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MOOD Maps of Google community mobility change during the COVID-19 outbreak

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DataCite Commons2022-07-11 更新2024-07-29 收录
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https://figshare.com/articles/dataset/Maps_of_human_mobility_change_during_the_COVID-19_outbreak/12130980/148
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The MOOD project (MOnitoring Outbreak events for Disease surveillance in a data science context. H2020) has geo-referenced the data Google has published as a series of PDF files presenting reports on national and subnational human mobility levels relative to a baseline data of late January 2020. The details and the PDF files can be found at https://www.google.com/covid19/mobility/.<br>More detail on these files can be found at https://www.moodspatialdata.com/humanmobilityforcovid19 <br>The first set of data were released on April 2 2020 and have been revised weekly since then. The maps now utilise the CSV data released by Google. Please note that the maps figures use a mean of the previous three days, while the Google PDFs use a single days data so there will be differences between values in our maps when compare to the Google PDFs.<br>The authors have extracted the majority of these data into a series of excel spreadsheets. Each worksheet provides the data for % change in numbers of records at various types of location categories illustrated by: retail and recreation, grocery and pharmacy, parks and beaches, transit stations, workplaces and residential (columns f to K). A second set of columns calculates the difference of each value from the mean values for each category (columns L to P) Columns A to E contain geographical details. Column Q contains the names used to link to a mapping file.There are separate worksheets for the date of the data from each dated release (e.g. 2903, 0504 etc.) and separate worksheets calculating the changes between specific dates.<br>A second spreadsheet has been added calculating the 3 day moving mean of each day from the 15th of February. Each day is referenced by the Gregorian calendar day count. So day 48 = Feb 17th.<br>The maps (for EU &amp; Global) display these data. We provide 600 dpi jpegs of the Global (“WD”) and European (“EU”) mapped values at the latest date available, for each of the mobility categories: retail and recreation (“retrec”) , grocery and pharmacy (“grocphar”) , parks (“parks”) , transit stations (“transit”), residential (“resid”) and workplaces (“work”). We also provide maps of the changes from the previous week (“ch”).<br>All data extracting and subsequent processing have been carried out by ERGO (Environmental Research Group Oxford, c/o Dept Zoology, University of Oxford) on behalf of the MOOD H2020 project. Data will be periodically updated. Additional maps can be obtained on request to the authors.

MOOD项目(即数据科学语境下的疾病监测疫情事件监测项目,H2020计划)已将谷歌发布的一系列PDF报告数据进行地理配准(geo-referenced),这些报告以2020年1月末的基准数据为参照,展示了国家及次国家层面的人员流动水平。相关详情及PDF文件可访问https://www.google.com/covid19/mobility/。<br>更多文件细节可查阅https://www.moodspatialdata.com/humanmobilityforcovid19<br>首批数据于2020年4月2日发布,此后每周进行修订。当前的地图现已采用谷歌发布的CSV格式数据。需注意:本项目地图采用前三天数据的平均值进行绘制,而谷歌PDF报告仅使用单日数据,因此本项目地图的数值与谷歌PDF中的数值可能存在差异。<br>本项目作者已将多数数据提取至一系列Excel电子表格中。每个工作表对应一类场所类别的记录数变化百分比,涵盖零售与娱乐、食品杂货与药房、公园与海滩、公交站点、工作场所及住宅区(对应列F至K)。第二组列(L至P)用于计算各数值与对应类别的平均值之差。列A至E包含地理信息细节,列Q则存储用于关联映射文件的名称。每个数据发布日期(如2903、0504等)均对应独立工作表,另有工作表用于计算特定日期间的变化量。<br>新增的第二份电子表格用于计算自2月15日起每日的3日移动平均值,每日以公历日计数标识,例如第48天对应2月17日。<br>针对欧盟(EU)及全球(WD)的地图可展示上述数据。我们提供了最新日期的全球("WD")及欧洲("EU")各流动类别的600dpi JPEG格式地图,流动类别包括:零售与娱乐("retrec")、食品杂货与药房("grocphar")、公园("parks")、公交站点("transit")、住宅区("resid")及工作场所("work")。此外还提供了相较于前一周的变化量("ch")地图。<br>所有数据提取及后续处理均由牛津大学环境研究小组(ERGO,挂靠牛津大学动物学系)代表MOOD H2020项目完成。数据将定期更新,如需额外地图可联系作者获取。
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figshare
创建时间:
2022-06-28
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