2024 Vol. 43, No. 9
Article Contents

LI Yin, SONG Ke, WANG Yujun, ZHAN Yating, ZHU Yefei. 2024. Construction of dynamic monitoring network for natural resources: An example study of Jiangsu Province. Geological Bulletin of China, 43(9): 1459-1469. doi: 10.12097/gbc.2023.02.047
Citation: LI Yin, SONG Ke, WANG Yujun, ZHAN Yating, ZHU Yefei. 2024. Construction of dynamic monitoring network for natural resources: An example study of Jiangsu Province. Geological Bulletin of China, 43(9): 1459-1469. doi: 10.12097/gbc.2023.02.047

Construction of dynamic monitoring network for natural resources: An example study of Jiangsu Province

  • Natural resources are the basic material basis and spatial carrier of human production and life. Dynamic monitoring of the quantity, quality and ecological changes of natural resources, and systematic acquisition of long−term, stable, accurate and continuous monitoring data of natural resources have very important scientific and practical significance for decision−making of natural resources management. On the basis of sorting out the current situation of natural resource monitoring in Jiangsu Province, guided by management needs and issues, this article constructs a "space − aerial − ground − sea" natural resource dynamic monitoring network based on the integration of Video Internet of Things (IoT) and ground observation network construction technology, "land and sea coordination" ground monitoring station network construction technology, and dynamic monitoring supervision platform construction technology, and applies it to the "1+6+X" natural resources routine, special and thematic dynamic monitoring services in Jiangsu province. The results show that: This article studies and integrates the establishment of a dynamic monitoring network of natural resources in Jiangsu province, which integrates land and sea, coordinates up and down, and shares information, and timely monitors the dynamic changes in the types, spatial distribution, quality, and ecology of various natural resources such as land, minerals, forests, water, wetlands, and sea islands in Jiangsu Province. It is expected to form a full coverage, all−weather and all factor monitoring capability of natural resources characterized by "space − aerial − ground − Sea" collaborative operation, and realize the integrated monitoring service of quantity, quality and ecology of natural resources, so as to lay a solid foundation for supporting the fulfillment of the "two unification" responsibilities of natural resource management, promoting the modernization of the natural resource governance system and governance capabilities, ensuring high−quality economic development and the construction of ecological civilization.

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  • [1] Chen J, Wu H, Zhang J X, et al. 2022. Building natural resources surveying and monitoring technological system: Direction and research agenda[J]. Acta Geographica Sinica, 77(5): 1041−1055 (in Chinese with English abstract).

    Google Scholar

    [2] Cihai Editorial Committee. 1980. Cihai (in miniature) [M]. Shanghai: Shanghai Lexicography Publishing House (in Chinese).

    Google Scholar

    [3] Cong Y, Zou Y C, Lv X G, et al. 2021. Comparison of weltland resoures inventory and weltland Monitoring[J]. Wetland Science, 19(3): 277−284 (in Chinese with English abstract).

    Google Scholar

    [4] Cui W. 2019. Discrimination and recogition of investigation and monitoring of natural reosources[J]. Modern surveying and mapping, 42(4): 17−22 (in Chinese with English abstract).

    Google Scholar

    [5] Ge L S, Xia R. 2022. Research on comprehensive investigation work system of natural resources[J]. Journal of Natural Resources, 35(9): 2254−2269 (in Chinese with English abstract).

    Google Scholar

    [6] Huang X J. 2019. Unified management of natural resources: A new era, new characteristics, and new trend[J]. Resources Science, 41(1): 1−8 (in Chinese with English abstract).

    Google Scholar

    [7] Huang L, Wang A H, Chen J, et al. 2020. Application of domestic satellite remote sensing technology in natural resources survey and monitoring[J]. Geospatial Information, 18(5): 73−75 (in Chinese with English abstract).

    Google Scholar

    [8] Li D R. 2012. On space−air−ground integrated earth observation network[J]. Ournal of geo−information science, 14(4): 419−425 (in Chinese with English abstract).

    Google Scholar

    [9] Li H. 2018. Advance and prospects on cultivated land quality evaluation and monitoring in China[J]. Anhui agricultural sciences, 46(35): 14−16,18 (in Chinese with English abstract).

    Google Scholar

    [10] Liu D H, Dong T, Li Y P, et al. 2022. Reflections on the construction of marine natural resources survey and monitoring system[J]. Science of Surveying and Mapping, 47(8): 36−44, 78 (in Chinese with English abstract).

    Google Scholar

    [11] Liu X H, Liu X J, Cheng S B, et al. 2020. Construction of a national natural resources comprehensive observation system and key technologies[J]. Resources Science, 42(10): 1849−1859 (in Chinese with English abstract).

    Google Scholar

    [12] Ministry of Natural Resources of the People's Republic of China. 2018. Notice on Printing and Distributing the Outline of the Scientific and Techonological Innovation and Development Plan for Natural Resources[Z/OL].https://gi.mnr.gov.cn/201811/t20181113_2358751.html(in Chinese).

    Google Scholar

    [13] Ministry of Natural Resources of the People's Republic of China. 2020.Notice of the Ministry of Natural Resources on Printing and Issuing the Overall Plan for the Construction of the Natural Resources Investigation and Monitoring System[Z/OL].https://www.gov.cn/zhengce/zhengceku/2020-01/18/content_5470398.htm(in Chinese).

    Google Scholar

    [14] Peng L, Yin Z Q, Jin A F, et al. 2023. Status and enlightenment of natural resources monitoring and observation network construction in China and aboard[J]. Geological Bulletin of China, 42(12): 2156−2164 (in Chinese with English abstract).

    Google Scholar

    [15] Qian J L, Yang B, Zhang H, et al. 2020. Development of an indicator system of wetland resources based on multidimensional comprehensive observation[J]. Resources Science, 42(10): 1921−1931 (in Chinese with English abstract).

    Google Scholar

    [16] Qian J L, Ni S B, Xu D X, et al. 2021. An Analysis of the Importance of Constructing a Comprehensive Observation Network of Natural Resources Elements[J]. China's land resources economy, (8): 28−36 (in Chinese with English abstract).

    Google Scholar

    [17] Qin Y Z, Tuo S F, Liang X, et al. 2020. Evolution trend of cultivated land quality change in guangxi in the last 35 years based on Long−term location monitoring[J]. Chinese Journal of Soil Science, 51(6): 1290−1296 (in Chinese with English abstract).

    Google Scholar

    [18] Shen Y H, Zhang X R, Liu X H, et al. 2022. An integrated space−aerial−ground monitoring system and applications for natural resources elements[J]. Resources Science, 44(8): 1696−1706 (in Chinese with English abstract).

    Google Scholar

    [19] Wang Y C, Peng Y, Liu X H, et al. 2021. Establishment needs and development trends of comprehensive observation system for national natural resource elements[J]. Geological Survey of China, 8(2): 47−54 (in Chinese with English abstract).

    Google Scholar

    [20] Xu T Y. 2019. Application of remote sensing in natural resources work[J]. Surveying and Mapping Bulletin, (S1): 90−92 (in Chinese with English abstract).

    Google Scholar

    [21] Yang Z Y, Li Y J, Wu Y T, et al. 2021. National groundwater monitoring project (natural resources section) achievements in West Liaohe plain[J]. Geological survey of China, 8(1): 108−113 (in Chinese with English abstract).

    Google Scholar

    [22] You S C, He Y. 2020. The status and development of remote sensing monitoring system of natural resources[J]. Radio Engineering, 50(5): 343−348 (in Chinese with English abstract).

    Google Scholar

    [23] You S C, Zhang R, Dong L N, et al. 2020. Framework and key technologies for natural resources satellites remote sensing monitoring[J]. Geomatics world, 27(5): 115−120,128 (in Chinese with English abstract).

    Google Scholar

    [24] Zhang H, Wang S Q, Wang L, et al. 2020. Discussion on the indicator system of comprehensive observation of natural resource elements[J]. Resources Science, 42(10): 1883−1899 (in Chinese with English abstract).

    Google Scholar

    [25] 陈军, 武昊, 张继贤, 等. 2022. 自然资源调查监测技术体系构建的方向与任务[J]. 地理学报, 77(5): 1041−1055. doi: 10.11821/dlxb202205001

    CrossRef Google Scholar

    [26] 辞海编辑委员会. 1980. 辞海(缩印本)[M]. 上海: 上海辞书出版社.

    Google Scholar

    [27] 崔巍. 2019. 对自然资源调查与监测的辨析和认识[J]. 现代测绘, 42(4): 17−22.

    Google Scholar

    [28] 丛毓, 邹元春, 吕宪国, 等. 2021. 湿地资源调查与湿地监测的比较研究[J]. 湿地科学, 19(3): 277−284.

    Google Scholar

    [29] 葛良胜, 夏锐. 2022. 自然资源综合调查业务体系框架[J]. 自然资源学报, 35(9): 2254−2269.

    Google Scholar

    [30] 黄贤金. 2019. 自然资源统一管理: 新时代、新特征、新趋向[J]. 资源科学, 41(1): 1−8.

    Google Scholar

    [31] 黄露, 王爱华, 陈君, 等. 2020. 国产卫星遥感技术在自然资源调查监测中的应用[J]. 地理空间信息, 18(5): 73−75. doi: 10.3969/j.issn.1672-4623.2020.05.017

    CrossRef Google Scholar

    [32] 李德仁. 2012. 论空天地一体化对地观测网络[J]. 地球信息科学学报, 14(4): 419−425.

    Google Scholar

    [33] 李河. 2018. 中国耕地质量评价和监测研究进展与展望[J]. 安徽农业科学, 46(35): 14−16,18. doi: 10.3969/j.issn.0517-6611.2018.35.005

    CrossRef Google Scholar

    [34] 刘大海, 董通, 李彦平, 等. 2022. 关于海洋自然资源调查监测体系构建的思考[J]. 测绘科学, 47(8): 36−44,78.

    Google Scholar

    [35] 刘晓煌, 刘晓洁, 程书波, 等. 2020. 中国自然资源要素综合观测网络构建与关键技术[J]. 资源科学, 42(10): 1849−1859.

    Google Scholar

    [36] 彭令, 殷志强, 金爱芳, 等. 2023. 国内外自然资源监测与观测网络建设现状及经验启示[J]. 地质通报, 42(12): 2156−2164. doi: 10.12097/j.issn.1671-2552.2023.12.011

    CrossRef Google Scholar

    [37] 钱建利, 杨斌, 张贺, 等. 2020. 基于立体综合观测的湿地资源观测指标体系构建[J]. 资源科学, 42(10): 1921−1931.

    Google Scholar

    [38] 钱建利, 倪舒博, 徐多勋, 等. 2021. 浅析构建自然资源要素综合观测网络重要意义[J]. 中国国土资源经济, (8): 28−36.

    Google Scholar

    [39] 覃迎姿, 陀少芳, 梁雄, 等. 2020. 基于长期定位监测下的近35年广西耕地质量演变趋势研究[J]. 土壤通报, 51(6): 1290−1296.

    Google Scholar

    [40] 沈运华, 张秀荣, 刘晓煌, 等. 2022. 天空地一体化自然资源要素监测体系及其应用[J]. 资源科学, 44(8): 1696−1706. doi: 10.18402/resci.2022.08.12

    CrossRef Google Scholar

    [41] 王远超, 彭毅, 刘晓煌, 等. 2021. 全国自然资源要素综合观测体系建设需求及发展动态[J]. 中国地质调查, 8(2): 47−54.

    Google Scholar

    [42] 许桃元. 2019. 遥感在自然资源工作中的应用浅析[J]. 测绘通报, (S1): 90−92.

    Google Scholar

    [43] 杨志岩, 李元杰, 武永涛, 等. 2021. 国家地下水监测工程(自然资源部分)西辽河平原监测区建设成果概述[J]. 中国地质调查, 8(1): 108−113.

    Google Scholar

    [44] 尤淑撑, 何芸. 2020a. 自然资源遥感监测体系建设现状与发展展望[J]. 无线电工程, 50(5): 343−348. doi: 10.3969/j.issn.1003-3106.2020.05.001

    CrossRef Google Scholar

    [45] 尤淑撑, 张锐, 董丽娜, 等. 2020b. 自然资源卫星遥感常态化监测框架设计及关键技术[J]. 地理信息世界, 27(5): 115−120,128. doi: 10.3969/j.issn.1672-1586.2020.05.019

    CrossRef Google Scholar

    [46] 张贺, 王绍强, 王梁, 等. 2020. 自然资源要素综合观测指标体系探讨[J]. 资源科学, 42(10): 1883−1899.

    Google Scholar

    [47] 自然资源部. 2018. 关于印发自然资源科技创新发展规划纲要的通知[Z/OL].https://gi.mnr.gov.cn/201811/t20181113_2358751.html.

    Google Scholar

    [48] 自然资源部. 2020.自然资源部关于印发《自然资源调查监测体系构建总体方案》的通知[Z/OL]. https://www.gov.cn/zhengce/zhengceku/2020-01/18/content_5470398.htm

    Google Scholar

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