Machine-learning approaches reveal biogeomorphological niche and geographical distribution of nebhkas
编号:2469 访问权限:私有 更新:2023-04-21 21:14:22 浏览:465次 快闪报告

报告开始:2023年05月07日 17:53(Asia/Shanghai)

报告时间:3min

所在会场:[12] 12、地表过程与地貌 [12-3] 12-3 地表过程与地貌

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摘要
Nebkhas are a unique biogeomorphological landform found across global drylands and coastal environments, providing crucial habitat for biodiversity and preventing land desertification. In this study, for the first time machine-learning based models were used to quantify the biogeomorphological niche of nebkhas and simulate the geographical distribution of Nitraria nebkhas in northern China under climate change. The results indicate that climate variables impact the growth of formative shrub species on nebkhas, while both climate, soil and geomorphological conditions, and their spatial configuration determine the probability of nebkha occurrence in northern China. Under medium and high greenhouse gas emission scenarios, the potential distribution of nebkhas in the study area is projected to shift northward but decrease in the south by the end of the century due to rising temperatures. Given the potential impact of nebkha field degradation on biodiversity and soil hydrological conditions, comprehensive land-use strategies should be designed to protect nebkhas and mitigate the impact of future climate change.
 
关键词
灌丛沙丘,机器学习,生物地貌格局,潜在分布,气候环境变化
报告人
张昊辰
南京大学

稿件作者
张昊辰 南京大学
徐志伟 南京大学
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重要日期
  • 会议日期

    05月05日

    2023

    05月08日

    2023

  • 03月31日 2023

    初稿截稿日期

  • 05月25日 2023

    注册截止日期

主办单位
青年地学论坛理事会
中国科学院青年创新促进会地学分会
承办单位
武汉大学
中国科学院精密测量科学与技术创新研究院
中国地质大学(武汉)
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