Acta Geodaetica et Cartographica Sinica ›› 2020, Vol. 49 ›› Issue (11): 1497-1505.doi: 10.11947/j.AGCS.2020.20190528
• Cartography and Geoinformation • Previous Articles Next Articles
XIAO Jia1,2, TIAN Qin3,4, HE Zongyi5
Received:2019-07-04
Revised:2019-12-12
Published:2020-11-25
Supported by:CLC Number:
XIAO Jia, TIAN Qin, HE Zongyi. Relative exponential entropy model on classification evaluation of geographic information data[J]. Acta Geodaetica et Cartographica Sinica, 2020, 49(11): 1497-1505.
| [1] 陆效中. 统计地图的分级表示法[M]. 北京:解放军出版社, 1989. LU Xiaozhong. Classification representation of statistic maps[M]. Beijing:The PLA Press, 1989. [2] JENKS G F. Generalization in statistical mapping[J]. Annals of the Association of American Geographers, 1963, 53(1):15-26. [3] JIANG Bin. Head/Tail breaks:a new classification scheme for data with a heavy-tailed distribution[J]. The Professional Geographer, 2013, 65(3):482-494. DOI:10.1080/00330124.2012.700499. [4] 江南, 白小双, 孙娟娟. 基于多属性决策的统计数据分级评价模型[J]. 测绘学报, 2007, 36(2):198-202. DOI:10.3321/j.issn:1001-1595.2007.02.015. JIANG Nan, BAI Xiaoshuang, SUN Juanjuan. Classification evaluation model of statistic data based on multiattribute decision-making[J]. Acta Geodaetica et Cartographica Sinica, 2007, 36(2):198-202. DOI:10.3321/j.issn:1001-1595.2007.02.015. [5] 孙亚梅, 王如云. 专题要素分级的新方法及其应用[J]. 测绘学报, 1994, 23(1):59-66. SUN Yamei, WANG Ruyun. A new grading method and its application in grading of thematic elements[J]. Acta Geodaetica et Cartographica Sinica, 1994, 23(1):59-66. [6] 何宗宜. 地图数据处理模型的原理与方法[M]. 武汉:武汉大学出版社, 2004. HE Zongyi. Elements and methods of model for cartographical data processing[M]. Wuhan:Wuhan University Press, 2004. [7] ARMSTRONG M P, XIAO Ningchuan, BENNETT D A. Using genetic algorithms to create multicriteria class intervals for choropleth maps[J]. Annals of the Association of American Geographers, 2003, 93(3):595-623. [8] 郭庆胜, 李留所, 贾玉明, 等. 顾及空间自相关的统计数据分级质量评价[J]. 武汉大学学报(信息科学版), 2006, 31(3):240-243, 251. GUO Qingsheng, LI Liusuo, JIA Yuming, et al. Quality evaluation of statistical data classification considering spatial autocorrelation[J]. Geomatics and Information Science of Wuhan University, 2006, 31(3):240-243, 251. [9] 姚宇婕, 陈毓芬. 引导型专题数据分级处理研究[J]. 测绘工程, 2012, 21(1):25-29. YAO Yujie, CHEN Yufen. Research on guiding thematic data classification[J]. Engineering of Surveying and Mapping, 2012, 21(1):25-29. [10] CROMLEY R G, MROZINSKI R D. An evaluation of classification schemes based on the statistical versus the spatial structure properties of geographic distributions in choropleth mapping[C]//Proceedings of 1997 ACSM/ASPRS Annual Convention & Exposition. Seattle:American Society for Photogrammetry and Remote Sensing, 1997:76-85. [11] BREWER C A, PICKLE L. Evaluation of methods for classifying epidemiological data on choropleth maps in series[J]. Annals of the Association of American Geographers, 2002, 92(4):662-681. [12] EICHER C L, BREWER C A. Dasymetric mapping and areal interpolation:implementation and evaluation[J]. Cartography and Geographic Information Science, 2001, 28(2):125-138. [13] SUN Min, WONG D, KRONENFELD B. A heuristic multi-criteria classification approach incorporating data quality information for choropleth mapping[J]. Cartography and Geographic Information Science, 2017, 44(3):246-258. [14] SUN Min, WONG D W, KRONENFELD B J. A classification method for choropleth maps incorporating data reliability information[J]. The Professional Geographer, 2015, 67(1):72-83. [15] KOO H, CHUN Yongwan, GRIFFITH D A. Optimal map classification incorporating uncertainty information[J]. Annals of the American Association of Geographers, 2017, 107(3):575-590. [16] MU Wangshu, TONG Daoqin. Choropleth mapping with uncertainty:a maximum likelihood-based classification scheme[J]. Annals of the American Association of Geographers, 2019, 109(5):1493-1510. [17] CHUN Yongwan, KOO H, GRIFFITH D A. A comparison of optimal map classification methods incorporating uncertainty information[C]//BAILLY J S, GRIFFITH D, JOSSELIN D. Proceedings of Spatial Accuracy 2016. Avignon, France:International Spatial Accuracy Research Association, 2016:20-22. [18] WEI Ran, GRUBESIC T H. An alternative classification scheme for uncertain attribute mapping[J]. The Professional Geographer, 2017, 69(4):604-615. [19] 李志林, 刘启亮, 高培超. 地图信息论:从狭义到广义的发展回顾[J]. 测绘学报, 2016, 45(7):757-767. DOI:10.11947/j.AGCS.2016.20160235. LI Zhilin, LIU Qiliang, GAO Peichao. Entropy-based cartographic communication models:evolution from special to general cartographic information theory[J]. Acta Geodaetica et Cartographica Sinica, 2016, 45(7):757-767. DOI:10.11947/j.AGCS.2016.20160235. [20] SUKHOV V I. Information capacity of a map entropy[J]. Geodesy and Aerophotography, 1967, X(5):212-215. [21] 王少一, 王昭, 杜清运. 顾及地图要素级别的几何信息量量测方法[J]. 测绘科学, 2007, 32(4):60-62. WANG Shaoyi, WANG Zhao, DU Qingyun. A measurement method of geometrical information considering multi-level map feature[J]. Science of Surveying and Mapping, 2007, 32(4):60-62. [22] 邓敏, 樊子德, 刘慧敏. 层次信息量的线要素化简算法评价研究[J]. 测绘学报, 2013, 42(5):767-773, 781. DENG Min, FAN Zide, LIU Huimin. Performance evaluation of line simplification algorithms based on hierarchical information content[J]. Acta Geodaetica et Cartographica Sinica, 2013, 42(5):767-773, 781. [23] 艾廷华, 何亚坤, 杜欣. GIS数据尺度变换中的信息熵变化[J]. 地理与地理信息科学, 2015, 31(2):7-11. AI Tinghua, HE Yakun, DU Xin. Information entropy change in GIS data scale transformation[J]. Geography and Geo-Information Science, 2015, 31(2):7-11. [24] BJØRKE J T. Exploration of information theoretic arguments for the limited amount of information in a map[J]. Cartography and Geographic Information Science, 2012, 39(2):88-97. [25] SHANNON C E. A mathematical theory of communication[J]. The Bell System Technical Journal, 1948, 27(4):623-656. [26] PAL S K, PAL N R. Object-background classification using a new definition of entropy[C]//Proceedings of 1988 IEEE International Conference on Systems, Man, and Cybernetics. Beijing:IEEE, 1988:773-776. |
| [1] | Mingguang WU, Ziming CHENG. Color generation method for green maps considering use contexts [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 390-403. |
| [2] | Min YANG, Hongran MA, Bo KONG, Pengcheng LIU, Tinghua AI. A pre-trained model-based method for discriminating morphological patterns of vector-based coastlines [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 404-414. |
| [3] | Wenhao YU, Ziyi ZENG, Yifan ZHANG, Haizhong QIAN. Road network grid pattern analysis using a pre-trained model fusing spatial and topological information [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 415-424. |
| [4] | Xiaomin LU, Zhiyi ZHANG, Haowen YAN, Yi HE, Xiaoning SU. A recognition method for building group pattern integrating deep graph infomax and multilayer perceptron [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 425-438. |
| [5] | Xiaoqiang CHENG, Jiawei ZHAO, Pengcheng LIU. Spatial interaction visualization based on the distance-similarity metaphor [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 536-547. |
| [6] | Zejiao WANG, Longgang XIANG, Meng WANG, Xingjuan WANG, Qing LIU. Hierarchical feature and diversified attention fusion network for collaborative extraction of road surface and centerline [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 548-563. |
| [7] | Zhibang XU. Hierarchical boundary identification, pattern analysis and expansion simulation of physical cities [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(3): 566-566. |
| [8] | Yunbo RAN, Xue YANG, Wenhao ZHOU, Chengen WU, Baoding ZHOU, Luliang TANG, Qingquan LI. Pedestrian path planning driven by preference-enhanced adversarial deep reinforcement learning [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 191-205. |
| [9] | Lizeng WANG, Shifen CHENG, Yitao YANG, Peixiao WANG, Feng LU. LGA-EL: a spatio-temporal adaptive ensemble method with local-global awareness for traffic prediction [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 206-221. |
| [10] | Shaohua WANG, Haojian LIANG, Cheng SU, Dachuan XU, Liang ZHOU, Kun QIN. Advances and prospects in urban facility allocation optimization through coupling spatio-temporal big data and artificial intelligence [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 222-235. |
| [11] | Xiao FU, Sirui ZHU, Xudong LI, Guonian LÜ. An optimization method for the layout of urban vertiports in long-distance commuting scenarios [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 236-248. |
| [12] | Junhao GUO, Mingzhi WU, Peixiao WANG, Hengcai ZHANG. A dual-threshold stay point detection method based on adaptive extended density peak clustering for sparse fixed-point trajectories [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 249-260. |
| [13] | Guannan LI. Method for automatic construction of three dimensional real scene model of the road [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(2): 378-378. |
| [14] | Pengcheng LIU, Xiaoqiang CHENG, Tianyuan XIAO, Min YANG, Tinghua AI. A Transformer model for building polygon simplification in map generalization [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(1): 124-137. |
| [15] | Biao HE, Haojia LIN, Renzhong GUO, Xi KUAI, Ding MA, Chen ZHANG. Visual perception-based quantitative calculation of 3D spatial similarity relations [J]. Acta Geodaetica et Cartographica Sinica, 2026, 55(1): 138-153. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||