Publications Library

Found 234 results
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2019
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.
Jolly WM. Severe Fire Danger Index: A Forecastable Metric to Inform Firefighter and Community Wildfire Risk Management Freeborn PH, ed. Fire. 2019;2(3).
Ager AA. Tradeoffs between US national forest harvest targets and fuel management to reduce wildfire transmission to the wildland urban interface Houtman RM, ed. Forest Ecology and Management. 2019;434.
Pausas JG. Wildfires as an ecosystem service Keeley JE, ed. Frontiers in Ecology and the Environment. 2019.
2018
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).
Holden ZA. Decreasing fire season precipitation increased recent western US forest wildfire activity Swanson A, ed. PNAS. 2018;115(36).
Staley DM. Estimating post-fire debris-flow hazards prior to wildfire using a statistical analysis of historical distributions of fire severity from remote sensing data Tillery AC, ed. International Journal of Wildland Fire. 2018;27(9).
Povak NA. Evidence for scale‐dependent topographic controls on wildfire spread Hessburg PF, ed. Ecosphere. 2018;9(10).
Pellegrini AFA, al. et. Fire frequency drives decadal changes in soil carbon and nitrogen and ecosystem productivity Ahlström A, ed. Nature. 2018;553.
Parks SA. High-severity fire: Evaluating its key drivers and mapping its probability across western US forests Holsinger LM, ed. Environmental Research Letters. 2018;13. Available at: https://www.fs.fed.us/rmrs/publications/high-severity-fire-evaluating-its-key-drivers-and-mapping-its-probability-across.
Parks SA. High-severity fire: Evaluating its key drivers and mapping its probability across western US forests Holsinger LM, ed. Environmental Research Letters. 2018;13. Available at: https://www.fs.fed.us/rmrs/publications/high-severity-fire-evaluating-its-key-drivers-and-mapping-its-probability-across.
Pingree MRA. The influence of fire history on soil nutrients and vegetation cover in mixed-severity fire regime forests of the eastern Olympic Peninsula, Washington, USA DeLuca TH, ed. Forest Ecology and Management. 2018;422.
Tepley AJ. Influences of fire–vegetation feedbacks and post‐fire recovery rates on forest landscape vulnerability to altered fire regimes Thomann E, ed. Journal of Ecology. 2018.
Tepley AJ. Influences of fire–vegetation feedbacks and post‐fire recovery rates on forest landscape vulnerability to altered fire regimes Thomann E, ed. Journal of Ecology. 2018.
Halofsky JS. The nature of the beast: examining climate adaptation options in forests with stand‐replacing fire regimes Donato DC, ed. Ecosphere. 2018;9(3).
Thompson MP. Rethinking the wildland fire management system MacGregor DG, ed. Journal of Forestry. 2018;fvy020.
Pausas JG. Towards an understanding of the evolutionary role of fire in animals Parr CL, ed. Evoluntionary Ecology. 2018;32(2-3). Available at: https://link.springer.com/article/10.1007/s10682-018-9927-6.
Pausas JG. Towards an understanding of the evolutionary role of fire in animals Parr CL, ed. Evoluntionary Ecology. 2018;32(2-3). Available at: https://link.springer.com/article/10.1007/s10682-018-9927-6.

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