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Featured researches published by Erle C. Ellis.


Frontiers in Ecology and the Environment | 2008

Putting people in the map: anthropogenic biomes of the world

Erle C. Ellis; Navin Ramankutty

Humans have fundamentally altered global patterns of biodiversity and ecosystem processes. Surprisingly, existing systems for representing these global patterns, including biome classifications, either ignore humans altogether or simplify human influence into, at most, four categories. Here, we present the first characterization of terrestrial biomes based on global patterns of sustained, direct human interaction with ecosystems. Eighteen “anthropogenic biomes” were identified through empirical analysis of global population, land use, and land cover. More than 75% of Earths ice-free land showed evidence of alteration as a result of human residence and land use, with less than a quarter remaining as wildlands, supporting just 11% of terrestrial net primary production. Anthropogenic biomes offer a new way forward by acknowledging human influence on global ecosystems and moving us toward models and investigations of the terrestrial biosphere that integrate human and ecological systems.


Philosophical Transactions of the Royal Society A | 2011

Anthropogenic transformation of the terrestrial biosphere

Erle C. Ellis

Human populations and their use of land have transformed most of the terrestrial biosphere into anthropogenic biomes (anthromes), causing a variety of novel ecological patterns and processes to emerge. To assess whether human populations and their use of land have directly altered the terrestrial biosphere sufficiently to indicate that the Earth system has entered a new geological epoch, spatially explicit global estimates of human populations and their use of land were analysed across the Holocene for their potential to induce irreversible novel transformation of the terrestrial biosphere. Human alteration of the terrestrial biosphere has been significant for more than 8000 years. However, only in the past century has the majority of the terrestrial biosphere been transformed into intensively used anthromes with predominantly novel anthropogenic ecological processes. At present, even were human populations to decline substantially or use of land become far more efficient, the current global extent, duration, type and intensity of human transformation of ecosystems have already irreversibly altered the terrestrial biosphere at levels sufficient to leave an unambiguous geological record differing substantially from that of the Holocene or any prior epoch. It remains to be seen whether the anthropogenic biosphere will be sustained and continue to evolve.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Used planet: A global history

Erle C. Ellis; Jed O. Kaplan; Dorian Q. Fuller; Steve Vavrus; Kees Klein Goldewijk; Peter H. Verburg

Human use of land has transformed ecosystem pattern and process across most of the terrestrial biosphere, a global change often described as historically recent and potentially catastrophic for both humanity and the biosphere. Interdisciplinary paleoecological, archaeological, and historical studies challenge this view, indicating that land use has been extensive and sustained for millennia in some regions and that recent trends may represent as much a recovery as an acceleration. Here we synthesize recent scientific evidence and theory on the emergence, history, and future of land use as a process transforming the Earth System and use this to explain why relatively small human populations likely caused widespread and profound ecological changes more than 3,000 y ago, whereas the largest and wealthiest human populations in history are using less arable land per person every decade. Contrasting two spatially explicit global reconstructions of land-use history shows that reconstructions incorporating adaptive changes in land-use systems over time, including land-use intensification, offer a more spatially detailed and plausible assessment of our planets history, with a biosphere and perhaps even climate long ago affected by humans. Although land-use processes are now shifting rapidly from historical patterns in both type and scale, integrative global land-use models that incorporate dynamic adaptations in human–environment relationships help to advance our understanding of both past and future land-use changes, including their sustainability and potential global effects.


The Holocene | 2011

Holocene carbon emissions as a result of anthropogenic land cover change

Jed O. Kaplan; Kristen M. Krumhardt; Erle C. Ellis; William F. Ruddiman; C. Lemmen; Kees Klein Goldewijk

Humans have altered the Earth’s land surface since the Paleolithic mainly by clearing woody vegetation first to improve hunting and gathering opportunities, and later to provide agricultural cropland. In the Holocene, agriculture was established on nearly all continents and led to widespread modification of terrestrial ecosystems. To quantify the role that humans played in the global carbon cycle over the Holocene, we developed a new, annually resolved inventory of anthropogenic land cover change from 8000 years ago to the beginning of large-scale industrialization (ad 1850). This inventory is based on a simple relationship between population and land use observed in several European countries over preindustrial time. Using this data set, and an alternative scenario based on the HYDE 3.1 land use data base, we forced the LPJ dynamic global vegetation model in a series of continuous simulations to evaluate the impacts of humans on terrestrial carbon storage during the preindustrial Holocene. Our model setup allowed us to quantify the importance of land degradation caused by repeated episodes of land use followed by abandonment. By 3 ka BP, cumulative carbon emissions caused by anthropogenic land cover change in our new scenario ranged between 84 and 102 Pg, translating to c. 7 ppm of atmospheric CO2. By ad 1850, emissions were 325–357 Pg in the new scenario, in contrast to 137–189 Pg when driven by HYDE. Regional events that resulted in local emissions or uptake of carbon were often balanced by contrasting patterns in other parts of the world. While we cannot close the carbon budget in the current study, simulated cumulative anthropogenic emissions over the preindustrial Holocene are consistent with the ice core record of atmospheric δ13CO2 and support the hypothesis that anthropogenic activities led to the stabilization of atmospheric CO2 concentrations at a level that made the world substantially warmer than it otherwise would be.


Frontiers in Ecology and the Environment | 2012

Mapping where ecologists work: biases in the global distribution of terrestrial ecological observations

Laura J. Martin; Bernd Blossey; Erle C. Ellis

Although the geographical context of ecological observations shapes ecological theory, the global distribution of ecological studies has never been analyzed. Here, we document the global distribution and context (protected status, biome, anthrome, and net primary productivity) of 2573 terrestrial study sites reported in recent publications (2004–2009) of 10 highly cited ecology journals. We find evidence of several geographical biases, including overrepresentation of protected areas, temperate deciduous woodlands, and wealthy countries. Even within densely settled or agricultural regions, ecologists tend to study “natural” fragments. Such biases in trendsetting journals may limit the scalability of ecological theory and hinder conservation efforts in the 75% of the terrestrial world where humans live and work.


Frontiers in Ecology and the Environment | 2014

Managing the whole landscape: historical, hybrid, and novel ecosystems

Richard J. Hobbs; Eric Higgs; Carol M. Hall; Peter Bridgewater; F. Stuart Chapin; Erle C. Ellis; John J. Ewel; Lauren M. Hallett; Jim Harris; Kristen B Hulvey; Stephen T. Jackson; Patricia L. Kennedy; Christoph Kueffer; Lori Lach; Trevor C. Lantz; Ariel E. Lugo; Joseph Mascaro; Stephen D. Murphy; Cara R. Nelson; Michael P. Perring; Timothy R. Seastedt; Rachel J. Standish; Katherine N. Suding; Pedro M. Tognetti; Laith Yakob; Laurie Yung

The reality confronting ecosystem managers today is one of heterogeneous, rapidly transforming landscapes, particularly in the areas more affected by urban and agricultural development. A landscape management framework that incorporates all systems, across the spectrum of degrees of alteration, provides a fuller set of options for how and when to intervene, uses limited resources more effectively, and increases the chances of achieving management goals. That many ecosystems have departed so substantially from their historical trajectory that they defy conventional restoration is not in dispute. Acknowledging novel ecosystems need not constitute a threat to existing policy and management approaches. Rather, the development of an integrated approach to management interventions can provide options that are in tune with the current reality of rapid ecosystem change.


PLOS ONE | 2012

All Is Not Loss: Plant Biodiversity in the Anthropocene

Erle C. Ellis; Erica C. Antill; Holger Kreft

Anthropogenic global changes in biodiversity are generally portrayed in terms of massive native species losses or invasions caused by recent human disturbance. Yet these biodiversity changes and others caused directly by human populations and their use of land tend to co-occur as long-term biodiversity change processes in the Anthropocene. Here we explore contemporary anthropogenic global patterns in vascular plant species richness at regional landscape scales by combining spatially explicit models and estimates for native species loss together with gains in exotics caused by species invasions and the introduction of agricultural domesticates and ornamental exotic plants. The patterns thus derived confirm that while native losses are likely significant across at least half of Earths ice-free land, model predictions indicate that plant species richness has increased overall in most regional landscapes, mostly because species invasions tend to exceed native losses. While global observing systems and models that integrate anthropogenic species loss, introduction and invasion at regional landscape scales remain at an early stage of development, integrating predictions from existing models within a single assessment confirms their vast global extent and significance while revealing novel patterns and their potential drivers. Effective global stewardship of plant biodiversity in the Anthropocene will require integrated frameworks for observing, modeling and forecasting the different forms of anthropogenic biodiversity change processes at regional landscape scales, towards conserving biodiversity within the novel plant communities created and sustained by human systems.


Ecological Monographs | 2015

Ecology in an anthropogenic biosphere

Erle C. Ellis

Humans, unlike any other multicellular species in Earths history, have emerged as a global force that is transforming the ecology of an entire planet. It is no longer possible to understand, predict, or successfully manage ecological pattern, process, or change without understanding why and how humans reshape these over the long term. Here, a general causal theory is presented to explain why human societies gained the capacity to globally alter the patterns, processes, and dynamics of ecology and how these anthropogenic alterations unfold over time and space as societies themselves change over human generational time. Building on existing theories of ecosystem engineering, niche construction, inclusive inheritance, cultural evolution, ultrasociality, and social change, this theory of anthroecological change holds that sociocultural evolution of subsistence regimes based on ecosystem engineering, social specialization, and non-kin exchange, or “sociocultural niche construction,” is the main cause of both the long-term upscaling of human societies and their unprecedented transformation of the biosphere. Human sociocultural niche construction can explain, where classic ecological theory cannot, the sustained transformative effects of human societies on biogeography, ecological succession, ecosystem processes, and the ecological patterns and processes of landscapes, biomes, and the biosphere. Anthroecology theory generates empirically testable hypotheses on the forms and trajectories of long-term anthropogenic ecological change that have significant theoretical and practical implications across the subdisciplines of ecology and conservation. Though still at an early stage of development, anthroecology theory aligns with and integrates established theoretical frameworks including social–ecological systems, social metabolism, countryside biogeography, novel ecosystems, and anthromes. The “fluxes of nature” are fast becoming “cultures of nature.” To investigate, understand, and address the ultimate causes of anthropogenic ecological change, not just the consequences, human sociocultural processes must become as much a part of ecological theory and practice as biological and geophysical processes are now. Strategies for achieving this goal and for advancing ecological science and conservation in an increasingly anthropogenic biosphere are presented.


Agriculture, Ecosystems & Environment | 1997

Sustainable Traditional Agriculture in the Tai Lake Region of China

Erle C. Ellis; Shaohua Wang

Abstract Traditional agriculture in Chinas Tai Lake Region sustained high productivity for more than nine centuries. This article examines the ecological basis for this high long-term productivity in a historical context, with a focus on the role of nutrient limitation. From 1000 AD to the 1950s, agricultural technology remained basically unchanged, as did the yields of rice, wheat and other crops. Still, total grain production and net farm income increased over time, as a result of increased multiple cropping, expanded mulberry/silk production, and the intensified use of organic fertilizers. Without degrading soil resources, continuous intensive farm management supported the nutritional and other needs of the rural population, which grew to nearly ten people per hectare of cultivated land by the 1930s. Ecological limitations to human carrying capacity that seem apparent in the mid 1800s appear to have been overcome since the 1960s by chemical nitrogen subsidy of agroecosystems. Human populations are now nearly twice their traditional maximum, and the region remains one of the worlds most productive agricultural regions thanks in part to heavy fertilizer applications that have changed nitrogen from a limiting nutrient to a potential source of pollution. Whether these high inputs and/or other agricultural technologies will continue to sustain food self-sufficiency for the regions farmers remains to be seen. The high long-term productivity of Tai Lake Region agroecosystems make them ideal for study of the ecological basis for sustainable agriculture.


Journal of Ecology | 2014

Looking forward through the past : identification of 50 priority research questions in palaeoecology

Alistair W. R. Seddon; Anson W. Mackay; Ambroise G. Baker; H. John B. Birks; Elinor Breman; Caitlin E. Buck; Erle C. Ellis; Cynthia A. Froyd; Jacquelyn L. Gill; Lindsey Gillson; E. A. Johnson; Vivienne J. Jones; Stephen Juggins; Marc Macias-Fauria; Keely Mills; Jesse L. Morris; David Nogués-Bravo; Surangi W. Punyasena; Thomas P. Roland; Andrew J. Tanentzap; Katherine J. Willis; Eline N. van Asperen; William E. N. Austin; Rick Battarbee; Shonil A. Bhagwat; Christina L. Belanger; Keith Bennett; Hilary H. Birks; Christopher Bronk Ramsey; Stephen J. Brooks

Summary 1. Priority question exercises are becoming an increasingly common tool to frame future agendas in conservation and ecological science. They are an effective way to identify research foci that advance the field and that also have high policy and conservation relevance. 2. To date there has been no coherent synthesis of key questions and priority research areas for palaeoecology, which combines biological, geochemical and molecular techniques in order to reconstruct past ecological and environmental systems on timescales from decades to millions of years. 3. We adapted a well-established methodology to identify 50 priority research questions in palaeoecology. Using a set of criteria designed to identify realistic and achievable research goals, we selected questions from a pool submitted by the international palaeoecology research community and relevant policy practitioners. This article is protected by copyright. All rights reserved. Accepted Article 4. The integration of online participation, both before and during the workshop, increased international engagement in question selection. 5. The questions selected are structured around six themes: human–environment interactions in the Anthropocene; biodiversity, conservation, and novel ecosystems; biodiversity over long timescales; ecosystem processes and biogeochemical cycling; comparing, combining and synthesizing information from multiple records; and new developments in palaeoecology. 6. Future opportunities in palaeoecology are related to improved incorporation of uncertainty into reconstructions, an enhanced understanding of ecological and evolutionary dynamics and processes, and the continued application of long-term data for better-informed landscape management. 7. Synthesis Palaeoecology is a vibrant and thriving discipline and these 50 priority questions highlight its potential for addressing both pure (e.g. ecological and evolutionary, methodological) and applied (e.g. environmental and conservation) issues related to ecological science and global change.

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Colin N. Waters

British Geological Survey

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Will Steffen

Australian National University

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Davor Vidas

Fridtjof Nansen Institute

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James P. M. Syvitski

University of Colorado Boulder

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Colin Summerhayes

Scott Polar Research Institute

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