Bibliography
Works cited in this guide. references.bib holds a larger working set;
only entries actually referenced appear here, matching the PDF.
missing author in DevelopmentStructureCanadian1992
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Hal E. Anderson. Predicting Wind-driven Wind Land Fire Size and Shape. U.S. Department of Agriculture, Forest Service, Intermountain Forest and Range Experiment Station, 1983.
Patricia L. Andrews. Modeling wind adjustment factor and midflame wind speed for Rothermel's surface fire spread model. Technical Report RMRS-GTR-266, U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Ft. Collins, CO, 2012. URL: https://www.fs.usda.gov/treesearch/pubs/39729 (visited on 2025-11-27), doi:10.2737/RMRS-GTR-266.
Patricia L. Andrews. The Rothermel surface fire spread model and associated developments: A comprehensive explanation. Technical Report RMRS-GTR-371, U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Ft. Collins, CO, 2018. URL: https://www.fs.usda.gov/treesearch/pubs/55928 (visited on 2024-11-04), doi:10.2737/RMRS-GTR-371.
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Mark A. Finney. FARSITE: Fire Area Simulator-model development and evaluation. Technical Report RMRS-RP-4, U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station, Ft. Collins, CO, 1998. URL: https://www.fs.usda.gov/treesearch/pubs/4617 (visited on 2024-11-04), doi:10.2737/RMRS-RP-4.
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Nikolaos Kalogeropoulos. Wildfire Simulations to Protect Rural Communities and Avoid Dire Evacuations. PhD Thesis, Imperial College London, London, 2025. URL: https://hdl.handle.net/10044/1/124240, doi:10.25560/124240.
Nikolaos Kalogeropoulos, Alexander Castagna, and Guillermo Rein. A Gaussian Dispersion Model for Haze Spread with Downwind Terrain Effects. Submitted to the Journal of Loss Prevention in the Process Industry., 2025.
Chris Lautenberger. Wildland fire modeling with an Eulerian level set method and automated calibration. Fire Safety Journal, 62:289–298, November 2013. URL: https://linkinghub.elsevier.com/retrieve/pii/S0379711213001343 (visited on 2026-03-17), doi:10.1016/j.firesaf.2013.08.014.
Roger D. Ottmar, David V. Sandberg, Cynthia L. Riccardi, and Susan J. Prichard. An overview of the Fuel Characteristic Classification System — Quantifying, classifying, and creating fuelbeds for resource planningThis article is one of a selection of papers published in the Special Forum on the Fuel Characteristic Classification System. Canadian Journal of Forest Research, 37(12):2383–2393, December 2007. URL: http://www.nrcresearchpress.com/doi/10.1139/X07-077 (visited on 2025-07-24), doi:10.1139/x07-077.
Dwi M.J. Purnomo, Yiren Qin, Maria Theodori, Maryam Zamanialaei, Chris Lautenberger, Arnaud Trouvé, and Michael Gollner. Reconstructing modes of destruction in wildland–urban interface fires using a semi-physical level-set model. Proceedings of the Combustion Institute, January 2024. doi:10.1016/j.proci.2024.105755.
missing school in qinPhysicsBasedEulerianFramework2025
Ronald G Rehm and Randall J McDermott. Fire-front propagation using the level set method. Technical Report NBS TN 1611, National Bureau of Standards, Gaithersburg, MD, 2009. Edition: 0. URL: https://nvlpubs.nist.gov/nistpubs/Legacy/TN/nbstechnicalnote1611.pdf (visited on 2025-11-27), doi:10.6028/NIST.TN.1611.
missing journal in reinSmoulderingCombustionPhenomena2009
F. Reisen, C. P. Meyer, C. J. Weston, and L. Volkova. Ground‐Based Field Measurements of PM$_\textrm 2.5$ Emission Factors From Flaming and Smoldering Combustion in Eucalypt Forests. Journal of Geophysical Research: Atmospheres, 123(15):8301–8314, August 2018. URL: https://agupubs.onlinelibrary.wiley.com/doi/10.1029/2018JD028488 (visited on 2025-12-08), doi:10.1029/2018JD028488.
Richard C. Rothermel. A mathematical model for predicting fire spread in wildland fuels. Research Paper INT-115, US Forest Service, Odgen, Utah, 1972. URL: https://research.fs.usda.gov/treesearch/32533 (visited on 2025-11-27).
N. Sardoy, J. L. Consalvi, A. Kaiss, A. C. Fernandez-Pello, and B. Porterie. Numerical study of ground-level distribution of firebrands generated by line fires. Combustion and Flame, 154(3):478–488, August 2008. URL: https://www.sciencedirect.com/science/article/pii/S0010218008001600 (visited on 2025-11-27), doi:10.1016/j.combustflame.2008.05.006.
Joe Scott. Comparison of Crown Fire Modeling Systems Used in Three Fire Management Applications. USDA Forest Service - Research Paper RMRS-RP, May 2006.
Joe H. Scott. Nomographs for estimating surface fire behavior characteristics. Gen. Tech. Rep. RMRS-GTR-192. Fort Collins, CO: U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station. 119 p., 2007. URL: https://research.fs.usda.gov/treesearch/27177 (visited on 2026-03-06), doi:10.2737/RMRS-GTR-192.
J A Sethian. A fast marching level set method for monotonically advancing fronts. Proceedings of the National Academy of Sciences, 93(4):1591–1595, February 1996. URL: https://pnas.org/doi/full/10.1073/pnas.93.4.1591 (visited on 2025-11-27), doi:10.1073/pnas.93.4.1591.
Cordy Tymstra, R.W. Bryce, B.M. Wotton, S.W. Taylor, and O.B. Armitage. Development and structure of Prometheus: the Canadian Wildland Fire Growth Simulation Model. Technical Report NOR-X-417, Northern Forestry Centre, Edmonton, 2010. OCLC: 499432152.
Shawn Urbanski. Wildland fire emissions, carbon, and climate: Emission factors. Forest Ecology and Management, 317:51–60, April 2014. URL: https://linkinghub.elsevier.com/retrieve/pii/S0378112713003447 (visited on 2025-12-08), doi:10.1016/j.foreco.2013.05.045.
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