Register      Login
International Journal of Wildland Fire International Journal of Wildland Fire Society
Journal of the International Association of Wildland Fire

Articles citing this paper

Evaluation of the composite burn index for assessing fire severity in Alaskan black spruce forests

Eric S. Kasischke A F , Merritt R. Turetsky B C , Roger D. Ottmar D , Nancy H. F. French E , Elizabeth E. Hoy A and Evan S. Kane B
+ Author Affiliations
- Author Affiliations

A Department of Geography, University of Maryland, 2181 LeFrak Hall, College Park, MD 20742, USA.

B Departments of Plant Biology, and Fisheries & Wildlife, Michigan State University, East Lansing, MI 48824, USA.

C Present address: Department of Integrative Biology, University of Guelph, Guelph, ON, N1G 2W1, Canada.

D USDA Forest Service, Pacific Northwest Research Station, 400 N 34th St, Seattle, WA 98103, USA.

E Michigan Tech Research Institute, Michigan Technological University, 3600 Green Court, Suite 100, Ann Arbor, MI 48113-4001, USA.

F Corresponding author. Email: ekasisch@umd.edu

International Journal of Wildland Fire 17(4) 515-526 https://doi.org/10.1071/WF08002
Submitted: 5 January 2008  Accepted: 15 January 2008   Published: 6 August 2008



127 articles found in Crossref database.

Assessing Boreal Peat Fire Severity and Vulnerability of Peatlands to Early Season Wildland Fire
Bourgeau-Chavez Laura Louise, Grelik Sarah L., Billmire Michael, Jenkins Liza K., Kasischke Eric S., Turetsky Merritt R.
Frontiers in Forests and Global Change. 2020 3
Modeling fire severity in black spruce stands in the Alaskan boreal forest using spectral and non-spectral geospatial data
Barrett K., Kasischke E.S., McGuire A.D., Turetsky M.R., Kane E.S.
Remote Sensing of Environment. 2010 114(7). p.1494
The transferability of a dNBR-derived model to predict burn severity across 10 wildland fires in western Canada
Soverel Nicholas O., Coops Nicholas C., Perrakis Daniel D. B., Daniels Lori D., Gergel Sarah E.
International Journal of Wildland Fire. 2011 20(4). p.518
Interactive effects of vegetation, soil moisture and bulk density on depth of burning of thick organic soils
Benscoter B. W., Thompson D. K., Waddington J. M., Flannigan M. D., Wotton B. M., de Groot W. J., Turetsky M. R.
International Journal of Wildland Fire. 2011 20(3). p.418
The spatial variation in forest burn severity in Heilongjiang Province, China
Chang Yu, Zhu Zhiliang, Feng Yuting, Li Yuehui, Bu Rencang, Hu Yuanman
Natural Hazards. 2016 81(2). p.981
Estimating burn severity from Landsat dNBR and RdNBR indices across western Canada
Soverel Nicholas O., Perrakis Daniel D.B., Coops Nicholas C.
Remote Sensing of Environment. 2010 114(9). p.1896
Influence of Wildland Fire Along a Successional Gradient in Sagebrush Steppe and Western Juniper Woodlands
Strand Eva K., Bunting Stephen C., Keefe Robert F.
Rangeland Ecology & Management. 2013 66(6). p.667
Impact of Forest Fires on Air Quality in Wolgan Valley, New South Wales, Australia—A Mapping and Monitoring Study Using Google Earth Engine
Singh Sachchidanand, Singh Harikesh, Sharma Vishal, Shrivastava Vaibhav, Kumar Pankaj, Kanga Shruti, Sahu Netrananda, Meraj Gowhar, Farooq Majid, Singh Suraj Kumar
Forests. 2021 13(1). p.4
Impacts of disturbance on the terrestrial carbon budget of North America
Kasischke Eric S., Amiro Brian D., Barger Nichole N., French Nancy H. F., Goetz Scott J., Grosse Guido, Harmon Mark E., Hicke Jeffrey A., Liu Shuguang, Masek Jeffrey G.
Journal of Geophysical Research: Biogeosciences. 2013 118(1). p.303
Calibrating Satellite-Based Indices of Burn Severity from UAV-Derived Metrics of a Burned Boreal Forest in NWT, Canada
Fraser Robert, Van der Sluijs Jurjen, Hall Ronald
Remote Sensing. 2017 9(3). p.279
Forest Fire Severity Assessment Using ALS Data in a Mediterranean Environment
Montealegre Antonio, Lamelas María, Tanase Mihai, de la Riva Juan
Remote Sensing. 2014 6(5). p.4240
Seasonal variation in albedo and radiation exchange between a burned and unburned forested peatland: implications for peatland evaporation
Thompson Dan K., Baisley Andrew S., Waddington James Michael
Hydrological Processes. 2015 29(14). p.3227
Fractional vegetation cover ratio estimated from radiative transfer modeling outperforms spectral indices to assess fire severity in several Mediterranean plant communities
Fernández-Guisuraga José Manuel, Calvo Leonor, Quintano Carmen, Fernández-Manso Alfonso, Fernandes Paulo M.
Remote Sensing of Environment. 2023 290 p.113542
Effects of fire and nitrogen addition on photosynthesis and growth of three dominant understory plant species in a temperate forest
Hu Mengjun, Wan Shiqiang
Journal of Plant Ecology. 2019 12(4). p.759
Impact of Climate Change on Forest Fire Severity and Consequences for Carbon Stocks in Boreal Forest Stands of Quebec, Canada: a Synthesis
van Bellen Simon, Garneau Michelle, Bergeron Yves
Fire Ecology. 2010 6(3). p.16
Evaluating the Differenced Normalized Burn Ratio for Assessing Fire Severity Using Sentinel-2 Imagery in Northeast Siberian Larch Forests
Delcourt Clement J. F., Combee Alisha, Izbicki Brian, Mack Michelle C., Maximov Trofim, Petrov Roman, Rogers Brendan M., Scholten Rebecca C., Shestakova Tatiana A., van Wees Dave, Veraverbeke Sander
Remote Sensing. 2021 13(12). p.2311
Geographic Information Systems - Data Science Approach (2023)
Zagalikis Georgios
Evaluating spectral indices and spectral mixture analysis for assessing fire severity, combustion completeness and carbon emissions
Veraverbeke Sander, Hook Simon J.
International Journal of Wildland Fire. 2013 22(5). p.707
How Robust Are Burn Severity Indices When Applied in a New Region? Evaluation of Alternate Field-Based and Remote-Sensing Methods
Cansler C. Alina, McKenzie Donald
Remote Sensing. 2012 4(2). p.456
Hydrological controls on deep burning in a northern forested peatland
Lukenbach Maxwell Curtis, Hokanson Kelly Jean, Moore Paul A., Devito Kevin J., Kettridge Nicholas, Thompson Daniel K., Wotton Brian M., Petrone Richard Michael, Waddington James Michael
Hydrological Processes. 2015 29(18). p.4114
Burn severity mapping using simulation modelling and satellite imagery
Karau Eva C., Keane Robert E.
International Journal of Wildland Fire. 2010 19(6). p.710
Characterizing boreal forest wildfire with multi-temporal Landsat and LIDAR data
Wulder M.A., White J.C., Alvarez F., Han T., Rogan J., Hawkes B.
Remote Sensing of Environment. 2009 113(7). p.1540
Post-fire ecohydrological conditions at peatland margins in different hydrogeological settings of the Boreal Plain
Lukenbach M.C., Hokanson K.J., Devito K.J., Kettridge N., Petrone R.M., Mendoza C.A., Granath G., Waddington J.M.
Journal of Hydrology. 2017 548 p.741
Different approaches make comparing studies of burn severity challenging: a review of methods used to link remotely sensed data with the Composite Burn Index
Miller Colton W., Harvey Brian J., Kane Van R., Moskal L. Monika, Alvarado Ernesto
International Journal of Wildland Fire. 2023 32(4). p.449
Multi-scale influence of vapor pressure deficit on fire ignition and spread in boreal forest ecosystems
Sedano F., Randerson J. T.
Biogeosciences. 2014 11(14). p.3739
Properties of X-, C- and L-band repeat-pass interferometric SAR coherence in Mediterranean pine forests affected by fires
Tanase Mihai A., Santoro Maurizio, Wegmüller Urs, de la Riva Juan, Pérez-Cabello Fernando
Remote Sensing of Environment. 2010 114(10). p.2182
Daily burned area and carbon emissions from boreal fires in Alaska
Veraverbeke S., Rogers B. M., Randerson J. T.
Biogeosciences. 2015 12(11). p.3579
The establishment patterns of tree seedlings are determined immediately after wildfire in a black spruce (Picea mariana) forest
Tsuyuzaki Shiro, Narita Kenji, Sawada Yuki, Kushida Keiji
Plant Ecology. 2014 215(3). p.327
Mapping Wildfire Burn Severity in the Arctic Tundra from Downsampled MODIS Data
Kolden Crystal A., Rogan John
Arctic, Antarctic, and Alpine Research. 2013 45(1). p.64
Validation of remote sensing of burn severity in south-eastern US ecosystems
Picotte Joshua J., Robertson Kevin M.
International Journal of Wildland Fire. 2011 20(3). p.453
Wildfire Consumption and Interannual Impacts by Land Cover in Alaskan Boreal Forest
Kolden Crystal A., Abatzoglou John T.
Fire Ecology. 2012 8(1). p.98
Assessment of burn severity in Middle Povozhje with Landsat multitemporal data
Kurbanov Eldar, Vorobyev Oleg, Leznin Sergey, Polevshikova Yulia, Demisheva Ekaterina
International Journal of Wildland Fire. 2017 26(9). p.772
Fire severity estimation from space: a comparison of active and passive sensors and their synergy for different forest types
Tanase M. A., Kennedy R., Aponte C.
International Journal of Wildland Fire. 2015 24(8). p.1062
Using Landsat data to assess fire and burn severity in the North American boreal forest region: an overview and summary of results
French Nancy H. F., Kasischke Eric S., Hall Ronald J., Murphy Karen A., Verbyla David L., Hoy Elizabeth E., Allen Jennifer L.
International Journal of Wildland Fire. 2008 17(4). p.443
Ecological controls on post‐fire vegetation assembly at multiple spatial scales in eastern North American boreal forests
Boiffin Juliette, Aubin Isabelle, Munson Alison D., Roxburgh Stephen
Journal of Vegetation Science. 2015 26(2). p.360
Peat consumption and carbon loss due to smouldering wildfire in a temperate peatland
Davies G. Matt, Gray Alan, Rein Guillermo, Legg Colin J.
Forest Ecology and Management. 2013 308 p.169
Evidence for fire in the Pliocene Arctic in response to amplified temperature
Fletcher Tamara L., Warden Lisa, Sinninghe Damsté Jaap S., Brown Kendrick J., Rybczynski Natalia, Gosse John C., Ballantyne Ashley P.
Climate of the Past. 2019 15(3). p.1063
Observations and assessment of forest carbon dynamics following disturbance in North America
Goetz S. J., Bond‐Lamberty B., Law B. E., Hicke J. A., Huang C., Houghton R. A., McNulty S., O'Halloran T., Harmon M., Meddens A. J. H., Pfeifer E. M., Mildrexler D., Kasischke E. S.
Journal of Geophysical Research: Biogeosciences. 2012 117(G2).
Pyrogenic Carbon Erosion: Implications for Stock and Persistence of Pyrogenic Carbon in Soil
Abney Rebecca B., Berhe Asmeret Asefaw
Frontiers in Earth Science. 2018 6
Estimating burn severity and carbon emissions from a historic megafire in boreal forests of China
Xu Wenru, He Hong S., Hawbaker Todd J., Zhu Zhiliang, Henne Paul D.
Science of The Total Environment. 2020 716 p.136534
Quantifying surface severity of the 2014 and 2015 fires in the Great Slave Lake area of Canada
French Nancy H. F., Graham Jeremy, Whitman Ellen, Bourgeau-Chavez Laura L.
International Journal of Wildland Fire. 2020 29(10). p.892
Effects of trees on the burning of organic layers on permafrost terrain
Kasischke Eric S., Turetsky Merritt R., Kane Evan S.
Forest Ecology and Management. 2012 267 p.127
Extent and effect of the 2019-20 Australian bushfires on upland peat swamps in the Blue Mountains, NSW
Fryirs Kirstie A., Cowley Kirsten L., Hejl Natalie, Chariton Anthony, Christiansen Nicole, Dudaniec Rachael Y., Farebrother Will, Hardwick Lorraine, Ralph Timothy, Stow Adam, Hose Grant
International Journal of Wildland Fire. 2021 30(4). p.294
Evaluating the ability of the differenced Normalized Burn Ratio (dNBR) to predict ecologically significant burn severity in Alaskan boreal forests
Murphy Karen A., Reynolds Joel H., Koltun John M.
International Journal of Wildland Fire. 2008 17(4). p.490
Quantifying fire‐wide carbon emissions in interior Alaska using field measurements and Landsat imagery
Rogers B. M., Veraverbeke S., Azzari G., Czimczik C. I., Holden S. R., Mouteva G. O., Sedano F., Treseder K. K., Randerson J. T.
Journal of Geophysical Research: Biogeosciences. 2014 119(8). p.1608
Model comparisons for estimating carbon emissions from North American wildland fire
French Nancy H. F., de Groot William J., Jenkins Liza K., Rogers Brendan M., Alvarado Ernesto, Amiro Brian, de Jong Bernardus, Goetz Scott, Hoy Elizabeth, Hyer Edward, Keane Robert, Law B. E., McKenzie Donald, McNulty Steven G., Ottmar Roger, Pérez-Salicrup Diego R., Randerson James, Robertson Kevin M., Turetsky Merritt
Journal of Geophysical Research. 2011 116
Stand-Level Fuel Reduction Treatments and Fire Behaviour in Canadian Boreal Conifer Forests
Beverly Jennifer L., Leverkus Sonja E. R., Cameron Hilary, Schroeder Dave
Fire. 2020 3(3). p.35
Fire and soils: Key concepts and recent advances
Bento-Gonçalves António, Vieira António, Úbeda Xavier, Martin Deborah
Geoderma. 2012 191 p.3
Remote Sensing Techniques in Monitoring Post-Fire Effects and Patterns of Forest Recovery in Boreal Forest Regions: A Review
Chu Thuan, Guo Xulin
Remote Sensing. 2013 6(1). p.470
Recent acceleration of biomass burning and carbon losses in Alaskan forests and peatlands
Turetsky Merritt R., Kane Evan S., Harden Jennifer W., Ottmar Roger D., Manies Kristen L., Hoy Elizabeth, Kasischke Eric S.
Nature Geoscience. 2011 4(1). p.27
Timing Constraints on Remote Sensing of Wildland Fire Burned Area in the Southeastern US
Picotte Joshua J., Robertson Kevin
Remote Sensing. 2011 3(8). p.1680
Seasonal and topographic effects on estimating fire severity from Landsat TM/ETM+ data
Verbyla David L., Kasischke Eric S., Hoy Elizabeth E.
International Journal of Wildland Fire. 2008 17(4). p.527
Quantifying burned area for North American forests: Implications for direct reduction of carbon stocks
Kasischke Eric S., Loboda Tatiana, Giglio Louis, French Nancy H. F., Hoy E. E., de Jong Bernardus, Riano David
Journal of Geophysical Research. 2011 116(G4).
The influence of burn severity on postfire vegetation recovery and albedo change during early succession in North American boreal forests
Jin Yufang, Randerson James T., Goetz Scott J., Beck Pieter S. A., Loranty Michael M., Goulden Michael L.
Journal of Geophysical Research: Biogeosciences. 2012 117(G1).
More frequent burning increases vulnerability of Alaskan boreal black spruce forests
Hoy Elizabeth E, Turetsky Merritt R, Kasischke Eric S
Environmental Research Letters. 2016 11(9). p.095001
Evaluating the potential of Landsat TM/ETM+ imagery for assessing fire severity in Alaskan black spruce forests
Hoy Elizabeth E., French Nancy H. F., Turetsky Merritt R., Trigg Simon N., Kasischke Eric S.
International Journal of Wildland Fire. 2008 17(4). p.500
Emissions of forest floor and mineral soil carbon, nitrogen and mercury pools and relationships with fire severity for the Pagami Creek Fire in the Boreal Forest of northern Minnesota
Kolka Randall K., Sturtevant Brian R., Miesel Jessica R., Singh Aditya, Wolter Peter T., Fraver Shawn, DeSutter Thomas M., Townsend Phil A.
International Journal of Wildland Fire. 2017 26(4). p.296
Assessment of the Analytic Burned Area Index for Forest Fire Severity Detection Using Sentinel and Landsat Data
Guo Rentao, Yan Jilin, Zheng He, Wu Bo
Fire. 2024 7(1). p.19
Landscape-scale quantification of fire-induced change in canopy cover following mountain pine beetle outbreak and timber harvest
McCarley T. Ryan, Kolden Crystal A., Vaillant Nicole M., Hudak Andrew T., Smith Alistair M.S., Kreitler Jason
Forest Ecology and Management. 2017 391 p.164
Wildfire Alters Spatial Patterns of Available Soil Nitrogen and Understory Environments in a Valley Boreal Larch Forest
Kong Jian-jian, Yang Jian, Liu Bo, Qi Lin
Forests. 2019 10(2). p.95
Hydrogeological controls on post-fire moss recovery in peatlands
Lukenbach M.C., Devito K.J., Kettridge N., Petrone R.M., Waddington J.M.
Journal of Hydrology. 2015 530 p.405
Potential shifts in dominant forest cover in interior Alaska driven by variations in fire severity
Barrett K., McGuire A. D., Hoy E. E., Kasischke E. S.
Ecological Applications. 2011 21(7). p.2380
Characterization of Land Transitions Patterns from Multivariate Time Series Using Seasonal Trend Analysis and Principal Component Analysis
Parmentier Benoit
Remote Sensing. 2014 6(12). p.12639
Caution is needed across Mediterranean ecosystems when interpreting wall-to-wall fire severity estimates based on spectral indices
Fernández-Guisuraga José Manuel, Fernandes Paulo M., Marcos Elena, Beltrán-Marcos David, Sarricolea Pablo, Farris Massimiliano, Calvo Leonor
Forest Ecology and Management. 2023 546 p.121383
Determination of burn severity models ranging from regional to national scales for the conterminous United States
Picotte Joshua J., Cansler C. Alina, Kolden Crystal A., Lutz James A., Key Carl, Benson Nathan C., Robertson Kevin M.
Remote Sensing of Environment. 2021 263 p.112569
Fire rather than nitrogen addition affects understory plant communities in the short term in a coniferous‐broadleaf mixed forest
Hu Mengjun, Liu Yanchun, Sun Zhaolin, Zhang Kesheng, Liu Yinzhan, Miao Renhui, Wan Shiqiang
Ecology and Evolution. 2018 8(16). p.8135
High spatial resolution burn severity mapping of the New Jersey Pine Barrens with WorldView-3 near-infrared and shortwave infrared imagery
Warner Timothy A., Skowronski Nicholas S., Gallagher Michael R.
International Journal of Remote Sensing. 2017 38(2). p.598
Giving Ecological Meaning to Satellite-Derived Fire Severity Metrics across North American Forests
Parks , Holsinger , Koontz , Collins , Whitman , Parisien , Loehman , Barnes , Bourdon , Boucher , Boucher , Caprio , Collingwood , Hall , Park , Saperstein , Smetanka , Smith , Soverel
Remote Sensing. 2019 11(14). p.1735
Relationships between Satellite-Based Spectral Burned Ratios and Terrestrial Laser Scanning
Kato Akira, Moskal L. Monika, Batchelor Jonathan L., Thau David, Hudak Andrew T.
Forests. 2019 10(5). p.444
Evaluation of Composite Burn Index and Land Surface Temperature for Assessing Soil Burn Severity in Mediterranean Fire-Prone Pine Ecosystems
Marcos Elena, Fernández-García Víctor, Fernández-Manso Alfonso, Quintano Carmen, Valbuena Luz, Tárrega Reyes, Luis-Calabuig Estanislao, Calvo Leonor
Forests. 2018 9(8). p.494
Estimación de emisiones de GEI y sus trayectorias en grandes incendios forestales en Cataluña, España
Balde Bountouraby, Vega-García Cristina
Madera y Bosques. 2019 25(2).
Early response of ground layer plant communities to wildfire and harvesting disturbance in forested peatland ecosystems in northern Minnesota, USA
Rowe Erika R., D'Amato Anthony W., Palik Brian J., Almendinger John C.
Forest Ecology and Management. 2017 398 p.140
An evaluation of remotely sensed indices for quantifying burn severity in arid ecoregions
Klinger Rob, McKinley Randy, Brooks Matt
International Journal of Wildland Fire. 2019 28(12). p.951
Burn severity metrics in fire-prone pine ecosystems along a climatic gradient using Landsat imagery
Fernández-García Víctor, Santamarta Mónica, Fernández-Manso Alfonso, Quintano Carmen, Marcos Elena, Calvo Leonor
Remote Sensing of Environment. 2018 206 p.205
Groundwater connectivity controls peat burn severity in the boreal plains
Hokanson K. J., Lukenbach M. C., Devito K. J., Kettridge N., Petrone R. M., Waddington J. M.
Ecohydrology. 2016 9(4). p.574
Burn severity alters peatland moss water availability: implications for post‐fire recovery
Lukenbach M. C., Devito K. J., Kettridge N., Petrone R. M., Waddington J. M.
Ecohydrology. 2016 9(2). p.341
Estimating burn severity at the regional level using optically based indices
Tanase Mihai, de la Riva Juan, Pérez-Cabello  Fernando
Canadian Journal of Forest Research. 2011 41(4). p.863
Total and pyrogenic carbon stocks in black spruce forest floors from eastern Canada
Soucémarianadin Laure N., Quideau Sylvie A., MacKenzie M. Derek, Munson Alison D., Boiffin Juliette, Bernard Guy M., Wasylishen Roderick E.
Organic Geochemistry. 2015 82 p.1
Assessing the potential of the differenced Normalized Burn Ratio (dNBR) for estimating burn severity in eastern Canadian boreal forests
Boucher Jonathan, Beaudoin André, Hébert Christian, Guindon Luc, Bauce Éric
International Journal of Wildland Fire. 2017 26(1). p.32
Understanding the effects of fire and nitrogen addition on soil respiration of a field study by combining observations with a meta-analysis
Hu Mengjun, Song Jian, Li Shuo, Li Zheng, Hao Yuanfeng, Di Mengmeng, Wan Shiqiang
Agricultural and Forest Meteorology. 2020 292-293 p.108106
Carbon emissions from the peat fire problem—a review
Che Azmi Nor Azizah, Mohd Apandi Nazirah, A. Rashid Ahmad Safuan
Environmental Science and Pollution Research. 2021 28(14). p.16948
Soil organic layer combustion in boreal black spruce and jack pine stands of the Northwest Territories, Canada
Walker Xanthe J., Baltzer Jennifer L., Cumming Steven G., Day Nicola J., Johnstone Jill F., Rogers Brendan M., Solvik Kylen, Turetsky Merritt R., Mack Michelle C.
International Journal of Wildland Fire. 2018 27(2). p.125
Improved fire severity mapping in the North American boreal forest using a hybrid composite method
Holsinger Lisa M., Parks Sean A., Saperstein Lisa B., Loehman Rachel A., Whitman Ellen, Barnes Jennifer, Parisien Marc‐André, Disney Mat, Bohlman Stephanie
Remote Sensing in Ecology and Conservation. 2022 8(2). p.222
Quantifying fire severity, carbon, and nitrogen emissions in Alaska's boreal forest
Boby Leslie A., Schuur Edward A. G., Mack Michelle C., Verbyla David, Johnstone Jill F.
Ecological Applications. 2010 20(6). p.1633
Recovery of carbon pools a decade after wildfire in black spruce forests of interior Alaska: effects of soil texture and landscape position
Houle Gregory P., Kane Evan S., Kasischke Eric S., Gibson Carolyn M., Turetsky Merritt R.
Canadian Journal of Forest Research. 2018 48(1). p.1
Three large fire years threaten resilience of closed crown black spruce forests in eastern Canada
Boiffin J., Munson A. D.
Ecosphere. 2013 4(5). p.1
Synergistic use of spaceborne lidar and optical imagery for assessing forest disturbance: An Alaska case study
Goetz S. J., Sun M., Baccini A., Beck P. S. A.
Journal of Geophysical Research: Biogeosciences. 2010 115(G2).
Fire‐induced carbon emissions and regrowth uptake in western U.S. forests: Documenting variation across forest types, fire severity, and climate regions
Ghimire Bardan, Williams Christopher A., Collatz G. James, Vanderhoof Melanie
Journal of Geophysical Research: Biogeosciences. 2012 117(G3).
Modeling the effects of fire severity and climate warming on active layer thickness and soil carbon storage of black spruce forests across the landscape in interior Alaska
Genet H, McGuire A D, Barrett K, Breen A, Euskirchen E S, Johnstone J F, Kasischke E S, Melvin A M, Bennett A, Mack M C, Rupp T S, Schuur A E G, Turetsky M R, Yuan F
Environmental Research Letters. 2013 8(4). p.045016
Soil Mapping and Process Modeling for Sustainable Land Use Management (2017)
Muñoz-Rojas Miriam, Pereira Paulo, Brevik Eric C., Cerdà Artemi, Jordán Antonio
Early postfire response of a northern range margin coast redwood forest community
Woodward Brian David, Romme William H., Evangelista Paul H.
Forest Ecology and Management. 2020 462 p.117966
An Improved Approach for Selecting and Validating Burn Severity Indices in Forested Landscapes
Gallagher Michael R., Skowronski Nicholas S., Lathrop Richard G., McWilliams Timothy, Green Edwin J.
Canadian Journal of Remote Sensing. 2020 46(1). p.100
Did enhanced afforestation cause high severity peat burn in the Fort McMurray Horse River wildfire?
Wilkinson S L, Moore P A, Flannigan M D, Wotton B M, Waddington J M
Environmental Research Letters. 2018 13(1). p.014018
LiDAR Principles, Processing and Applications in Forest Ecology (2023)
Guo Qinghua, Su Yanjun, Hu Tianyu
Wildfire effects on vadose zone hydrology in forested boreal peatland microforms
Thompson Dan K., Waddington James M.
Journal of Hydrology. 2013 486 p.48
Soil bacterial and fungal response to wildfires in the Canadian boreal forest across a burn severity gradient
Whitman Thea, Whitman Ellen, Woolet Jamie, Flannigan Mike D., Thompson Dan K., Parisien Marc-André
Soil Biology and Biochemistry. 2019 138 p.107571
Remote Sensing of Forest Burnt Area, Burn Severity, and Post-Fire Recovery: A Review
Kurbanov Eldar, Vorobev Oleg, Lezhnin Sergey, Sha Jinming, Wang Jinliang, Li Xiaomei, Cole Janine, Dergunov Denis, Wang Yibo
Remote Sensing. 2022 14(19). p.4714
Experimental drying intensifies burning and carbon losses in a northern peatland
Turetsky M.R., Donahue W.F., Benscoter B.W.
Nature Communications. 2011 2(1).
Variability and drivers of burn severity in the northwestern Canadian boreal forest
Whitman Ellen, Parisien Marc‐André, Thompson Dan K., Hall Ronald J., Skakun Robert S., Flannigan Mike D.
Ecosphere. 2018 9(2).
EVALUATION OF FIELD-BASED BURN INDICES FOR ASSESSING FOREST FIRE SEVERITY IN LUHANSK REGION, UKRAINE
SOSHENSKYI O., MYRONIUK V., ZIBTSEV S., HUMENIUK V., LASHCHENKO A.
Ukrainian Journal of Forest and Wood Science. 2022 13(1).
Tamarack and black spruce adventitious root patterns are similar in their ability to estimate organic layer depths in northern temperate forests
Veverica Timothy J., Kane Evan S., Kasischke Eric S.
Canadian Journal of Soil Science. 2012 92(5). p.799
Fire severity influences the response of soil microbes to a boreal forest fire
Holden Sandra R, Rogers Brendan M, Treseder Kathleen K, Randerson James T
Environmental Research Letters. 2016 11(3). p.035004
A growing importance of large fires in conterminous United States during 1984–2012
Yang Jia, Tian Hanqin, Tao Bo, Ren Wei, Pan Shufen, Liu Yongqiang, Wang Yuhang
Journal of Geophysical Research: Biogeosciences. 2015 120(12). p.2625
Vegetation Mortality within Natural Wildfire Events in the Western Canadian Boreal Forest: What Burns and Why?
Ferster Colin, Eskelson Bianca, Andison David, LeMay Valerie
Forests. 2016 7(12). p.187
Thermally enhanced spectral indices to discriminate burn severity in Mediterranean forest ecosystems
Remote Sensing and Modeling of Ecosystems for Sustainability XV (2018)
Quintano Maria del Carmen, Fernández-Manso Alfonso, Marcos Elena, Suarez-Seoane Susana, Calvo Leonor, García-Llamas Paula, Fernández-García Victor, Fernandez-Guisuraga Jose M., Gao Wei, Chang Ni-Bin, Wang Jinnian
GeoCBI: A modified version of the Composite Burn Index for the initial assessment of the short-term burn severity from remotely sensed data
De Santis Angela, Chuvieco Emilio
Remote Sensing of Environment. 2009 113(3). p.554
Impact of wildfire on the thermal behavior of northern peatlands: Observations and model simulations
Kettridge N., Thompson D. K., Waddington J. M.
Journal of Geophysical Research: Biogeosciences. 2012 117(G2).
Alaska’s changing fire regime — implications for the vulnerability of its boreal forestsThis article is one of a selection of papers from The Dynamics of Change in Alaska’s Boreal Forests: Resilience and Vulnerability in Response to Climate Warming.
Kasischke Eric S., Verbyla David L., Rupp T. Scott, McGuire A. David, Murphy Karen A., Jandt Randi, Barnes Jennifer L., Hoy Elizabeth E., Duffy Paul A., Calef Monika, Turetsky Merritt R.
Canadian Journal of Forest Research. 2010 40(7). p.1313
A Review of the Applications of Remote Sensing in Fire Ecology
Szpakowski David, Jensen Jennifer
Remote Sensing. 2019 11(22). p.2638
The Telecoupling GeoApp: A Web-GIS application to systematically analyze telecouplings and sustainable development
McCord Paul, Tonini Francesco, Liu Jianguo
Applied Geography. 2018 96 p.16
Using hyperspectral imagery to estimate forest floor consumption from wildfire in boreal forests of Alaska, USA
Lewis Sarah A., Hudak Andrew T., Ottmar Roger D., Robichaud Peter R., Lentile Leigh B., Hood Sharon M., Cronan James B., Morgan Penny
International Journal of Wildland Fire. 2011 20(2). p.255
Peatland Wildfire Severity and Post-fire Gaseous Carbon Fluxes
Gray Alan, Davies G. Matt, Domènech Rut, Taylor Emily, Levy Peter E.
Ecosystems. 2021 24(3). p.713
Assessing Forest Fire and Vegetation Recovery in the Black Hills, South Dakota
Mitchell Martin, Yuan Fei
GIScience & Remote Sensing. 2010 47(2). p.276
Computational Science and Its Applications – ICCSA 2020 (2020)
De Petris S., Momo E. J., Borgogno-Mondino E.
Deeper burning in a boreal fen peatland 1‐year post‐wildfire accelerates recovery trajectory of carbon dioxide uptake
Morison Matthew, van Beest Christine, Macrae Merrin, Nwaishi Felix, Petrone Richard
Ecohydrology. 2021 14(3).
Variation in plant community composition and vegetation carbon pools a decade following a severe fire season in interior Alaska
Gibson Carolyn M., Turetsky Merritt R., Cottenie Karl, Kane Evan S., Houle Gregory, Kasischke Eric S., Gilliam Frank
Journal of Vegetation Science. 2016 27(6). p.1187
Water balance of a burned and unburned forested boreal peatland
Thompson Dan K., Benscoter Brian W., Waddington James M.
Hydrological Processes. 2014 28(24). p.5954
The combined effect of fire and nitrogen addition on biodiversity and herbaceous aboveground productivity in a coastal shrubland
Qi Luyu, Song Yixin, Zhang Puyi, Sun Wenlong, Wang Wei, Yi Shijie, Li Jing, Liu Haifang, Bi Zhenggang, Du Ning, Guo Weihua
Frontiers in Plant Science. 2023 14
Wildfire combustion and carbon stocks in the southern Canadian boreal forest: Implications for a warming world
Dieleman Catherine M., Rogers Brendan M., Potter Stefano, Veraverbeke Sander, Johnstone Jill F., Laflamme Jocelyne, Solvik Kylen, Walker Xanthe J., Mack Michelle C., Turetsky Merritt R.
Global Change Biology. 2020 26(11). p.6062
Debating the greening vs. browning of the North American boreal forest: differences between satellite datasets
ALCARAZ‐SEGURA DOMINGO, CHUVIECO EMILIO, EPSTEIN HOWARD E., KASISCHKE ERIC S., TRISHCHENKO ALEXANDER
Global Change Biology. 2010 16(2). p.760
Radar Burn Ratio for fire severity estimation at canopy level: An example for temperate forests
Tanase M.A., Kennedy R., Aponte C.
Remote Sensing of Environment. 2015 170 p.14
Ecological drivers of post-fire regeneration in a recently managed boreal forest landscape of eastern Canada
Perrault-Hébert Maude, Boucher Yan, Fournier Richard, Girard François, Auger Isabelle, Thiffault Nelson, Grenon Frank
Forest Ecology and Management. 2017 399 p.74
Increased Peatland Nutrient Availability Following the Fort McMurray Horse River Wildfire
Beest , Petrone , Nwaishi , Waddington , Macrae
Diversity. 2019 11(9). p.142
Polarimetric Properties of Burned Forest Areas at C- and L-Band
Tanase Mihai A., Santoro Maurizio, Aponte Cristina, de la Riva Juan
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing. 2014 7(1). p.267
Boreal forest vegetation and fuel conditions 12 years after the 2004 Taylor Complex fires in Alaska, USA
Hammond Darcy H., Strand Eva K., Hudak Andrew T., Newingham Beth A.
Fire Ecology. 2019 15(1).
Post-fire peatland vegetation recovery: a case study in open rich fens of the Canadian boreal forest
Guêné-Nanchen Mélina, LeBlanc Marie-Claire, Rochefort Line
Botany. 2022 100(5). p.435

Committee on Publication Ethics


Abstract Export Citation Get Permission