Leaf-out phenology of temperate woody plants: from trees to ecosystems.
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[1] T. Skrøppa,et al. Variation in phenology and height increment of northern Ulmus glabra populations: Implications for conservation , 2007 .
[2] T. A. Black,et al. Comparing the carbon budgets of boreal and temperate deciduous forest stands , 2002 .
[3] Sylvain Delzon,et al. Leaf phenology sensitivity to temperature in European trees: do within-species populations exhibit similar responses? , 2009 .
[4] A. Crisci,et al. Risk of spring frost to apple production under future climate scenarios: the role of phenological acclimation , 2009, International journal of biometeorology.
[5] O. M. Heide,et al. Daylength and thermal time responses of budburst during dormancy release in some northern deciduous trees. , 1993, Physiologia plantarum.
[6] O. M. Heide,et al. Low temperature, but not photoperiod, controls growth cessation and dormancy induction and release in apple and pear. , 2005, Tree physiology.
[7] A. Menzel. Plant Phenological Anomalies in Germany and their Relation to Air Temperature and NAO , 2003 .
[8] R. Farmer. Sweetgum Dormancy Release: Effects of Chilling, Photoperiod, and Genotype , 1968 .
[9] P. Ciais,et al. Net carbon dioxide losses of northern ecosystems in response to autumn warming , 2008, Nature.
[10] S. Carpenter,et al. Ecological forecasts: an emerging imperative. , 2001, Science.
[11] Eike Luedeling,et al. Winter and spring warming result in delayed spring phenology on the Tibetan Plateau , 2010, Proceedings of the National Academy of Sciences.
[12] G. Yohe,et al. A globally coherent fingerprint of climate change impacts across natural systems , 2003, Nature.
[13] T. Perry. Dormancy of Trees in Winter , 1971, Science.
[14] A. Strahler,et al. Climate controls on vegetation phenological patterns in northern mid‐ and high latitudes inferred from MODIS data , 2004 .
[15] C. Körner,et al. Growth and phenology of mature temperate forest trees in elevated CO2 , 2006 .
[16] E. Tabacchi,et al. Impacts of riparian vegetation on hydrological processes , 2000 .
[17] F. Valladares,et al. Differential and interactive effects of temperature and photoperiod on budburst and carbon reserves in two co-occurring Mediterranean oaks. , 2009, Plant biology.
[18] Jesslyn F. Brown,et al. Measuring phenological variability from satellite imagery , 1994 .
[19] R. Snyder,et al. Determining degree-day thresholds from field observations , 1999 .
[20] Marcel E. Visser,et al. Warmer springs disrupt the synchrony of oak and winter moth phenology , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[21] C. Findlay,et al. The Rauischholzhausen Agenda for Road Ecology , 2007 .
[22] Mark D. Schwartz,et al. Intercomparing multiple measures of the onset of spring in eastern North America , 2010 .
[23] Marcel E Visser,et al. Climate change and unequal phenological changes across four trophic levels: constraints or adaptations? , 2009, The Journal of animal ecology.
[24] M. Lechowicz,et al. Predicting the timing of budburst in temperate trees , 1992 .
[25] J. Abatzoglou,et al. Tracking the rhythm of the seasons in the face of global change: phenological research in the 21st century. , 2009 .
[26] Mark D. Schwartz,et al. Changes in North American spring , 2000 .
[27] R. Primack,et al. The impact of climate change on cherry trees and other species in Japan , 2009 .
[28] H. Hänninen,et al. Dormancy release of Norway spruce under climatic warming: testing ecophysiological models of bud burst with a whole-tree chamber experiment. , 2007, Tree physiology.
[29] Christian Körner,et al. Phenology Under Global Warming , 2010, Science.
[30] C. Augspurger. Spring 2007 warmth and frost: phenology, damage and refoliation in a temperate deciduous forest , 2009 .
[31] Erwin Ulrich,et al. Simulating phenological shifts in French temperate forests under two climatic change scenarios and four driving global circulation models , 2010, International journal of biometeorology.
[32] H. Wanner,et al. Temperature sensitivity of Swiss and British plant phenology from 1753 to 1958 , 2009 .
[33] D. Neale,et al. From genotype to phenotype: unraveling the complexities of cold adaptation in forest trees , 2003 .
[34] C. Parmesan. Influences of species, latitudes and methodologies on estimates of phenological response to global warming , 2007 .
[35] J. Graves. A model of the seasonal pattern of carbon acquisition in two woodland herbs, Mercurialis perennis L. and Geum urbanum L. , 1990, Oecologia.
[36] J. Partanen. Dependence of photoperiodic response of growth cessation on the stage of development in Picea abies and Betula pendula seedlings , 2004 .
[37] D. Hollinger,et al. Use of digital webcam images to track spring green-up in a deciduous broadleaf forest , 2007, Oecologia.
[38] O. Junttila,et al. Critical night length for bud set and its variation in two photoperiodic ecotypes of Betula pendula. , 2006, Tree physiology.
[39] R. Bonney,et al. Citizen Science as a Tool for Conservation in Residential Ecosystems , 2007 .
[40] N. Stenseth,et al. INTRODUCTION European cooperation in plant phenology 3 , 2009 .
[41] Hideyuki Doi,et al. Genetic diversity increases regional variation in phenological dates in response to climate change , 2010 .
[42] P. Reich,et al. Ecophysiology of exotic and native shrubs in Southern Wisconsin , 1989, Oecologia.
[43] Andrew D. Richardson,et al. Phenology of a northern hardwood forest canopy , 2006 .
[44] T. Wesol̸owski,et al. Late leaf development in pedunculate oak (Quercus robur): An antiherbivore defence? , 2008 .
[45] Jürgen Symanzik,et al. On the use of the advanced very high resolution radiometer for development of prognostic land surface phenology models , 2007 .
[46] Elizabeth R. Ellwood,et al. Forecasting phenology under global warming , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[47] Ü. Rannik,et al. Respiration as the main determinant of carbon balance in European forests , 2000, Nature.
[48] Allison L. Dunn,et al. A long‐term record of carbon exchange in a boreal black spruce forest: means, responses to interannual variability, and decadal trends , 2007 .
[49] Y. Aono,et al. Phenological data series of cherry tree flowering in Kyoto, Japan, and its application to reconstruction of springtime temperatures since the 9th century , 2008 .
[50] P. Reich,et al. Ecophysiology of exotic and native shrubs in Southern Wisconsin , 1989, Oecologia.
[51] M. D. Schwartz,et al. Climate change and shifts in spring phenology of three horticultural woody perennials in northeastern USA , 2005, International journal of biometeorology.
[52] D. Hollinger,et al. Influence of spring phenology on seasonal and annual carbon balance in two contrasting New England forests. , 2009, Tree physiology.
[53] Marcel E Visser,et al. Shifts in phenology due to global climate change: the need for a yardstick , 2005, Proceedings of the Royal Society B: Biological Sciences.
[54] Sylvain Delzon,et al. Quantifying phenological plasticity to temperature in two temperate tree species , 2010 .
[55] O. Gordo,et al. Impact of climate change on plant phenology in Mediterranean ecosystems , 2010 .
[56] Annette Menzel,et al. Growing season extended in Europe , 1999, Nature.
[57] O. Skre,et al. Regional trends for bud burst and flowering of woody plants in Norway as related to climate change , 2008, International journal of biometeorology.
[58] S. Schneider,et al. Fingerprints of global warming on wild animals and plants , 2003, Nature.
[59] J. Mustard,et al. Green leaf phenology at Landsat resolution: Scaling from the field to the satellite , 2006 .
[60] H. Hänninen,et al. The effects of long‐term elevation of air temperature and CO on the frost hardiness of Scots pine , 1996 .
[61] P. Ciais,et al. Influence of spring and autumn phenological transitions on forest ecosystem productivity , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[62] N. Breda,et al. Contrasting distribution and seasonal dynamics of carbohydrate reserves in stem wood of adult ring-porous sessile oak and diffuse-porous beech trees. , 2002, Tree physiology.
[63] Deborah Estrin,et al. Public Internet‐connected cameras used as a cross‐continental ground‐based plant phenology monitoring system , 2010 .
[64] Brian Huntley,et al. Predicting spatial and temporal patterns of bud‐burst and spring frost risk in north‐west Europe: the implications of local adaptation to climate , 2010 .
[65] C. Philippart,et al. � 2003, by the American Society of Limnology and Oceanography, Inc. Climate-related changes in recruitment of the bivalve Macoma balthica , 2022 .
[66] N. L. Bradley,et al. Phenological changes reflect climate change in Wisconsin. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[67] O. Muller,et al. Experimental branch warming alters tall tree leaf phenology and acorn production , 2010 .
[68] Michael A. Crimmins,et al. Monitoring Plant Phenology Using Digital Repeat Photography , 2008, Environmental management.
[69] M. Lechowicz,et al. The Relation of Foliar Phenology to Xylem Embolism in Trees , 1992 .
[70] P. Hari,et al. Predicting spring phenology and frost damage risk of Betula spp. under climatic warming: a comparison of two models. , 2000, Tree physiology.
[71] A. Donnelly,et al. The ecological significance of phenology in four different tree species: effects of light and temperature on bud burst , 2011, International journal of biometeorology.
[72] A. Menzel,et al. Trends in phenological phases in Europe between 1951 and 1996 , 2000, International journal of biometeorology.
[73] Wilfried Thuiller,et al. Modelling exploration of the future of European beech (Fagus sylvatica L.) under climate change—Range, abundance, genetic diversity and adaptive response , 2010 .
[74] O. M. Heide. Growth and Dormancy in Norway Spruce Ecotypes (Picea abies) I. Interaction of Photoperiod and Temperature , 1974 .
[75] S. Quegan,et al. Spring phenology in boreal Eurasia over a nearly century time scale , 2008 .
[76] Isabelle Chuine,et al. Climatic determinants of budburst seasonality in four temperate‐zone tree species , 1999 .
[77] M. Cannell,et al. CLIMATIC WARMING, SPRING BUDBURST AND FROST DAMAGE ON TREES , 1986 .
[78] J. Schaber,et al. Responses of spring phenology to climate change , 2004 .
[79] E. Luedeling,et al. Climatic Changes Lead to Declining Winter Chill for Fruit and Nut Trees in California during 1950–2099 , 2009, PloS one.
[80] Stein Rune Karlsen,et al. Variability of the start of the growing season in Fennoscandia, 1982–2002 , 2007, International journal of biometeorology.
[81] C. Tucker,et al. Increased plant growth in the northern high latitudes from 1981 to 1991 , 1997, Nature.
[82] E. Barrett. Impact of climate , 1974, Nature.
[83] Mark D. Schwartz,et al. Monitoring global change with phenology: The case of the spring green wave , 1994 .
[84] H. Peltola,et al. Dynamics of daily height growth in Scots pine trees at elevated temperature and CO2 , 2005, Trees.
[85] R. Primack,et al. Leaf-out Dates Highlight a Changing Climate , 2011 .
[86] Andrew D Richardson,et al. Near-surface remote sensing of spatial and temporal variation in canopy phenology. , 2009, Ecological applications : a publication of the Ecological Society of America.
[87] J. Mustard,et al. Cross-scalar satellite phenology from ground, Landsat, and MODIS data , 2007 .
[88] S. Gilman,et al. CLIMATE‐RELATED CHANGE IN AN INTERTIDAL COMMUNITY OVER SHORT AND LONG TIME SCALES , 1999 .
[89] Thomas Rötzer,et al. Simulating stand climate, phenology, and photosynthesis of a forest stand with a process-based growth model , 2010, International journal of biometeorology.
[90] Antje Müller,et al. Climate changes and trends in phenology of fruit trees and field crops in Germany, 1961-2000 , 2004 .
[91] E. Schulze,et al. Carbon balance of a southern taiga spruce stand in European Russia , 2002 .
[92] A. Miller‐Rushing,et al. Toward a synthetic understanding of the role of phenology in ecology and evolution , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[93] T. Wesol̸owski,et al. Timing of bud burst and tree-leaf development in a multispecies temperate forest , 2006 .
[94] Amy E. Mayer. Phenology and Citizen Science , 2010 .
[95] K. Fujisaki,et al. Spatio‐temporal abundance of flushing leaves shapes host selection in the willow leaf beetle, Plagiodera versicolora , 2006 .
[96] N. Delbart,et al. Determination of phenological dates in boreal regions using normalized difference water index , 2005 .
[97] A. Miller‐Rushing,et al. ecology and evolution Toward a synthetic understanding of the role of phenology in , 2010 .
[98] R. Primack,et al. Favorable Climate Change Response Explains Non-Native Species' Success in Thoreau's Woods , 2010, PloS one.
[99] A. Briede,et al. Influence of climate change on phenological phases in Latvia and Lithuania , 2009 .
[100] T. Rötzer,et al. Response of tree phenology to climate change across Europe , 2001 .
[101] Mark D. Schwartz,et al. Continental‐scale phenology: warming and chilling , 2010 .
[102] C. Augspurger,et al. Leaf phenology in 22 North American tree species during the 21st century , 2009 .
[103] P. Feeny. SEASONAL CHANGES IN OAK LEAF TANNINS AND NUTRIENTS AS A CAUSE OF SPRING FEEDING BY WINTER MOTH CATERPILLARS , 1970 .
[104] R. Calamassi,et al. Bud dormancy in beech (Fagus sylvatica L.). Effect of chilling and photoperiod on dormancy release of beech seedlings. , 1990, Tree physiology.
[105] A. Santini,et al. Bud dormancy release in elm (Ulmus spp.) clones--a case study of photoperiod and temperature responses. , 2010, Tree physiology.
[106] Richard B Primack,et al. Global warming and flowering times in Thoreau's Concord: a community perspective. , 2008, Ecology.
[107] K. Raffa,et al. Host Plant Phenology Affects Performance of an Invasive Weevil, Phyllobius oblongus (Coleoptera: Curculionidae), in a Northern Hardwood Forest , 2010, Environmental entomology.
[108] Rasim Latifovic,et al. Evaluation of compositing period and AVHRR and MERIS combination for improvement of spring phenology detection in deciduous forests , 2011 .
[109] K. Kramer. A modelling analysis of the effects of climatic warming on the probability of spring frost damage to tree species in the Netherlands and Germany , 1994 .
[110] M. Cannell,et al. Date of budburst of fifteen tree species in Britain following climatic warming , 1989 .
[111] Yiqi Luo,et al. Divergence of reproductive phenology under climate warming , 2007, Proceedings of the National Academy of Sciences.
[112] J. Peñuelas,et al. Running to stand still: adaptation and the response of plants to rapid climate change. , 2005, Ecology letters.
[113] Isabelle Chuine,et al. Leaf phenology in 22 North American tree species during the 21st century , 2009 .
[114] H. Wanner,et al. Tree phenology and carbon dioxide fluxes - use of digital photography for process-based interpretation at the ecosystem scale , 2009 .
[115] C. Parmesan. Ecological and Evolutionary Responses to Recent Climate Change , 2006 .
[116] M. Lechowicz,et al. Why Do Temperate Deciduous Trees Leaf Out at Different Times? Adaptation and Ecology of Forest Communities , 1984, The American Naturalist.
[117] H. Hänninen,et al. Models of the spring phenology of boreal and temperate trees: Is there something missing? , 2006, Tree physiology.
[118] J. Pelham,et al. Genetic Variation in the Date of Budburst in Scottish Birch Populations: Implications for Climate Change , 1991 .
[119] I. Chuine,et al. A unified model for budburst of trees. , 2000, Journal of theoretical biology.
[120] R. Grote,et al. The timing of bud burst and its effect on tree growth , 2004, International journal of biometeorology.
[121] I. Chuine. Why does phenology drive species distribution? , 2010, Philosophical Transactions of the Royal Society B: Biological Sciences.
[122] O. Hoegh‐Guldberg,et al. Ecological responses to recent climate change , 2002, Nature.
[123] James F. Reynolds,et al. Plant responses to precipitation in desert ecosystems: integrating functional types, pulses, thresholds, and delays , 2004, Oecologia.
[124] D. Goldblum,et al. Sugar maple seedling carbon assimilation at the northern limit of its range: the importance of seasonal light , 2010 .
[125] J. Pusenius,et al. Variations in phenology and growth of European white birch (Betula pendula) clones. , 2005, Tree physiology.
[126] O. M. Heide. Growth and dormancy in Norway Spruce ecotypes. II. After-effects of photoperiod and temperature on growth and development in subsequent years , 1974 .
[127] H. Mooney,et al. Shifting plant phenology in response to global change. , 2007, Trends in ecology & evolution.
[128] Jacques Roy,et al. Changes in leaf phenology of three European oak species in response to experimental climate change. , 2010, The New phytologist.
[129] Richard J. Norby,et al. Phenological responses in maple to experimental atmospheric warming and CO2 enrichment , 2003 .
[130] T. A. Black,et al. Effects of climatic variability on the annual carbon sequestration by a boreal aspen forest , 1999 .
[131] Rik Leemans,et al. Faculty Opinions recommendation of European phenological response to climate change matches the warming pattern. , 2006 .
[132] Liang Liang,et al. Validating satellite phenology through intensive ground observation and landscape scaling in a mixed seasonal forest , 2011 .
[133] J. Schnoor,et al. Citizen Science , 2017 .
[134] John Grace,et al. Respiration in the balance , 2000, Nature.
[135] C. Defila,et al. Phytophenological trends in Switzerland , 2001, International journal of biometeorology.
[136] H. Hänninen. Climate warming and the risk of frost damage to boreal forest trees: identification of critical ecophysiological traits. , 2006, Tree physiology.
[137] W. B. Gail. Climate control , 2007 .
[138] Hideyuki Doi,et al. Phenological timings of leaf budburst with climate change in Japan , 2008 .
[139] R. Primack,et al. Bird migration times, climate change, and changing population sizes , 2008 .
[140] S. Running,et al. The impact of growing-season length variability on carbon assimilation and evapotranspiration over 88 years in the eastern US deciduous forest , 1999, International journal of biometeorology.
[141] Y. Aono,et al. Phenological data series of cherry tree flowering in Kyoto, Japan, and its application to reconstruction of springtime temperatures since the 9th century , 2008 .
[142] Steven F. Oberbauer,et al. Plant community responses to experimental warming across the tundra biome , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[143] Tilden Meyers,et al. The 2007 Eastern US Spring Freeze: Increased Cold Damage in a Warming World , 2008 .
[144] Reiko Ide,et al. Use of digital cameras for phenological observations , 2010, Ecol. Informatics.