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2023
Pietruszka BM, Young JD, Short KC, et al. Consequential lightning-caused wildfires and the “let burn” narrative. Fire Ecology. 2023;19(50). Available at: https://fireecology.springeropen.com/articles/10.1186/s42408-023-00208-0.PDF icon s42408-023-00208-0.pdf (3.4 MB)
McClure CD, Pavlovic NR, Huang SM, Chaveste M, Wang N. Consistent, high-accuracy mapping of daily and sub-daily wildfire growth with satellite observations. International Journal of Wildland Fire. 2023.PDF icon Consistent, high-accuracy mapping of daily and sub-daily wildfire growth with satellite observations.pdf (3.77 MB)
Parks SA, Holsinger LM, Blankenship K, et al. Contemporary wildfires are more severe compared to the historical reference period in western US dry conifer forests. Forest Ecology and Management. 2023;544.
Albores IS, Buchholz RR, Ortega I, et al. Continental-scale Atmospheric Impacts of the 2020 Western U.S. Wildfires. Atmospheric Environment. 2023;294.PDF icon Continental-scale Atmospheric Impacts of the 2020 Western U.S. Wildfires.pdf (4.34 MB)
Hubert MM, Schweitzer JA, Giam X, Papeş M. Contrasting effects of urbanization and fire on understory plant communities in the natural and wildland–urban interface. Ecosphere. 2023;14(5).PDF icon Ecosphere - 2023 - Hubert - Contrasting effects of urbanization and fire on understory plant communities in the natural and.pdf (1.48 MB)
McDanold JS, Linn RR, Jonko AK, et al. DUET - Distribution of Understory using Elliptical Transport: A mechanistic model of leaf litter and herbaceous spatial distribution based on tree canopy structure. Ecological Modelling. 2023;483.
Potter BE. Examining the influence of mid-tropospheric conditions and surface wind changes on extremely large fires and fire growth days. International Journal of Wildland Fire. 2023. Available at: https://www.publish.csiro.au/wf/pdf/WF22187.PDF icon Examining the influence of mid-tropospheric conditions and surface wind changes on extremely large fires and fire growth days.pdf (4.44 MB)
Coble AA, Penaluna BE, Six LJ, Verschuyl J. Fire severity infuences large wood and stream ecosystem responses in western Oregon watersheds. Fire Ecology. 2023;19.PDF icon Fire severity influences large wood and stream ecosystem responses in western Oregon watersheds.pdf (4.43 MB)
Tihay-Felicelli V, Meerpoel-Pietri K, Santoni PA, et al. Flammability study of decking sections found at the Wildland–Urban interface at different scales. Fire Safety Journal. 2023;139.
Zaiats A, Cattau ME, Pilliod DS, et al. Forecasting natural regeneration of sagebrush after wildfires using population models and spatial matching. Landscape Ecology . 2023. Available at: https://link.springer.com/article/10.1007/s10980-023-01621-1.PDF icon Forecasting natural regeneration of sagebrush after wildfires using population models and spatial matching.pdf (1.13 MB)
McGinnis S, Kessenich L, Mearns L, et al. Future regional increases in simultaneous large Western USA wildfires. International Journal of Wildland Fire. 2023.PDF icon McGinnis et al_2023_Future regional increases in simulatneous large western USA fires.pdf (944.95 KB)
Williams JN, Safford HD, Enstice N, Steel ZL, Paulson AK. High-severity burned area and proportion exceed historic conditions in Sierra Nevada, California, and adjacent ranges. Ecosphere. 2023;14(1).PDF icon Ecosphere - 2023 - Williams - High‐severity burned area and proportion exceed historic conditions in Sierra Nevada .pdf (1.96 MB)
Alvarez-Ruiz L, Pausas JG, Blumstein DT, Putman BJ. Lizards' response to the sound of fire is modified by fire history. Animal Behaviour. 2023;196:91-102.PDF icon 1-s2.0-S0003347222003207-main.pdf (1.46 MB)
Alvarez-Ruiz L, Pausas JG, Blumstein DT, Putman BJ. Lizards' response to the sound of fire is modified by fire history. Animal Behaviour. 2023;196:91-102.PDF icon 1-s2.0-S0003347222003207-main.pdf (1.46 MB)
Jaffe MR, Kreider MR, Affleck DLR, et al. Mesic mixed-conifer forests are resilient to both historical high-severity fire and contemporary reburns in the US Northern Rocky Mountains. Forest Ecology and Management. 2023;545.
Cova G, Kane VR, Prichard S, North M, Cansler A. The outsized role of California’s largest wildfires in changing forest burn patterns and coarsening ecosystem scale. Forest Ecology and Management. 2023;528.PDF icon 1-s2.0-S0378112722006144-main.pdf (7.12 MB)
Kieta KA, Owens PN, Petticrew EL. Post-wildfire contamination of soils and sediments by polycyclic aromatic hydrocarbons in north-central British Columbia, Canada. International Journal of Wildland Fire. 2023.PDF icon Post-wildfire contamination of soils and sediments by polycyclic aromatic hydrocarbons in north-central British Columbia, Canada.pdf (4.19 MB)
Vilà-Vilardell L, De Cáceres M, Piqué M, Casals P. Prescribed fire after thinning increased resistance of sub-Mediterranean pine forests to drought events and wildfires. Forest Ecology and Management. 2023;527.
Carter SK, Haby TS, Meineke JK, et al. Prioritizing science efforts to inform decision making on public lands. Frontiers in Ecology and the Environment. 2023. Available at: https://doi.org/10.1002/fee.2672.PDF icon Frontiers in Ecol Environ - 2023 - Carter.pdf (1.9 MB)
Francis EJ, Pourmohammadi P, Steel ZL, Collins BM, Hurteau MD. Proportion of forest area burned at high-severity increases with increasing forest cover and connectivity in western US watersheds. Landscape Ecology. 2023;38:2501–2518. Available at: https://link.springer.com/article/10.1007/s10980-023-01710-1.PDF icon s10980-023-01710-1.pdf (2.7 MB)
Berman MT, Ye X, Thapa LH, et al. Quantifying burned area of wildfires in the western United States from polar-orbiting and geostationary satellite active-fire detections. International Journal of Wildland Fire . 2023.PDF icon Quantifying burned area of wildfires in the western United States from polar-orbiting and geostationary satellite active-fire detections .pdf (2.67 MB)
Dahl KA, Abatzoglou JT, Phillips CA, et al. Quantifying the contribution of major carbon producers to increases in vapor pressure deficit and burned area in western US and southwestern Canadian forests. Environmental Research Letters. 2023;18.PDF icon Quantifying the contribution of major carbon producers to increases in vapor pressure deficit and burned area in western US and southwestern Canadian forests .pdf (6.65 MB)
Davis KT, Robles MD, Kemp KB, et al. Reduced fire severity offers near-term buffer to climate-driven declines in conifer resilience across the western United States. PNAS. 2023;120(11).PDF icon pnas.2208120120.pdf (5.12 MB)
Rodman KC, Davis KT, Parks SA, et al. Refuge-yeah or refuge-nah? Predicting locations of forest resistance and recruitment in a fiery world. Global Change Biology. 2023.
Pau M, Gauthier S, Boulanger Y, et al. Response of forest productivity to changes in growth and fire regime due to climate change. Canadian Journal of Forest Research. 2023.PDF icon Response of forest productivity to changes in growth and fire regime due to climate change.pdf (3.98 MB)

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