Solar radiation shapes the spatial pattern of spring phenology on the Qinghai-Tibetan Plateau

被引:0
|
作者
Meng, Fandong [1 ]
Yan, Yanzi [2 ]
Li, Lili [3 ]
Zhang, Lirong [4 ]
Guo, Bixi [1 ]
Yang, Zhiyong [1 ]
Dorji, Tsechoe [1 ]
机构
[1] Chinese Acad Sci, Inst Tibetan Plateau Res, State Key Lab Tibetan Plateau Earth Syst Resources, Beijing 100101, Peoples R China
[2] Swedish Univ Agr Sci, Dept Soil & Environm, SE-75007 Uppsala, Sweden
[3] West Yunnan Univ Appl Sci, Kunming 671000, Yunnan, Peoples R China
[4] Hebei Normal Univ Nationalities, Dept Resources & Environm, Chengde 067600, Peoples R China
基金
中国国家自然科学基金;
关键词
spatial pattern; boosted regression trees; strong radiation; acclimation; phenology; (sic)(sic)(sic)(sic); (sic)(sic)(sic)(sic)(sic); (sic)(sic)(sic); (sic)(sic); CLIMATE-CHANGE; PHENOTYPIC PLASTICITY; FLOWERING PHENOLOGY; GROWING-SEASON; ALPINE PLANTS; GREEN-UP; RESPONSES; GRADIENT; DIFFERENTIATION; FLUORESCENCE;
D O I
10.1093/jpe/rtae114
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The spatial pattern of phenology reflects long-term plant adaptation to local environments, yet the drivers of these patterns remain poorly understood. Using satellite data from 2001 to 2018, this study employed the normalized difference vegetation index for vegetation structural greenness and solar-induced chlorophyll fluorescence for vegetation functional photosynthesis to analyze spring phenology on the Qinghai-Tibetan Plateau (hereafter, QTP). A machine learning method, Boosted Regression Trees (BRT), was applied to evaluate the contributions of 19 abiotic and biotic factors to the spring phenology. The results showed that both the spring leaf phenology (SOSNDVI) and photosynthesis phenology (SOSCISF) exhibited a delayed trend decreasing from east to west across the QTP. BRT analysis demonstrated shortwave radiation or/and elevation as key drivers, with higher radiation or elevation associated with more delayed spring phenology spatially, likely due to the constraints of extreme radiation and elevations on spring phenology. Furthermore, we also noted that plants were acclimated to strong radiation to some extent with increasing elevation, namely declined negative effect of radiation/elevation on spring phenology. This acclimation likely enhances plant fitness in the harsh environments of the QTP. Our study provides novel insights into plant phenology on the QTP and highlights the importance of integrating spatial and temporal analysis to improve the localization of phenology models. (sic)(sic) (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic) <label/> (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)2001-2018(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(NDVI)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(SIF)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)(sic)(BRT)(sic)(sic), (sic)(sic)(sic)19(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(SOSNDVI)(sic)(sic)(sic)(sic)(sic)(SOSSIF)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)/(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic), (sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic)(sic).
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Increasing altitudinal gradient of spring vegetation phenology during the last decade on the Qinghai-Tibetan Plateau
    Shen, Miaogen
    Zhang, Gengxin
    Cong, Nan
    Wang, Shiping
    Kong, Weidong
    Piao, Shilong
    AGRICULTURAL AND FOREST METEOROLOGY, 2014, 189 : 71 - 80
  • [2] A prognostic phenology model for alpine meadows on the Qinghai-Tibetan Plateau
    Sun, Qingling
    Li, Baolin
    Yuan, Yecheng
    Jiang, Yuhao
    Zhang, Tao
    Gao, Xizhang
    Ge, Jinsong
    Li, Fei
    Zhang, Zhijun
    ECOLOGICAL INDICATORS, 2018, 93 : 1089 - 1100
  • [3] Spatial and temporal characteristics of global solar radiation over qinghai-tibetan plateau based on itpcas dataset
    Zhang, Lele
    Gao, Liming
    Zhao, Lin
    Chen, Kelong
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2019, 40 (09): : 2521 - 2529
  • [4] Detecting the Turning Points of Grassland Autumn Phenology on the Qinghai-Tibetan Plateau: Spatial Heterogeneity and Controls
    Yang, Yanzheng
    Qi, Ning
    Zhao, Jun
    Meng, Nan
    Lu, Zijian
    Wang, Xuezhi
    Kang, Le
    Wang, Boheng
    Li, Ruonan
    Ma, Jinfeng
    Zheng, Hua
    REMOTE SENSING, 2021, 13 (23)
  • [5] Winter plant phenology in the alpine meadow on the eastern Qinghai-Tibetan Plateau
    Mo, Li
    Luo, Peng
    Mou, Chengxiang
    Yang, Hao
    Wang, Jun
    Wang, Zhiyuan
    Li, Yuejiao
    Luo, Chuan
    Li, Ting
    Zuo, Dandan
    ANNALS OF BOTANY, 2018, 122 (06) : 1033 - 1045
  • [6] Temporal and spatial variations of global solar radiation over the Qinghai-Tibetan Plateau during the past 40 years
    Li, Ren
    Zhao, Lin
    Wu, Tonghua
    Ding, Yongjian
    Xin, Yufei
    Zou, Defu
    Xiao, Yao
    Jiao, Yongliang
    Qin, Yanhui
    Sun, Linchan
    THEORETICAL AND APPLIED CLIMATOLOGY, 2013, 113 (3-4) : 573 - 583
  • [7] Spatial distribution pattern of degree-day factors of glaciers on the Qinghai-Tibetan Plateau
    Deng, Cai
    Zhang, Wanchang
    ENVIRONMENTAL MONITORING AND ASSESSMENT, 2018, 190 (08)
  • [8] Influences of temperature and precipitation before the growing season on spring phenology in grasslands of the central and eastern Qinghai-Tibetan Plateau
    Shen, Miaogen
    Tang, Yanhong
    Chen, Jin
    Zhu, Xiaolin
    Zheng, Yinghua
    AGRICULTURAL AND FOREST METEOROLOGY, 2011, 151 (12) : 1711 - 1722
  • [9] Continuous but diverse advancement of spring-summer phenology in response to climate warming across the Qinghai-Tibetan Plateau
    Zheng, Zhoutao
    Zhu, Wenquan
    Chen, Guangsheng
    Jiang, Nan
    Fan, Deqin
    Zhang, Donghai
    AGRICULTURAL AND FOREST METEOROLOGY, 2016, 223 : 194 - 202
  • [10] Warming and precipitation addition interact to affect plant spring phenology in alpine meadows on the central Qinghai-Tibetan Plateau
    Ganjurjav, Hasbagan
    Gornish, Elise S.
    Hu, Guozheng
    Schwartz, Mark W.
    Wan, Yunfan
    Li, Yue
    Gao, Qingzhu
    AGRICULTURAL AND FOREST METEOROLOGY, 2020, 287