: "{2052-4463}"
  :doi: "{10.1038/s41597-022-01118-7}"
  :abstract: "{Archaeologists increasingly use large radiocarbon databases to model
    prehistoric human demography (also termed paleo-demography). Numerous independent
    projects, funded over the past decade, have assembled such databases from multiple
    regions of the world. These data provide unprecedented potential for comparative
    research on human population ecology and the evolution of social-ecological systems
    across the Earth. However, these databases have been developed using different
    sample selection criteria, which has resulted in interoperability issues for global-scale,
    comparative paleo-demographic research and integration with paleoclimate and paleoenvironmental
    data. We present a synthetic, global-scale archaeological radiocarbon database
    composed of 180,070 radiocarbon dates that have been cleaned according to a standardized
    sample selection criteria. This database increases the reusability of archaeological
    radiocarbon data and streamlines quality control assessments for various types
    of paleo-demographic research. As part of an assessment of data quality, we conduct
    two analyses of sampling bias in the global database at multiple scales. This
    database is ideal for paleo-demographic research focused on dates-as-data, bayesian
    modeling, or summed probability distribution methodologies.}"
  :copyright: "{2022 The Author(s)}"
  :langid: "{english}"
  :keywords: "{Archaeology,Chemistry}"
  :month_numeric: "{1}"

Changelog