Concurrent response of tree growth and grain productivity to climate change: A case study from climatic transition zone in central China
Tài liệu tham khảo
Allan, 1996
Bagheri Bodaghabadi, 2015, Digital soil mapping using artificial neural networks and terrain-related attributes, Pedosphere, 25, 580, 10.1016/S1002-0160(15)30038-2
Biondi, 2000, Are Climate-Tree Growth Relationships Changing in North-Central Idaho, U.S.A.?, Arct. Antarct. Alp. Res., 32, 111, 10.1080/15230430.2000.12003346
Cai, 2013, The June-September maximum mean temperature reconstruction from Masson pine (Pinus massoniana Lamb.) tree rings in Macheng, southeast China since 1879 AD, Chin. Sci. Bull., 58, 169, 10.1360/tb-2013-suppl032
Cai, 2021, Temperature variation of the past century in the Tongbai Mountain, Henan Province and its relationship with air-sea interaction, Quaternary Sci., 41, 346
Cao, 2012, Tree-ring-based reconstruction of the temperature variations in February and March since 1890 AD in southern Jiangxi Province, China, Acta Ecologica Sinica, 32, 6369, 10.5846/stxb201202140197
Cook, 1986, User’s manual for program AR-STAN, Palaeogeogr. Palaeoclimatol. Palaeoecol., 302
Deng, 2022, Quantitative Analysis of the Impact of Climate Change on Winter Wheat Yield in Henan Province, Adv. Meteorol. Sci. Technol., 12, 30
Ding, H., Yang, Y., 2015. Empirical Analysis on Factors of Grain Production in Henan Province -Based on Multiple Linear Regression Econometric Model. Grain Science and Technology and Economy 40(3), 10-12, 19.
Duan, 2012, Regional-scale winter-spring temperature variability and chilling damage dynamics over the past two centuries in southeastern China, Clim. Dyn., 39, 919, 10.1007/s00382-011-1232-9
Duan, 2013, Increased variability in cold-season temperature since the 1930s in subtropical China, J. Clim., 13, 4749, 10.1175/JCLI-D-12-00332.1
Duan, 2022, Interpretation of the IPCC AR6 report on agricultural systems, Climate Change Res., 18, 422
Gu, 2020, Divergence Response of Earlywood, Latewood Chronologies of Pinus Massoniana to Climatic Factors, Res. Environ. Yangtze Basin, 29, 1150
Handan, 2019, Base alteration of some heavy metal concentrations on local and seasonal in Bartin River, Environ. Monit. Assess., 191, 594, 10.1007/s10661-019-7753-0
Hang, 2022, Policy Implications for the Green Bank Development in the Context of Global Climate Change, Emerging Sci. J., 6, 817, 10.28991/ESJ-2022-06-04-011
Harley, 2012, Cambial activity of Pinus elliottii var. densa reveals influence of seasonal insolation on growth dynamics in the Florida Keys, Trees-Struct. Funct., 26, 1449, 10.1007/s00468-012-0719-2
He, 2010, Dynamic variation of grain production in Henan Province, J. Arid Land Res. Environ., 24, 6
Heino, 2018, Two-thirds of global cropland area impacted by climate oscillations, Nature Communication, 9, 1, 10.1038/s41467-017-02071-5
Huang, 2020, Net Primary Productivity of Pinus massoniana Dependence on Climate, Soil Forest Characteristics. Forests, 11, 404
Jabal, 2022, Impact of Climate Change on Crops Productivity Using MODIS-NDVI Time Series, Civil Eng. J., 8, 1136, 10.28991/CEJ-2022-08-06-04
Jia, 2020, New understanding of land-climate interactions from IPCC special report on climate change and land, Climate Change Research, 16, 9
Li, 2015, Analysis of the characteristics and influencing factors of grain output in Henan Province, Chinese Agric. Sci. Bull., 31, 226
Li, 1984, Study on the relationship between sunspots, atmospheric circulation and grain yield in Hunan province, Hunan Agric. Sci., 06, 12
Li, 2021, The characteristics of climate factors change and its effects on main grain crops yield per unit area in Henan Province, Crops, 1, 124
Liang, 2019, Contributions of competition and climate on radial growth of Pinus massoniana in subtropics of China, Agric. For. Meteorol., 274, 7, 10.1016/j.agrformet.2019.04.014
Liang, 2003, The extreme drought in the 1920s and its effect on tree growth deduced from tree ring analysis: A case study in North China, Ann. For. Sci., 60, 145, 10.1051/forest:2003007
Licite, 2022, Nutrient-Rich Organic Soil Management Patterns in Light of Climate Change Policy, Civil Eng. J.-Tehran, 8, 2290, 10.28991/CEJ-2022-08-10-017
Mann, 1996, Robust estimation of background noise and signal detection in climatic time series, Clim. Change, 33, 409, 10.1007/BF00142586
Mehmet, 2016, Sustainability of urban coastal area management: A case study on Cide, J. Sustain. For., 35, 527, 10.1080/10549811.2016.1228072
Mehmet, 2016, Determination of bioclimatic comfort areas in landscape planning: A case study of Cide coastline, Turkish J. Agric.: Food Sci. Technol., 4, 800
Myers, 2017, Climate change and global food systems: potential impacts on food security and undernutrition, Annu. Rev. Public Health, 38, 259, 10.1146/annurev-publhealth-031816-044356
Ning, 2019, Temporal-spatial distribution of suitable areas for major food crops in China over 60 years, Adv. Earth Science, 34, 191
Pang, 2005, China Meteorological Disaster Canon (Henan vol.), 1
Peng, 2020, A 216-year tree-ring reconstruction of April-July relative humidity from Mt. Shiren, central China, Int. J. Climatol., 40, 6055, 10.1002/joc.6565
Peng, 2022, Early Summer Temperature Variation Recorded by Earlywood Width in the Northern Boundary of Pinus taiwanensis Hayata in Central China and Its Linkages to the Indian and Pacific Oceans, Biology, 11, 1077, 10.3390/biology11071077
Shao, 1997, Advancements in dendrochronology, Quaternary Sci., 3, 265
Stokes, 1968
Su, 2021, Reconstruction of spatial and temporal scope and social influence process of Henan drought from 1928 to 1929, Quaternary Sciences, 41, 600
Sun, J., Xu, H., Tian, H., Zhang, F., 2022. Temporal evolution characteristics of grain yield in Henan Province during recent 30 years and its relation to atmospheric circulation. Journal of Anhui Agriculture Science 50(2), 227-230, 243.
Wan, 2014, Key factor of total grain yield and agricultural economic development in Henan-Based on analysis of panel data, Chinese J. Agric. Resour. Regional Planning, 35, 78
Wang, 2022, Analysis of Changes in Grain Production and Influencing Factors in the Main Producing Areas-Based on County-level Data in Henan Province, Agric. Outlook, 18, 50
Wen, 2020, Spatiotemporal evolution and influencing factors of Chinese grain production under climate change, J. Henan University (Natural Sci.), 50, 652
Xiao, 2014, Sensitivity of response of winter wheat to climate change in the North China Plain in the last three decades, Chin. J. Eco-Agric., 22, 430
Xu, 2020, Research on the trend and spatial differentiation of grain production in China, Chinese J. Agric. Resour. Regional Planning, 41, 146
Yang, 1996, Proposed and forecast of 11 year cycle of grain production in China, Stat. Res., 3, 38
Zhang, 2017, Identification of main driving factors influencing the grain production in Henan Province, Journal of Arid Land Resources and Environment, 31, 43
Zhang, 2018, Analysis of sensitivity of main grain crops yield to climate change since 1980 in Henan Province, Resources Science, 40, 137
Zhang, 2011, Characteristics of extreme droughts inferred from tree-ring data in the Qilian Mountains, 1700–2005, Climate Res., 50, 141, 10.3354/cr01051
Zhang, 2022, Estimation of climatic potential productivity and its spatiotemporal variation in Henan over the past 61 years, J. Northwest A&F University (Natural Sci. Edition), 50, 53
Zhao, 2022, Spatial-temporal pattern changes and driving factors of grain yield in Henan Province, J. Henan Agric. Univ., 56, 312
Zheng, 2014, Advances on effect of ENSO on agro-meteorological disasters and crop yields of the world and China, Meteorol. Environ. Sci., 37, 90
Zhu, 1992, The study on vegetation characteristics of Tongbai Mountain in Henan Province, Henan Forestry Sci. Technol., 16
