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2",{},{"id":24,"text":254,"url":24,"identifiers":526},{"doi":254},{"id":24,"text":257,"url":24,"identifiers":528},{"doi":259},{"id":24,"text":530,"url":24,"identifiers":531},"Carrara A, 1991, Earth Surface Processes and Landforms, 16, 427, 10.1002\u002Fesp.3290160505",{"doi":532},"10.1002\u002Fesp.3290160505",{"id":24,"text":269,"url":24,"identifiers":534},{},{"id":24,"text":265,"url":24,"identifiers":536},{"doi":267},{"id":24,"text":538,"url":24,"identifiers":539},"10.1016\u002FS0169-555X(01)00087-3",{"doi":538},{"id":24,"text":541,"url":24,"identifiers":542},"Dempster A P, 1967, Annals of Mathematical Statistics, 38, 325, 10.1214\u002Faoms\u002F1177698950",{"doi":543},"10.1214\u002Faoms\u002F1177698950",{"id":24,"text":278,"url":24,"identifiers":545},{},{"id":24,"text":547,"url":24,"identifiers":548},"Dyrness C T, 1967, Mass Soil Movements in the H.J. Andrews Experimental Forest, 10.5962\u002Fbhl.title.87886",{"doi":549},"10.5962\u002Fbhl.title.87886",{"id":24,"text":551,"url":24,"identifiers":552},"Eastman R J, 2001, Guide to GIS and Image Processing, Release 32",{},{"id":24,"text":301,"url":24,"identifiers":554},{"doi":301},{"id":24,"text":556,"url":24,"identifiers":557},"P V Gorsevski, 2002, Landslide Hazard Modeling Using GIS . Unpublished Ph.D. Dissertation, University of Idaho",{},{"id":24,"text":559,"url":24,"identifiers":560},"Gorsevski P V, 2003, Proceedings of the 2003 ASPRS Annual Conference",{},{"id":24,"text":310,"url":24,"identifiers":562},{},{"id":24,"text":316,"url":24,"identifiers":564},{"doi":316},{"id":24,"text":566,"url":24,"identifiers":567},"Gorsevski P V, 2004, A Message From the Tatra: Geographical Information Systems and Remote Sensing in Mountain Environmental Research, 159",{},{"id":24,"text":319,"url":24,"identifiers":569},{},{"id":24,"text":571,"url":24,"identifiers":572},"10.1080\u002F014311600210678",{"doi":571},{"id":24,"text":574,"url":24,"identifiers":575},"Malczewski J, 1999, GIS and Multi-criteria Decision Analysis",{},{"id":24,"text":577,"url":24,"identifiers":578},"McBratney A B, 1992, Journal of Soil Science, 43, 159, 10.1111\u002Fj.1365-2389.1992.tb00127.x",{"doi":579},"10.1111\u002Fj.1365-2389.1992.tb00127.x",{"id":24,"text":581,"url":24,"identifiers":582},"10.1016\u002F0168-1923(85)90082-6",{"doi":581},{"id":24,"text":584,"url":24,"identifiers":585},"D E McClelland, R B Foltz, W D Wilson, T W Cundy, R Heinemann, J A Saurbier, and R L Schuster, 1997, Assessment of the 1995 and 1996 floods and landslides on the Clearwater National Forest: Part I, Landslide Assessment . Missoula, U.S. Department of Agriculture Forest Service Report(prepared for Northern Region, Regional Forester)",{},{"id":24,"text":587,"url":24,"identifiers":588},"10.1080\u002F014311601300074621",{"doi":587},{"id":24,"text":590,"url":24,"identifiers":591},"B Minasny, and A B McBratney, 2000, FuzME Version 2.1 . WWW document, http:\u002F\u002Fwww.usyd.edu.au\u002Fsu\u002Fagric\u002Facpa",{},{"id":24,"text":352,"url":24,"identifiers":593},{"doi":352},{"id":24,"text":595,"url":24,"identifiers":596},"Okimura T, 1985, Natural Disaster Science, 7, 41",{},{"id":24,"text":598,"url":24,"identifiers":599},"Peddle D R, 1995, Photogrammetric Engineering and Remote Sensing, 61, 409",{},{"id":24,"text":601,"url":24,"identifiers":602},"Rib H T, 1978, Landslides, Analysis, and Control, 34",{},{"id":24,"text":604,"url":24,"identifiers":605},"Shafer G, 1976, A Mathematical Theory of Evidence, 10.1515\u002F9780691214696",{"doi":606},"10.1515\u002F9780691214696",{"id":24,"text":608,"url":24,"identifiers":609},"Shafer G, 1996, Probabilistic Expert Systems, 10.1137\u002F1.9781611970043",{"doi":610},"10.1137\u002F1.9781611970043",{"id":24,"text":612,"url":24,"identifiers":613},"10.1243\u002F095440802760075012",{"doi":612},{"id":24,"text":615,"url":24,"identifiers":616},"Skidmore A K, 1996, Photogrammetric Engineering and Remote Sensing, 62, 501",{},{"id":24,"text":618,"url":24,"identifiers":619},"10.1016\u002FS0303-2434(02)00008-9",{"doi":618},{"id":24,"text":379,"url":24,"identifiers":621},{"doi":379},{"id":623,"createTime":624,"updateTime":624,"relativeEntities":625,"slug":626,"properties":627,"entityType":102,"verifyStatus":103,"verifyTime":624,"verifyNote":104,"languages":638,"translateLanguages":24,"viewCount":25,"primaryUrl":639,"fullTextUrl":24,"authors":640,"publicationType":182,"publisherRelationship":660,"citationCount":706,"citationInfo":707,"publishDate":718,"publishYear":708,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":719,"openAccess":24,"references":720,"isForceReanalyzing":381},"0baf3f23-2f7d-4aad-9b75-e2149a357457","2024-11-25T10:10:07.572+00:00",[],"The-Effect-of-DEM-Raster-Resolution-on-First-Order-Second-Order-and-Compound-Terrain-Derivatives",{"openalex":628,"mag":630,"abstract":632,"title":634,"doi":636},{"VOID":629},"W2139156616",{"VOID":631},"2139156616",{"EN":633},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>It is well known that the grid cell size of a raster digital elevation model has significant effects on derived terrain variables such as slope, aspect, plan and profile curvature or the wetness index. In this paper the quality of DEMs derived from the interpolation of photogrammetrically derived elevation points in Alberta, Canada, is tested. DEMs with grid cell sizes ranging from 100 to 5 m were interpolated from 100 m regularly spaced elevation points and numerous surface‐specific point elevations using the ANUDEM interpolation method. In order to identify the grid resolution that matches the information content of the source data, three approaches were applied: density analysis of point elevations, an analysis of cumulative frequency distributions using the Kolmogorov‐Smirnov test and the root mean square slope measure. Results reveal that the optimum grid cell size is between 5 and 20 m, depending on terrain com‐plexity and terrain derivative. Terrain variables based on 100 m regularly sampled elevation points are compared to an independent high‐resolution DEM used as a benchmark. Subsequent correlation analysis reveals that only elevation and local slope have a strong positive relationship while all other terrain derivatives are not represented realistically when derived from a coarse DEM. Calculations of root mean square errors and relative root mean square errors further quantify the quality of terrain derivatives.\u003C\u002Fjats:p>",{"EN":635},"The Effect of DEM Raster Resolution on First Order, Second Order and Compound Terrain Derivatives",{"VOID":637},"10.1111\u002Fj.1467-9671.2004.00169.x",[106],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1467-9671.2004.00169.x",[641],{"id":642,"sortIndex":25,"researcher":24,"roles":643,"affiliations":644,"properties":653,"displayName":657,"givenName":24,"familyName":24},"5b065d6a-68f2-492b-99e3-fbf2996f2562",[],[645],{"id":646,"sortIndex":25,"affiliation":647,"properties":24},"689d633a-721f-42cf-8715-8f179249fdab",{"id":646,"createTime":24,"updateTime":24,"relativeEntities":648,"slug":24,"properties":649,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":652,"statistic":24},[],{"title":650},{"EN":651},"Department of Geography; University of Lethbridge",[],{"orcid":654,"title":656,"openalex":658},{"VOID":655},"https:\u002F\u002Forcid.org\u002F0000-0001-7808-7706",{"EN":657},"S. 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WWW document http:\u002F\u002Fwww.hemisoft.com\u002Ftopoview\u002Fmanual\u002Fhelpcontents1.htm",{},{"id":24,"text":757,"url":24,"identifiers":758},"Hetrick W A, 1993, American Society for Photogrammetry and Remote Sensing Technical Papers, 132",{},{"id":24,"text":760,"url":24,"identifiers":761},"Hetrick W A, 1993, Proceedings of the Thirteenth Annual International ESRI User Conference, 447",{},{"id":24,"text":763,"url":24,"identifiers":764},"10.1109\u002FPROC.1981.11918",{"doi":763},{"id":24,"text":766,"url":24,"identifiers":767},"10.1111\u002F1467-9671.00101",{"doi":766},{"id":24,"text":769,"url":24,"identifiers":770},"Hutchinson M F, 1988, Proceedings of the Third International Symposium on Spatial Data Handling",{},{"id":24,"text":772,"url":24,"identifiers":773},"10.1016\u002F0022-1694(89)90073-5",{"doi":772},{"id":24,"text":775,"url":24,"identifiers":776},"10.1002\u002Fhyp.3360050105",{"doi":775},{"id":24,"text":778,"url":24,"identifiers":779},"Hutchinson M F, 1996, Proceedings of the Third International Conference\u002FWorkshop on Integrating GIS and Environmental Modeling",{},{"id":24,"text":781,"url":24,"identifiers":782},"Hutchinson M F, 2000, Terrain Analysis: Principles and Applications, 29",{},{"id":24,"text":784,"url":24,"identifiers":785},"Jenson S K, 1988, Extracting topographic structure from digital elevation data for geographical information system analysis, Photogrammetric Engineering and Remote Sensing, 54, 1593",{},{"id":24,"text":787,"url":24,"identifiers":788},"10.1016\u002FS0098-3004(98)00032-6",{"doi":787},{"id":24,"text":790,"url":24,"identifiers":791},"Kern T J, 1993, Application of Geographic Information Systems in Hydrology and Water Resources Management, 559",{},{"id":24,"text":793,"url":24,"identifiers":794},"Kienzle S W, 1994, Proceedings of the Fourth Symposium on Terrain Evaluation and Data Storage",{},{"id":24,"text":796,"url":24,"identifiers":797},"Kienzle S W, 1997, Hydrology and Water Quality of the Mgeni Catchment",{},{"id":24,"text":799,"url":24,"identifiers":800},"Klaghofer E, 1993, Application of Geographic Information Systems in Hydrology and Water Resources Management, 501",{},{"id":24,"text":802,"url":24,"identifiers":803},"10.1016\u002FS0165-0114(99)00014-7",{"doi":802},{"id":24,"text":805,"url":24,"identifiers":806},"10.1016\u002F0098-3004(92)90007-E",{"doi":805},{"id":24,"text":808,"url":24,"identifiers":809},"10.1080\u002F02693799608902101",{"doi":808},{"id":24,"text":811,"url":24,"identifiers":812},"10.1002\u002Fhyp.3360050103",{"doi":811},{"id":24,"text":814,"url":24,"identifiers":815},"Moore I D, 1993, Environmental Modeling with GIS, 197",{},{"id":24,"text":817,"url":24,"identifiers":818},"10.1002\u002Fhyp.3360070407",{"doi":817},{"id":24,"text":820,"url":24,"identifiers":821},"10.1002\u002F(SICI)1099-1085(199707)11:9\u003C1331::AID-HYP563>3.0.CO;2-9",{"doi":820},{"id":24,"text":823,"url":24,"identifiers":824},"10.1002\u002Fhyp.3360050107",{"doi":823},{"id":24,"text":826,"url":24,"identifiers":827},"10.1002\u002Fesp.3290120107",{"doi":826},{"id":24,"text":829,"url":24,"identifiers":830},"10.1029\u002F93WR03553",{"doi":829},{"id":832,"createTime":833,"updateTime":833,"relativeEntities":834,"slug":835,"properties":836,"entityType":102,"verifyStatus":103,"verifyTime":847,"verifyNote":104,"languages":848,"translateLanguages":24,"viewCount":25,"primaryUrl":849,"fullTextUrl":24,"authors":850,"publicationType":182,"publisherRelationship":885,"citationCount":930,"citationInfo":931,"publishDate":936,"publishYear":932,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":937,"openAccess":24,"references":938,"isForceReanalyzing":381},"6c010d42-2450-4b5d-a078-5b21165b60bf","2024-10-02T19:01:21.874+00:00",[],"Toward-Optimal-Calibration-of-the-SLEUTH-Land-Use-Change-Model",{"openalex":837,"mag":839,"abstract":841,"title":843,"doi":845},{"VOID":838},"W2170701747",{"VOID":840},"2170701747",{"EN":842},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>SLEUTH is a computational simulation model that uses adaptive cellular automata to simulate the way cities grow and change their surrounding land uses. It has long been known that models are of most value when calibrated, and that using back‐casting (testing against known prior data) is an effective calibration method. SLEUTH's calibration uses the brute force method: every possible combination and permutation of its control parameters is tried, and the outcomes tested for their success at replicating prior data. Of the SLEUTH calibration approaches tried so far, there have been several suggested rules to follow during the brute force procedure to deal with problems of tractability, most of which leave out many of the possible parameter combinations. In this research, we instead attempt to create the complete set of possible outcomes with the goal of examining them to select the optimum from among the millions of possibilities. The self‐organizing map (SOM) was used as a data reduction method to pursue the isolation of the best parameter sets, and to indicate which of the existing 13 calibration metrics used in SLEUTH are necessary to arrive at the optimum. As a result, a new metric is proposed that will be of value in future SLEUTH applications. The new measure combines seven of the current measures, eight if land use is modeled, and is recommended as a way to make SLEUTH applications more directly comparable, and to give superior modeling and forecasting results.\u003C\u002Fjats:p>",{"EN":844},"Toward Optimal Calibration of the SLEUTH Land Use Change 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comparative studies of 1990 urban extent data for the New York Metropolitan Region, URISA Journal, 14, 57",{},{"id":24,"text":970,"url":24,"identifiers":971},"Goldstein N C, 2004, GeoDynamics, 00",{},{"id":24,"text":973,"url":24,"identifiers":974},"10.1068\u002Fb2983",{"doi":973},{"id":24,"text":976,"url":24,"identifiers":977},"KaskiS1997Data Exploration Using Self‐organizing Maps.Unpublished Ph.D. Dissertation Department of Computer Science and Engineering Helsinki Technical 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3",{},{"id":24,"text":1006,"url":24,"identifiers":1007},"10.1109\u002F38.974518",{"doi":1006},{"id":24,"text":1009,"url":24,"identifiers":1010},"Ultsch A, 2003, U‐matrix: A Tool to Visualize Clusters in High Dimensional Data.",{},{"id":24,"text":1012,"url":24,"identifiers":1013},"10.1007\u002Fs00267-002-2630-x",{"doi":1012},{"id":24,"text":1015,"url":24,"identifiers":1016},"Vesanto J, 1997, Data Mining Techniques Based on the Self‐organizing Map.",{},{"id":24,"text":1018,"url":24,"identifiers":1019},"Vesanto J, 2002, Artificial Neural Networks., 951",{},{"id":24,"text":1021,"url":24,"identifiers":1022},"10.1080\u002F1365881031000086965",{"doi":1021},{"id":1024,"createTime":1025,"updateTime":1025,"relativeEntities":1026,"slug":1027,"properties":1028,"entityType":102,"verifyStatus":103,"verifyTime":1025,"verifyNote":104,"languages":1038,"translateLanguages":24,"viewCount":25,"primaryUrl":1039,"fullTextUrl":24,"authors":1040,"publicationType":182,"publisherRelationship":1070,"citationCount":1114,"citationInfo":1115,"publishDate":1117,"publishYear":708,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":1118,"openAccess":24,"references":1119,"isForceReanalyzing":381},"7d5bc556-247c-4aaf-8c19-e48043735aee","2024-10-02T19:01:12.664+00:00",[],"Spatial-Differences-in-Multi-Resolution-Urban-Automata-Modeling",{"openalex":1029,"mag":1031,"abstract":1033,"title":1035,"doi":1037},{"VOID":1030},"W2083666892",{"VOID":1032},"2083666892",{"EN":1034},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>The last decade has seen a renaissance in spatial modeling. Increased computational power and the greater availability of spatial data have aided in the creation of new modeling techniques for studying and predicting the growth of cities and urban areas. Cellular automata is one modeling technique that has become widely used and cited in the literature; yet there are still some very basic questions that need to be answered with regards to the use of these models, specifically relating to the spatial resolution during calibration and how it can impact model forecasts. Using the SLEUTH urban growth model (\u003Cjats:ext-link xmlns:xlink=\"http:\u002F\u002Fwww.w3.org\u002F1999\u002Fxlink\" xlink:href=\"#b9\">Clarke et al. 1997\u003C\u002Fjats:ext-link>), urban growth for San Joaquin County (CA) is projected using three different spatial grains, based on four calibration routines, and the spatial differences between the model outputs are examined. Model outputs show that calibration at finer scaled data results in different parameter sets, and forecasting of urban growth in areas that was not captured through the use of more coarse data.\u003C\u002Fjats:p>",{"EN":1036},"Spatial Differences in Multi‐Resolution Urban Automata Modeling",{"VOID":961},[106],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1467-9671.2004.00197.x",[1041,1056],{"id":1042,"sortIndex":25,"researcher":24,"roles":1043,"affiliations":1044,"properties":1053,"displayName":865,"givenName":24,"familyName":24},"371401e9-e984-4245-89e6-f59fa31c6b63",[],[1045],{"id":1046,"sortIndex":25,"affiliation":1047,"properties":24},"42b51a3f-ca06-49d1-9ad3-e85eb340ea13",{"id":1046,"createTime":24,"updateTime":24,"relativeEntities":1048,"slug":24,"properties":1049,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1052,"statistic":24},[],{"title":1050},{"EN":1051},"Department of Geography University of California-Santa Barbara",[],{"title":1054,"openalex":1055},{"EN":865},{"VOID":867},{"id":1057,"sortIndex":130,"researcher":24,"roles":1058,"affiliations":1059,"properties":1066,"displayName":882,"givenName":24,"familyName":24},"d578cff9-1efd-4157-ba77-7f4fd47f48ed",[],[1060],{"id":1046,"sortIndex":25,"affiliation":1061,"properties":24},{"id":1046,"createTime":24,"updateTime":24,"relativeEntities":1062,"slug":24,"properties":1063,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1065,"statistic":24},[],{"title":1064},{"EN":1051},[],{"orcid":1067,"title":1068,"openalex":1069},{"VOID":880},{"EN":882},{"VOID":884},{"url":24,"publisher":1071,"properties":1109},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1072,"slug":10,"properties":1073,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":1078,"manageAffiliations":1083,"indexDatabases":1094,"url":83,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":1074,"eissn":1075,"issn":1076,"title":1077},{"VOID":13},{"VOID":15},{"VOID":17},{"EN":19},[1079],{"id":28,"createTime":24,"updateTime":24,"relativeEntities":1080,"label":1081,"description":1082,"parentId":24,"standard":24,"scholarHubFieldId":24},[],{"EN":31},{},[1084,1089],{"id":35,"createTime":24,"updateTime":24,"relativeEntities":1085,"slug":24,"properties":1086,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1088,"statistic":24},[],{"title":1087},{"EN":39},[],{"id":42,"createTime":24,"updateTime":24,"relativeEntities":1090,"slug":24,"properties":1091,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1093,"statistic":24},[],{"title":1092},{"EN":46},[],[1095,1102],{"id":50,"indexDatabase":1096,"url":63,"indexYears":24,"academicFieldIds":1101,"indexDatabaseRanking":24},{"id":52,"createTime":24,"updateTime":24,"relativeEntities":1097,"label":1098,"description":1099,"key":59,"publicationTags":1100,"standard":24},[],{"EN":55,"VI":55},{"EN":57,"VI":58},[61,62],[65],{"id":67,"indexDatabase":1103,"url":78,"indexYears":79,"academicFieldIds":1108,"indexDatabaseRanking":82},{"id":69,"createTime":24,"updateTime":24,"relativeEntities":1104,"label":1105,"description":1106,"key":75,"publicationTags":1107,"standard":24},[],{"EN":72,"VI":72},{"EN":72,"VI":74},[77],[81],{"issue":1110,"pages":1111,"volume":1113},{"VOID":487},{"VOID":1112},"479-492",{"VOID":705},61,{"total":1114,"publishYear":708,"statisticByYear":1116},{"2012":148,"2013":130,"2014":148,"2015":716,"2016":235,"2017":148,"2018":496,"2019":235,"2020":496,"2021":130,"2022":148,"2024":148},"2004-10-01",[61,82],[1120,1123,1125,1127,1130,1133,1136,1139,1141,1143,1146,1149,1152,1155,1158,1160,1163,1166,1168,1171,1173,1175,1177,1180,1182,1184,1187,1190,1193,1196,1199,1201,1204,1207,1210,1213],{"id":24,"text":1121,"url":24,"identifiers":1122},"Agarwal C, 2000, A Review and Assessment of Land‐use Change Models: Dynamics of Space, Time, and Human Choice",{},{"id":24,"text":943,"url":24,"identifiers":1124},{},{"id":24,"text":946,"url":24,"identifiers":1126},{"doi":946},{"id":24,"text":1128,"url":24,"identifiers":1129},"10.1016\u002FS0198-9715(99)00015-0",{"doi":1128},{"id":24,"text":1131,"url":24,"identifiers":1132},"Brail R K, 2001, Planning Support Systems: Integrating Geographic Information Systems, Models, and Visualization Tools",{},{"id":24,"text":1134,"url":24,"identifiers":1135},"CA‐FMMP2003California Farmland Mapping and Monitoring Program. 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Cincinnati OH U.S. Environmental Protection Agency Office of Research and Development Report No EPA\u002F600\u002FR‐00\u002F098(available athttp:\u002F\u002Fwww.epa.gov\u002Fecommunity\u002Ftools\u002Freportfinal3.pdf)",{},{"id":24,"text":1197,"url":24,"identifiers":1198},"U.S. Geological Survey2003.Preliminary Assessment of Urban Growth in California's Central Valley. 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Understanding the intertwined usages of these three transit modes at different places and time allows for better sensing of urban mobility and the built environment. In this article, we leverage a comprehensive data collection of bus, metro, and taxicab ridership from Shenzhen, China to unveil the spatio‐temporal interplay between different mass transit modes. To achieve this goal, we develop a novel spectral clustering framework that imposes spatio‐temporal similarities between mass transit mode usage in urban space and differentiates urban spaces associated with distinct ridership patterns of mass transit modes. Five resulting categories of urban spaces are identified and interpreted with auxiliary knowledge of the city's metro network and land‐use functionality. In general, different categorized urban spaces are associated with different accessibility levels (such as high‐, medium‐, and low‐ranked) and different urban functionalities (such as residential, commercial, leisure‐dominant, and home–work balanced). The results indicate that different mass transit modes cooperate or compete based on demographic and socioeconomic attributes of the underlying urban environments. Our proposed analytical framework provides a novel and effective way to explore the mass transit system and the functional heterogeneity in cities. It demonstrates great potential for assisting policymakers and municipal managers in optimizing public transportation facility allocation and city‐wide daily commuting distribution.\u003C\u002Fjats:p>",{"EN":1228},"Understanding the interplay between bus, metro, and cab ridership dynamics in Shenzhen, 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Little attention has been paid to understanding its geography, structure and evolution. Taking a new organizational perspective, this article aims to fill the knowledge gap by analyzing collaboration and citation networks between \u003Cjats:styled-content style=\"fixed-case\">GIS\u003C\u002Fjats:styled-content> research organizations, including academic institutions, government agencies, businesses, and others. These two networks are analyzed in geographical and bibliographical spaces, respectively, to discover characteristic distributions and structures. The results show an uneven geographic distribution of \u003Cjats:styled-content style=\"fixed-case\">GIS\u003C\u002Fjats:styled-content> research organizations, and clustered spatial interactions between them. Both collaboration and citation networks exhibit typical “scale‐free” structures, which came into being around the year 2000 and have remained to the present. Further, the \u003Cjats:styled-content style=\"fixed-case\">GIS\u003C\u002Fjats:styled-content> research community is composed of 11 cohesive sub‐groups, with each having a clear hub‐spoke structure and a few highly connected organizations as leaders. 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The OpenStreetMap project is currently the most significant example of a system based on VGI. It aims at producing free vector geographic databases using contributions from Internet users. Spatial data quality becomes a key consideration in this context of freely downloadable geographic databases. This article studies the quality of French OpenStreetMap data. It extends the work of Haklay to France, provides a larger set of spatial data quality element assessments (i.e. geometric, attribute, semantic and temporal accuracy, logical consistency, completeness, lineage, and usage), and uses different methods of quality control. The outcome of the study raises questions such as the heterogeneity of processes, scales of production, and the compliance to standardized and accepted specifications. In order to improve data quality, a balance has to be struck between the contributors' freedom and their respect of specifications. The development of appropriate solutions to provide this balance is an important research issue in the domain of user‐generated content.\u003C\u002Fjats:p>",{"EN":1696},"Quality Assessment of the French OpenStreetMap Dataset",{"VOID":1698},"10.1111\u002Fj.1467-9671.2010.01203.x","2024-09-18T18:20:09.778+00:00",[106],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1467-9671.2010.01203.x",[1703,1730],{"id":1704,"sortIndex":25,"researcher":24,"roles":1705,"affiliations":1706,"properties":1723,"displayName":1727,"givenName":24,"familyName":24},"b7e11ab3-528b-4d54-aed8-8c84ef690ca3",[],[1707,1715],{"id":1708,"sortIndex":25,"affiliation":1709,"properties":24},"82b2f053-7be4-4099-8e1f-397885b015c8",{"id":1708,"createTime":24,"updateTime":24,"relativeEntities":1710,"slug":24,"properties":1711,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1714,"statistic":24},[],{"title":1712},{"EN":1713},"COGIT - 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InProceedings of the Twelfth International Conference on Geographic Information Science (AGILE'09) Hannover Germany",{},{"id":24,"text":1812,"url":24,"identifiers":1813},"AllanA2008OSM cycle maps. InProceedings of the Forty‐fourth Society of Cartographers Annual Summer School Aberdeen Scotland",{},{"id":24,"text":1815,"url":24,"identifiers":1816},"Bel Hadj AliAandVauglinF1999Geometrical matching of polygons in GISs and assessment of geometrical quality of polygons. InProceedings of the International Symposium on Spatial Data Quality (ISSDQ'99) Hong Kong:33–41",{},{"id":24,"text":1818,"url":24,"identifiers":1819},"BrandoCandBucherB2010Quality in user generated spatial content: A matter of specifications. 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Berlin Springer Lecture Notes in Geoinformation and Cartography: in press",{"doi":1826},"10.1007\u002F978-3-642-10595-1_2",{"id":24,"text":1828,"url":24,"identifiers":1829},"Coleman D J, 2009, Volunteered geographic information: The nature and motivation of producers, International Journal of Spatial Data Infrastructures Research, 4, 332",{},{"id":24,"text":1831,"url":24,"identifiers":1832},"EgenhoferM1993What's special about spatial database requirements for vehicle navigation in geographic space. InProceedings of ACM SIGMOD International Conference on the Management of Data Washington DC:398–402",{"doi":1833},"10.1145\u002F170036.170096",{"id":24,"text":1835,"url":24,"identifiers":1836},"GesbertN2004Formalisation of geographical database specifications. 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InProceedings of the Twenty‐third International Cartographic Conference (ICC'07) Moscow Russia",{},{"id":24,"text":1893,"url":24,"identifiers":1894},"VauglinF1997Modèles statistiques des imprécisions géométriques des objets géographiques linéaires. Unpublished Ph.D. Dissertation Marne‐la‐Vallée University France",{},{"id":1896,"createTime":1897,"updateTime":1897,"relativeEntities":1898,"slug":1899,"properties":1900,"entityType":102,"verifyStatus":103,"verifyTime":1911,"verifyNote":104,"languages":1912,"translateLanguages":24,"viewCount":25,"primaryUrl":1913,"fullTextUrl":24,"authors":1914,"publicationType":182,"publisherRelationship":1996,"citationCount":2041,"citationInfo":2042,"publishDate":2045,"publishYear":2043,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":2046,"openAccess":24,"references":2047,"isForceReanalyzing":381},"31c2a7eb-ae69-43b3-926f-85ddbfd918bf","2024-09-18T18:20:05.807+00:00",[],"Supporting-Accessibility-for-Blind-and-Vision-impaired-People-With-a-Localized-Gazetteer-and-Open-Source-Geotechnology",{"openalex":1901,"mag":1903,"abstract":1905,"title":1907,"doi":1909},{"VOID":1902},"W1482335839",{"VOID":1904},"1482335839",{"EN":1906},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Disabled people, especially the blind and vision‐impaired, are challenged by many transitory hazards in urban environments such as construction barricades, temporary fencing across walkways, and obstacles along curbs. These hazards present a problem for navigation, because they typically appear in an unplanned manner and are seldom included in databases used for accessibility mapping. Tactile maps are a traditional tool used by blind and vision‐impaired people for navigation through urban environments, but such maps are not automatically updated with transitory hazards. As an alternative approach to static content on tactile maps, we use volunteered geographic information (VGI) and an Open Source system to provide updates of local infrastructure. These VGI updates, contributed via voice, text message, and e‐mail, use geographic descriptions containing place names to describe changes to the local environment. After they have been contributed and stored in a database, we georeference VGI updates with a detailed gazetteer of local place names including buildings, administrative offices, landmarks, roadways, and dormitories. We publish maps and alerts showing transitory hazards, including location‐based alerts delivered to mobile devices. Our system is built with several technologies including PHP, JavaScript, AJAX, Google Maps API, PostgreSQL, an Open Source database, and PostGIS, the PostgreSQL's spatial extension. This article provides insight into the integration of user‐contributed geospatial information into a comprehensive system for use by the blind and vision‐impaired, focusing on currently developed methods for geoparsing and georeferencing using a gazetteer.\u003C\u002Fjats:p>",{"EN":1908},"Supporting Accessibility for Blind and Vision‐impaired People With a Localized Gazetteer and Open Source Geotechnology",{"VOID":1910},"10.1111\u002Fj.1467-9671.2012.01318.x","2024-09-18T18:20:05.806+00:00",[106],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1467-9671.2012.01318.x",[1915,1932,1947,1966,1981],{"id":1916,"sortIndex":25,"researcher":24,"roles":1917,"affiliations":1918,"properties":1927,"displayName":1929,"givenName":24,"familyName":24},"bfdffe26-d686-44d7-a998-c7dcd3eb8ded",[],[1919],{"id":1920,"sortIndex":25,"affiliation":1921,"properties":24},"b85f25fc-0b46-46f8-a6d4-1700df7e6ba3",{"id":1920,"createTime":24,"updateTime":24,"relativeEntities":1922,"slug":24,"properties":1923,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1926,"statistic":24},[],{"title":1924},{"EN":1925},"Department of Geography and Geoinformation Science, George Mason University",[],{"title":1928,"openalex":1930},{"EN":1929},"Matthew Rice",{"VOID":1931},"A5064236930",{"id":1933,"sortIndex":130,"researcher":24,"roles":1934,"affiliations":1935,"properties":1942,"displayName":1944,"givenName":24,"familyName":24},"5e02d999-f3bc-49cc-aaf3-86e0cb905bd3",[],[1936],{"id":1920,"sortIndex":25,"affiliation":1937,"properties":24},{"id":1920,"createTime":24,"updateTime":24,"relativeEntities":1938,"slug":24,"properties":1939,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":1941,"statistic":24},[],{"title":1940},{"EN":1925},[],{"title":1943,"openalex":1945},{"EN":1944},"Ahmad O. 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Unpublished presentation",{},{"id":24,"text":2070,"url":24,"identifiers":2071},"10.1080\u002F136588198241635",{"doi":2070},{"id":24,"text":2073,"url":24,"identifiers":2074},"GolledgeR G MarstonJ R LoomisJ M andKlatzkyR L2007Wayfinding without sight: The haptic pointer interface. Invited paper presented at Annual Meeting of the Association of American Geographers San Francisco California",{},{"id":24,"text":2076,"url":24,"identifiers":2077},"10.1111\u002Fj.0033-0124.2005.00482.x",{"doi":2076},{"id":24,"text":2079,"url":24,"identifiers":2080},"10.7551\u002Fmitpress\u002F3260.001.0001",{"doi":2079},{"id":24,"text":2082,"url":24,"identifiers":2083},"MarstonJ R GolledgeR G LoomisJ M KlatzkyR L andGiudiceN A2008Substituting for vision: Field experiments with several orientation and navigation devices. Invited presentation at the Vision Research Seminar Series Department of Ophthalmology Emory University School of Medicine Atlanta Georgia",{},{"id":24,"text":2085,"url":24,"identifiers":2086},"10.1145\u002F1141897.1141900",{"doi":2085},{"id":24,"text":2088,"url":24,"identifiers":2089},"MieleJ A2011Tactile Map Automated Production (TMAP): Using GIS Data to Automatically Generate Raised‐Line Street Maps. WWW document http:\u002F\u002Fwww.ski.org\u002FRehab\u002FTMAP\u002F",{},{"id":24,"text":2091,"url":24,"identifiers":2092},"Miele J A, 2005, Proceedings of the CSUN Twentieth Annual International Conference: Technology and Persons with Disabilities",{},{"id":24,"text":2094,"url":24,"identifiers":2095},"NuernbergerA2008Presenting Accessibility to Mobility‐Impaired Travelers. Unpublished Ph.D. Dissertation University of California Santa Barbara",{},{"id":24,"text":2097,"url":24,"identifiers":2098},"PerkinsC2001Tactile campus mapping: Evaluating designs and production technologies. InProceedings of the Twentieth International Cartographic Conference (ICC2001) Beijing China:2906–13",{},{"id":24,"text":2100,"url":24,"identifiers":2101},"PrzyszewskaKandSzyszkowskaK2011Atlas of the world for the blind and visually impaired. InProceedings of the Twenty‐fifth International Cartographic Conference Paris France",{},{"id":24,"text":2103,"url":24,"identifiers":2104},"Research Unit on Spatial Cognition and Choice 2011 Reg Walking with Original System(1997; Archived Image). WWW document http:\u002F\u002Fwww.geog.ucsb.edu\u002Fpgs\u002Fimages\u002FReg_1997.jpg",{},{"id":24,"text":2106,"url":24,"identifiers":2107},"10.1007\u002F978-3-642-19143-5_16",{"doi":2106},{"id":24,"text":2109,"url":24,"identifiers":2110},"10.1559\u002F152304005775194656",{"doi":2109},{"id":24,"text":2112,"url":24,"identifiers":2113},"10.1080\u002F13658810802634956",{"doi":2112},{"id":24,"text":2115,"url":24,"identifiers":2116},"TathamA F1991The design of tactile maps: Theoretical and practical considerations. InMapping the Nations: Proceedings of the Fifteenth Conference and Ninth General Assembly of the International Cartographic Association Bournemouth United Kingdom:157–66",{},{"id":24,"text":2118,"url":24,"identifiers":2119},"Taylor D R F, 2001, Proceedings of the Twentieth International Cartographic Conference (ICC2001), 2894",{},{"id":24,"text":2121,"url":24,"identifiers":2122},"10.2202\u002F1948-4682.1069",{"doi":2121},{"id":2124,"createTime":2125,"updateTime":2125,"relativeEntities":2126,"slug":2127,"properties":2128,"entityType":102,"verifyStatus":103,"verifyTime":2125,"verifyNote":104,"languages":2139,"translateLanguages":24,"viewCount":25,"primaryUrl":2140,"fullTextUrl":24,"authors":2141,"publicationType":182,"publisherRelationship":2180,"citationCount":2226,"citationInfo":2227,"publishDate":2230,"publishYear":2228,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":2231,"openAccess":24,"references":2232,"isForceReanalyzing":381},"29cdbcaf-3c3a-4c20-aeba-98d6669d610f","2024-09-18T00:17:31.172+00:00",[],"A-Characteristic-Hull-Based-Method-for-Home-Range-Estimation",{"openalex":2129,"mag":2131,"abstract":2133,"title":2135,"doi":2137},{"VOID":2130},"W1880411448",{"VOID":2132},"1880411448",{"EN":2134},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Recent literature has reported inaccuracies associated with some popular home range estimators such as kernel density estimation, especially when applied to point patterns of complex shapes. This study explores the use of characteristic hull polygons (CHPs) as a new method of home range estimation. CHPs are special bounding polygons created in GIS that can have concave edges, be composed of disjoint regions, and contain areas of unoccupied space within their interiors. CHPs are created by constructing the Delaunay triangulation of a set of points and then removing a subset of the resulting triangles. Here, CHPs consisting of 95% of the smallest triangles, measured in terms of perimeter, are applied for home range estimation. First, CHPs are applied to simulated animal locational data conforming to five point pattern shapes at three sample sizes. Then, the method is applied to black‐footed albatross (\u003Cjats:italic>Phoebastria nigripes\u003C\u002Fjats:italic>) locational data for illustration and comparison to other methods. For the simulated data, 95% CHPs produced unbiased home range estimates in terms of size for linear and disjoint point patterns and slight underestimates (8–20%) for perforated, concave, and convex ones. The estimated and known home ranges intersected one another by 72–96%, depending on shape and sample size, suggesting that the method has potential as a home range estimator. Additionally, the CHPs applied to estimate albatross home ranges illustrate how the method produces reasonable estimates for bird species that intensively forage in disjoint habitat patches.\u003C\u002Fjats:p>",{"EN":2136},"A Characteristic‐Hull Based Method for Home Range Estimation",{"VOID":2138},"10.1111\u002Fj.1467-9671.2009.01177.x",[106],"https:\u002F\u002Fonlinelibrary.wiley.com\u002Fdoi\u002F10.1111\u002Fj.1467-9671.2009.01177.x",[2142,2161],{"id":2143,"sortIndex":25,"researcher":24,"roles":2144,"affiliations":2145,"properties":2154,"displayName":2158,"givenName":24,"familyName":24},"827043e8-a6da-4180-9df4-21fac6ac2c35",[],[2146],{"id":2147,"sortIndex":25,"affiliation":2148,"properties":24},"e972fd5d-8569-4afe-824d-2fbf9571a6e1",{"id":2147,"createTime":24,"updateTime":24,"relativeEntities":2149,"slug":24,"properties":2150,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2153,"statistic":24},[],{"title":2151},{"EN":2152},"Department of Geography University of South Florida",[],{"orcid":2155,"title":2157,"openalex":2159},{"VOID":2156},"https:\u002F\u002Forcid.org\u002F0000-0001-7226-2411",{"EN":2158},"Joni Downs",{"VOID":2160},"A5051016938",{"id":2162,"sortIndex":130,"researcher":24,"roles":2163,"affiliations":2164,"properties":2173,"displayName":2177,"givenName":24,"familyName":24},"667ff044-b62b-491d-a29c-90556de3e81a",[],[2165],{"id":2166,"sortIndex":25,"affiliation":2167,"properties":24},"10da935a-ac23-4f64-b5fc-9ce93ff053a4",{"id":2166,"createTime":24,"updateTime":24,"relativeEntities":2168,"slug":24,"properties":2169,"entityType":24,"verifyStatus":24,"verifyTime":24,"verifyNote":24,"languages":24,"translateLanguages":24,"viewCount":24,"url":24,"parentIds":2172,"statistic":24},[],{"title":2170},{"EN":2171},"Department of Geography Florida State University",[],{"orcid":2174,"title":2176,"openalex":2178},{"VOID":2175},"https:\u002F\u002Forcid.org\u002F0009-0009-9747-7430",{"EN":2177},"Mark W. 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