A model-based assessment of the environmental impact of land-use change across scales in Southern Amazonia

[1]  T. Lakes,et al.  Inter- and transdisciplinary scenario construction to explore future land-use options in southern Amazonia , 2017 .

[2]  T. Berger,et al.  Can preferential credit programs speed up the adoption of low-carbon agricultural systems in Mato Grosso, Brazil? Results from bioeconomic microsimulation , 2017, Regional Environmental Change.

[3]  Tobia Lakes,et al.  Scenarios of land-use change in a deforestation corridor in the Brazilian Amazon: combining two scales of analysis , 2017, Regional Environmental Change.

[4]  G. Guggenberger,et al.  Future land use and land cover in Southern Amazonia and resulting greenhouse gas emissions from agricultural soils , 2017, Regional Environmental Change.

[5]  K. Riahi,et al.  The roads ahead: Narratives for shared socioeconomic pathways describing world futures in the 21st century , 2017 .

[6]  G. Guggenberger,et al.  Response of soil organic carbon to land-use change in central Brazil: a large-scale comparison of Ferralsols and Acrisols , 2016, Plant and Soil.

[7]  L. G. Barioni,et al.  Increasing beef production could lower greenhouse gas emissions in Brazil if decoupled from deforestation , 2016 .

[8]  C. Nobre,et al.  Land use change emission scenarios: anticipating a forest transition process in the Brazilian Amazon , 2016, Global change biology.

[9]  Laura Schneider,et al.  Land system science and the social–environmental system: the case of Southern Yucatán Peninsular Region (SYPR) project , 2016 .

[10]  C. F. Stange,et al.  Direct nitrous oxide (N2O) fluxes from soils under different land use in Brazil—a critical review , 2016 .

[11]  P. Fearnside Brazil’s Amazonian forest carbon: the key to Southern Amazonia’s significance for global climate , 2016, Regional Environmental Change.

[12]  Gerhard Gerold,et al.  Modelling hydrological impacts of agricultural expansion in two macro-catchments in Southern Amazonia, Brazil , 2016, Regional Environmental Change.

[13]  Sarah Sim,et al.  Spatial patterns of agricultural expansion determine impacts on biodiversity and carbon storage , 2015, Proceedings of the National Academy of Sciences.

[14]  P. Fearnside Deforestation soars in the Amazon , 2015, Nature.

[15]  T. Hertel The challenges of sustainably feeding a growing planet , 2015, Food Security.

[16]  Joseph H. A. Guillaume,et al.  Integrated assessment and modelling: Overview and synthesis of salient dimensions , 2015, Environ. Model. Softw..

[17]  H. K. Gibbs,et al.  Brazil's Soy Moratorium , 2015, Science.

[18]  T. Berger,et al.  Adoption and development of integrated crop–livestock–forestry systems in Mato Grosso, Brazil , 2015 .

[19]  P. Fearnside,et al.  Simulating Deforestation and Carbon Loss in Amazonia: Impacts in Brazil’s Roraima State from Reconstructing Highway BR-319 (Manaus-Porto Velho) , 2015, Environmental Management.

[20]  R. Walker,et al.  Spatially complex land change: The Indirect effect of Brazil's agricultural sector on land use in Amazonia. , 2014, Global environmental change : human and policy dimensions.

[21]  David M. Lapola,et al.  Why have land use change models for the Amazon failed to capture the amount of deforestation over the last decade , 2014 .

[22]  J. Stolte,et al.  Applied comparison of the erosion risk models EROSION 3D and LISEM for a small catchment in Norway , 2014 .

[23]  Li An,et al.  Annals of the Association of American Geographers Agent-based Modeling in Coupled Human and Natural Systems (chans): Lessons from a Comparative Analysis , 2022 .

[24]  Martin Coy,et al.  Frentes pioneiras em transformação: o eixo da BR-163 e os desafios socioambientais , 2014 .

[25]  Jan C. Thiele,et al.  Increasing bioenergy production on arable land: Does the regional and local climate respond? Germany as a case study , 2014 .

[26]  Laerte Guimarães Ferreira,et al.  Regional Variations in Biomass Distribution in Brazilian Savanna Woodland , 2014 .

[27]  T. Berger,et al.  Assessment of Policies for Low-Carbon Agriculture by means of Multi-Agent Simulation , 2014 .

[28]  T. Carter,et al.  Climate and socio-economic scenarios for climate change research and assessment: reconciling the new with the old , 2014, Climatic Change.

[29]  Eric F. Lambin,et al.  Globalization of land use: distant drivers of land change and geographic displacement of land use , 2013 .

[30]  Damien Arvor,et al.  Mapping and spatial analysis of the soybean agricultural frontier in Mato Grosso, Brazil, using remote sensing data , 2013 .

[31]  Ralf Wieland,et al.  LandCaRe DSS--an interactive decision support system for climate change impact assessment and the analysis of potential agricultural land use adaptation strategies. , 2013, Journal of environmental management.

[32]  K. Seto,et al.  Advancing Land Change Modeling: Opportunities and Research Requirements , 2013 .

[33]  Rempei Suwa,et al.  Allometric models for estimating above- and below-ground biomass in Amazonian forests at São Gabriel da Cachoeira in the upper Rio Negro, Brazil , 2012 .

[34]  R. DeFries,et al.  Decoupling of deforestation and soy production in the southern Amazon during the late 2000s , 2012, Proceedings of the National Academy of Sciences.

[35]  Raghavan Srinivasan,et al.  SWAT: Model Use, Calibration, and Validation , 2012 .

[36]  D. Manning,et al.  Persistence of soil organic matter as an ecosystem property , 2011, Nature.

[37]  K. Calvin,et al.  The RCP greenhouse gas concentrations and their extensions from 1765 to 2300 , 2011 .

[38]  E. Stehfest,et al.  RCP2.6: exploring the possibility to keep global mean temperature increase below 2°C , 2011 .

[39]  Jennifer Koch,et al.  An integrated approach to modelling land-use change on continental and global scales , 2011, Environ. Model. Softw..

[40]  Thomas Berger,et al.  An agent-based simulation model of human-environment interactions in agricultural systems , 2011, Environ. Model. Softw..

[41]  W. Mirschel,et al.  The MONICA model: Testing predictability for crop growth, soil moisture and nitrogen dynamics , 2011 .

[42]  B. Soares-Filho,et al.  Impacts of Climate Change and the End of Deforestation on Land Use in the Brazilian Legal Amazon , 2011 .

[43]  Daniel Alves Aguiar,et al.  Remote Sensing the Soy Moratorium in the Amazon Biome Monitored by Remote Sensing Images , 2022 .

[44]  Luiz Antonio Martinelli,et al.  Agriculture in Brazil: impacts, costs, and opportunities for a sustainable future , 2010 .

[45]  J. Mustard,et al.  The Amazon Frontier of Land-Use Change: Croplands and Consequences for Greenhouse Gas Emissions , 2010 .

[46]  Klaus Fraedrich,et al.  Future Climates from Bias-Bootstrapped Weather Analogs: An Application to the Yangtze River Basin , 2010 .

[47]  B. Soares-Filho,et al.  Role of Brazilian Amazon protected areas in climate change mitigation , 2010, Proceedings of the National Academy of Sciences.

[48]  A. Bondeau,et al.  Indirect land-use changes can overcome carbon savings from biofuels in Brazil , 2010, Proceedings of the National Academy of Sciences.

[49]  L. Aragão,et al.  Exploring the likelihood and mechanism of a climate-change-induced dieback of the Amazon rainforest , 2009, Proceedings of the National Academy of Sciences.

[50]  B. Soares-Filho,et al.  The End of Deforestation in the Brazilian Amazon , 2009, Science.

[51]  Ciro Abbud Righi,et al.  Biomass and greenhouse-gas emissions from land-use change in Brazil's Amazonian “arc of deforestation”: The states of Mato Grosso and Rondônia , 2009 .

[52]  Melissa Bukovsky,et al.  Precipitation Simulations Using WRF as a Nested Regional Climate Model , 2009 .

[53]  Tiago Carneiro,et al.  Dynamical coupling of multiscale land change models , 2009, Landscape Ecology.

[54]  Bas Eickhout,et al.  Climate benefits of changing diet , 2009 .

[55]  M. Messner,et al.  AGENT-BASED SIMULATION MODEL , 2009 .

[56]  Joseph Alcamo,et al.  Chapter Six The SAS Approach: Combining Qualitative and Quantitative Knowledge in Environmental Scenarios , 2008 .

[57]  E. Lambin,et al.  The emergence of land change science for global environmental change and sustainability , 2007, Proceedings of the National Academy of Sciences.

[58]  R. Betts,et al.  Changes in Atmospheric Constituents and in Radiative Forcing. Chapter 2 , 2007 .

[59]  B. Soares-Filho,et al.  Modelling conservation in the Amazon basin , 2006, Nature.

[60]  Gilberto Câmara,et al.  Estimating population and energy consumption in Brazilian Amazonia using DMSP night-time satellite data , 2005, Comput. Environ. Urban Syst..

[61]  J. Melillo,et al.  Rates and controls of nitrous oxide and nitric oxide emissions following conversion of forest to pasture in Rondônia , 2004, Nutrient Cycling in Agroecosystems.

[62]  H. Tian,et al.  Nitrous oxide emissions from forests and pastures of various ages in the Brazilian Amazon , 2001 .

[63]  J. Specht,et al.  Soybean yield potential: A genetic and physiological perspective , 1999 .

[64]  Jürgen Schmidt Modelling Long-Term Soil Loss And Landform Change , 1992 .

[65]  W. Green,et al.  Studies on Soil Phyics. , 1911, The Journal of Agricultural Science.