| A | B | C | D | E | F | G | H | I | J | K | L | M | N | O | P | Q | R | S | T | U | V | W | X | Y | Z | |
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1 | Number | Year | Citation | Link | ||||||||||||||||||||||
2 | 269 | 2026 | Sil Â, Honrado JP, Fernandes PM, Azevedo JC (2026) Evaluation of cost-effectiveness and economic sustainability of fire-smart strategies based on the Fire Protection Ecosystem Service. Fire Ecology. | https://doi.org/10.1186/s42408-026-00517-0 | ||||||||||||||||||||||
3 | 268 | 2026 | Hammond, K.L., Wagner, B. & Nitschke, C.R. Reproductive maturity drives persistence of an endangered obligate seeder under future fire regimes irrespective of climate change, while targeted reseeding may enhance recovery. Landsc Ecol (2026). | https://doi.org/10.1007/s10980-026-02400-4 | ||||||||||||||||||||||
4 | 267 | 2026 | Pickering, B.J., D. Kultaev, C.R. Nitschke, E. Marshall, D. Ababei, T.D. Penman, L.T. Bennett. 2026. Overriding influence of climate on future carbon stocks in Australian temperate forests. Science of the Total Environment, 181260. | https://10.1016/j.scitotenv.2025.181260 | ||||||||||||||||||||||
5 | 266 | 2026 | Ameray, A., Pureswaran, D.S., Laganière, J. et al (2026) . Landscape carbon trajectories after spruce budworm outbreaks in Canada’s Eastern boreal forest: effects of salvage intensity and wood-use pathways. Landsc Ecol. | https://doi.org/10.1007/s10980-026-02376-1 | ||||||||||||||||||||||
6 | 265 | 2026 | Duveneck, M. J., Fisichelli, N., & Miller, K. M. (2026). Novel threats and response to Acadia National Park forests: Simulating the resist–accept–direct management framework. Ecosphere, 17(5), e70666. | https://doi.org/10.1002/ecs2.70666 | ||||||||||||||||||||||
7 | 264 | 2026 | Cho, W. & Ko, D. W. 2026. Simulating impacts of climate change on young-aged forest succession and carbon dynamics. Forests, 17(7), 794. | https://doi.org/10.3390/f17070794 | ||||||||||||||||||||||
8 | 263 | 2025 | Belisle, A.-C.; Mantyka-Pringle, C.; Boulanger, Y.; Croteau, B.; Wapachee, A.; Louis-Joseph, D.; Desrochers, M.; Asselin, H. 2025. Indigenous knowledge, forest landscape modeling and the cumulative effects of environmental changes. Ecol. Appl. | https://doi.org/10.1002/eap.70053 | ||||||||||||||||||||||
9 | 262 | 2025 | Furniss, T. J., P. F. Hessburg, D. J. Churchill, M. S. Wigmosta, N. Povak, Z. Duan, and R. B. Salter. 2025. Wildfire and forest treatments mitigate–but cannot forestall–climate-driven changes in streamflow regimes in a western US mountain landscape. Environmental Research Letters 20 084039. | https://doi.org/10.1088/1748-9326/ade896 | ||||||||||||||||||||||
10 | 261 | 2025 | Hardy, C.; Messier, C.; Boulanger, Y.; Cyr, D.; Filotas, E. 2025. Climate is stronger than you think: Exploring functional planting and TRIAD zoning for increased forest resilience to extreme disturbances. PLoS ONE. | https://doi.org/10.1371/journal.pone.0326627 | ||||||||||||||||||||||
11 | 260 | 2025 | Jones, K., J. Vukomanovic, Z.J. Robbins, R.M. Scheller. 2025. Prescribed fire management impacts on forest succession trajectories in future southern Appalachian forests. Ecological Modelling 510: 111323. | https://doi.org/10.1016/j.ecolmodel.2025.111323 | ||||||||||||||||||||||
12 | 259 | 2025 | Labadie, G.; Boulanger, Y.; Drapeau, P.; Stralberg, D.; Tremblay, J.A. 2025. Projecting bird assemblage responses to climate-driven changes in managed boreal forest landscapes of Québec. Biol. Conserv. | https://doi.org/10.1016/j.biocon.2024.110956 | ||||||||||||||||||||||
13 | 258 | 2025 | Flanagan, S.A., Z.J. Robbins, M.A. Callaham, J.K. Hiers, B.R. Miranda, J.J. O’Brien, R.M. Scheller, E.L. Loudermilk. 2025. The Rapid Initial Community Builder (RICB) V1.1 for LANDIS-II. MethodsX. | https://doi.org/10.1016/j.mex.2025.103765 | ||||||||||||||||||||||
14 | 257 | 2025 | De Jager, N.R., Neumann, W., Girona, M.M. et al. Identifying strategies to manage boreal forests: simulating moose and timber management scenarios at a landscape scale in the face of changing environmental conditions. Eur J Forest Res 144, 525–546 (2025). | https://doi.org/10.1007/s10342-025-01775-4 | ||||||||||||||||||||||
15 | 256 | 2025 | Gustafson, EJ, MS Lucash, AZ Shvidenko, BR Sturtevant, D Schepashcenko, C Mast, and N Williams. 2025. Climate change threatens the sustainability of current timber harvesting practices across a latitudinal gradient in Siberia. European Journal of Forest Research. | https://doi.org/10.1007/s10342-025-01782-5 | ||||||||||||||||||||||
16 | 255 | 2025 | Mast, CN, NG Williams, MG Betts, and MS Lucash. 2025. Land sharing, land sparing, and Triad forestry: modeling forest composition, diversity, and carbon storage under climate change and natural disturbances. Landscape Ecology 40 (2), 1-22. | https://doi.org/10.1007/s10980-024-02041-5 | ||||||||||||||||||||||
17 | 254 | 2025 | Boardman, E.N., Z. Duan, M.S. Wigmosta, S.W. Flake, M.R. Sloggy, J. Tarricone, and A.A. Harpold. 2025. Restoring historic forest disturbance frequency would partially mitigate droughts in the central Sierra Nevada mountains. Water Resources Research 61: p.e2024WR039227. | https://doi.org/10.1029/2024WR039227 | ||||||||||||||||||||||
18 | 253 | 2025 | Hefty, K.L., N.A. Povak, P.N. Manley, S.W. Flake, and K.A. Zeller. 2025. Spatiotemporal patterns of diversity and diversity-stability relationships as a function of compounding disturbances and forest management. Landscape Ecology 40: 84. | http://dx.doi.org/10.1007/s10980-025-02075-3 | ||||||||||||||||||||||
19 | 252 | 2025 | Chen, H., M.R. Sloggy, S.W. Flake, S. Evans, C.J. Maxwell. 2025. Impacts of climate-driven insect population change on sawtimber provisioning, carbon sequestration, and water retention: a case study of bark beetle outbreaks in the USA. Frontiers in Forests and Global Change, 7, p.1513721. | https://doi.org/10.3389/ffgc.2024.1513721 | ||||||||||||||||||||||
20 | 251 | 2025 | Robles, D.; Boulanger, Y.; Pascual, J.; Danneyrolles, V.; Bergeron, Y.; Drobyshev, I. 2025. Timber harvesting was the most important factor driving changes in vegetation composition, as compared to climate and fire regime shifts, in northeastern North American temperate forests since AD 1830. Glob. Chang Biol. | https://doi.org/10.1007/s10980-025-02043-x | ||||||||||||||||||||||
21 | 250 | 2024 | Ameray, A., Cavard, X., Cyr, D., Valeria, O., Girona, M. M., & Bergeron, Y. (2024). One century of carbon dynamics in the eastern Canadian boreal forest under various management strategies and climate change projections. Ecological Modelling, 498, 110894. | https://doi.org/10.1016/j.ecolmodel.2024.110894 | ||||||||||||||||||||||
22 | 249 | 2024 | Furniss, T. J., N. Povak, P. F. Hessburg, R. B. Salter, and M. Wigmosta. 2024. Wildfire management decisions outweigh mechanical treatment as the keystone to forest landscape adaptation. Fire Ecology, 20:105 | https://doi.org/10.1186/s42408-024-00339-y | ||||||||||||||||||||||
23 | 248 | 2024 | Labadie, G.; Cadieux, P.; Moreau, L.; Bognounou, F.; Thiffault, E.; Cyr, D.; Boulanger, Y.; Stralberg, D.; Grondin, P.; Tremblay, J.A. 2024. Are forest management practices to improve carbon balance compatible with maintaining bird diversity under climate change? A case study in Eastern North America. PLoS Climate. | https://doi.org/10.1371/journal.pclm.0000293 | ||||||||||||||||||||||
24 | 247 | 2024 | McQuillan, K.A., A.C. Oishi, Z.J. Robbins, R.M. Scheller, K.L. Martin. 2024. Interactions between climate and species drive future carbon and water balance. Ecohydrology 0:e2748 | https://doi.org/10.1002/eco.2748 | ||||||||||||||||||||||
25 | 246 | 2024 | Gustafson, EJ, MS Lucash, AZ Shvidenko, BR Sturtevant, BR Miranda, D Schepaschenko, H Matsumoto. 2024. Climate change and disturbance interact to alter landscape reflectivity (albedo) in boreal forests across a large latitudinal gradient in Siberia. Science of the Total Environment 956 | https://doi.org/10.1016/j.scitotenv.2024.177043 | ||||||||||||||||||||||
26 | 245 | 2024 | Reese, G.C. B.R. Sturtevant, C.C. Dymond, K.M. Quigley, M.J. Duveneck, M.S. Lucash, E.J. Gustafson, R.M. Scheller, M.B. Russell, B.R. Miranda, B.R. 2024. Best practices for calibration of forest landscape models using fine-scaled reference information. Canadian Journal of Forest Research | https://doi.org/10.1139/cjfr-2024-0085 | ||||||||||||||||||||||
27 | 244 | 2024 | Robbins, Z., E.L. Loudermilk, T.G. Mozelewski, K. Jones, and R.M. Scheller. 2023. The fire regimes of the Southern Appalachians may radically shift under climate change. Fire Ecology 20: 2 | https://doi.org/10.1186/s42408-023-00231-1 | ||||||||||||||||||||||
28 | 243 | 2024 | Manley, P.N., J.W. Long, and R.M. Scheller. 2024. Keeping up with the landscapes: promoting resilience in dynamic social-ecological systems. Ecology & Society 29:3. | https://ecologyandsociety.org/vol29/iss1/art3/ | ||||||||||||||||||||||
29 | 242 | 2024 | McNonagle, G.R.J.; Lantz, V.; Taylor, A.; Boulanger, Y.; Sharma, C.; Withey, P.; Hennigar, C. 2024. Economic impacts of climate change on forests: a PICUS-LANDIS-CGE modeling approach. Can. J. For. Res. | https://doi.org/10.1139/cjfr-2024-0089 | ||||||||||||||||||||||
30 | 241 | 2024 | Thomas, M.; Boulanger, Y.; Asselin, H.; Lamara, M.; Fenton, N.J. 2024. How will climate change and forest harvest ing influence the distribution of two culturally salient species?. Science of the Total Environment. | https://doi.org/10.1016/j.scitotenv.2024.172148 | ||||||||||||||||||||||
31 | 240 | 2023 | Ameray, A., Cavard, X., & Bergeron, Y. (2023). Climate change may increase Quebec boreal forest productivity in high latitudes by shifting its current composition. Frontiers in Forests and Global Change, 6, 1020305. | https://doi.org/10.3389/ffgc.2023.1020305 | ||||||||||||||||||||||
32 | 239 | 2023 | Boulanger, Y.; Pascual Puigdevall, J.; Bergeron, Y.; Brice, M.-H.; Cyr, D.; De Grandpré, L.; Fortin, D.; Gauthier, S.; Grondin, P.; Labadie, G.; Leblond, M.; Marchand, M.; Splawinski, T.; St-Laurent, M.-H.; Thiffault, E.; Tremblay, J.; Vaillancourt, M.-A.; Yamasaki, S. 2023. A regional integrated assessment of the impacts of climate change and of the potential adaptation avenues for Quebec’s forests. Can. J. For. Res. 53:556-578. | https://doi.org/10.1139/cjfr-2022-0282 | ||||||||||||||||||||||
33 | 238 | 2023 | Cho, W., Lim, W., Choi, W. I., Yang, H. M., & Ko, D. W. 2023. Modeling the effects of forest management scenarios on aboveground biomass and wood production: a study in Mt. Gariwang, South Korea. Journal of Korean Society of Forest Science, 112(2), 173-187 | https://doi.org/10.14578/jkfs.2023.112.2.173 | ||||||||||||||||||||||
34 | 237 | 2023 | Hardy C, Messier C, Valeria O, Filotas E. 2023. A LANDIS-II extension for simulating forest road networks. Can J For Res 53:503–518. | https://doi.org/10.1139/cjfr-2022-0306 | ||||||||||||||||||||||
35 | 236 | 2023 | Hardy C, Messier C, Boulanger Y. 2023. Land sparing and sharing patterns in forestry: exploring even-aged and uneven-aged management at the landscape scale. Landsc Ecol 38:2815–2838. | https://doi.org/10.1007/s10980-023-01742-7 | ||||||||||||||||||||||
36 | 235 | 2023 | Zeller, K. A., N.A. Povak, P. Manley, S.W. Flake, and K.L. Hefty, K. L. 2023. Managing for biodiversity: The effects of climate, management and natural disturbance on wildlife species richness. Diversity and Distributions, 29(12), 1623–1638. | https://doi.org/10.1111/ddi.13782 | ||||||||||||||||||||||
37 | 234 | 2023 | Furniss, T.J., N.A. Povak, P.F. Hessburg, R.B. Salter, Z. Duan, and M. Wigmosta. 2023. Informing climate adaptation strategies using ecological simulation models and spatial decision support tools. Frontiers in Forests and Global Change, 6, p.1269081. | http://dx.doi.org/10.3389/ffgc.2023.1269081 | ||||||||||||||||||||||
38 | 233 | 2023 | Ameray, A., Bergeron, Y., & Cavard, X. (2023). Modelling the potential of forest management to mitigate climate change in Eastern Canadian forests. Scientific Reports, 13(1), 14506. | https://doi.org/10.1038/s41598-023-41790-2 | ||||||||||||||||||||||
39 | 232 | 2023 | Labadie, G.; Bouderbala, I.; Boulanger, Y.; Béland, J.-M.; Hébert, C.; Allard, A.; Hebblewhite, M.; Fortin, D. 2023. The umbrella value of caribou management strategies for biodiversity conservation in boreal forest under global change. Sci. Tot. environ. | https://doi.org/10.1016/j.scitotenv.2023.168087 | ||||||||||||||||||||||
40 | 231 | 2023 | Labadie, G.; Hardy, C.; Boulanger, Y.; Vanlandeghem, V.; Hebblewhite, M.; Fortin, D. 2023. Global change impacts a thretened species through alteration of predator-prey dynamics. Ecosphere, 14:e4485. | https://doi.org/10.21203/rs.3.rs-1317079/v1 | ||||||||||||||||||||||
41 | 230 | 2023 | Lucash, M.S., N. Williams, V. Srikrishnan, K. Keller, R.M. Scheller, C. Hegelson, R.E. Nicholas and E.A. Smithwick. 2023. Balancing multiple forest management objectives under climate change in central Wisconsin, USA. Trees, Forests and People, p.100460. | https://doi.org/10.1016/j.tfp.2023.100460 | ||||||||||||||||||||||
42 | 229 | 2023 | Bouderbala, I.; Labadie, G.; Béland, J.-M.; Boulanger, Y.; Hébert, C.; Desrosiers, P.; Allard, A.; Fortin, D. 2023. Effects of global change on bird and beetle populations in boreal forest landscape: an assemblage dissimilarity analysis. Diversity and Distributions, 29:757-773. | https://doi.org/10.1111/ddi.13697 | ||||||||||||||||||||||
43 | 228 | 2023 | Bouderbala, I.; Labadie, G.; Béland, J.-M.; Tremblay, J.Q.; Boulanger, Y.; Hébert, C.; Desrosiers, P.; Allard, A.; Fortin, D. 2023. Long-term effect of forest harvesting on boreal species assemblages under climate change. PLoS Climate, 2:e0000179. | https://doi.org/10.1371/journal.pclm.0000179 | ||||||||||||||||||||||
44 | 227 | 2023 | Bychkov, I. and A. Popova. 2023. Forest Landscape Model Initialization with Remotely Sensed-Based Open-Source Databases in the Absence of Inventory Data. Forests 14: p.1995. | https://www.mdpi.com/1999-4907/14/10/1995/pdf | ||||||||||||||||||||||
45 | 226 | 2023 | Nenzen, H.; Boulanger, Y.; Campbell, E.; Price, D.T.; Mallon, C.; Petty, A.; Stralberg, D. 2023. Oil sands restoration with warm-adapted trees improves outcomes under moderate but not severe climate change scenarios. Ecosph re | https://doi.org/10.1002/ecs2.4721 | ||||||||||||||||||||||
46 | 225 | 2023 | Hotta W, Haga C, Morimoto J, Suzuki SN, Matsui T, Owari T, Shibata H, Nakamura F. 2023. Leaving disturbance legacies conserves boreal conifers and maximizes net CO2 absorption under climate change and more frequent and larger windthrow regimes. Landscape Ecology 38, 1785–1805. | https://doi.org/10.1007/s10980-023-01680-4 | ||||||||||||||||||||||
47 | 224 | 2023 | Osborne P., Aquilué N., Mina M., Moe K., Jemtrud M., Messier C. 2023 A trait-based approach to both forestry and timber building can synchronize forest harvest and resilience. PNAS Nexus: pgad254 | https://doi.org/10.1093/pnasnexus/pgad254 | ||||||||||||||||||||||
48 | 223 | 2023 | Gustafson, E.J., C.C. Kern, J.M. Kabrick. 2023. Can assisted tree migration today sustain forest ecosystem goods and services for the future? Forest Ecology and Management. | https://doi.org/10.1016/j.foreco.2022.120723 | ||||||||||||||||||||||
49 | 222 | 2023 | Weiss, S.A., A.M. Marshall, K.R. Hayes, D. Nicolsky, B. Buma. and M.S. Lucash. 2023. Future transitions from a conifer to a deciduous-dominated landscape are accelerated by greater wildfire activity and climate change in interior Alaska. Landsc Ecol (2023). | https://doi.org/10.1007/s10980-023-01733-8 | ||||||||||||||||||||||
50 | 221 | 2023 | Williams, NG, MS Lucash, MR Ouellette, T Brussel, EJ Gustafson, SA Weiss, BR Sturtevant, DG Schepaschenko and A Shvidenko. 2023. Simulating dynamic fire regime and vegetation change in a warming Siberia. Fire Ecology 19: 33 | https://doi.org/10.1186/s42408-023-00188-1 | ||||||||||||||||||||||
51 | 220 | 2023 | Suárez-Muñoz, M., F.J. Bonet-García, R. Navarro-Cerrillo, J. Herrero, and M. Mina. 2023. Forest management scenarios drive future dynamics of Mediterranean planted pine forests under climate change. Landscape Ecology: 1-16. | https://doi.org/10.1007/s10980-023-01678-y | ||||||||||||||||||||||
52 | 219 | 2023 | Jung, C.G., A.R. Keyser, C.C. Remy, D. Krofcheck, C.D. Allen, and M.D. Hurteau. 2023. Topographic information improves simulated patterns of post-fire conifer regeneration in the southwest United States. Global Change Biology, 00, 1– 12. | https://doi.org/10.1111/gcb.16764 | ||||||||||||||||||||||
53 | 218 | 2023 | Lucash, M.S., A.M. Marshall, S.A. Weiss, S.A., J.W. McNabb, D.J. Nicolsky, G.N. Flerchinger, T.E. Link, J.G. Vogel, R.M. Scheller, R.Z. Abramoff, and V.E. Romanovsky. 2023. Burning trees in frozen soil: Simulating fire, vegetation, soil, and hydrology in the boreal forests of Alaska. Ecological Modelling 481, p.110367. | https://doi.org/10.1016/j.ecolmodel.2023.110367 | ||||||||||||||||||||||
54 | 217 | 2022 | Holland, T., S. Evans, J.W. Long, C.J. Maxwell, R.M. Scheller, and M. Potts. 2022. The management costs of alternative forest management strategies in the Lake Tahoe basin. Ecology and Society 27: 43 | https://ecologyandsociety.org/vol27/iss4/art43/ | ||||||||||||||||||||||
55 | 216 | 2022 | Long, J.W., S. Drury, S. Evans, C.J. Maxwell, and R.M. Scheller. 2022. Comparing smoke emissions and impacts under alternative forest management regimes. Ecology and Society 27: 26. | https://ecologyandsociety.org/vol27/iss4/art26/ | ||||||||||||||||||||||
56 | 215 | 2022 | White, A., T. Holland, E. Abelson, A. Kretchun, C.J. Maxwell, and R.M. Scheller. 2022. Simulating wildlife habitat dynamics over the next century to help inform best management strategies for biodiversity in the Lake Tahoe Basin, California. Ecology and Society 27: 31. | https://ecologyandsociety.org/vol27/iss2/art31/ | ||||||||||||||||||||||
57 | 214 | 2022 | Evans, S., T. Holland, J. Long, C. Maxwell, R.M. Scheller, E. Patrick, and M. Pott. 2022. Modeling the risk reduction benefit of forest management using a case study in the Lake Tahoe Basin. Ecology and Society 27: 18. | https://ecologyandsociety.org/vol27/iss2/art18/ | ||||||||||||||||||||||
58 | 213 | 2022 | Leblond, M.; Boulanger, Y.; Pascual Puigevall, J.; St-Laurent, M.-H. 2022. There is still time to reconcile forest management with climate-driven declines in habitat suitability for boreal caribou. Global Ecology and Conservation, 39:e02294. | https://doi.org/10.1016/j.gecco.2022.e02294 | ||||||||||||||||||||||
59 | 212 | 2022 | Maxwell, C.J., R.M. Scheller, K.N. Wilson, and P.N. Manley. 2022. Assessing the effectiveness of landscape-scale forest adaptation actions to improve resilience under projected climate change. Frontiers in Forests and Global Change 5: 740869 | https://doi.org/10.3389/ffgc.2022.740869 | ||||||||||||||||||||||
60 | 211 | 2022 | Bugman, H. and R. Seidl. 2022. The evolution, complexity and diversity of models of long-term forest dynamics. Journal of Ecology | https://doi.org/10.1111/1365-2745.13989 | ||||||||||||||||||||||
61 | 210 | 2022 | Sirén, A, C. Sutherland, A.Karmalkar, M. J. Duveneck, & T. L. Morelli. Forecasting species distributions: Correlation does not equal causation. 2022. Diversity and Distributions. | https://doi.org/10.1111/ddi.13480. | ||||||||||||||||||||||
62 | 209 | 2022 | Slauson, K., B. Howard, A. White, C. Maxwell, and T. Holland. 2022. Evaluating the effects of alternative landscape management scenarios on three old-forest-associated predators over 100 years in the fire-prone forests of the Sierra Nevada, USA. Ecology and Society, 27(3). | https://ecologyandsociety.org/vol27/iss3/art28/ | ||||||||||||||||||||||
63 | 208 | 2022 | Boulanger, Y., J. Pascual, M. Bouchard, L D'Orangeville, C. Périé, and M.P. Girardin. 2021. Multi-model projections of tree species performance in Quebec, Canada under future climate change. Global Change Biology. | https://europepmc.org/article/med/34854165 | ||||||||||||||||||||||
64 | 207 | 2022 | Evans, S.G., T.G. Holland, J.W. Long, C. Maxwell, R.M. Scheller, E. Patrick, and M.D. Potts. 2022. Modeling the risk reduction benefit of forest management using a case study in the Lake Tahoe Basin. Ecology and Society. 27 (2): 18, 27(2). | https://www.fs.usda.gov/treesearch/treesearch/pubs/download/64496.pdf | ||||||||||||||||||||||
65 | 206 | 2022 | Molina, E., O. Valeria, M. Martin, M. Montoro Girona, and J.A. Ramirez. 2022. Long-Term Impacts of Forest Management Practices under Climate Change on Structure, Composition, and Fragmentation of the Canadian Boreal Landscape. Forests, 13(8), p.1292. | https://www.mdpi.com/1999-4907/13/8/1292/pdf | ||||||||||||||||||||||
66 | 205 | 2022 | White, A., T. Holland, E. Abelson, A. Kretchun, C. Maxwell, and R.M. Scheller. 2022. Simulating wildlife habitat dynamics over the next century to help inform best management strategies for biodiversity in the Lake Tahoe Basin, California. Ecology and Society, 27(2). | https://www.ecologyandsociety.org/vol27/iss2/art31/ | ||||||||||||||||||||||
67 | 204 | 2022 | Matusick, G., S.J. Hudson, C.Z. Garrett, J.D. Kent, and J.M. Parker. 2022. Forest-Wide Longleaf Pine Restoration Response to Varying Future Management Intensities in a Transitioning Upland Forest. Journal of Forestry. | https://academic.oup.com/jof/advance-article/doi/10.1093/jofore/fvac008/6584874 | ||||||||||||||||||||||
68 | 203 | 2022 | Gustafson, E.J., B.R. Miranda, T.J. Dreaden, C.C. Pinchot, and D.F. Jacobs. 2022. Beyond blight: Phytophthora root rot under climate change limits populations of reintroduced American chestnut. Ecosphere, 13(2), p.e3917. | https://esajournals.onlinelibrary.wiley.com/doi/pdf/10.1002/ecs2.3917 | ||||||||||||||||||||||
69 | 202 | 2022 | Furniss, T.J., P.F. Hessburg, N.A. Povak, R.B. Salter, and M.S. Wigmosta. 2022. Predicting future patterns, processes, and their interactions: Benchmark calibration and validation procedures for forest landscape models. Ecological Modelling, 473, p.110099. | https://www.sciencedirect.com/science/article/pii/S0304380022002022 | ||||||||||||||||||||||
70 | 201 | 2022 | Moon, G.S., S.Y. Kim, W.K. Song, and J. Choi. 2022. Prediction of Forest Succession in Daecheong Dam River Basin Area Using LANDIS-II. Journal of the Korean Society of Environmental Restoration Technology, 25(2), pp.39-53. | https://koreascience.kr/article/JAKO202213649870311.pdf | ||||||||||||||||||||||
71 | 200 | 2022 | Haga, C., W. Hotta, T. Inoue, T. Matsui, M. Aiba, T. Owari, S.N. Suzuki, H. Shibata, and J. Morimoto. 2022. Modeling Tree Recovery in Wind-Disturbed Forests with Dense Understory Species under Climate Change. Ecological Modelling, 472, p.110072. | https://www.sciencedirect.com/science/article/pii/S030438002200179X | ||||||||||||||||||||||
72 | 199 | 2022 | Lucash, M.S. S. Weiss, M.J. Duveneck and R.M. Scheller. 2022. Managing for red-cockaded woodpeckers is more complicated under climate change. Journal of Wildlife Management | https://doi.org/10.1002/jwmg.22309 | ||||||||||||||||||||||
73 | 198 | 2022 | Mina, M., C. Messier, M.J. Duveneck, M.-J. Fortin, M.-J., and N. Aquilué. 2022. Managing for the unexpected: Building resilient forest landscapes to cope with global change. Global Change Biology, 28, 4323– 4341. | https://doi.org/10.1111/gcb.16197 | ||||||||||||||||||||||
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