The Anthropocene Working Group (AWG) of the Subcommission of Quaternary Stratigraphy of the International Commission on Stratigraphy is moving toward recommending that the start of a formally designated ‘Anthropocene’ epoch be placed in the middle-to-late 1900s. This article summarizes three objections to this possible action. First, major human alterations of Earth’s environment long preceded the 1900s: extinction of most Australian and American mammals; extensive deforestation of arable regions around the globe; creation of extensive anthropogenic wetlands for rice irrigation; and, in recent centuries, plowing of prairies and steppes for conversion to croplands. Second, the formal chronostratigraphic rules followed by the AWG reject any recognition of these early changes a priori: the very rapid pulse-like extinctions because they were ‘merely’ continent-wide, and forest clearance, rice irrigation, and prairie plowing because they developed time-transgressively. Third, the classical approach the AWG follows – adding subdivisions to the standard Geologic Column – is largely disregarded today among scientists working in the younger geologic record, as is apparent from the rare mention of the Pleistocene subdivisions in paleoclimate textbooks. For these reasons, the use of an informal, flexible ‘anthropocene’ is preferable to the constraints that would be imposed by defining a formal ‘Anthropocene’.

Barnosky, AD, Koch, PL, Feranec, RS. (2004) Assessing the causes of late Pleistocene extinctions on the continents. Science 306(5693): 7075. Google Scholar, Medline
Bradley, RS (1999) Paleoclimatology: Reconstructing Climates of the Quaternary. San Diego, CA: Harcourt Academic Press. Google Scholar
Certini, G, Scalenghe, R (2011) Anthropogenic soils are the golden spikes for the Holocene. The Holocene 21(8): 12691274. Google Scholar, SAGE Journals, ISI
Cronin, TM (2010) Paleoclimates. Oxford: Columbia University Press. Google Scholar
Crowley, TJ, North, GR (1991) Paleoclimatology. New York: Oxford University Press. Google Scholar
Crutzen, P, Stoermer, E (2000) The Anthropocene. Global Change Newsletter 41: 17. Google Scholar
Edgeworth, M, deB Richter, D, Waters, C. (2015) Diachronous beginnings of the Anthropocene: The lower bounding surface of anthropogenic deposits. The Anthropocene Review 2(1): 3358. Google Scholar, SAGE Journals, ISI
Ellis, EC (2018). Anthropocene: A Very Short Introduction. Oxford: Oxford University Press. Google Scholar
Ellis, EC, Kaplan, JO, Fuller, DQ. (2013) Used planet: A global history. Proceedings of the National Academy of Sciences 110(20): 79787985. Google Scholar, Medline, ISI
Erb, K-H, Kastner, T, Plutzar, C. (2017) Unexpectedly large impact of forest management and grazing on global vegetation biomass. Nature 553: 7376. Google Scholar, Medline
Finney, SC, Edwards, LE (2016) The “Anthropocene” epoch: Scientific decision or political statement? GSA Today 26(3): 410. Google Scholar
Fuller, DQ, Denam, T, Arroyo-Kalin, M. (2014) Convergent evolution and parallelism in plant domestication revealed by an expanding archaeological record. Proceedings of the National Academy of Science 111(17): 61476152. Google Scholar, Medline, ISI
Fuller, DQ, Ling, Q, Van Etten, J. (2011) The contribution of rice agriculture and livestock to prehistoric methane levels: An archeological assessment. The Holocene 21(5): 743759. Google Scholar, SAGE Journals, ISI
Fyfe, R, Woodbridge, J, Roberts, N (2014) From forest to farmland: Pollen-inferred land cover change across Europe using the pseudobiomization approach. Global Change Biology 21(3): 11971212. Google Scholar, Medline
Gaillard, M-J, Sugita, S, Mazier, F. (2010) Holocene land-cover reconstructions for studies on land cover-climate feedbacks. Climate of the Past 6(4): 483499. Google Scholar
Gibbard, P, Head, MJ (2009) The definition of the Quaternary System/Era and the Pleistocene Series/Epoch. Quaternaire 20(2): 125133. Google Scholar
Glikson, A (2013) Fire and human evolution: The deep-time blueprints of the Anthropocene. Anthropocene 3: 8992. Google Scholar
Hecht, A (1983) Paleoclimate Analysis and Modeling. New York: John Wiley and Sons. Google Scholar
Hosner, D, Wagner, M, Tarasov, PE. (2016) Spatiotemporal distribution patterns of archaeological sites in China during the Neolithic and Bronze Ages: An overview. The Holocene 26: 15761593. Google Scholar, SAGE Journals, ISI
Houghton, RA (2007) Balancing the global carbon budget. Annual Review of Earth and Planetary Sciences 35: 313347. Google Scholar, ISI
Imbrie, J, Imbrie, KP (1979) Ice Ages: Solving the Mystery. Short Hills, NJ: Enslow Publishers. Google Scholar
Joos, F, Gerber, S, Prentice, IC. (2004) Transient simulations of Holocene atmospheric carbon dioxide and terrestrial carbon since the last glacial maximum. Global Biogeochemical Cycles 18. DOI: 10.1029/2003GB002156. Google Scholar, ISI
Kaplan, JO, Krumhardt, KM, Ellis, EC. (2011) Holocene carbon emissions as a result of anthropogenic land cover change. The Holocene 21(5): 775792. Google Scholar, SAGE Journals, ISI
Kump, LR, Kastings, JF, Crane, RG (1999) The Earth System. Upper Saddle River, NJ: Prentice Hall. Google Scholar
Kunnas, J (2017) Storytelling: From the early Anthropocene to the good or bad Anthropocene. The Anthropocene Review 4(2): 136150. Google Scholar, SAGE Journals
Larson, G, Piperno, DR, Allaby, RG. (2014) Current perspectives and the future of domestication studies. Proc. National Academy of Sciences 111(17): 61396146. Google Scholar, Medline, ISI
Lewis, SL, Maslin, MA (2015) Defining the Anthropocene. Nature 519: 171180. Google Scholar, Medline, ISI
Li, X, Dodson, J, Zhou, J. (2009) Increases of population and expansion of rice agriculture in Asia, and anthropogenic emissions since 5000 YBP. Quaternary International 202(1-2): 4150. Google Scholar, ISI
Lisiecki, L, Raymo, M (2005) A Pliocene-Pleistocene stack of 57 globally distributed benthic d18O records. Paleoceanography. doi.org/10.1029/2004PA001071. Google Scholar
Partridge, TC (1997) Reassessment of the position of the Plio-Pleistocene boundary: Is there a case for lowering it to the Gauss-Matuyama palaeomagnetic reversal? Quaternary International 40: 510. Google Scholar
Pongratz, J, Reick, C, Raddatz, T. (2009) Effects of anthropogenic land cover change on the carbon cycle of the last millennium. Global Geochemical Cycles 23. DOI: 10.1029/2009GB003488. Google Scholar
Roberts, N, Fyfe, RM, Woodbridge, J. (2018) Europe’s lost forests: A pollen-based synthesis for the last 11,000 years. Nature Scientific Reports. DOI: 10.1038/s41598-017-18646-7. Google Scholar
Ruddiman, WF (2001) Earth’s Climate: Past and Future. New York: W.H. Freeman. Google Scholar
Ruddiman, WF (2003) The atmospheric greenhouse era began thousands of years ago. Climatic Change 61(3): 261293. Google Scholar, ISI
Ruddiman, WF (2013a) The Anthropocene. Annual Review of Earth and Planetary Sciences 41: 4.14.24. Google Scholar
Ruddiman, WF (2013b). Earth Transformed. New York: W. H. Freeman. Google Scholar
Ruddiman, WF, Ellis, EC, Kaplan, JO. (2015) Defining the epoch we live in: Is a formally designated “Anthropocene” a good idea? Science 348(6230): 3839. Google Scholar, Medline, ISI
Rull, V (2017) The “Anthropocene” uncovered. Collectanea Botanica 36. Google Scholar
Shackleton, NJ, Backman, J, Zimmerman, H. (1984) Oxygen isotope calibration of the onset of ice rafting and history of glaciation in the North Atlantic region. Nature 307: 620623. Google Scholar
Smith, BD, Zeder, MA (2013) The onset of the Anthropocene. Anthropocene 4: 813. Google Scholar
Steffen, WW, Sanderson, A, Tyson, PD. (2004) Global Change and the Earth System: A Planet Under Pressure. The IGBP Global Change Series. Berlin: Springer-Verlag. Google Scholar
Steffen, W, Broadgate, W, Deutsch, L. (2015) The trajectory of the Anthropocene: The great acceleration. The Anthropocene Review 2: 8198. Google Scholar, SAGE Journals, ISI
Stocker, BD, Strassmann, K, Joos, F (2011) Sensitivity of Holocene CO2 and the modern carbon budget to early human land use: Analyses with a process-based model. Biogeosciences 8(1): 6988. Google Scholar
Strassmann, KM, Joos, F, Fischer, G (2008) Simulating effects of land use changes on carbon fluxes: Past contributions to atmospheric CO increases and future commitments due to losses of terrestrial sink capacity. Tellus B 60(4): 583603. Google Scholar
Waters, CN, Zalasiewicz, J, Summerhayes, C. (2017) Global boundary stratotype section and point (GSSP) for the Anthropocene series: Where and how to look for potential candidates. Earth Science Reviews 178: 379429. Google Scholar
Zalasiewicz, J, Waters, C, Head, MJ (2017a) Anthropocene: Its stratigraphic basis. Nature 541: 289289. Google Scholar, Medline
Zalasiewicz, J, Waters, CN, Wolfe, AP. (2017b) Making the case for a formal Anthropocene Epoch: An analysis of ongoing critiques. Newsletters on Stratigraphy 50(2): 205226. Google Scholar
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