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Prichard SJ, Hessburg PF, R. Hagmann K, et al. Adapting western North American forests to climate change and wildfires: ten common questions. Ecological Applications. 2021.
Prichard SJ. Fuel treatment effectiveness in the context of landform, vegetation, and large, wind‐driven wildfires Povak NA, ed. Ecological Applications. 2020;online early.
Prichard SJ. Fuel Characteristic Classification System (FCCS) field sampling and fuelbed development guide. (Andreu AG, ed.). Pacific Northwest Research Station; 2019:77. Available at: https://www.fs.usda.gov/treesearch/pubs/58172.
Prichard SJ. Fuel treatments and landform modify landscape patterns of burn severity in an extreme fire event Kennedy MC, ed. Ecological Applications. 2014;24(3). Available at: http://www.fs.fed.us/pnw/pubs/journals/pnw_2014_prichard001.pdf.
Progar RA. Prescribed Burning in Ponderosa Pine: Fuel Reductions and Redistributing Fuels near Boles to Prevent Injury Hrinkevich KH, ed. Fire Ecology. 2017;13(1).
Program UOEW, Northwest S, Center W, Resources W. Stewarding Forests and Communities: Final Report of the Dry Forest Zone Project. University of Oregon Ecosystem Workforce Program; 2014.PDF icon WP_48.pdf (8.57 MB)
Program UOEW, Northwest S, Center W, Resources W. Dry Forest Zone Maps. Ecosystem Workforce Program Working Paper. 2014.PDF icon 2014_DFZ_Maps.pdf (14.37 MB)
M. Pulido-Chavez F, Alvarado EC, DeLuca TH, Edmonds RL, Glassman SI. High-severity wildfire reduces richness and alters composition of ectomycorrhizal fungi in low-severity adapted ponderosa pine forests. Forest Ecology and Management. 2021;485.PDF icon pnw_2021_pulido-chavez001.pdf (1.77 MB)
Pyke DA. Restoration handbook for sagebrush steppe ecosystems with emphasis on greater sage-grouse habitat—Part 2. Landscape level restoration decisions. (Knick ST, ed.).; 2015:21p.PDF icon USGS Greater Sage Grouse Part II.pdf (6.27 MB)
Pyke DA. Restoration handbook for sagebrush steppe ecosystems with emphasis on greater sage-grouse habitat—Part 1. Concepts for understanding and applying restoration. (Chambers JC, ed.).; 2015:44p.
Pyke DA, Brooks ML, D'Antonio C. Fire as a restoration tool: A decision framework for predicting the control or enhancement of plants using fire. Restoration Ecology. 2010;18(3):10.PDF icon j.1526-100X.2010.00658.x.pdf (556.61 KB)
Pyke DA, Wirth TA, Beyers JL. Does seeding after wildfires in rangelands reduce erosion or invasive species?. Restoration Ecology. 2013;21(4):6.PDF icon rec12021.pdf (497.88 KB)
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Quaempts EJ. Aligning environmental management with ecosystem resilience: a First Foods example from the Confederated Tribes of the Umatilla Indian Reservation, Oregon, USA Jones KL, O'Daniel SJ, eds. Ecology and Society. 2018;23(2).
Quarles S, Leschak P, Worley K, Brown R, Iskowitz C. Lessons Learned from Waldo Canyon: FAC mitigation assessment team report. Insurance Institute for Business & Home Safety; 2013:48.PDF icon Waldo-Canyon-Rpt-FINAL.pdf (4.9 MB)
Quinn-Davidson LN. Impediments to prescribed fire across agency, landscape and manager: an example from northern California Varner MJ, ed. International Journal of Wildland Fire. 2012;21(3).
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R.Crist M. Rethinking the focus on forest fires in federal wildland fire management: Landscape patterns and trends of non-forest and forest burned area. Journal of Environmental Management. 2023;327.PDF icon Crist_2023_Rethinking the focus on forest fires in federal wildland fire mgmt_Landscape patterns and trends on nonforest and forest burned area.pdf (8.56 MB)
Radeloff VC. Rapid growth of the US wildland-urban interface raises wildfire risk Helmers DP, ed. PNAS. 2018.
Rao K, Williams PA, Diffenbaugh NS, Yebra M, Konings AG. Plant-water sensitivity regulates wildfire vulnerability. Nature Ecology & Evolution. 2022;Online.PDF icon Rao et al_2022_Plant-water_sensitivity_regulates_wildfire_vulnerability.pdf (2.41 MB)
Raphael MG. Assessing the Compatibility of Fuel Treatments, Wildfire Risk, and Conservation of Northern Spotted Owl Habitats and Populations in the Eastern Cascades: A Multi-Scale Analysis.; 2014. Available at: http://www.firescience.gov/projects/09-1-08-31/project/09-1-08-31_final_report.pdf.
Raposo JR. Experimental analysis of fire spread across a two-dimensional ridge under wind conditions Cabiddu S, ed. International Journal of Wildland Fire. 2015;Online early.
Rapp C, Rabung E, Wilson R, Toman E. Wildfire decision support tools: an exploratory study of use in the United States. International Journal of Wildland Fire. 2020;29(7).
Rappold AG. Community Vulnerability to Health Impacts of Wildland Fire Smoke Exposure Reves J, ed. Environ Sci Technol. 2017.
Raymond CL, Peterson DL, Rochefort RM. Climate change vulnerability and adaptation in the North Cascades region, Washington.; 2014. Available at: http://www.treesearch.fs.fed.us/pubs/47131.
Raymond CL, McKenzie D. Carbon Dynamics of Forests in Washington, USA: 21st Century Projections Based on Climate-Driven Changes in Fire Regimes. Ecological Applications. 2012;22:23. Available at: http://faculty.washington.edu/dmck/feradata/Raymond-McKenzie-2012.pdf.
Reed SC, Coe KK, Sparks JP, et al. Changes to Dryland Rainfall Result in Rapid Moss Mortality and Altered Soil Fertility. Nature Climate Change. 2012;2(10):4.

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