Multimillennial fire history of northern Finland along a latitude/elevation gradient
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Hugo Asselin | Adam A. Ali | T. Aakala | H. Seppä | C. Remy | Heikki Seppä | Gwenaël Magne | Marion Lacand | Hugo Asselin | Gwenaël Magne | Tuomas Aakala | Cécile C. Remy | Adam A. Ali | Marion Lacand | Cécile C. Remy
[1] Hugo Asselin,et al. Climatic and vegetational controls of Holocene wildfire regimes in the boreal forest of northern Fennoscandia , 2023, Journal of Ecology.
[2] K. Stoof-Leichsenring,et al. Holocene wildfire and vegetation dynamics in Central Yakutia, Siberia, reconstructed from lake-sediment proxies , 2022, Frontiers in Ecology and Evolution.
[3] B. Øyen,et al. Long‐term spatiotemporal dynamics in a mountain birch (Betula pubescens ssp. czerepanovii) forest in south‐east Norway , 2022, Plant-Environment Interactions.
[4] S. Wastegård. The Holocene of Sweden – a review , 2022, GFF.
[5] R. Ims,et al. A pioneering pest: the winter moth (Operophtera brumata) is expanding its outbreak range into Low Arctic shrub tundra , 2022, Arctic Science.
[6] Sarah Cogos,et al. Negotiating (with) Fire: Contemporary Fire Domestication in Swedish Sápmi , 2021, Journal of Ethnobiology.
[7] Anabelle W. Cardoso,et al. Understanding and modelling wildfire regimes: an ecological perspective , 2021, Environmental Research Letters.
[8] Joseph D. Napier,et al. Emerging palaeoecological frameworks for elucidating plant dynamics in response to fire and other disturbance , 2021, Global Ecology and Biogeography.
[9] S. Payette,et al. A 2233-Year Tree-Ring Chronology of Subarctic Black Spruce (Picea mariana): Growth Forms Response to Long-Term Climate Change , 2021, Ecoscience.
[10] Chéima Barhoumi,et al. Holocene Fire Regime Changes in the Southern Lake Baikal Region Influenced by Climate-Vegetation-Anthropogenic Activity Interactions , 2021, Forests.
[11] Sarah Cogos,et al. Fire Management in The Boreal Forest of Swedish Sápmi: Prescribed Burning and Consideration of Sami Reindeer Herding During 1920–1970 , 2021, Environmental Management.
[12] B. Biskaborn,et al. Wildfire history of the boreal forest of south-western Yakutia (Siberia) over the last two millennia documented by a lake-sediment charcoal record , 2021, Biogeosciences.
[13] J. Kumpula,et al. Recent changes in mountain birch forest structure and understory vegetation depend on the seasonal timing of reindeer grazing , 2021 .
[14] T. Aakala,et al. Moisture content variation of ground vegetation fuels in boreal mesic and sub-xeric mineral soil forests in Finland , 2021 .
[15] J. Esper,et al. Correction to: Growth response of Betula pubescens Ehrh. to varying disturbance factors in northern Norway , 2020, Trees.
[16] R. Bradshaw,et al. Vegetation dynamics and Fire History in Färnebofjärden National Park, Central Sweden , 2021, The Holocene.
[17] Hugo Asselin,et al. Temperature and fuel availability control fire size/severity in the boreal forest of central Northwest Territories, Canada , 2020 .
[18] Y. Bergeron,et al. A Holocene Perspective of Vegetation Controls on Seasonal Boreal Wildfire Sizes Using Numerical Paleo-Ecology , 2020, Frontiers in Forests and Global Change.
[19] C. Carcaillet,et al. Fire-vegetation interactions during the last 11,000 years in boreal and cold temperate forests of Fennoscandia , 2020, Quaternary Science Reviews.
[20] F. Hu,et al. Arctic and boreal paleofire records reveal drivers of fire activity and departures from Holocene variability. , 2020, Ecology.
[21] C. Carcaillet,et al. Role of vegetation on fire behaviour in Fennoscandia forests during the Holocene , 2020 .
[22] F. Holtmeier,et al. Treeline Research—From the Roots of the Past to Present Time. A Review , 2019, Forests.
[23] Hugo Asselin,et al. Coherent signature of warming-induced extreme sub-continental boreal wildfire activity 4800 and 1100 years BP , 2019, Environmental Research Letters.
[24] Y. Bergeron,et al. Coniferization of the mixed‐wood boreal forests under warm climate , 2019, Journal of Quaternary Science.
[25] L. Holmström,et al. Integrating fire-scar, charcoal and fungal spore data to study fire events in the boreal forest of northern Europe , 2019, The Holocene.
[26] Harvey Weiss,et al. Subdividing the Holocene Series/Epoch: formalization of stages/ages and subseries/subepochs, and designation of GSSPs and auxiliary stratotypes , 2019, Journal of Quaternary Science.
[27] Sarah Cogos,et al. Forest Fire and Indigenous Sami Land Use: Place Names, Fire Dynamics, and Ecosystem Change in Northern Scandinavia , 2019, Human Ecology.
[28] P. Higuera,et al. Anthropogenic use of fire led to degraded scots pine-lichen forest in northern Sweden , 2018, Anthropocene.
[29] R. Ims,et al. Can novel pest outbreaks drive ecosystem transitions in northern‐boreal birch forest? , 2018, Journal of Ecology.
[30] R. Wein,et al. Tree Cover Response to Climate Change in the Forest-Tundra of North-Central Canada: Fire-Driven Decline, Not Northward Advance , 2018, Ecoscience.
[31] J. Kaplan,et al. The climate, the fuel and the land use: Long‐term regional variability of biomass burning in boreal forests , 2018, Global change biology.
[32] F. Holtmeier,et al. Subalpine Forest and Treeline Ecotone under the Influence of Disturbances: A Review , 2018 .
[33] T. Kuuluvainen,et al. Young and old forest in the boreal: critical stages of ecosystem dynamics and management under global change , 2018, Forest Ecosystems.
[34] T. Reitalu,et al. The role of climate, forest fires and human population size in Holocene vegetation dynamics in Fennoscandia , 2018 .
[35] J. Olofsson,et al. Multiple Feedbacks Contribute to a Centennial Legacy of Reindeer on Tundra Vegetation , 2018, Ecosystems.
[36] H. Morin,et al. Lepidoptera wing scales: a new paleoecological indicator for reconstructing spruce budworm abundance , 2018 .
[37] Y. Mazei,et al. Vegetation dynamics and fire history at the southern boundary of the forest vegetation zone in European Russia during the middle and late Holocene , 2018 .
[38] Lasse Holmström,et al. Multiscale variation in drought controlled historical forest fire activity in the boreal forests of eastern Fennoscandia , 2018 .
[39] J. Mikola,et al. Temperature and soil fertility as regulators of tree line Scots pine growth and survival—implications for the acclimation capacity of northern populations , 2018, Global change biology.
[40] T. Aakala. Forest fire histories and tree age structures in Värriö and Maltio Strict Nature Reserves, northern Finland , 2018 .
[41] J. Randerson,et al. Lightning as a major driver of recent large fire years in North American boreal forests , 2017 .
[42] Hugo Asselin,et al. Wildfire size alters long‐term vegetation trajectories in boreal forests of eastern North America , 2017 .
[43] J. Rolstad,et al. Fire history in a western Fennoscandian boreal forest as influenced by human land use and climate , 2017 .
[44] A. Hofgaard,et al. North Fennoscandian mountain forests: History, composition, disturbance dynamics and the unpredictable future , 2017 .
[45] A. Vernal,et al. Atlantic SSTs control regime shifts in forest fire activity of Northern Scandinavia , 2016, Scientific Reports.
[46] B. Fréchette,et al. Regional paleofire regimes affected by non-uniform climate, vegetation and human drivers , 2015, Scientific Reports.
[47] Hugo Asselin,et al. Holocene variations of wildfire occurrence as a guide for sustainable management of the northeastern Canadian boreal forest , 2015, Forest Ecosystems.
[48] Y. Bergeron,et al. The effects of forest fuel connectivity on spatiotemporal dynamics of Holocene fire regimes in the central boreal forest of North America , 2015 .
[49] S. Khorasani,et al. Late Holocene beetle assemblages and environmental change in Gammelhemmet, northern Sweden , 2015 .
[50] M. Turetsky,et al. Fuel load, structure, and potential fire behaviour in black spruce bogs , 2015 .
[51] J. Randerson,et al. Influence of tree species on continental differences in boreal fires and climate feedbacks , 2015 .
[52] O. Zackrisson,et al. Intensive land use in the Swedish mountains between AD 800 and 1200 led to deforestation and ecosystem transformation with long-lasting effects , 2015, Ambio.
[53] Olivier Blarquez,et al. paleofire: An R package to analyse sedimentary charcoal records from the Global Charcoal Database to reconstruct past biomass burning , 2014, Comput. Geosci..
[54] R. Bradshaw,et al. Holocene fire in Fennoscandia and Denmark , 2014 .
[55] Thomas Giesecke,et al. Holocene fire disturbance in the boreal forest of central Sweden , 2014 .
[56] D. Wardle,et al. Aboveground and belowground legacies of native Sami land use on boreal forest in northern Sweden 100 years after abandonment. , 2014, Ecology.
[57] Hugo Asselin,et al. Using tree-ring records to calibrate peak detection in fire reconstructions based on sedimentary charcoal records , 2014 .
[58] M. Väliranta,et al. New evidence of warm early-Holocene summers in subarctic Finland based on an enhanced regional chironomid-based temperature calibration model , 2014, Quaternary Research.
[59] O. Zackrisson,et al. From Hunting to Herding: Land Use, Ecosystem Processes, and Social Transformation among Sami AD 800–1500 , 2014, ARCTIC ANTHROPOLOGY.
[60] R. Bradshaw,et al. Holocene fire frequency variability in Vesijako, Strict Nature Reserve, Finland, and its application to conservation and management , 2013 .
[61] Y. Bergeron,et al. Vegetation limits the impact of a warm climate on boreal wildfires. , 2013, The New phytologist.
[62] F. Hu,et al. Recent burning of boreal forests exceeds fire regime limits of the past 10,000 years , 2013, Proceedings of the National Academy of Sciences.
[63] C. Buck,et al. IntCal13 and Marine13 Radiocarbon Age Calibration Curves 0–50,000 Years cal BP , 2013, Radiocarbon.
[64] Y. Bergeron,et al. Control of the multimillennial wildfire size in boreal North America by spring climatic conditions , 2012, Proceedings of the National Academy of Sciences.
[65] C. Carcaillet,et al. Woody vegetation, fuel and fire track the melting of the Scandinavian ice-sheet before 9500 cal yr BP , 2012, Quaternary Research.
[66] C. Körner. Alpine Treelines , 2012, Springer Basel.
[67] S. Goetz,et al. Shrub expansion in tundra ecosystems: dynamics, impacts and research priorities , 2011, Environmental Research Letters.
[68] J. Christen,et al. Flexible paleoclimate age-depth models using an autoregressive gamma process , 2011 .
[69] G. Hörnberg,et al. A thousand years of human impact in the northern Scandinavian mountain range: Long-lasting effects on forest lines and vegetation , 2011 .
[70] M. Ohlson,et al. Invasion of Norway spruce diversifies the fire regime in boreal European forests , 2011 .
[71] S. Juutinen,et al. Holocene aquatic ecosystem change in the boreal vegetation zone of northern Finland , 2011 .
[72] T. Wallenius. Major decline in fires in coniferous forests - Reconstructing the phenomenon and seeking for the cause , 2011 .
[73] Melanie J. Leng,et al. Late Holocene climate change in central Sweden inferred from lacustrine stable isotope data , 2010 .
[74] J. Pennanen,et al. Long fire cycle in northern boreal Pinus forests in Finnish Lapland , 2010 .
[75] L. Östlund,et al. Historical human influence on forest composition and structure in boreal Fennoscandia , 2010 .
[76] T. Kuuluvainen,et al. Contrasting patterns of tree mortality in late‐successional Picea abies stands in two areas in northern Fennoscandia , 2009 .
[77] H. Birks,et al. Last nine-thousand years of temperature variability in Northern Europe , 2009 .
[78] D. M. Nelson,et al. The magnitude of error in conventional bulk-sediment radiocarbon dates from central North America , 2009, Quaternary Research.
[79] P. Muukkonen,et al. Invasion of Norway spruce (Picea abies) and the rise of the boreal ecosystem in Fennoscandia , 2009 .
[80] C. Jensen,et al. Holocene vegetation and climate dynamics of the boreal alpine ecotone of northwestern Fennoscandia , 2008 .
[81] L. Kullman. Early postglacial appearance of tree species in northern Scandinavia: review and perspective , 2008 .
[82] J. Lynch,et al. Changes in fire regimes since the Last Glacial Maximum: an assessment based on a global synthesis and analysis of charcoal data , 2008 .
[83] O. Hogstad,et al. Waves and synchrony in Epirrita autumnata/Operophtera brumata outbreaks. I. Lagged synchrony: regionally, locally and among species. , 2007, The Journal of animal ecology.
[84] C. Carcaillet,et al. Long-term fire frequency not linked to prehistoric occupations in northern Swedish boreal forest. , 2007, Ecology.
[85] J. Randerson,et al. The Impact of Boreal Forest Fire on Climate Warming , 2006, Science.
[86] K. Montgomery. Variation in Temperature With Altitude and Latitude , 2006 .
[87] M. Rundgren,et al. Abrupt climatic changes and an unstable transition into a late Holocene Thermal Decline: a multiproxy lacustrine record from southern Sweden , 2005 .
[88] O. Zackrisson,et al. Effects of Mesolithic hunter-gatherers on local vegetation in a non-uniform glacio-isostatic land uplift area, northern Sweden , 2005 .
[89] R. Bradshaw,et al. Holocene History of Alpine Vegetation and Forestline on Pyhäkero Mountain, Northern Finland , 2004 .
[90] T. H. Jónsson. Stature of sub-arctic birch in relation to growth rate, lifespan and tree form. , 2004, Annals of botany.
[91] M. Weih,et al. Determinants of mountain birch growth in situ: effects of temperature and herbivory , 2004 .
[92] M. Lindholm,et al. Dendrochronologically dated changes in the limit of pine in northernmost Finland during the past 7.5 millennia , 2004 .
[93] H. Birks,et al. Holocene vegetation and climate history on a continental‐oceanic transect in northern Fennoscandia based on pollen and plant macrofossils , 2004 .
[94] H. Seppä,et al. Cold event at 8200 yr B.P. recorded in annually laminated lake sediments in eastern Europe , 2004 .
[95] T. Kuuluvainen,et al. Fire history in relation to site type and vegetation in Vienansalo wilderness in eastern Fennoscandia, Russia , 2004 .
[96] O. Tenow,et al. Rejuvenation of a mountain birch forest by an Epirrita autumnata (Lepidoptera: Geometridae) outbreak , 2004 .
[97] P. Huttunen,et al. Long-term fire frequency in the spruce-dominated forests of the Ulvinsalo strict nature reserve, Finland , 2003 .
[98] T. Kuuluvainen,et al. Spatial distribution of lightning-ignited forest fires in Finland , 2005 .
[99] J. Weckström,et al. Changes of treelines and alpine vegetation in relation to post‐glacial climate dynamics in northern Fennoscandia based on pollen and chironomid records , 2002 .
[100] L. Kullman. Rapid recent range‐margin rise of tree and shrub species in the Swedish Scandes , 2002 .
[101] H. Seppä. Mires of Finland: regional and local controls of vegetation, landforms, and long-term dynamics , 2002 .
[102] R. Heikkilä,et al. Spatial tree age structure and fire history in two old-growth forests in eastern Fennoscandia , 2002 .
[103] A. Gromtsev. Natural disturbance dynamics in the boreal forests of European Russia : a review , 2002 .
[104] T. Kuuluvainen,et al. Tree age distributions in old-growth forest sites in Vienansalo wilderness, eastern Fennoscandia , 2002 .
[105] O. Eriksson,et al. Plant species diversity and grazing in the Scandinavian mountains - patterns and processes at different spatial scales , 2001 .
[106] S. Hicks. The use of annual arboreal pollen deposition values for delimiting tree-lines in the landscape and exploring models of pollen dispersal , 2001 .
[107] K. Tolonen,et al. A basin-based approach to the long-term history of forest fires as determined from peat strata , 2001 .
[108] L. Kullman. Immigration of Picea abies into North-Central Sweden. New evidence of regional expansion and tree-limit evolution , 2001 .
[109] L. Kullman. 20th Century Climate Warming and Tree-limit Rise in the Southern Scandes of Sweden , 2001, Ambio.
[110] P. Johansson,et al. The Last Interglacial-Glacial cycle in NE Fennoscandia: a nearly continuous record from Sokli (Finnish Lapland) , 2000 .
[111] H. Seppä,et al. Pollen-stratigraphical evidence of Holocene hydrological change in northern Fennoscandia supported by independent isotopic data , 2000 .
[112] P. Huttunen,et al. A 1300-year forest-fire history at a site in eastern Finland based on charcoal and pollen records in laminated lake sediment , 1999 .
[113] G. Possnert,et al. A high-resolution14C dated sediment sequence from southwest Sweden: age comparisons between different components of the sediment , 1998 .
[114] H. Seppä. Post-glacial dynamics of vegetation and tree-lines in the far north of Fennoscandia , 1996 .
[115] H. Birks,et al. July mean temperature and annual precipitation trends during the Holocene in the Fennoscandian tree-line area: pollen-based climate reconstructions , 2001 .
[116] L. Kullman. Holocene tree-limit and climate history from the Scandes Mountains, Sweden , 1995 .
[117] L. Kullman. New and Firm Evidence for Mid-Holocene Appearance of Picea Abies in the Scandes Mountains, Sweden , 1995 .
[118] S. Hicks. Pollen evidence of localized impact on the vegetation of northernmost Finland by hunter-gatherers , 1993 .
[119] O. Zackrisson,et al. Long-term regeneration dynamics and successional trends in a northern Swedish coniferous forest stand , 1987 .