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自然资源遥感  2025, Vol. 37 Issue (6): 1-9    DOI: 10.6046/zrzyyg.2022388
  地球数据共享和知识服务 本期目录 | 过刊浏览 | 高级检索 |
世界气象组织数据共享体系分析
刘昱甫1(), 白玉琪1,2()
1.清华大学地球系统科学系,东亚迁徙鸟类与栖息地生态学教育部野外科学观测研究站,清华大学全球变化研究院,北京 100084
2.清华大学中国城市研究院,北京 100084
Meteorological data-sharing system of the World Meteorological Organization
LIU Yufu1(), BAI Yuqi1,2()
1. Department of Earth System Science, Ministry of Education Ecological Field Station for East Asian Migratory Birds and Their Habitatses, Institute for Global Change Studies, Tsinghua University, Beijing 100084, China
2. Tsinghua Urban Institute, Tsinghua University, Beijing 100084, China
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摘要 

经过70余年的发展,世界气象组织(World Meteorological Organization,WMO)已构建起一个覆盖193个成员国的全球数据共享网络。该文从系统架构组成与管理规范标准2个维度系统分析WMO气象数据共享体系,重点阐述全球观测系统(global observing system, GOS)、全球电信系统(global telecommunication system,GTS)、WMO信息系统(WMO information system, WIS)以及全球数据处理和预报系统(global data-processing and forecasting system, GDPFS)4大核心组成部分的功能与协同机制。其中,GOS统筹陆地、海洋、飞机、卫星等多平台观测资源; GTS实现数据的实时收集与高效分发; WIS负责数据与产品的发现、获取与管理; GDPFS则面向用户提供多类型气候预报产品。通过制定统一的数据政策并构建完善的数据共享体系,WMO实现了在天气、气候、水文、大气成分、冰冻圈、海洋等多领域地球系统科学数据的全球协同共享。文章系统总结了WMO共享系统的建设成效,并探讨其在服务我国相关数据战略方面的具体需求,研究结果可为构建跨部门、综合性的地球观测数据共享体系提供参考。

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关键词 世界气象组织数据共享系统全球观测系统数据政策    
Abstract

Through over 70 years of development, the World Meteorological Organization (WMO) has established a global data-sharing network that covers 193 members. This study analyzed the WMO’s meteorological data-sharing system from two aspects: system architecture and composition, and management norms and standards. The meteorological data-sharing system comprises the global observing system (GOS), the global telecommunication system (GTS), the WMO information system (WIS), and the global data-processing and forecasting system (GDPFS). Specifically, the GOS coordinates and schedules observational facilities from land and marine stations, aircraft, environmental satellites, and other platforms. The GTS manages the real-time collection and distribution of meteorological information. The WIS is responsible for discovering, accessing, and managing data and products. The GDPFS provides various climate forecasting data to users. By formulating a unified data policy and establishing this meteorological data-sharing system, the WMO has enabled the global sharing of Earth system science data in multiple fields, such as weather, climate, hydrology, atmospheric composition, cryosphere, and oceans. This study summarizes the achievements of WMO’s meteorological data-sharing system and its alignment with China’s relevant data strategy requirements. It assists in enhancing the understanding of international meteorological data-sharing activities and facilitating the construction of a similar multi-departmental comprehensive Earth observation data-sharing system in China.

Key wordsWorld Meteorological Organization (WMO)    data-sharing system    global observing system    data policy
收稿日期: 2022-10-18      出版日期: 2025-12-31
ZTFLH:  TP79  
基金资助:国家重点研发计划项目“面向开放科学的国际地球观测系统互操作体系研究与示范”(2019YFE0126400)
通讯作者: 白玉琪(1976-),男,博士,教授,主要从事地球空间数据基础设施研究。Email: yuqibai@tsinghua.edu.cn
作者简介: 刘昱甫(1996-),男,博士研究生,主要从事地球信息科学研究。Email: liuyufu18@mails.tsinghua.edu.cn
引用本文:   
刘昱甫, 白玉琪. 世界气象组织数据共享体系分析[J]. 自然资源遥感, 2025, 37(6): 1-9.
LIU Yufu, BAI Yuqi. Meteorological data-sharing system of the World Meteorological Organization. Remote Sensing for Natural Resources, 2025, 37(6): 1-9.
链接本文:  
https://www.gtzyyg.com/CN/10.6046/zrzyyg.2022388      或      https://www.gtzyyg.com/CN/Y2025/V37/I6/1
Fig.1  GOS,GTS,WIS和GDPFS在WWW项目中的关系
Fig.2  WIGOS国际合作的角色和流程
Fig.3  GTS的全球网络示意图[14]
Fig.4  WIS的全球网络示意图
Fig.5  GDPFS的组织体系示意图
Fig.6  WIGOS元数据标准的UML视图
[1] World Meteorological Organization. WMO unified data policy resolution (Res.1)[EB/OL].(2021-04-27)[2022-11-02].https://wmo.int/wmo-unified-data-policy-resolution-res1.
[2] World Meteorological Organization. WMO unified data policy[M]. Geneva: WMO, 2022.
[3] World Meteorological Organization. World weather watch[EB/OL].(2015-09-10)[2022-11-02].https://wmo.int/world-weather-watch.
[4] World Meteorological Organization. Global observing system[EB/OL].(2015-09-17)[2022-11-02].https://wmo.int/activities/global-observing-system-gos/global-observing-system-gos.
[5] 张文建. 世界气象组织全球综合观测系统(WIGOS)空间部分2040年远景发展规解读[J]. 气象科技进展, 2016, 6(1):135-145.
Zhang W J. Interpretation of world meteorological organization’s global integrated observing system (WIGOS) space part’s vision development plan in 2040[J]. Advances in Meteorological Science and Technology, 2016, 6(1):135-145.
[6] 王甫棣, 王鹏. 国际气象通信系统传输模型研究[J]. 计算技术与自动化, 2019, 38(4):156-161.
Wang F D, Wang P. Research on transfer model of international meteorological telecommunication system[J]. Computing Technology and Automation, 2019, 38(4):156-161.
[7] Love G. The birth of the WMO information system[J]. Bulletin of the World Meteorological Organization, 2006, 55(4):232-238.
[8] World Meteorological Organization (WMO). Guide to the WMO integrated global observing system (WMO-No.1165)[M]. Geneva: WMO, 2019.
[9] Pecora S, Lins H F. E-monitoring the nature of water[J]. Hydrological Sciences Journal, 2020, 65(5),683-698.
doi: 10.1080/02626667.2020.1724296
[10] World Meteorological Organization. WMO WIGOS 2040 and data policy[EB/OL].[2023-08-23].https://wmo.int/sites/default/files/2023-10/WMO_WIGOS_2040_AND_DATA_POLICY.pdf.
[11] World Meteorological Organization. Annex VIII to the WMO Technical Regulations[M]// Manual on the WMO integrated global observing system (WMO-No.1160)Geneva:WMO, 2021.
[12] World Meteorological Organization. Vision for the WMO Integrated Global Observing System in 2040[M]. Geneva: WMO, 2020.
[13] World Meteorological Organization. WIGOS Manual.WMO-No.1160[M]. Geneva: WMO, 2021.
[14] World Meteorological Organization. Data and product dissemination[EB/OL].https://community.wmo.int/en/activity-areas/wmo-space-programme-wsp/data-and-product-dissemination.
[15] World Meteorological Organization. WIS overview[EB/OL].[2022-08-23].https://community.wmo.int/en/activity-areas/wis/wis-overview.
[16] World Meteorological Organization. WIS core components[EB/OL].https://community.wmo.int/en/activity-areas/wmo-information-system-wis/WIS%20Core%20Components.
[17] World Meteorological Organization. Global telecommunication system (GTS)[EB/OL].[2022-08-23].https://community.wmo.int/en/activity-areas/global-telecommunication-system-gts.
[18] Asian Disaster Preparedness Center. Critical guidelines on community-based disaster risk management[EB/OL].[2022-08-23].https://www.preventionweb.net/publication/critical-guidelines-community-based-disaster-risk-management.
[19] World Meteorological Organization. Global data-processing and forecasting system[EB/OL].(2015-10-16)[2022-08-23].https://public.wmo.int/en/programmes/global-data-processing-and-forecasting-system.
[20] World Meteorological Organization. Manual on the global data-processing and forecasting system:Annex IV to the WMO technical regulations[R]. Geneva: WMO,2019:148.
[21] World Meteorological Organization. Progress activity report of the extraordinary session of the world meteorological congress (Cg-Ext.(2021))[EB/OL].(2021-10-11)[2023-08-23].https://library.wmo.int/viewer/37353/download?file=Part_II_ProgressActivity_report_CgExt.pdf&type=pdf&navigator=1.
[22] World Meteorological Organization. General meteorological standards and recommended practices[M]// Basic Documents,2.Technical Regulations. Geneva: WMO, 2019.
[23] Organization (WMO) W M,World Meteorological Organization (WMO). Annex VII to the WMO Technical Regulations[M]// Manual on the WMO Information System (WMO-No.1060)Geneva:WMO, 2019.
[24] World Meteorological Organization. Annex II to the WMO Technical Regulations:Part A- Alphanumeric Codes[M]// Manual on Codes-International Codes. Geneva: WMO, 2011.
[25] World Meteorological Organization. WIGOS metadata standard[M]. Geneva: WMO, 2019.
[26] 李湘, 王甫棣, 姜立鹏, 等. WIS的实现技术研究及应用[J]. 气象, 2011, 37(10):1301-1308.
Li X, Wang F D, Jiang L P, et al. Research and application of the implementation technologies for WMO information system[J]. Meteorological Monthly, 2011, 37(10):1301-1308.
[27] World Meteorological Organization. WIGOS metadata standard:WMO-No.1192[M]. Geneva: WMO, 2021.
[28] World Meteorological Organization. Annex III to the WMO technical regulations[M]// Manual on the global telecommunication system. Geneva: WMO, 2015.
[29] 陈鹏飞, 朱玉洁, 陈正洪. 世界气象组织战略计划动态及其经验启示[J]. 气象科技进展, 2016, 6(5):64-69.
Chen P F, Zhu Y J, Chen Z H. World meteorological organization’s strategic plan and its enlightenment[J]. Advances in Meteorological Science and Technology, 2016, 6(5):64-69.
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