Adaptive cross-country optimisation strategies in thermal soaring birds
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This dataset contains published and unpublished high-frequency GPS data of 12 soaring birds. Published data are collected from: Griffon Vulture: Harel R, Nathan R. 2018. Data from: The characteristic time scale of perceived information for decision-making: departure from thermal columns in soaring birds. Movebank Data Repository. https://www.doi.org/10.5441/001/1.46t5141d Harel R, Nathan R. 2018. The characteristic time scale of perceived information for decision-making: departure from thermal columns in soaring birds. Funct Ecol. 32(8):2065-2072. https://doi.org/10.1111/1365-2435.13136 Verreaux's eagle Murgatroyd, Megan, Theoni Photopoulou, Les G. Underhill, Willem Bouten, and Arjun Amar. 2018. Where eagles soar: Fine‐resolution tracking reveals the spatiotemporal use of differential soaring modes in a large raptor. Ecology and Evolution 8, no. 13: 6788-6799. https://doi.org/10.1002/ece3.4189. Northern Bald Ibis Voelkl B. and Fritz J. 2017. Relation between travel strategy and social organization of migrating birds with special consideration of formation flight in the northern bald ibis. Phil. Trans. R. Soc. B37220160235. http://doi.org/10.1098/rstb.2016.0235 Steppe Eagle Reynolds Kate V., Thomas Adrian L. R. and Taylor Graham K. 2014. Wing tucks are a response to atmospheric turbulence in the soaring flight of the steppe eagle Aquila nipalensisJ. R. Soc. Interface.1120140645. http://doi.org/10.1098/rsif.2014.0645 Reynolds, K. 2015. “Soaring and Gust Response in the Steppe Eagle.” PhD thesis, University of Oxford. Lesser Kestrel Hernández-Pliego J., Rodríguez C., Bustamante J. 2015. Why Do Kestrels Soar? PLoS ONE 10(12): e0145402. https://doi.org/10.1371/journal.pone.0145402 https://datarepository.movebank.org/entities/datapackage/225f9132-72f9-4727-bf0f-cb27fbdc6240 The rest of the dataset is collected by Olivier Duriez, Andrea Flack and Mate Nagy.
本数据集包含12种翱翔鸟类的已发表与未发表高频GPS(Global Positioning System,全球定位系统)数据。 已发表数据来源于以下类群: 1. 欧亚兀鹫(Griffon Vulture): Harel R, Nathan R. 2018. 数据来自:《决策中感知信息的特征时间尺度:翱翔鸟类脱离热柱行为》,Movebank数据仓库,https://www.doi.org/10.5441/001/1.46t5141d Harel R, Nathan R. 2018. 《决策中感知信息的特征时间尺度:翱翔鸟类脱离热柱行为》,《功能生态学》32(8):2065-2072,https://doi.org/10.1111/1365-2435.13136 2. 维氏雕(Verreaux's eagle): Murgatroyd M, Photopoulou T, Underhill LG, Bouten W, Amar A. 2018. 《雕类翱翔何处:高分辨率追踪揭示大型猛禽不同翱翔模式的时空利用策略》,《生态学与进化》8(13):6788-6799,https://doi.org/10.1002/ece3.4189 3. 隐鹮(Northern Bald Ibis): Voelkl B, Fritz J. 2017. 《迁徙鸟类的旅行策略与社会组织的关联——以隐鹮编队飞行为重点》,《英国皇家学会哲学学报B辑》372(20160235),http://doi.org/10.1098/rstb.2016.0235 4. 草原雕(Steppe Eagle): Reynolds KV, Thomas TAR, Taylor GK. 2014. 《草原雕(Aquila nipalensis)翱翔飞行中翅部收拢是对大气湍流的响应》,《英国皇家学会界面杂志》11(20140645),http://doi.org/10.1098/rsif.2014.0645 Reynolds K. 2015. 《草原雕的翱翔飞行与阵风响应》,牛津大学博士学位论文 5. 黄爪隼(Lesser Kestrel): Hernández-Pliego J, Rodríguez C, Bustamante J. 2015. 《为何黄爪隼会翱翔?》,《公共科学图书馆·综合》10(12):e0145402,https://doi.org/10.1371/journal.pone.0145402 https://datarepository.movebank.org/entities/datapackage/225f9132-72f9-4727-bf0f-cb27fbdc6240 本数据集其余数据由Olivier Duriez、Andrea Flack与Mate Nagy采集。



