Climatic controls of Pinus pumila radial growth along an altitude gradient
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Yuandong Zhang | Xiaochun Wang | Zongshan Li | D. Cooper | Shijie Han | Jingwen Yang | Wenqi Song | Xu Zhang | Huiying Zhao
[1] Yi Xin Huang,et al. [Tree seedling distribution, regeneration mechanism and response to climate change in alpine treeline ecotone]. , 2019, Ying yong sheng tai xue bao = The journal of applied ecology.
[2] E. Liang,et al. High-elevation shrub-ring δ18O on the northern slope of the central Himalayas records summer (May–July) temperatures , 2019, Palaeogeography, Palaeoclimatology, Palaeoecology.
[3] S. George,et al. Detecting the influence of climate and humans on pine forests across the dry valleys of eastern Nepal’s Koshi River basin , 2019, Forest Ecology and Management.
[4] Jianfeng Peng,et al. Effect of altitude on climate–growth relationships of Chinese white pine (Pinus armandii) in the northern Funiu Mountain, central China , 2019, Climatic Change.
[5] C. Corona,et al. Climate-growth relationships in a Larix decidua Mill. network in the French Alps. , 2019, The Science of the total environment.
[6] Xiaochun Wang,et al. Recent rising temperatures drive younger and southern Korean pine growth decline. , 2019, The Science of the total environment.
[7] Shu-hai Guo,et al. [Fluorine emission list of China's key industries and soil fluorine concentration estimation.] , 2019, Ying yong sheng tai xue bao = The journal of applied ecology.
[8] S. Singh,et al. Timberline structure and woody taxa regeneration towards treeline along latitudinal gradients in Khangchendzonga National Park, Eastern Himalaya , 2018, PloS one.
[9] Qi-jing Liu,et al. Larix olgensis growth–climate response between lower and upper elevation limits: an intensive study along the eastern slope of the Changbai Mountains, northeastern China , 2018, Journal of Forestry Research.
[10] Xiaochun Wang,et al. Rapid warming induces the contrasting growth of Yezo spruce (Picea jezoensis var. microsperma) at two elevation gradient sites of northeast China , 2018, Dendrochronologia.
[11] Z. Vekerdy,et al. Recent Drought-Induced Vitality Decline of Black Pine (Pinus nigra Arn.) in South-West Hungary—Is This Drought-Resistant Species under Threat by Climate Change? , 2018, Forests.
[12] R. Ohlemüller,et al. Does current climate explain plant disjunctions? A test using the New Zealand alpine flora , 2018 .
[13] J. Madrigal‐González,et al. Do adult trees increase conspecific juvenile resilience to recurrent droughts? Implications for forest regeneration , 2018, Ecosphere.
[14] Maja K. Sundqvist,et al. Soils beneath different arctic shrubs have contrasting responses to a natural gradient in temperature , 2018, Ecosphere.
[15] E. Liang,et al. Species- and Elevation-Dependent Growth Responses to Climate Warming of Mountain Forests in the Qinling Mountains, Central China , 2018 .
[16] N. Garrett,et al. Beyond syndromic management: Opportunities for diagnosis-based treatment of sexually transmitted infections in low- and middle-income countries , 2018, PloS one.
[17] Hongyuan Liu,et al. Effect of slope farmland soil and water and soil nitrogen and phosphorus loss based on different crop and straw applications and ridge patterns in the basin of the main stream of the Songhua River , 2018 .
[18] J. Linares,et al. Contrasting growth forecasts across the geographical range of Scots pine due to altitudinal and latitudinal differences in climatic sensitivity , 2017, Global change biology.
[19] Ā. Jansons,et al. European beech in its northeasternmost stands in Europe: Varying climate-growth relationships among generations and diameter classes , 2017 .
[20] M. Carrer,et al. Diverging shrub and tree growth from the Polar to the Mediterranean biomes across the European continent , 2017, Global change biology.
[21] H. Mäkinen,et al. Tree growth and its climate signal along latitudinal and altitudinal gradients: comparison of tree rings between Finland and the Tibetan Plateau , 2017 .
[22] M. Germino,et al. Warming and provenance limit tree recruitment across and beyond the elevation range of subalpine forest , 2017, Global change biology.
[23] Xiuchen Wu,et al. Long‐term forest resilience to climate change indicated by mortality, regeneration, and growth in semiarid southern Siberia , 2017, Global change biology.
[24] Christian Körner,et al. The 90 ways to describe plant temperature , 2017 .
[25] P. Hulme,et al. Influence of climate and regeneration microsites on Pinus contorta invasion into an alpine ecosystem in New Zealand , 2016 .
[26] F. Götmark,et al. Why Be a Shrub? A Basic Model and Hypotheses for the Adaptive Values of a Common Growth Form , 2016, Front. Plant Sci..
[27] Yafeng Wang,et al. Increased stem density and competition may diminish the positive effects of warming at alpine treeline. , 2016, Ecology.
[28] U. Büntgen,et al. Growth trends and climate responses of Norway spruce along elevational gradients in East-Central Europe , 2016, Trees.
[29] Hongshi He,et al. Nitrogen deposition but not climate warming promotes Deyeuxia angustifolia encroachment in alpine tundra of the Changbai Mountains, Northeast China. , 2016, The Science of the total environment.
[30] Niels Martin Schmidt,et al. Climate sensitivity of shrub growth across the tundra biome , 2015 .
[31] Neil Pederson,et al. Convergence in drought stress, but a divergence of climatic drivers across a latitudinal gradient in a temperate broadleaf forest , 2015 .
[32] Koichi Takahashi,et al. Effects of climatic conditions on annual shoot length and tree-ring width of alpine dwarf pine Pinus pumila in central Japan , 2015, Journal of Plant Research.
[33] J. Camarero,et al. Disparate effects of global‐change drivers on mountain conifer forests: warming‐induced growth enhancement in young trees vs. CO2 fertilization in old trees from wet sites , 2015, Global change biology.
[34] Dali Guo,et al. Rapid warming accelerates tree growth decline in semi‐arid forests of Inner Asia , 2013, Global change biology.
[35] A. Bräuning,et al. Tree growth–climate relationships of Juniperus tibetica along an altitudinal gradient on the southern Tibetan Plateau , 2013, Trees.
[36] Melanie A. Harsch,et al. Causes of tree line stability: stem growth, recruitment and mortality rates over 15 years at New Zealand Nothofagus tree lines , 2012 .
[37] D. Morton,et al. Satellite‐based evidence for shrub and graminoid tundra expansion in northern Quebec from 1986 to 2010 , 2012 .
[38] Koichi Takahashi,et al. How the timberline formed: altitudinal changes in stand structure and dynamics around the timberline in central Japan. , 2012, Annals of botany.
[39] R. B. Jackson,et al. A Large and Persistent Carbon Sink in the World’s Forests , 2011, Science.
[40] Yafeng Wang,et al. Little change in the fir tree-line position on the southeastern Tibetan Plateau after 200 years of warming. , 2011, The New phytologist.
[41] Logan T. Berner,et al. A latitudinal gradient in tree growth response to climate warming in the Siberian taiga , 2011 .
[42] C. Körner,et al. Topographically controlled thermal‐habitat differentiation buffers alpine plant diversity against climate warming , 2011 .
[43] J. Abatzoglou,et al. Changes in Climatic Water Balance Drive Downhill Shifts in Plant Species’ Optimum Elevations , 2011, Science.
[44] Yongxiang Zhang,et al. Divergent growth responses and increasing temperature limitation of Qinghai spruce growth along an elevation gradient at the northeast Tibet Plateau , 2010 .
[45] S. Vicente‐Serrano,et al. A Multiscalar Drought Index Sensitive to Global Warming: The Standardized Precipitation Evapotranspiration Index , 2009 .
[46] Antoine Guisan,et al. Going against the flow: potential mechanisms for unexpected downslope range shifts in a warming climate , 2010 .
[47] Nate G. McDowell,et al. Growth, carbon‐isotope discrimination, and drought‐associated mortality across a Pinus ponderosa elevational transect , 2010 .
[48] E. Liang,et al. Dendrochronological potential of the alpine shrub Rhododendron nivale on the south-eastern Tibetan Plateau. , 2009, Annals of botany.
[49] V. Rozas,et al. Sex-specific, age-dependent sensitivity of tree-ring growth to climate in the dioecious tree Juniperus thurifera. , 2009, New Phytologist.
[50] J. Diaci,et al. Disturbance history and dynamics of an old-growth mixed species mountain forest in the Slovenian Alps , 2009 .
[51] Andrew G. Bunn,et al. A dendrochronology program library in R (dplR) , 2008 .
[52] A. Sumida,et al. Establishment and growth pattern of Pinus pumila under a forest canopy in central Kamchatka , 2008, Ecological Research.
[53] Vincent R. Gray. Climate Change 2007: The Physical Science Basis Summary for Policymakers , 2007 .
[54] X. Gou,et al. Climatic response of thick leaf spruce (Picea crassifolia) tree-ring width at different elevations over Qilian Mountains, northwestern China , 2005 .
[55] T. D. Mitchell,et al. An improved method of constructing a database of monthly climate observations and associated high‐resolution grids , 2005 .
[56] A. Bräuning,et al. Summer temperature and summer monsoon history on the Tibetan plateau during the last 400 years recorded by tree rings , 2004 .
[57] Stephen Self,et al. Magma volume, volatile emissions, and stratospheric aerosols from the 1815 eruption of Tambora , 2004 .
[58] Harold S. J. Zald,et al. Recent climate warming forces contrasting growth responses of white spruce at treeline in Alaska through temperature thresholds , 2004 .
[59] Maihe Li,et al. Effects of microsite on growth of Pinus cembra in the subalpine zone of the Austrian Alps , 2004 .
[60] Franco Biondi,et al. DENDROCLIM2002: A C++ program for statistical calibration of climate signals in tree-ring chronologies , 2004, Comput. Geosci..
[61] J. Pereira,et al. Understanding plant responses to drought - from genes to the whole plant. , 2003, Functional plant biology : FPB.
[62] Koichi Takahashi. Effects of Climatic Conditions on Shoot Elongation of Alpine Dwarf Pine (Pinus pumila) at Its Upper and Lower Altitudinal Limits in Central Japan , 2003 .
[63] R. Duncan,et al. Disturbance and climate warming influences on New Zealand Nothofagus tree‐line population dynamics , 2001 .
[64] Darrin L. Rubino,et al. Dendroclimatological analysis of white oak (Quercus alba L., Fagaceae) from an old-growth forest of southeastern Ohio, USA. , 2000 .
[65] Khaled H. Hamed,et al. A modified Mann-Kendall trend test for autocorrelated data , 1998 .
[66] M. Stokes,et al. An Introduction to Tree-Ring Dating , 1996 .
[67] Gordon C. Jacoby,et al. Tree ring width and density evidence of climatic and potential forest change in Alaska , 1995 .
[68] T. Kajimoto. Aboveground net production and dry matter allocation ofPinus pumila forests in the Kiso mountain range, central Japan , 1994, Ecological Research.
[69] E. Cook,et al. Methods of Dendrochronology - Applications in the Environmental Sciences , 1991 .
[70] J. Grace,et al. Climate and the meristem temperatures of plant communities near the tree-line , 1989, Oecologia.
[71] R. Schmid,et al. Longevity of needle fascicles of Pinus longaeva (Bristlecone pine) and other North American pines , 1981, Oecologia.
[72] H. Fritts,et al. Tree Rings and Climate. , 1978 .
[73] Allan Buras,et al. Correcting the calculation of Gleichläufigkeit , 2015 .
[74] Koichi Takahashi. Shoot growth chronology of alpine dwarf pine (Pinus pumila) in relation to shoot size and climatic conditions: a reassessment , 2006 .
[75] P. Khomentovsky. Ecology of Siberian Dwarf Pine Pinus Pumila (Pallas) Regel in Kamchatka , 2004 .
[76] R. Monserud,et al. A basal area increment model for individual trees growing in even- and uneven-aged forest stands in Austria , 1996 .
[77] Harold C. Fritts,et al. Climatic variation and tree-ring structure in conifers: empirical and mechanistic models of tree-ring width, number of cells, cell size, cell-wall thickness and wood density , 1991 .
[78] R. Holmes. Computer-Assisted Quality Control in Tree-Ring Dating and Measurement , 1983 .