[1] Chuine I. A unified model for budburst of trees. Journal of Theoretical Biology, 2000, 207: 337~347.
[2] White M A, Neman R R. Canopy duration has little influence on annual carbon storage in the deciduous broad leaf forest. Global Change Biology, 2003, 9: 967~972.
[3] Badeck F W, Bondeau A, Bottcher K, et al. Responses of spring phenology to climate change. New Phytologist, 2004, 162: 295~309.
[4] Osborne C P, Chuine I, Viner D, et al. Olive phenology as a sensitive indicator of future climatic warming in the Mediterranean. Plant, Cell and Environment, 2000, 23: 701~710.
[5] 李胜强, 张福春. 物候信息化及物候时空变化分析. 地理科学进展, 1999, 18( 4) : 352~359.
[6] White M A, Thornton P E, Runing S W. A continental phenology model for monitoring vegetation responses to interannual climatic variability. Global Biogeochemical Cycles, 1997, 11(2): 217~234.
[7] Chuine I, Cambon G, Comtois P. Scaling phenology from the local to the regional level: advances from species - specific phonological models. Global Change Biology, 2000, 6: 943~952.
[8] Baldocchi D D, Falge E, Wilson K B. A spectral analysis of biosphere- atmosphere trace gas flux densities and meteorological variables across hour to multi- year time scales. Agricultural and Forest Meteorology, 2001, 107: 1~27.
[9] Baldocchi D D, Wilson K B. Modeling CO2 and water vapor exchange of a temperate broadleaved forest across hourly to decadal time scales. Ecological Modelling, 2001, 142: 155~184.
[10] Arora V K, Boer G J. A parameterization of leaf phenology for the terrestrial ecosystem component of climate models. Global Change Biology, 2005, 11: 39~59.
[11] Law B E, Tuyl S V, Cescatti A, et al. Estimation of leaf area index in open- canopy ponderosa pine forests at different successional stages and management regimes in Oregon. Agricultural and Forest Meteorology, 2001, 108: 1~14.
[12] Sellers P J, Bounoua L, Collatz G J, et al. Comparison of radiative and physiological effects of doubled atmospheric CO2 on climate. Science, 1996, 271: 1402~1406.
[13] Cramer W, Kicklighter D W, Bondeau A, et al. Comparing global models of terrestrial net primary productivity (NPP): overview and key results. Global Change Biology, 1999, 5(Suppl.1): 1~15.
[14] Bondeau A, Kicklighter D W, Kaduk J, et al. Comparing global models of terrestrial net primary productivity (NPP): importance of vegetation structure on seasonal NPP estimates. Global Change Biology, 1999, 5(Suppl.1): 35~45.
[15] Barr A G, Black T A, et al. Inter- annual variability in the leaf area index of a boreal aspen- hazelnut forest in relation to net ecosystem production. Agricultural and Forest Meteorology, 2004, 126: 237~255.
[16] Chuine I, Cour P, Rousseau D D. Selecting models to predict the timing of flowering of temperate trees: implications for tree phenology modeling. Plant, Cell and Environment, 1999, 22: 1~13.
[17] Kramer K Leinonen, I Loustau D. The importance of phenology for the evaluation of impact of climate change on growth of boreal, temperate and Mediterranean forest ecosystems: an overview. International Journal of Biometeorology, 2000, 44: 67~75.
[18] 吕昭智, 李莉, 田长彦等. 新疆北部20 年棉花物候计算和分析—以炮台镇为例. 干旱区地理, 2003, 26 ( 4) : 340~ 344.
[19] 孟亚利, 曹卫星, 周治国等. 基于生长过程的水稻阶段发育与物候期模拟模型. 中国农业科学, 2003, 36( 11) : 1362~ 1367.
[20] 李长青, 刘力威. 辽宁自然物候统计分析. 辽宁气象, 2004, 2: 44~46.
[21] 肖宜安, 何平, 李晓红. 濒危植物长柄双花木开花物候与生殖特性. 生态学报, 2004, 24( 1) : 14~21.
[22] 郑景云, 葛全胜, 赵会霞. 近40 年中国植物物候对气候变化的响应研究. 中国农业气象, 2003, 24( 1) : 28~32.
[23] 何方. 经济树木物候变化与气候的关系. 经济林研究, 2004, 22( 1) : 1~4.
[24] 徐雨晴, 陆佩玲, 于强. 气候变化对植物物候影响的研究进展. 资源科学, 2004, 26( 1) : 129~136.
[25] Sitch S, Smith B, Prentice I C, et al. Evaluation of ecosystem dynamics, plant geography and terrestrial carbon cycling in the LPJ dynamic global vegetation model. Global Change Biology, 2003, 9: 161~185.
[26] Haxeltine A, Prentice I C. BIOME3: an equilibrium terrestrial biosphere model based on ecophysiological constraints, resource availability and competition among plant functional types. Global Biogeochemical Cycles, 1996, 10(4): 693~709.
[27] Foley J A, Prentice I C, Ramunkutty N, et al. An integrated biosphere model of land surface processes, terrestrial carbon balance, and vegetation dynamics (IBIS). Global Biogeochemical Cycles, 1996, 10: 603~628.
[28] Kaduk J, Heimann M. A prognostic phenology scheme for global terrestrial carbon cycle. Climate Research,1996,6(1):1~19.
[29] Cesaraccio C, Spano D, Snyder R L, et al. Chilling and forcing model to predict bud- burst of crop and forest species. Agricultural and Forest Meteorology, 2004, 126: 1~13.
[30] Menzel A, Estrella N, Fabian P. Spatial and temporal variability for the phonological seasons in Germany from 1951 to 1996. Global Change Biology, 2001, 7: 657~666.
[31] Kikuzawa K. Phenological and morphological adaptations to the light environment in two woody and two herbaceous plant species. Functional Ecology, 2003, 17: 29~38.
[32] Rousseaux M C, Hall A J, Sanchez R A. Far- red enrichment and photosynthetically active radiation level influence leaf senescence in field- grown sunflower. Physiologia Plantarum, 1996, 96: 217~224.
[33] Norby R J, Hartz- Rubin J S, Verbrugge M J. Phenological responses in maple to experimental atmospheric warming and CO2 enrichment. Global Change Biology, 2003, 9: 1792~1801.
[34] Tanja S, Berninger F, Vesala T, et al. Air temperature triggers the recovery of evergreen boreal forest photosynthesis in spring. Global Change Biology, 2003, 9: 1410~1426.
[35] Gabrielle B, Denoroy P, Gosse G, et al. A model of leaf area development and senescence for winter oilseed rape. Field Crops Research, 1998, 57: 209~222.
[36] Sigurdsson B D. Elevated [CO2] and nutrient status modified leaf phenology and growth rhythm of young Populus trichocarpa trees in a 3- year field study. Trees, 2001, 15: 403~413.
[37] Wijk M T, Williams M, Shaver G R. Tight coupling between leaf area index and foliage N content in arctic plant communities. Oecologia, 2005, 142: 421~427.
[38] Smethurst P, Baillie C, Cherry M, et al. Fertilizer effects on LAI and growth of four Eucalyptus nitens plantations. Forest Ecology and Management, 2003, 176: 531~542.
[39] Hymus G J, Pontailler J Y, Li J H, et al. Seasonal variability in the effect of elevated CO2 on ecosystem leaf area index in a scrub- oak ecosystem. Global Change Biology, 2002, 8: 931~940.
[40] Cook A C, Tissue D T, Roberts S W, et al. Effect of long- term elevated [CO2] from natural CO2 springs on Nardus stricta: photosynthesis, biochemistry, growth and phenology. Plant, Cell and Environment, 1998, 21: 417~425.
[41] Seiwa K. Changes of leaf phenology are dependent on tree height in Acer mono, a deciduous broad- leaved tree. Annals of Botany, 1999, 83: 355~361.
[42] Wirtz K W. Simulating the dynamics of leaf physiology and Morphology with an extended optimality approach. Annals of Botany, 2000, 86: 753~764.
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