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3 期 王思雨等: 未来气候变化情景下中国植物物种地理分布变化趋势研究进展 5 1 5
53. [李慧ꎬ 滕皎ꎬ 殷晓洁ꎬ 等ꎬ 2023. 不同气候环境的中 in the context of strengthening the global response to the
国珍稀濒危樟属乔木适生分布区模拟预测 [J]. 东北林 threat of climate changeꎬ sustainable developmentꎬ and
业大学学报ꎬ 51(2): 43-53.] efforts to eradicate poverty [M]. Cambridge and New York:
LI RZꎬ HU XJꎬ WEI BJꎬ et al.ꎬ 2023. Potential distribution Cambridge University Press: 3-24.
simulation of eight Firmiana species in China under climate MIAO Qꎬ WANG Yꎬ WANG Lꎬ et al.ꎬ 2021. Prediction of
change [J]. Acta Ecologica Sinicaꎬ 43(14): 1-19. [李芮 potential geographical distribution pattern change for
芝ꎬ 胡希军ꎬ 韦宝婧ꎬ 等ꎬ 2023. 气候变化下中国八种梧 Castanopsis sclerophylla on MaxEnt [J]. Journal of Nanjing
桐属树种潜在适生区模拟 [J]. 生态学报ꎬ 43(14): Forestry University ( Natural Sciences Edition )ꎬ 45(3):
1-19.] 193-198. [缪菁ꎬ 王勇ꎬ 王璐ꎬ 等ꎬ 2021. 基于 MaxEnt 模
LI YHꎬ ZHANG LJꎬ ZHU WBꎬ et al.ꎬ 2021. Changes of Taxus 型的苦槠潜在地理分布格局变迁预测 [J]. 南京林业大
chinensis var. mairei habitat distribution under global climate 学学报(自然科学版)ꎬ 45(3): 193-198.]
change [J]. Journal of Natural Resourcesꎬ 36(3): 783 - PAN SAꎬ LI XHꎬ FENG QHꎬ et al.ꎬ 2022.Response of Abies
792. [李艳红ꎬ 张立娟ꎬ 朱文博ꎬ 等ꎬ 2021. 全球变化背景 faxoniana to future climate change and its potential
下南 方 红 豆 杉 地 域 分 布 变 化 [ J]. 自 然 资 源 学 报ꎬ distribution patterns in Sichuan Province [ J ]. Acta
36(3): 783-792.] Ecologica Sinicaꎬ 42(10): 4055-4064. [潘少安ꎬ 李旭华ꎬ
LI ZHꎬ LI ZFꎬ HONG GYꎬ et al.ꎬ 2022. Prediction of potential 冯秋红ꎬ 等ꎬ 2022. 四川省岷江冷杉对气候变化的响应及
distribution of Caryopteris mongholica based on MaxEnt 其潜在分布格局 [J]. 生态学报ꎬ 42(10): 4055-4064.]
model in climate change context [J]. Acta Botanica Boreali ̄ PAN YYꎬ OUYANG XHꎬ WANG XLꎬ et al.ꎬ 2021.
Occidentalia Sinicaꎬ 42(7): 1232-1238. [李梓豪ꎬ 李卓 Geographical distribution of Phoebe zhennan and potential
凡ꎬ 洪光宇ꎬ 等ꎬ 2022. 气候变化背景下基于 MaxEnt 模型 distribution area [J]. Journal of Zhejiang Forestry Science
的蒙古莸潜在适生区预测 [J]. 西北植物学报ꎬ 42(7): and Technologyꎬ 41(2): 35-40. [潘颖瑛ꎬ 欧阳先恒ꎬ 王
1232-1238.] 晓丽ꎬ 等ꎬ 2021. 珍稀植物楠木的地理分布及潜在分布区
LIU Rꎬ WANG CJꎬ HE Jꎬ et al.ꎬ 2018. Analysis of 的预测 [J]. 浙江林业科技ꎬ 41(2): 35-40.]
geographical distribution of Abies in China under climate PARMESAN Cꎬ MORECROFT MDꎬ TRISURAT Yꎬ et al.ꎬ
change [J]. Bulletin of Botanical Researchꎬ 38(1): 37- 2022. Terrestrial and freshwater ecosystems and their services
46. [刘然ꎬ 王春晶ꎬ 何健ꎬ 等ꎬ 2018. 气候变化背景下中 [M] / / Climate change 2022: Impactsꎬ adaptation and
国冷 杉 属 植 物 地 理 分 布 模 拟 分 析 [ J]. 植 物 研 究ꎬ vulnerability. Contribution of working group Ⅱ to the sixth
38(1): 37-46.] assessment report of the intergovernmental panel on climate
LOEHLE Cꎬ 2020. Quantifying species geographic range change. Cambridge and New York: Cambridge University
changes: Conceptual and statistical issues [J]. Ecosphereꎬ Press: 197-377.
11(3): e03070. PÖRTNER HOꎬ ROBERTS DCꎬ POLOCZANSKA ESꎬ et al.ꎬ
LUO CYꎬ SHE JYꎬ TANG ZCꎬ 2024. Prediction of potential 2022. IPCCꎬ 2022: Summary for policymakers. [ M ] / /
distribution areas of endangered plant Cathaya argyrophylla Climate change 2022: Impactsꎬ adaptation and
based on SSPs climate scenarios [ J]. Journal of Nanjing vulnerability. Contribution of working group Ⅱ to the sixth
Forestry University ( Natural Sciences Edition)ꎬ 48(1): assessment report of the intergovernmental panel on climate
161-168. [罗楚滢ꎬ 佘济云ꎬ 唐子朝ꎬ 2024. 基于 SSPs 气 change. Cambridge and New York: Cambridge University
候场景的濒危植物银杉潜在分布区预测 [J]. 南京林业 Press: 3-33.
大学学报(自然科学版)ꎬ 48(1): 161-168.] RAN Qꎬ WEI HYꎬ ZHAO ZFꎬ et al.ꎬ 2019. Impact of climate
LÜ JJꎬ WU JGꎬ 2009. Advances in the effects of climate change change on the potential distribution and habitat fragmentation
on the distribution of plant species and vegetation in China of the relict plant Cathaya argyrophylla Chun et Kuang
[J]. Environmental Science & Technologyꎬ 32 (6): 85 - [J]. Acta Ecologica Sinicaꎬ 39(7): 2481-2493. [冉巧ꎬ 卫
95. [吕佳佳ꎬ 吴建国ꎬ 2009. 气候变化对植物及植被分布 海燕ꎬ 赵泽芳ꎬ 等ꎬ 2019. 气候变化对孑遗植物银杉的潜
的影响研究进展 [J]. 环境科学与技术ꎬ 32(6): 85-95.] 在分布及生境破碎度的影响 [J]. 生态学报ꎬ 39(7):
MASSON ̄DELMOTTE Vꎬ ZHAI Pꎬ PIRANI Aꎬ et al.ꎬ 2481-2493.]
2021. IPCCꎬ 2021: Summary for policymakers [ M ] / / SHEN Yꎬ YU Jꎬ GUO SLꎬ 2015. Macromitrium and
Climate change 2021: The physical science basis. Orthotrichum distribution patterns under different climate
Contribution of working group I to the sixth assessment report warming scenarios in China [J]. Acta Ecologica Sinicaꎬ 35
of the intergovernmental panel on climate change. Cambridge (19): 6449-6459. [沈阳ꎬ 于晶ꎬ 郭水良ꎬ 2015. 不同气候
and New York: Cambridge University Press: 3-32. 变化情境下中国木灵藓属和蓑藓属植物的潜在分布格局
MASSON ̄DELMOTTE Vꎬ ZHAI Pꎬ PÖRTNER HOꎬ et al.ꎬ [J]. 生态学报ꎬ 35(19): 6449-6459.]
2018. IPCCꎬ 2018: Summary for policymakers [ M ] / / SONG Yꎬ ZHANG GLꎬ JIA QQꎬ et al.ꎬ 2021. Prediction of
Global warming of 1.5 ℃. An IPCC special report on the potential distribution of Ormosia henryi in China under
impacts of global warming of 1. 5 ℃ above pre ̄industrial climate change [ J ]. Journal of Northwest Forestry
levels and related global greenhouse gas emission pathwaysꎬ Universityꎬ 36(6): 108-115. [宋颖ꎬ 张港隆ꎬ 贾全全ꎬ

