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Original Articles

Mapping Wildfire Burn Severity in the Arctic Tundra from Downsampled MODIS Data

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Pages 64-76 | Accepted 01 Sep 2012, Published online: 05 Jan 2018

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Michael P. Finn & Diana Thunen. (2014) Recent literature in cartography and geographic information science. Cartography and Geographic Information Science 41:2, pages 179-192.
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Articles from other publishers (21)

Colton W. Miller, Brian J. Harvey, Van R. Kane, L. Monika Moskal & Ernesto Alvarado. (2023) Different approaches make comparing studies of burn severity challenging: a review of methods used to link remotely sensed data with the Composite Burn Index. International Journal of Wildland Fire 32:4, pages 449-475.
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Lisa M. Holsinger, Sean A. Parks, Lisa B. Saperstein, Rachel A. Loehman, Ellen Whitman, Jennifer Barnes & Marc‐André Parisien. (2021) Improved fire severity mapping in the North American boreal forest using a hybrid composite method. Remote Sensing in Ecology and Conservation 8:2, pages 222-235.
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Dong Chen, Cheng Fu, Joanne V. Hall, Elizabeth E. Hoy & Tatiana V. Loboda. (2021) Spatio-temporal patterns of optimal Landsat data for burn severity index calculations: Implications for high northern latitudes wildfire research. Remote Sensing of Environment 258, pages 112393.
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Benjamin W. Abbott, Adrian V. Rocha, Arial Shogren, Jay P. Zarnetske, Frances Iannucci, William B. Bowden, Samuel P. Bratsman, Leika Patch, Rachel Watts, Randy Fulweber, Rebecca J. Frei, Amanda M. Huebner, Sarah M. Ludwig, Gregory T. Carling & Jonathan A. O’Donnell. (2021) Tundra wildfire triggers sustained lateral nutrient loss in Alaskan Arctic. Global Change Biology 27:7, pages 1408-1430.
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Alan Gray, G. Matt Davies, Rut Domènech, Emily Taylor & Peter E. Levy. (2020) Peatland Wildfire Severity and Post-fire Gaseous Carbon Fluxes. Ecosystems 24:3, pages 713-725.
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Alison Beamish, Martha K. Raynolds, Howard Epstein, Gerald V. Frost, Matthew J. Macander, Helena Bergstedt, Annett Bartsch, Stefan Kruse, Victoria Miles, Cemal Melih Tanis, Birgit Heim, Matthias Fuchs, Sabine Chabrillat, Iuliia Shevtsova, Mariana Verdonen & Johann Wagner. (2020) Recent trends and remaining challenges for optical remote sensing of Arctic tundra vegetation: A review and outlook. Remote Sensing of Environment 246, pages 111872.
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Yaping Chen, Mark Jason Lara & Feng Sheng Hu. (2020) A robust visible near-infrared index for fire severity mapping in Arctic tundra ecosystems. ISPRS Journal of Photogrammetry and Remote Sensing 159, pages 101-113.
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R. A. Finger Higgens, J. W. Chipman, D. A. Lutz, L. E. Culler, R. A. Virginia & L. A. Ogden. (2019) Changing Lake Dynamics Indicate a Drier Arctic in Western Greenland. Journal of Geophysical Research: Biogeosciences 124:4, pages 870-883.
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Erika M. Blomdahl, Crystal A. Kolden, Arjan J.H. Meddens & James A. Lutz. (2019) The importance of small fire refugia in the central Sierra Nevada, California, USA. Forest Ecology and Management 432, pages 1041-1052.
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Níckolas Santana, Osmar de Carvalho Júnior, Roberto Gomes & Renato Guimarães. (2018) Burned-Area Detection in Amazonian Environments Using Standardized Time Series Per Pixel in MODIS Data. Remote Sensing 10:12, pages 1904.
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Sean Parks, Lisa Holsinger, Morgan Voss, Rachel Loehman & Nathaniel Robinson. (2018) Mean Composite Fire Severity Metrics Computed with Google Earth Engine Offer Improved Accuracy and Expanded Mapping Potential. Remote Sensing 10:6, pages 879.
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Arjan J.H. Meddens, Crystal A. Kolden & James A. Lutz. (2016) Detecting unburned areas within wildfire perimeters using Landsat and ancillary data across the northwestern United States. Remote Sensing of Environment 186, pages 275-285.
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Benjamin M. Jones, Guido Grosse, Christopher D. Arp, Eric Miller, Lin Liu, Daniel J. Hayes & Christopher F. Larsen. (2015) Recent Arctic tundra fire initiates widespread thermokarst development. Scientific Reports 5:1.
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Michael Stambaugh, Lyndia Hammer & Ralph Godfrey. (2015) Performance of Burn-Severity Metrics and Classification in Oak Woodlands and Grasslands. Remote Sensing 7:8, pages 10501-10522.
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Crystal A. Kolden, John T. Abatzoglou, James A. Lutz, C. Alina Cansler, Jonathan T. Kane, Jan W. Van Wagtendonk & Carl H. Key. (2015) Climate Contributors to Forest Mosaics: Ecological Persistence Following Wildfire. Northwest Science 89:3, pages 219-238.
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S. Veraverbeke, B. M. Rogers & J. T. Randerson. (2015) Daily burned area and carbon emissions from boreal fires in Alaska. Biogeosciences 12:11, pages 3579-3601.
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Katherine D. Morrison & Crystal A. Kolden. (2015) Modeling the impacts of wildfire on runoff and pollutant transport from coastal watersheds to the nearshore environment. Journal of Environmental Management 151, pages 113-123.
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Alistair M.S. Smith, Crystal A. Kolden, Wade T. Tinkham, Alan F. Talhelm, John D. Marshall, Andrew T. Hudak, Luigi Boschetti, Michael J. Falkowski, Jonathan A. Greenberg, John W. Anderson, Andrew Kliskey, Lilian Alessa, Robert F. Keefe & James R. Gosz. (2014) Remote sensing the vulnerability of vegetation in natural terrestrial ecosystems. Remote Sensing of Environment 154, pages 322-337.
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Lin Liu, Elchin E. Jafarov, Kevin M. Schaefer, Benjamin M. Jones, Howard A. Zebker, Christopher A. Williams, John Rogan & Tingjun Zhang. (2014) InSAR detects increase in surface subsidence caused by an Arctic tundra fire. Geophysical Research Letters 41:11, pages 3906-3913.
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Donovan S Birch, Penelope Morgan, Crystal A Kolden, Andrew T Hudak & Alistair M S Smith. (2014) Is proportion burned severely related to daily area burned?. Environmental Research Letters 9:6, pages 064011.
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Penelope Morgan, Robert E. Keane, Gregory K. Dillon, Theresa B. Jain, Andrew T. Hudak, Eva C. Karau, Pamela G. Sikkink, Zachary A. Holden & Eva K. Strand. (2014) Challenges of assessing fire and burn severity using field measures, remote sensing and modelling. International Journal of Wildland Fire 23:8, pages 1045.
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