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WebGIS在农业环境物联网监测系统中的设计与实现

杜克明, 褚金翔, 孙忠富, 郑飞翔, 夏于, 杨小冬

杜克明, 褚金翔, 孙忠富, 郑飞翔, 夏于, 杨小冬. WebGIS在农业环境物联网监测系统中的设计与实现[J]. 农业工程学报, 2016, 32(4): 171-178. DOI: 10.11975/j.issn.1002-6819.2016.04.024
引用本文: 杜克明, 褚金翔, 孙忠富, 郑飞翔, 夏于, 杨小冬. WebGIS在农业环境物联网监测系统中的设计与实现[J]. 农业工程学报, 2016, 32(4): 171-178. DOI: 10.11975/j.issn.1002-6819.2016.04.024
Du Keming, Chu Jinxiang, Sun Zhongfu, Zheng Feixiang, Xia Yu, Yang Xiaodong. Design and implementation of monitoring system for agricultural environment based on WebGIS with Internet of Things[J]. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(4): 171-178. DOI: 10.11975/j.issn.1002-6819.2016.04.024
Citation: Du Keming, Chu Jinxiang, Sun Zhongfu, Zheng Feixiang, Xia Yu, Yang Xiaodong. Design and implementation of monitoring system for agricultural environment based on WebGIS with Internet of Things[J]. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(4): 171-178. DOI: 10.11975/j.issn.1002-6819.2016.04.024

WebGIS在农业环境物联网监测系统中的设计与实现

基金项目: 国家自然科学基金青年科学基金项目(31401280);"十二五"支撑计划课题(2011BAD32B03);农业部(948计划)项目(2011-G9);公益性行业(农业)科研专项(200903010);公益性行业(气象)科研专项(GYHY201206023)

Design and implementation of monitoring system for agricultural environment based on WebGIS with Internet of Things

  • 摘要: 近年来物联网技术在农业环境监测领域得到了广泛的应用。物联网能够及时获取监测点上时间连续的数据,但在进行较大尺度的区域监测时,因空间变异性影响,基于节点的物联网监测技术面临着监测点分布设计、数据空间连续表达等诸多难题。针对农业环境监测对象的特点,提出了由点到面的区域模拟与评估方法,设计了一套将物联网基于"点"的监测数据与WebGIS基于"面"的空间数据融合分析的解决方案。在已建立的物联网监控中心系统平台基础上,优化集成WebGIS图形化空间分析技术,建立了物联网监测数据与WebGIS空间数据点面融合的农业环境监测系统。系统实现了数据位置地图显示、由点到面的区域模拟与评估、区域监测专题图管理3个功能。以河南省小麦灾情监测为案例对系统进行了应用分析,结果表明系统能有效地实现农业环境由点到面的区域动态监测,提高了作物长势与灾害的综合诊断能力,并能够为农业生产管理提供更为便捷的应用服务。
    Abstract: Abstract: There are two of the main practical monitoring approaches in agriculture including remote-sensing monitoring and on-farm monitoring. Remote-sensing monitoring uses remote-sensing technologies and devices such as satellites and aerial vehicles to extract the key parameters of agricultural information. The remote-sensing technology is effective on regional-scale monitoring, but difficult to collect real-time information in farmlands. On-farm monitoring uses a variety of sensors deployed in farmlands as well as corresponding data processing and transmission equipment to dynamically acquire on-farm information. The Internet of Things (IoT) technology based on the sensor nodes has been widely used in the field of agricultural environment monitoring in recent years. However, when a regional-scale monitoring is carried out by using the IoT technology, there are some problems in the distribution of monitoring sites and the space representation of monitoring data. Aiming at the problems, an approach to evaluation of agricultural environment from on-farm sites to regional scales and the corresponding solution are proposed in this paper. Most of the factors of agricultural environment remain minor variation and appear to be uniform in the same ecological type region, except for extreme weather events or geographical conditions. Therefore, the agricultural environmental information acquired by an on-farm monitoring site could be regarded as the representation of the entire farm where the site located, and the agricultural environmental information of a representative farm could be also considered as the reflection of an entire ecological type region with similar geographical and environmental conditions. An IoT-based monitoring system has been put into application in the past five years which includes a total of 110 on-farm monitoring sites in representative regions of wheat belts across 14 provinces of China and a central monitoring platform. Based on the established central monitoring platform, a regional-scale monitoring system for agricultural environment is designed by integrating with the spatial analysis technology of WebGIS. In the system, three types of WebGIS-based functions were implemented, including site data positioning, regional-scale evaluation, and thematic mapping. Through an interactive online map, positioning, real-time display and query of on-farm sites information and collected data are realized in the site data positioning. The regional-scale evaluation is used for analysis of the collected agricultural environmental information, and decision-making on crop growth conditions and meteorological disasters from on-farm sites to regional scales, while the thematic mapping is used for automatic generation, dynamic display and query of regional-scale monitoring thematic maps of crop growth conditions and meteorological disasters based on the evaluation. The fusion analysis of "on-farm" IoT data and "spatial" WebGIS data is provided in accordance with the characteristics of monitored objects. The system has been put into application in monitoring of wheat growth conditions and meteorological disasters in Henan Province. And the case is demonstrated in dynamic regional-scale monitoring of wheat dry-hot wind occurred on May 11, 2013 in Henan Province. The result indicates that the system is effective when monitoring agricultural environment from on-farm sites to regional scales with dynamical update and the applicability on diagnosis in crop growth conditions and meteorological disasters is improved.
  • [1] 杨邦杰,裴志远,张松岭. 基于3S技术的国家级农情监测系统[J]. 农业工程学报,2001,17(1):154-158.Yang Bangjie, Pei Zhiyuan, Zhang Songling. RS-GIS-GPS-based agricultural condition monitoring systems at a national scale[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2001, 17(1): 154-158. (in Chinese with English abstract)
    [2] Wang X D, Wang H M, Dang A R. Research on large-scale dynamic monitoring of landuse with RS, GPS and GIS[C]// Igarss 2000: IEEE 2000 International Geoscience and Remote Sensing Symposium, Vol I-Vi, Proceedings. New York: IEEE, 2000: 2134-2136.
    [3] Liang Yong, Lu Xiushan, Zhang Degui, et al. Study on the framework system of digital agriculture[J]. Chinese Geographical Science, 2003, 13(1): 15-19.
    [4] 邝继双,汪懋华. 3S技术在农田基础地图测绘与更新中的集成应用[J]. 农业工程学报,2003,19(3):220-223.Kuang Jishuang, Wang Maohua. Application of GIS, GPS and RS for field surveying, mapping and data updating[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2003, 19(3): 220-223. (in Chinese with English abstract)
    [5] International Telecommunication Union. ITU Internet Reports 2005: The Internet of Things[R]. Geneva: International Telecommunication Union, 2005.
    [6] Atzori L, Iera A, Morabito G. The internet of things: A survey[J]. Computer Networks, 2010, 54(15): 2787-2805.
    [7] 李道亮. 农业物联网导论[M]. 北京:科学出版社,2012.
    [8] 邬贺铨. 物联网的应用与挑战综述[J]. 重庆邮电大学学报:自然科学版,2010,22(5):526-531.Wu Hequan. Review on internet of things: application and challenges[J]. Journal of Chongqing University of Posts and Telecommunications: Natural Science Edition, 2010, 22(5): 526-531. (in Chinese with English abstract)
    [9] 孙其博,刘杰,黎羴,等. 物联网:概念、架构与关键技术研究综述[J]. 北京邮电大学学报,2010,33(3):1-9.Sun Qibo, Liu Jie, Li Shan, et al. The Internet of Things: concept, architecture and key technology research review[J]. Journal of Beijing University of Posts and Telecommunications, 2010, 33(3): 1-9. (in Chinese with English abstract)
    [10] 孙忠富,杜克明,尹首一. 物联网发展趋势与农业应用展望[J]. 农业网络信息,2010(5):5-8,21.Sun Zhongfu, Du Keming, Yin Shouyi. Development trend of Internet of things and perspective of its application in agriculture[J]. Agriculture Network Information, 2010(5): 5-8, 21. (in Chinese with English abstract)
    [11] 聂洪淼,焦运涛,赵明宇. 物联网技术在精准农业领域应用的研究与设计[J]. 自动化技术与应用,2012,31(10):89-91,97.Nie Hongmiao, Jiao Yuntao, Zhao Mingyu. Research and design of Internet of things technology in precision agriculture application[J]. Techniques of Automation and Application, 2012, 31(10): 89-91, 97. (in Chinese with English abstract)
    [12] Jula A, Sundararajan E, Othman Z. Cloud computing service composition: A systematic literature review[J]. Expert Systems with Applications, 2014, 41(8): 3809-3824.
    [13] 孙香花. 云计算研究现状与发展趋势[J]. 计算机测量与控制,2011,19(5):998-1001.Sun Xianghua. The research status and development trend of cloud computing[J]. Computer Measurement & Control, 2011, 19(5): 998-1001. (in Chinese with English abstract)
    [14] 魏清凤,罗长寿,孙素芬,等. 云计算在我国农业信息服务中的研究现状与思考[J]. 中国农业科技导报,2013,15(4):151-155.Wei Qingfeng, Luo Changshou, Sun Sufen, et al. Present status and thoughts about agricultural information service based on cloud computing in China[J]. Journal of Agricultural Science and Technology, 2013, 15(4): 151-155. (in Chinese with English abstract)
    [15] 王珊,王会举,覃雄派,等. 架构大数据:挑战、现状与展望[J]. 计算机学报,2011,34(10):1471-1452.Wang Shan, Wang Huiju, Qin Xiongpai, et al. Framework of big data: current status and Prospect of challenge[J]. Chinese Journal of Computers, 2011, 34(10): 1471-1452. (in Chinesewith English abstract)
    [16] 孟小峰,慈祥. 大数据管理:概念、技术与挑战[J]. 计算机研究与发展,2013,50(1):146-169.Meng Xiaofeng, Ci Xiang. Large data management: concepts, techniques and challenges[J]. Journal of Computer Research and Development, 2013, 50(1): 146-169. (in Chinese with English abstract)
    [17] 孙忠富,杜克明,郑飞翔,等. 大数据在智慧农业中研究与应用展望[J]. 中国农业科技导报,2013,15(6):63-71.Sun Zhongfu, Du Keming, Zheng Feixiang, et al. Research prospects in wisdom agriculture and application of large data[J]. Journal of Agricultural Science and Technology, 2013, 15(6): 63-71. (in Chinese with English abstract)
    [18] 许世卫,王东杰,李哲敏. 大数据推动农业现代化应用研究[J]. 中国农业科学,2015,48(17):3429-3438.Xu Shiwei, Wang Dongjie, Li Zhemin. Application research on big data promote agricultural modernization[J]. Scientia Agricultura Sinica, 2015, 48(17): 3429-3438. (in Chinese with English abstract)
    [19] 汤安国,杨昕. ArcGIS地理信息系统空间分析实验教程[M].北京:科学出版社,2006.
    [20] 马林兵,张新长,伍少坤. WebGIS原理与方法教程[M].北京:科学出版社,2010.
    [21] 张宏武,周新邵. WebGIS-互联网时代的GIS开发[J]. 湖南科技学院学报,2008,29(4):97-98.Zhang Hongwu, Zhou Xinshao. WebGIS-GIS development of the internet age[J]. Journal of Hunan University of Science and Engineering, 2008, 29(4): 97-98. (in Chinese with English abstract)
    [22] 范钊. 浅析Web GIS中的相关基础技术[J]. 地理空间信息,2006,4(2):44-46.Fan Zhao. The related basic technology in Web GIS[J]. Geospatial Information, 2006, 4(2): 44-46. (in Chinese with English abstract)
    [23] 徐波. 从WebGIS看GIS发展的大众化[J]. 林业科技情报,2009,41(3):87-89.Xu Bo. The development of GIS popularization from the perspective of WebGIS[J]. Forestry Science and Technology Information, 2009, 41(3): 87-89. (in Chinese with English abstract)
    [24] Mathiyalagan V, Grunwald S, Reddy K R, et al. A WebGIS and geodatabase for Florida's wetlands[J]. Computers and Electronics in Agriculture, 2005, 47(1): 69-75.
    [25] 杨小冬,黄勇奇,危双丰,等. 基于WebGIS的生态农业监测与决策支持系统设计-以云南省红河州烟草种植业为例[J]. 地球信息科学,2007,9(1):99-103.Yang Xiaodong, Huang Yongqi, Wei Shuangfeng, et al. Design of WebGIS-based monitoring and decision support system for eco-agriculture[J]. Spatial Formation Science. 2007, 9(1): 99-103. (in Chinese with English abstract)
    [26] 高琪娟,季小闯,乐毅,等. 基于WEBGIS的农业病虫害监测系统[J]. 计算机技术与发展,2010,20(4):224-227.Gao Qijuan, Ji Xiaochuang, Le Yi, et al. Agricultural plant diseases and insect pests monitoring system based on WEBGIS[J]. Computer Technology and Development, 2010, 20(4): 224-227. (in Chinese with English abstract)
    [27] Bao Yongwei, Yu Mingxuan, Wu Wei. Design and implementation of database for a WebGIS-based rice diseases and pests system[J]. Procedia Environmental Sciences, 2011, 10: 535-540.
    [28] Karydis I, Gratsanis P, Semertzidis C. WebGIS design & implementation for pest life-cycle & control simulation management: The case of olive-fruit fly[J]. Procedia Technology, 2013, 8: 526-529.
    [29] 王元胜,赵春江,王纪华,等. 基于WebGIS的重金属污染决策支持系统设计与应用[J]. 农业工程学报,2005,21(12):137-140.Wang Yuansheng, Zhao Chunjiang, Wang Jihua, et al. Design and application of decision support system for heavy metal pollution management on WebGIS[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2005, 21(12): 137-140. (in Chinese with English abstract)
    [30] 李文峰,李超,杨林楠,等. 基于WebGIS的食用农产品产地环境质量评价系统[J]. 农业工程学报,2011,27(6):198-202.Li Wenfeng, Li Chao, Yang Linnan, et al. Farmland environmental quality evaluation system for edible agricultural products based on WebGIS[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2011, 27(6): 198-202. (in Chinese with English abstract)
    [31] 刘小军,朱艳,姚霞,等. 基于WebGIS的农业空间信息管理及辅助决策系统[J]. 农业工程学报,2006,22(5):125-129.Liu Xiaojun, Zhu Yan, Yao Xia, et al. WebGIS-based system for agricultural spatial information management and aided decision-making[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2006, 22(5): 125-129. (in Chinese with English abstract)
    [32] 严正娟,段增强,卢树昌,等. 基于GoogleMap和WebGIS的区域桃园施肥决策系统的建立与应用[J]. 农业工程学报,2010,26(5):207-212.Yan Zhengjuan, Duan Zengqiang, Lu Shuchang, et al. Construction and application of regional fertilization decision-making system based on GoogleMap and WebGIS for peach orchard[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2010, 26(5): 207-212. (in Chinese with English abstract)
    [33] 许鑫,张浩,席磊,等. 基于WebGIS的小麦精准施肥决策系统[J]. 农业工程学报,2011,27(增刊2):94-98.Xu Xin, Zhang Hao, Xi Lei, et al. Decision-making system for wheat precision fertilization based on WebGIS[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2011, 27(Supp.2): 94-98. (in Chinese with English abstract)
    [34] Jia Yangwen, Zhao Hongli, Niu Cunwen. A WebGIS-based system for rainfall-runoff prediction and real-time water resources assessment for Beijing[J]. Computers & Geosciences, 2009, 35(7): 1517-1528.
    [35] 夏于,孙忠富,杜克明,等. 基于物联网的小麦苗情诊断管理系统设计与实现[J]. 农业工程学报,2013,29(5):117-124.Xia Yu, Sun Zhongfu, Du Keming, et al. Design and realization of IOT-based diagnosis and management system for wheat production[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2013, 29(5): 117-124. (in Chinese with English abstract)
    [36] 夏于,杜克明,孙忠富,等. 物联网技术在小麦气象灾害监控诊断系统中的应用研究[J]. 中国农学通报,2013,29(23):129-134.Xia Yu, Du Keming, Sun Zhongfu, et al. Study on Application of wheat meteorological disasters monitoring diagnosis system based on Internet of things[J]. Chinese Agricultural Science Bulletin, 2013, 29(23): 129-134. (in Chinese with English abstract)
    [37] 马保国,李华刚,王连锋. 基于WebService的WebGis设计与实现[J]. 计算机与数字工程,2007,35(4):136-138.Ma Baoguo, Li Huagang, Wang Lianfeng. Design and implementation of WebGIS based on WebService[J]. Computer & Digital Engineering, 2007, 35(4): 136-138. (in Chinese with English abstract)
    [38] 沈静,吴健平,戎恺. 基于WebService的WebGIS的设计与应用[J]. 遥感技术与应用,2004,19(2):138-142.Shen Jing, Wu Jianping, Rong Kai. Design and application of WebGIS based on WebService[J]. Remote Sensing Technology and Application, 2004, 19(2): 138-142. (in Chinese with English abstract)
    [39] 王凌云,李琦,喻文承. Web Service与地理信息互操作[J].测绘科学,2004,29(1):38-41.Wang Lingyun, Li Qi, Yu Wencheng. WebService and geographical information interoperability[J]. Science of Surveying and Mapping, 2004, 29(1): 38-41. (in Chinese with English abstract)
    [40] 胡廷积,尹钧. 小麦生态栽培[M]. 北京:科学出版社,2014.
    [41] 中国气象局. QX/T82-2007 小麦干热风灾害等级[S]. 北京:气象出版社,2007.China Meteorological Administration. QX/T82-2007 Disaster grade of dry-hot wind for wheat[S]. Beijing: China Meteorological Press, 2007. (in Chinese with English abstract)
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出版历程
  • 收稿日期:  2015-09-21
  • 修回日期:  2016-01-05
  • 发布日期:  2016-02-14

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