[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_94c5a11e-86eb-4d03-a37b-efb56c574e94":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:94c5a11e-86eb-4d03-a37b-efb56c574e94,\"}":99},{"code":4,"data":5,"meta":23},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":25,"manageAffiliations":32,"indexDatabases":47,"url":82,"thumbnailPath":23,"statistic":83,"gsStatistic":23,"type":23,"analyzePriority":23},"94c5a11e-86eb-4d03-a37b-efb56c574e94","2023-05-29T11:57:57.078+00:00","2025-11-21T10:06:43.386+00:00",[],"Geoderma-Regional",{"country":12,"eissn":14,"issn":16,"title":17,"introduce":19},{"VOID":13},"NL",{"VOID":15},"23520094",{"VOID":15},{"EN":18},"Geoderma Regional",{"EN":20},"Global issues require studies and solutions on national and regional levels. Geoderma Regional focuses on studies that increase understanding and advance our scientific knowledge of soils in all regions of the world. The journal embraces every aspect of soil science and welcomes reviews of regional progress.","PUBLISHER","PENDING",null,4,[26],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":28,"label":29,"description":31,"parentId":23,"standard":23,"scholarHubFieldId":23},"57a0fcf0-87d5-4174-a54a-b9f64e3f7ea2",[],{"EN":30},"Soil Science",{},[33,40],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":35,"slug":23,"properties":36,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":39,"statistic":23},"c749757b-dddf-4e6f-9697-b9c441adc06c",[],{"title":37},{"EN":38},"Elsevier",[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":42,"slug":23,"properties":43,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":46,"statistic":23},"c204a4fd-ec04-47ff-9c5b-5d693c99cecf",[],{"title":44},{"EN":45},"Elsevier BV",[],[48,65],{"id":49,"indexDatabase":50,"url":60,"indexYears":61,"academicFieldIds":62,"indexDatabaseRanking":64},"d12f5eed-e7a6-4ce7-904a-339e6bcce163",{"id":51,"createTime":23,"updateTime":23,"relativeEntities":52,"label":53,"description":55,"key":57,"publicationTags":58,"standard":23},"3c7051d4-eb7d-4c57-a56b-36fc74c5d1e9",[],{"EN":54,"VI":54},"Scopus - Elsevier",{"EN":54,"VI":56},"Cơ sở dữ liệu Scopus thuộc Elsevier","scopus",[59],"SCOPUS","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F21100373623","2014-2025",[63],"11eafb22-4c9c-40a4-bb0c-649d942b9b3d","SCOPUS__Q2",{"id":66,"indexDatabase":67,"url":79,"indexYears":23,"academicFieldIds":80,"indexDatabaseRanking":23},"aba1ad8f-7956-4cfb-aa9c-1a07d89c22a7",{"id":68,"createTime":23,"updateTime":23,"relativeEntities":69,"label":70,"description":72,"key":75,"publicationTags":76,"standard":23},"a4921856-b128-4d9f-8f1f-e80813d3bbd4",[],{"EN":71,"VI":71},"ISI\u002FSCIE - Science Citation Index Expanded",{"EN":73,"VI":74},"SCIE database","Cơ sở dữ liệu SCIE","scie",[77,78],"SCIE","ISI","https:\u002F\u002Fmjl.clarivate.com\u002Fsearch-results?issn=2352-0094",[81],"7d3206dd-533f-41ef-a012-54551fd2be47","https:\u002F\u002Fwww.journals.elsevier.com\u002Fgeoderma-regional",{"impactFactor":84,"impactFactorByYear":85,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":87,"totalCitation":84,"totalCitationByYear":97,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":98,"hindexLast5Year":84,"hindex":84},0,{},773,{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},20,51,47,58,53,102,93,139,163,{},{},{"meta":100,"data":102},{"total":101},"336",[103,272,418,852,1000,1469,2028,2190,2301,2438],{"id":104,"createTime":105,"updateTime":106,"relativeEntities":107,"slug":108,"properties":109,"entityType":118,"verifyStatus":119,"verifyTime":120,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":122,"fullTextUrl":23,"authors":123,"publicationType":217,"publisherRelationship":218,"citationCount":23,"citationInfo":23,"publishDate":267,"publishYear":268,"citationAnalyzeStatus":22,"lastCitationAnalyze":269,"indexDatabases":270,"openAccess":23,"references":23,"isForceReanalyzing":271},"e7690028-01df-4a02-811b-65b190a993a3","2024-02-07T09:49:57.171+00:00","2026-07-13T03:30:28.869+00:00",[],"Soil-carbon-stock-change-in-the-forests-of-Denmark-between-1990-and-2008",{"title":110,"gsPaper":112,"references":114,"doi":116},{"EN":111},"Soil carbon stock change in the forests of Denmark between 1990 and 2008",{"VOID":113},"[\"10527576888627301795\"]",{"VOID":115},"Adhikari, 2014, Digital mapping of soil organic carbon contents and stocks in Denmark, PLoS ONE, 9.8\nBalstrøm, 2013, A statistically based mapping of the influence of geology and land use on soil pH A case study from Denmark, Geoderma, 192, 453, 10.1016\u002Fj.geoderma.2012.08.024\nBarcena, 2014, Afforestation effects on SOC in former cropland: oak and spruce chronosequences resampled after 13years, Glob. Chang. Biol., 20, 2938, 10.1111\u002Fgcb.12608\nBarcena, 2014, Soil carbon stock change following afforestation in Northern Europe: a meta-analysis, Glob. Chang. Biol., 20, 2393, 10.1111\u002Fgcb.12576\nBaritz, 2010, Carbon concentrations and stocks in forest soils of Europe, For. Ecol. Manag., 260, 262, 10.1016\u002Fj.foreco.2010.03.025\nBarnett, 2005, Regression to the mean: what it is and how to deal with it, Int. J. Epidemiol., 34, 215, 10.1093\u002Fije\u002Fdyh299\nBellamy, 2005, Carbon losses from all soils across England and Wales 1978–2003, Nature, 437, 245, 10.1038\u002Fnature04038\nBrady, 1999\nBreuning-Madsen, 1995, 1\nCallesen, 2003, Transfer functions for carbon sequestration, nitrogen retention and nutrient release capability in forest soils based on soil texture classification\nCallesen, 2015, Sten I skovjorde I Danmark\nCallesen, 2004, Base cation, aluminum, and phosphorus release potential in Danish forest soils, J. Plant Nutr. Soil Sci., 167, 169, 10.1002\u002Fjpln.200321202\nCallesen, 1999, Nitrate concentrations in soil solutions below Danish forests, For. Ecol. Manag., 114, 71, 10.1016\u002FS0378-1127(98)00382-X\nCallesen, 2003, Soil carbon stores in Nordic well-drained forest soils — relationships with climate and texture class, Glob. Chang. Biol., 9, 1, 10.1046\u002Fj.1365-2486.2003.00587.x\nCallesen, 2013, The natural abundance of N-15 in litter and soil profiles under six temperate tree species: N cycling depends on tree species traits and site fertility, Plant Soil, 368, 375, 10.1007\u002Fs11104-012-1515-x\nCallesen, 2015, Carbon Storage and Nutrient Mobilization by Deep Roots and Rhizospheres\nChapman, 2013, Comparison of soil carbon stocks in Scottish soils between 1978 and 2009, Eur. J. Soil Sci., 64, 455, 10.1111\u002Fejss.12041\nCools, 2010, Sampling and Analysis of Soil. Manual Part X, 208pp\nCools, 2014, Tree species is the major factor explaining C:N ratios in European forest soils, For. Ecol. Manag., 311, 3, 10.1016\u002Fj.foreco.2013.06.047\nDanish Meteorological Institute\nDe Vries, 2006, The impact of nitrogen deposition on carbon sequestration in European forests and forest soils, Glob. Chang. Biol., 12, 1151, 10.1111\u002Fj.1365-2486.2006.01151.x\nDe Vries, 2009, The impact of nitrogen deposition on carbon sequestration by European forests and heathlands, For. Ecol. Manag., 258, 1814, 10.1016\u002Fj.foreco.2009.02.034\nDeckers, 1998\nEswaran, 1993, Organic-carbon in soils of the world, Soil Sci. Soc. Am. J., 57, 192, 10.2136\u002Fsssaj1993.03615995005700010034x\nFAO, 1990\nFAO, 2006, World reference base for soil resources\nGoidts, 2007, Regional assessment of soil organic carbon changes under agriculture in Southern Belgium (1955–2005), Geoderma, 141, 341, 10.1016\u002Fj.geoderma.2007.06.013\nGoodale, 2002, Forest carbon sinks in the Northern Hemisphere, Ecol. Appl., 12, 891, 10.1890\u002F1051-0761(2002)012[0891:FCSITN]2.0.CO;2\nGreve, 2014, Change in peat coverage in Danish cultivated soils during the past 35years, Soil Sci., 179, 250, 10.1097\u002FSS.0000000000000066\nGruneberg, 2014, Organic carbon stocks and sequestration rates of forest soils in Germany, Glob. Chang. Biol., 20, 2644, 10.1111\u002Fgcb.12558\nHagen-Thorn, 2004, The impact of six European tree species on the chemistry of mineral topsoil in forest plantations on former agricultural land, For. Ecol. Manag., 195, 373, 10.1016\u002Fj.foreco.2004.02.036\nHanegraaf, 2009, Trends in soil organic matter contents in Dutch grasslands and maize fields on sandy soils, Eur. J. Soil Sci., 60, 213, 10.1111\u002Fj.1365-2389.2008.01115.x\nHeidmann, 2001\nIPCC, 2003, Good practice guidance for LULUCF, Chapter 4.2.3, 4.30\nIPCC, 2006, IPCC Guidelines for National Greenhouse Gas Inventories, vol. 4 Agriculture, 2.31\nIPCC 2014, 2013\nJandl, 2007, How strongly can forest management influence soil carbon sequestration?, Geoderma, 137, 253, 10.1016\u002Fj.geoderma.2006.09.003\nJanssens, 2003, Europe's terrestrial biosphere absorbs 7 to 12% of European anthropogenic CO2 emissions, Science, 300, 1538, 10.1126\u002Fscience.1083592\nJenny, 1941\nJohannsen, 2013, 1\nKrogh, 2003, Preliminary estimates of contemporary soil organic carbon stocks in Denmark using multiple datasets and four scaling-up methods, Agric. Ecosyst. Environ., 96, 19, 10.1016\u002FS0167-8809(03)00016-1\nLacarce, 2009, Data management for monitoring forest soils in Europe for the Biosoil project, Soil Use Manag., 25, 57, 10.1111\u002Fj.1475-2743.2009.00194.x\nLal, 2005, Forest soils and carbon sequestration, For. Ecol. Manag., 220, 242, 10.1016\u002Fj.foreco.2005.08.015\nLark, 2006, Baseline values and change in the soil, and implications for monitoring, Eur. J. Soil Sci., 57, 916, 10.1111\u002Fj.1365-2389.2006.00875.x\nLark, 2009, Comments on ‘Baseline values and change in the soil, and implications for monitoring’ Response to Potts et al, Eur. J. Soil Sci., 60, 483\nLindner, 2007, Carbon inventory methods and carbon mitigation potentials of forests in Europe: a short review of recent progress, Eur. J. For. Res., 126, 149, 10.1007\u002Fs10342-006-0161-3\nLiski, 2002, Increasing carbon stocks in the forest soils of western Europe, For. Ecol. Manag., 169, 159, 10.1016\u002FS0378-1127(02)00306-7\nMüller, 1879, Studier over skovjord som bidrag til skovdyrkningens theori, Dan. Skovfor. Tidsskr., 3, 1\nNave, 2013, Afforestation effects on soil carbon storage in the United States: a synthesis, Soil Sci. Soc. Am. J., 77, 1035, 10.2136\u002Fsssaj2012.0236\nNelson, 1996, Total carbon, organic carbon, and organic matter, 961\nOrtiz, 2011, Modelling soil carbon development in Swedish coniferous forest soils — an uncertainty analysis of parameters and model estimates using the GLUE method, Ecol. Model., 222, 3020, 10.1016\u002Fj.ecolmodel.2011.05.034\nPalosuo, 2012, A multi-model comparison of soil carbon assessment of a coniferous forest stand, Environ. Model Softw., 35, 38, 10.1016\u002Fj.envsoft.2012.02.004\nPoeplau, 2013, Sensitivity of soil organic carbon stocks and fractions to different land-use changes across Europe, Geoderma, 192, 189, 10.1016\u002Fj.geoderma.2012.08.003\nPoeplau, 2011, Temporal dynamics of soil organic carbon after land-use change in the temperate zone — carbon response functions as a model approach, Glob. Chang. Biol., 17, 2415, 10.1111\u002Fj.1365-2486.2011.02408.x\nPotts, 2009, Comments on ‘Baseline values and change in the soil, and implications for moni1toring’ by RM Lark, PH Bellamy & GJD Kirk, Eur. J. Soil Sci., 60, 481, 10.1111\u002Fj.1365-2389.2009.01136_1.x\nRaulund-Rasmussen, 1999\nReynolds, 2013, Countryside survey: national “soil change” 1978–2007 for topsoils in Great Britain — acidity, carbon, and total nitrogen status, Vadose Zone J., 12, 10.2136\u002Fvzj2012.0114\nRiley, 2006, Declines of soil organic matter content under arable cropping in southeast Norway, Acta Agric. Scand. Sect. B Soil Plant Sci., 56, 217\nRitter, 2003, Changes in soil properties after afforestation of former intensively managed soils with oak and Norway spruce, Plant Soil, 249, 319, 10.1023\u002FA:1022808410732\nRodeghiero, 2010, INFOCARB: a regional scale forest carbon inventory (Provincia Autonoma di Trento, Southern Italian Alps), For. Ecol. Manag., 259, 1093, 10.1016\u002Fj.foreco.2009.12.019\nSaby, 2008, Will European soil-monitoring networks be able to detect changes in topsoil organic carbon content?, Glob. Chang. Biol., 14, 2432, 10.1111\u002Fj.1365-2486.2008.01658.x\nSchils, 2008, Review of existing information on the interrelations between soil and climate change\nSchrumpf, 2011, How accurately can soil organic carbon stocks and stock changes be quantified by soil inventories?, Biogeosciences, 8, 1193, 10.5194\u002Fbg-8-1193-2011\nSmith, 2004, Monitoring and verification of soil carbon changes under Article 3.4 of the Kyoto, Protocol. Soil Use Manag., 20, 264, 10.1079\u002FSUM2004239\nSomogyi, 2013, Country-level carbon balance of forest soils: a country-specific model based on case studies in Hungary, Eur. J. For. Res., 132, 825, 10.1007\u002Fs10342-013-0718-x\nSundberg (Ed), 1999, Danske Jordbundsprofiler. Danmarks Jordbrugsforskning, Foulum\nTaghizadeh-Toosi, 2014, Changes in carbon stocks of Danish agricultural mineral soils between 1986 and 2009, Eur. J. Soil Sci., 65, 730, 10.1111\u002Fejss.12169\nVanguelova, 2013, A new evaluation of carbon stocks in British forest soils, Soil Use Manag., 29, 169, 10.1111\u002Fsum.12025\nVejre, 2003, Carbon and nitrogen in Danish forest soils — contents and distribution determined by soil order, Soil Sci. Soc. Am. J., 67, 335, 10.2136\u002Fsssaj2003.3350\nVesterdal, 1999, Influence of soil type on mass loss and nutrient release from decomposing foliage litter of beech and Norway spruce, Can. J. For. Res., 29, 95, 10.1139\u002Fx98-182\nVesterdal, 1998, Forest floor chemistry under seven tree species along a soil fertility gradient, Can. J. For. Res., 28, 1636, 10.1139\u002Fx98-140\nVesterdal, 2002, Change in soil organic carbon following afforestation of former arable land, For. Ecol. Manag., 169, 137, 10.1016\u002FS0378-1127(02)00304-3\nVesterdal, 2007, Springer Plant Veg., 1, 19\nYanai, 2003, Detecting change in forest floor carbon, Soil Sci. Soc. Am. J., 67, 1583, 10.2136\u002Fsssaj2003.1583\nØstergaard, 1990, The Square Grid for Nitrate Investigations in Denmark. [Kvadratnet for nitratundersøgelser i Danmark], 1\nZar, 1999",{"VOID":117},"10.1016\u002Fj.geodrs.2015.06.003","PUBLICATION","VERIFIED","2024-06-23T12:15:27.097+00:00","Auto Verify","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS235200941530002X",[124,142,158,172,188,203],{"id":125,"sortIndex":84,"researcher":23,"roles":126,"affiliations":128,"properties":137,"displayName":139,"givenName":23,"familyName":23},"4f3b5824-0581-41e1-b8e1-dddbab7e2155",[127],"AUTHOR",[129],{"id":130,"sortIndex":84,"affiliation":131,"properties":23},"089cd703-ceeb-4ba9-866f-f1701f967304",{"id":130,"createTime":23,"updateTime":23,"relativeEntities":132,"slug":23,"properties":133,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":136,"statistic":23},[],{"title":134},{"VI":135},"University of Copenhagen, Department of Geosciences and Natural Resource Management, Rolighedsvej 23, DK 1958 Frederiksberg C, Denmark",[],{"title":138,"gsAuthor":140},{"VI":139},"Ingeborg Callesen",{"VOID":141},"[\"pjQpk7AAAAAJ\"]",{"id":143,"sortIndex":144,"researcher":23,"roles":145,"affiliations":146,"properties":153,"displayName":155,"givenName":23,"familyName":23},"a342ea7c-e2d6-48a7-8d62-5545fbdcee07",1,[127],[147],{"id":130,"sortIndex":84,"affiliation":148,"properties":23},{"id":130,"createTime":23,"updateTime":23,"relativeEntities":149,"slug":23,"properties":150,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":152,"statistic":23},[],{"title":151},{"VI":135},[],{"title":154,"gsAuthor":156},{"VI":155},"Inge Stupak",{"VOID":157},"[\"GwibGskAAAAJ\"]",{"id":159,"sortIndex":160,"researcher":23,"roles":161,"affiliations":162,"properties":169,"displayName":171,"givenName":23,"familyName":23},"998a7319-0a54-4a46-a6bb-b0f97874446c",2,[127],[163],{"id":130,"sortIndex":84,"affiliation":164,"properties":23},{"id":130,"createTime":23,"updateTime":23,"relativeEntities":165,"slug":23,"properties":166,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":168,"statistic":23},[],{"title":167},{"VI":135},[],{"title":170},{"VI":171},"Petros Georgiadis",{"id":173,"sortIndex":174,"researcher":23,"roles":175,"affiliations":176,"properties":183,"displayName":185,"givenName":23,"familyName":23},"d294e357-ab81-4bb1-b967-1d0e4d39ed65",3,[127],[177],{"id":130,"sortIndex":84,"affiliation":178,"properties":23},{"id":130,"createTime":23,"updateTime":23,"relativeEntities":179,"slug":23,"properties":180,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":182,"statistic":23},[],{"title":181},{"VI":135},[],{"title":184,"gsAuthor":186},{"VI":185},"Vivian Kvist Johannsen",{"VOID":187},"[\"4uUK3loAAAAJ\"]",{"id":189,"sortIndex":24,"researcher":23,"roles":190,"affiliations":191,"properties":200,"displayName":202,"givenName":23,"familyName":23},"39b112a2-bb15-4739-941d-c8fde8ed7e26",[127],[192],{"id":193,"sortIndex":84,"affiliation":194,"properties":23},"c91363bc-7291-45ea-9de1-3c21a53fe206",{"id":193,"createTime":23,"updateTime":23,"relativeEntities":195,"slug":23,"properties":196,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":199,"statistic":23},[],{"title":197},{"VI":198},"SEGES P\u002FS, Agro Food Park 15, DK 8200 Aarhus, Denmark, http:\u002F\u002Fwww.seges.dk",[],{"title":201},{"VI":202},"Hans S. Østergaard",{"id":204,"sortIndex":205,"researcher":23,"roles":206,"affiliations":207,"properties":214,"displayName":216,"givenName":23,"familyName":23},"4e76e660-674e-4859-8661-1c9fff189af0",5,[127],[208],{"id":130,"sortIndex":84,"affiliation":209,"properties":23},{"id":130,"createTime":23,"updateTime":23,"relativeEntities":210,"slug":23,"properties":211,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":213,"statistic":23},[],{"title":212},{"VI":135},[],{"title":215},{"VI":216},"Lars Vesterdal","ARTICLE",{"url":122,"publisher":219,"properties":262},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":220,"slug":10,"properties":221,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":226,"manageAffiliations":231,"indexDatabases":242,"url":82,"thumbnailPath":23,"statistic":257,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":222,"eissn":223,"issn":224,"title":225},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[227],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":228,"label":229,"description":230,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[232,237],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":233,"slug":23,"properties":234,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":236,"statistic":23},[],{"title":235},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":238,"slug":23,"properties":239,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":241,"statistic":23},[],{"title":240},{"EN":45},[],[243,250],{"id":49,"indexDatabase":244,"url":60,"indexYears":61,"academicFieldIds":249,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":245,"label":246,"description":247,"key":57,"publicationTags":248,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":251,"url":79,"indexYears":23,"academicFieldIds":256,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":252,"label":253,"description":254,"key":75,"publicationTags":255,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":258,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":259,"totalCitation":84,"totalCitationByYear":260,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":261,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":263,"volume":265},{"VOID":264},"169-180",{"VOID":266},"5","2015-08-01",2015,"2026-07-13T03:30:28.868+00:00",[64,77],false,{"id":273,"createTime":274,"updateTime":275,"relativeEntities":276,"slug":277,"properties":278,"entityType":118,"verifyStatus":119,"verifyTime":287,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":288,"fullTextUrl":23,"authors":289,"publicationType":217,"publisherRelationship":365,"citationCount":23,"citationInfo":23,"publishDate":414,"publishYear":415,"citationAnalyzeStatus":22,"lastCitationAnalyze":416,"indexDatabases":417,"openAccess":23,"references":23,"isForceReanalyzing":271},"18e508b9-0e90-4eb5-8114-730c18f69dcc","2024-02-07T04:39:19.123+00:00","2026-05-20T09:11:57.689+00:00",[],"Stoichiometry-of-cationic-nutrients-in-Phaeozems-derived-from-skarn-and-Acrisols-from-other-parent-materials-in-lowland-forests-of-Thailand",{"title":279,"gsPaper":281,"references":283,"doi":285},{"EN":280},"Stoichiometry of cationic nutrients in Phaeozems derived from skarn and Acrisols from other parent materials in lowland forests of Thailand",{"VOID":282},"[\"9582576384022327146\"]",{"VOID":284},"Adzmi, 2009, Heterogeneity of soil morphology and hydrology on the 50 ha long term ecological research plot at Pasoh, West Malaysia, Journal of Tropical Forest Science, 22, 21\nAlvim, 1978, Perspectiva de produção agricola na região Amazonica, Interciencia, 3, 343\nAndriesse, 1972\nAshton, 1992, Comparisons of structure among mixed dipterocarp forests of northwestern Borneo, Journal of Ecology, 80, 459, 10.2307\u002F2260691\nBailey, 1964, Chemical changes in a Sarawak soil after fertilisation and crop growth, Plant and Soil, 27, 33, 10.1007\u002FBF01373977\nBaillie, 1987, Site characteristics and the distribution of tree species in Mixed Dipterocarp forest on Tertiary sediments in central Sarawak, Malaysia, Journal of Tropical Ecology, 3, 201, 10.1017\u002FS0266467400002078\nBaillie, 2007\nBaillie, 2006, Preliminary characterisation of the physiography and soils of the 25 ha long-term ecological research plot at Sinharaja, South-western Sri Lanka, Sri Lankan Forester, 29, 23\nBaillie, 2000, Differentiation of upland soils on the Palawan ophiolitic complex, Philippines, Catena, 39, 283, 10.1016\u002FS0341-8162(00)00078-3\nBaillie, 2004, Regolith and soils in Bhutan, Eastern Himalayas, European Journal of Soil Science, 55, 9, 10.1046\u002Fj.1365-2389.2003.00579.x\nBaker, 2001\nBaker, 2005, Disturbance history and historical stand dynamics of a seasonal tropical forest in western Thailand, Ecological Monographs, 75, 317, 10.1890\u002F04-0488\nBunyavejchewin, 1985, Analysis of the tropical dry deciduous forest of Thailand. II. Vegetation in relation to topographic and soil gradients, Natural History Bulletin of the Siam Society, 33, 3\nBunyavejchewin, 2002, Floristic structure of a seasonal dry evergreen forest at Huai Kha Khaeng Wildlife Sanctuary, Western Thailand, Natural History Bulletin of the Siam Society, 52, 125\nBunyavejchewin, 2009\nBunyavejchewin, 2003, Spatial distribution patterns of the dominant canopy dipterocarp species in a seasonal dry evergreen forest in Western Thailand, Forest Ecology and Management, 175, 87, 10.1016\u002FS0378-1127(02)00126-3\nDMR, 1983\nFAO, 2015, World reference base for soil resources 2014. Update 2015, 106\nGemmell, 1974, Planting trees on waste land, Survey or Public Authority Technical, 4208, 30\nGentry, 1982, Patterns of neotropical plant species diversity, 1\nHall, 2005, Constraints on primary producer N:P stoichiometry along N:P supply ratio gradients, Ecology, 86, 1894, 10.1890\u002F04-1045\nHallett, 2017, Developments in Land Information Systems: Case studies in land resource management capabilities and options\nHutchison, 1986, Tectonic settings of tin-tungsten granites in South-east Asia, 1\nJobbagy, 2001, The distribution of soil nutrients with depth: global patterns and the imprint of plants, Biogeochemistry, 53, 51, 10.1023\u002FA:1010760720215\nKasao-ard, 1989, Teak (Tectona grandis Linn. F.). Its natural distribution and related factors, Natural History Bulletin of the Siam Society, 37, 55\nKurihara, 2010, Geological and geochemical aspects of a Devonian siliceous succession in northern Thailand: implications for the opening of the Paleo-Tethys, Palaeogeography Palaeoclimatology Palaeoecology, 297, 452, 10.1016\u002Fj.palaeo.2010.08.029\nMcGroddy, 2004, Scaling of C:N:P stoichiometry in forest worldwide: implications of terrestrial Redfield-type ratios, Ecology, 85, 2390, 10.1890\u002F03-0351\nMoormann, 1972\nOgawa, 1961, 1, 20\nPark, 2014, A biogeochemical orientation study in Mo skarn deposits, Jecheon district in Korea, Journal of Geochemical Exploration, 148, 9, 10.1016\u002Fj.gexplo.2014.07.011\nPfeifer, 2007, Distribution and behaviour of arsenic in soils and waters in the vicinity of the former gold-arsenic mine of Salanfe, Western Switzerland, Journal of Geochemical Exploration, 93, 121, 10.1016\u002Fj.gexplo.2007.01.001\nPuttapibhan, 2002, Geology and geochronology of the igneous rocks of Thailand, 261\nRequelme, 2003, Assessment of Hg-contamination in soils and stream sediments in the mineral district of Nambija, Ecuadorian Amazon, Applied Geochemistry, 18, 371, 10.1016\u002FS0883-2927(02)00088-4\nRusso, 2005, Soil-related performance variation and distributions of tree species in a Bornean rain forest, Journal of Ecology, 93, 879, 10.1111\u002Fj.1365-2745.2005.01030.x\nSakurai, 1998, Differences in soil properties of dry evergreen and dry deciduous forest in the Sakaerat Environmental Research Station, Tropics, 8, 61, 10.3759\u002Ftropics.8.61\nSchofield, 1955, Measurement of the activities of bases in soils, Journal of Soil Science, 6, 137, 10.1111\u002Fj.1365-2389.1955.tb00838.x\nSchuffeln, 1974, Aspects of potassium and magnesium uptake by oats, Netherlands Journal of Agricultural Science, 22, 237, 10.18174\u002Fnjas.v22i4.17207\nSlik, 2003, A floristic analysis of the lowland dipterocarp forests of Borneo, Journal of Biogeography, 30, 1517, 10.1046\u002Fj.1365-2699.2003.00967.x\nSoil Survey Staff, 2014\nStahr, 2006, Development of clay minerals in terrestrial soils in the Mediterranean Portugal related to type of rock and age of soil formation. Paper 71–3\nTan, 2009, Review of edaphic conditions on the 52ha long term ecological research plot in mixed dipterocarp forest at Lambir, Sarawak, Malaysian Borneo, Tropics, 18, 62, 10.3759\u002Ftropics.18.61\nWall, 1979\nWilliams, 2008, Deciduousness in a seasonal tropical forest in western Thailand: inter-annual and intra-specific variation in timing, duration and environmental cues, Oecologia, 155, 571, 10.1007\u002Fs00442-007-0938-1",{"VOID":286},"10.1016\u002Fj.geodrs.2017.11.002","2024-06-24T03:18:06.000+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009417301438",[290,307,322,335,352],{"id":291,"sortIndex":84,"researcher":23,"roles":292,"affiliations":293,"properties":302,"displayName":304,"givenName":23,"familyName":23},"65f4f051-6638-4c12-b91f-1b596b92a20e",[127],[294],{"id":295,"sortIndex":84,"affiliation":296,"properties":23},"057b81c0-631d-4d51-990d-2c8d05c971b4",{"id":295,"createTime":23,"updateTime":23,"relativeEntities":297,"slug":23,"properties":298,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":301,"statistic":23},[],{"title":299},{"VI":300},"Centre for Environmental and Agricultural Informatics, Cranfield University, MK43 0AL, UK",[],{"title":303,"gsAuthor":305},{"VI":304},"Ian C. Baillie",{"VOID":306},"[\"OStFzKYAAAAJ\"]",{"id":308,"sortIndex":144,"researcher":23,"roles":309,"affiliations":310,"properties":319,"displayName":321,"givenName":23,"familyName":23},"60f52b73-eecf-4166-80ed-110901557712",[127],[311],{"id":312,"sortIndex":84,"affiliation":313,"properties":23},"42094975-c7d6-4c98-a4f6-515f1a4787fe",{"id":312,"createTime":23,"updateTime":23,"relativeEntities":314,"slug":23,"properties":315,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":318,"statistic":23},[],{"title":316},{"VI":317},"National Parks, Wildlife and Plant Conservation Department, Bangkok, Thailand",[],{"title":320},{"VI":321},"Sarayudh Bunyavejchewin",{"id":323,"sortIndex":160,"researcher":23,"roles":324,"affiliations":325,"properties":332,"displayName":334,"givenName":23,"familyName":23},"c44d2684-f365-405c-b7db-5f5ad7e4eb78",[127],[326],{"id":312,"sortIndex":84,"affiliation":327,"properties":23},{"id":312,"createTime":23,"updateTime":23,"relativeEntities":328,"slug":23,"properties":329,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":331,"statistic":23},[],{"title":330},{"VI":317},[],{"title":333},{"VI":334},"Manop Kaewfoo",{"id":336,"sortIndex":174,"researcher":23,"roles":337,"affiliations":338,"properties":347,"displayName":349,"givenName":23,"familyName":23},"5c523891-86cf-476f-ae30-015e8ec44e9e",[127],[339],{"id":340,"sortIndex":84,"affiliation":341,"properties":23},"ae15b342-feae-47cc-90ee-b0c18ad723cc",{"id":340,"createTime":23,"updateTime":23,"relativeEntities":342,"slug":23,"properties":343,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":346,"statistic":23},[],{"title":344},{"VI":345},"Forest and Ecosystem Science, University of Melbourne, Parkville, 3010, VIC, Australia",[],{"title":348,"gsAuthor":350},{"VI":349},"Patrick J. Baker",{"VOID":351},"[\"pgZ4HxQAAAAJ\"]",{"id":353,"sortIndex":24,"researcher":23,"roles":354,"affiliations":355,"properties":362,"displayName":364,"givenName":23,"familyName":23},"a6a0f43c-4eed-4dc9-80e9-52dcc33077ef",[127],[356],{"id":295,"sortIndex":84,"affiliation":357,"properties":23},{"id":295,"createTime":23,"updateTime":23,"relativeEntities":358,"slug":23,"properties":359,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":361,"statistic":23},[],{"title":360},{"VI":300},[],{"title":363},{"VI":364},"Stephen H. Hallett",{"url":288,"publisher":366,"properties":409},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":367,"slug":10,"properties":368,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":373,"manageAffiliations":378,"indexDatabases":389,"url":82,"thumbnailPath":23,"statistic":404,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":369,"eissn":370,"issn":371,"title":372},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[374],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":375,"label":376,"description":377,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[379,384],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":380,"slug":23,"properties":381,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":383,"statistic":23},[],{"title":382},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":385,"slug":23,"properties":386,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":388,"statistic":23},[],{"title":387},{"EN":45},[],[390,397],{"id":49,"indexDatabase":391,"url":60,"indexYears":61,"academicFieldIds":396,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":392,"label":393,"description":394,"key":57,"publicationTags":395,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":398,"url":79,"indexYears":23,"academicFieldIds":403,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":399,"label":400,"description":401,"key":75,"publicationTags":402,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":405,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":406,"totalCitation":84,"totalCitationByYear":407,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":408,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":410,"volume":412},{"VOID":411},"1-9",{"VOID":413},"12","2018-03-01",2018,"2026-05-20T09:11:57.688+00:00",[64,77],{"id":419,"createTime":420,"updateTime":421,"relativeEntities":422,"slug":423,"properties":424,"entityType":118,"verifyStatus":119,"verifyTime":431,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":432,"fullTextUrl":23,"authors":433,"publicationType":217,"publisherRelationship":562,"citationCount":611,"citationInfo":612,"publishDate":615,"publishYear":613,"citationAnalyzeStatus":22,"lastCitationAnalyze":616,"indexDatabases":617,"openAccess":23,"references":618,"isForceReanalyzing":271},"eb27da35-5c43-4d83-8031-3472dab278ec","2024-01-18T15:00:49.087+00:00","2026-04-28T18:15:18.445+00:00",[],"Long-term-cover-crops-and-no-tillage-in-Entisol-increase-enzyme-activity-and-carbon-stock-and-enable-the-system-fertilization-in-southern-Brazil",{"title":425,"gsPaper":427,"doi":429},{"EN":426},"Long-term cover crops and no-tillage in Entisol increase enzyme activity and carbon stock and enable the system fertilization in southern Brazil",{"VOID":428},"[\"13731274814805278170\"]",{"VOID":430},"10.1016\u002Fj.geodrs.2023.e00700","2024-05-02T21:16:03.302+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009423000962",[434,449,462,477,492,505,518,532,548],{"id":435,"sortIndex":84,"researcher":23,"roles":436,"affiliations":437,"properties":446,"displayName":448,"givenName":23,"familyName":23},"f88838e8-9f00-44f8-969f-a3e3f716e226",[127],[438],{"id":439,"sortIndex":84,"affiliation":440,"properties":23},"8a6a6509-7d34-4451-b76e-03d8b7ef0f66",{"id":439,"createTime":23,"updateTime":23,"relativeEntities":441,"slug":23,"properties":442,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":445,"statistic":23},[],{"title":443},{"VI":444},"Federal University of Pelotas, Av. Eliseu Maciel s\u002Fn, Capão do Leão, Brazil",[],{"title":447},{"VI":448},"Filipe Selau Carlos",{"id":450,"sortIndex":144,"researcher":23,"roles":451,"affiliations":452,"properties":459,"displayName":461,"givenName":23,"familyName":23},"58c38095-5a53-48cc-9f2d-914a483184b2",[127],[453],{"id":439,"sortIndex":84,"affiliation":454,"properties":23},{"id":439,"createTime":23,"updateTime":23,"relativeEntities":455,"slug":23,"properties":456,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":458,"statistic":23},[],{"title":457},{"VI":444},[],{"title":460},{"VI":461},"Rogério Oliveira de Sousa",{"id":463,"sortIndex":160,"researcher":23,"roles":464,"affiliations":465,"properties":474,"displayName":476,"givenName":23,"familyName":23},"1c1cfb41-2bc5-4cca-b3a7-211cf2da137d",[127],[466],{"id":467,"sortIndex":84,"affiliation":468,"properties":23},"cf9e3b1a-f8a0-401d-8e7c-582c82b5a541",{"id":467,"createTime":23,"updateTime":23,"relativeEntities":469,"slug":23,"properties":470,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":473,"statistic":23},[],{"title":471},{"VI":472},"Rio Grande do Sul Rice Institute – IRGA, Cachoeirinha, Brazil",[],{"title":475},{"VI":476},"Rafael Nunes",{"id":478,"sortIndex":174,"researcher":23,"roles":479,"affiliations":480,"properties":489,"displayName":491,"givenName":23,"familyName":23},"5a8d7279-18ff-478d-99b0-0e7e659d51e6",[127],[481],{"id":482,"sortIndex":84,"affiliation":483,"properties":23},"ad6a1f7e-bafa-4599-9dc7-6db0d5573fdf",{"id":482,"createTime":23,"updateTime":23,"relativeEntities":484,"slug":23,"properties":485,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":488,"statistic":23},[],{"title":486},{"VI":487},"Integrar Research Company, Capivari do Sul, Brazil",[],{"title":490},{"VI":491},"Felipe de Campos Carmona",{"id":493,"sortIndex":24,"researcher":23,"roles":494,"affiliations":495,"properties":502,"displayName":504,"givenName":23,"familyName":23},"bbdef2d6-a1e6-44b8-96c5-d48e4e09afbc",[127],[496],{"id":467,"sortIndex":84,"affiliation":497,"properties":23},{"id":467,"createTime":23,"updateTime":23,"relativeEntities":498,"slug":23,"properties":499,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":501,"statistic":23},[],{"title":500},{"VI":472},[],{"title":503},{"VI":504},"Tiago Cereza",{"id":506,"sortIndex":205,"researcher":23,"roles":507,"affiliations":508,"properties":515,"displayName":517,"givenName":23,"familyName":23},"24a9433c-d552-49d7-a245-9e22fc16e36e",[127],[509],{"id":439,"sortIndex":84,"affiliation":510,"properties":23},{"id":439,"createTime":23,"updateTime":23,"relativeEntities":511,"slug":23,"properties":512,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":514,"statistic":23},[],{"title":513},{"VI":444},[],{"title":516},{"VI":517},"Cristiano Weinert",{"id":519,"sortIndex":520,"researcher":23,"roles":521,"affiliations":522,"properties":529,"displayName":531,"givenName":23,"familyName":23},"134e56c8-f40e-49e2-b0ec-bb5cb73f087e",6,[127],[523],{"id":439,"sortIndex":84,"affiliation":524,"properties":23},{"id":439,"createTime":23,"updateTime":23,"relativeEntities":525,"slug":23,"properties":526,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":528,"statistic":23},[],{"title":527},{"VI":444},[],{"title":530},{"VI":531},"Ezequiel Helbig Pasa",{"id":533,"sortIndex":534,"researcher":23,"roles":535,"affiliations":536,"properties":545,"displayName":547,"givenName":23,"familyName":23},"97528b45-6942-4a53-9323-c5ab5af003a8",7,[127],[537],{"id":538,"sortIndex":84,"affiliation":539,"properties":23},"b2dab443-d370-41ca-b12d-fd8616a5c49d",{"id":538,"createTime":23,"updateTime":23,"relativeEntities":540,"slug":23,"properties":541,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":544,"statistic":23},[],{"title":542},{"VI":543},"Federal University of Rio Grande do Sul Porto Alegre, Brazil",[],{"title":546},{"VI":547},"Cimélio Bayer",{"id":549,"sortIndex":550,"researcher":23,"roles":551,"affiliations":552,"properties":559,"displayName":561,"givenName":23,"familyName":23},"afc623b0-b1fc-4f35-b7a7-69605e2eb232",8,[127],[553],{"id":538,"sortIndex":84,"affiliation":554,"properties":23},{"id":538,"createTime":23,"updateTime":23,"relativeEntities":555,"slug":23,"properties":556,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":558,"statistic":23},[],{"title":557},{"VI":543},[],{"title":560},{"VI":561},"Flávio Anastácio de Oliveira Camargo",{"url":432,"publisher":563,"properties":606},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":564,"slug":10,"properties":565,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":570,"manageAffiliations":575,"indexDatabases":586,"url":82,"thumbnailPath":23,"statistic":601,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":566,"eissn":567,"issn":568,"title":569},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[571],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":572,"label":573,"description":574,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[576,581],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":577,"slug":23,"properties":578,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":580,"statistic":23},[],{"title":579},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":582,"slug":23,"properties":583,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":585,"statistic":23},[],{"title":584},{"EN":45},[],[587,594],{"id":49,"indexDatabase":588,"url":60,"indexYears":61,"academicFieldIds":593,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":589,"label":590,"description":591,"key":57,"publicationTags":592,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":595,"url":79,"indexYears":23,"academicFieldIds":600,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":596,"label":597,"description":598,"key":75,"publicationTags":599,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":602,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":603,"totalCitation":84,"totalCitationByYear":604,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":605,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":607,"volume":609},{"VOID":608},"e00700",{"VOID":610},"34",10,{"total":611,"publishYear":613,"statisticByYear":614},2023,{"2024":550,"2025":144},"2023-09-01","2026-04-28T18:15:18.444+00:00",[64,77],[619,625,631,634,641,647,653,659,665,670,673,679,685,692,698,705,712,719,726,733,736,743,750,756,762,769,776,782,789,795,802,807,814,820,823,826,830,833,836,843,846],{"id":620,"text":621,"url":622,"identifiers":623},"28c5a3a6-5e59-4ec3-b4c9-4886bf2eba4c","Abiven, 2009, The effects of organic inputs over time on soil aggregate stability – a literature analysis, Soil Biol. Biochem., 41, 1, 10.1016\u002Fj.soilbio.2008.09.015","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0038071708003234",{"doi":624},"10.1016\u002Fj.soilbio.2008.09.015",{"id":626,"text":627,"url":628,"identifiers":629},"f14fba1f-f768-4f34-897d-a0711cb7fed9","Adam, 2001, Development of a sensitive and rapid method for the measurement of total microbial activity using fluorescein diacetate (FDA) in a range of soils, Soil Biol. Biochem., 33, 943, 10.1016\u002FS0038-0717(00)00244-3","https:\u002F\u002Flinkinghub.elsevier.com\u002Fretrieve\u002Fpii\u002FS0038071700002443",{"doi":630},"10.1016\u002Fs0038-0717(00)00244-3",{"id":23,"text":632,"url":23,"identifiers":633},"Alef, 1995, Estimation of soil respiration, 464",{},{"id":23,"text":635,"url":636,"identifiers":637},"Alvarez, 2017, Cover crop effects on soils and subsequent crops in the pampas: a meta-analysis, Soil Tillage Res., 170, 53, 10.1016\u002Fj.still.2017.03.005","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2017.03.005",{"mag":638,"openalex":639,"doi":640},"2601868620","W2601868620","10.1016\u002Fj.still.2017.03.005",{"id":642,"text":643,"url":644,"identifiers":645},"85b4fdb8-717f-470d-902d-1763c485c726","Assmann, 2014, Soil carbon and nitrogen stocks and fractions in a long-term integrated crop-livestock system under no-tillage in southern Brazil, Agric. Ecosyst. Environ., 190, 10.1016\u002Fj.agee.2013.12.003","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0167880913004246",{"doi":646},"10.1016\u002Fj.agee.2013.12.003",{"id":648,"text":649,"url":650,"identifiers":651},"db3ab513-afa6-40d2-a9c0-7461496c765f","Assmann, 2017, Phosphorus and potassium cycling in a long-term no-till integrated soybean-beef cattle production system under different grazing intensities insubtropics, Nutr. Cycl. Agroecosyst., 1–13","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10705-016-9818-6",{"doi":652},"10.1007\u002Fs10705-016-9818-6",{"id":654,"text":655,"url":656,"identifiers":657},"7e1c77e4-3a8e-498d-bb69-86b932c32b2c","Balota, 2014, Benefits of winter cover crops and no-tillage for microbial parameters in a Brazilian Oxisol: a long-term study, Agric. Ecosyst. Environ., 197, 31, 10.1016\u002Fj.agee.2014.07.010","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0167880914003703",{"doi":658},"10.1016\u002Fj.agee.2014.07.010",{"id":660,"text":661,"url":662,"identifiers":663},"5a7e3016-6aa0-4732-b692-c8f91e9d21ee","Bayer, 2002, Stocks and humification degree of organic matter fractions as affected by no-tillage on a subtropical soil, Plant Soil, 238, 133, 10.1023\u002FA:1014284329618","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FA:1014284329618",{"doi":664},"10.1023\u002FA:1014284329618",{"id":23,"text":666,"url":667,"identifiers":668},"Bayer, 2004, Armazenamento de carbono em frações lábeis da matéria orgânica de um Latossolo Vermelho sob plantio direto, Pesqui Agropecuária Bras., 39, 677, 10.1590\u002FS0100-204X2004000700009","http:\u002F\u002Fdx.doi.org\u002F10.1590\u002Fs0100-204x2004000700009",{"doi":669},"10.1590\u002Fs0100-204x2004000700009",{"id":23,"text":671,"url":23,"identifiers":672},"Boeni, 2010",{},{"id":674,"text":675,"url":676,"identifiers":677},"b34972e0-292c-4bf8-ab05-afcdc38a5350","Buchen, 2016, Fluxes of N2 and N2O and contributing processes in summer after grassland renewal and grassland conversion to maize cropping on a Plaggic Anthrosol and a Histic Gleysol, Soil Biol. Biochem., 101, 6, 10.1016\u002Fj.soilbio.2016.06.028","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0038071716301298",{"doi":678},"10.1016\u002Fj.soilbio.2016.06.028",{"id":680,"text":681,"url":682,"identifiers":683},"524ab68c-e5e9-4c1b-9bdf-c2221e3ed53a","Burns, 2013, Soil enzymes in a changing environment: current knowledge and future directions, Soil Biol. Biochem., 10.1016\u002Fj.soilbio.2012.11.009","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0038071712004476",{"doi":684},"10.1016\u002Fj.soilbio.2012.11.009",{"id":23,"text":686,"url":687,"identifiers":688},"Cantarella, 2008, Ammonia volatilisation from urease inhibitor-treated urea applied to sugarcane trash blankets, Sci. Agric., 65, 397, 10.1590\u002FS0103-90162008000400011","https:\u002F\u002Fdoi.org\u002F10.1590\u002Fs0103-90162008000400011",{"mag":689,"openalex":690,"doi":691},"1985421505","W1985421505","10.1590\u002Fs0103-90162008000400011",{"id":693,"text":694,"url":695,"identifiers":696},"4c68646b-0035-4279-8000-0006b275d4fa","Cardoso, 2020, Phosphate fertilization for rice irrigated in soils with different phosphorus adsorption capacities, Arch. Agron. Soil Sci.","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":697},"10.1007\u002Fs10440-022-00541-7",{"id":23,"text":699,"url":700,"identifiers":701},"Carlos, 2020, Integrated crop–livestock systems in lowlands increase the availability of nutrients to irrigated rice, L Degrad. Dev., 31, 2962, 10.1002\u002Fldr.3653","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fldr.3653",{"mag":702,"openalex":703,"doi":704},"3024206208","W3024206208","10.1002\u002Fldr.3653",{"id":23,"text":706,"url":707,"identifiers":708},"Carlos, 2021, A long-term no-tillage system can increase enzymatic activity and maintain bacterial richness in paddy fields, L. Degrad. Dev., 32, 2257, 10.1002\u002Fldr.3896","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fldr.3896",{"mag":709,"openalex":710,"doi":711},"3121192220","W3121192220","10.1002\u002Fldr.3896",{"id":23,"text":713,"url":714,"identifiers":715},"Carlos, 2022, Soybean crop incorporation in irrigated rice cultivation improves nitrogen availability, soil microbial diversity and activity, and growth of ryegrass, Appl. Soil Ecol., 170, 10.1016\u002Fj.apsoil.2021.104313","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apsoil.2021.104313",{"mag":716,"openalex":717,"doi":718},"3214084422","W3214084422","10.1016\u002Fj.apsoil.2021.104313",{"id":23,"text":720,"url":721,"identifiers":722},"Congreves, 2017, Interaction of long-term nitrogen fertilizer application, crop rotation, and tillage system on soil carbon and nitrogen dynamics, Plant Soil, 410, 113, 10.1007\u002Fs11104-016-2986-y","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11104-016-2986-y",{"mag":723,"openalex":724,"doi":725},"2491375710","W2491375710","10.1007\u002Fs11104-016-2986-y",{"id":23,"text":727,"url":728,"identifiers":729},"Counce, 2000, A uniform, objective, and adaptive system for expressing rice development, Crop Sci., 40, 436, 10.2135\u002Fcropsci2000.402436x","https:\u002F\u002Fdoi.org\u002F10.2135\u002Fcropsci2000.402436x",{"mag":730,"openalex":731,"doi":732},"2034903695","W2034903695","10.2135\u002Fcropsci2000.402436x",{"id":23,"text":734,"url":23,"identifiers":735},"Dabney, 2010, Using cover crops and cropping systems for nitrogen management, 230",{},{"id":23,"text":737,"url":738,"identifiers":739},"De Baets, 2011, Cover crops and their erosion-reducing effects during concentrated flow erosion, Catena, 85, 237, 10.1016\u002Fj.catena.2011.01.009","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.catena.2011.01.009",{"mag":740,"openalex":741,"doi":742},"2019695719","W2019695719","10.1016\u002Fj.catena.2011.01.009",{"id":23,"text":744,"url":745,"identifiers":746},"Denardin, 2019, No-tillage increases irrigated rice yield through soil quality improvement along time, Soil Tillage Res., 186, 64, 10.1016\u002Fj.still.2018.10.006","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.still.2018.10.006",{"mag":747,"openalex":748,"doi":749},"2897892119","W2897892119","10.1016\u002Fj.still.2018.10.006",{"id":751,"text":752,"url":753,"identifiers":754},"1eb86f4c-4f30-435b-bd81-2a251c0027a8","Dossou-Yovo, 2016, Combining no-tillage, rice straw mulch and nitrogen fertilizer application to increase the soil carbon balance of upland rice field in northern Benin, Soil Tillage Res., 163, 152, 10.1016\u002Fj.still.2016.05.019","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0167198716300964",{"doi":755},"10.1016\u002Fj.still.2016.05.019",{"id":757,"text":758,"url":759,"identifiers":760},"36758c46-955a-4c6a-9b89-acb7e69f2913","Fei, 2020, Response of soil enzyme activities and bacterial communities to the accumulation of microplastics in an acid cropped soil, Sci. Total Environ., 707, 10.1016\u002Fj.scitotenv.2019.135634","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0048969719356293",{"doi":761},"10.1016\u002Fj.scitotenv.2019.135634",{"id":23,"text":763,"url":764,"identifiers":765},"Liu, 2015, Biomass production and phosphorus retention by catch crops on clayey soils in southern and Central Sweden, F. Crop Res., 171, 130, 10.1016\u002Fj.fcr.2014.11.013","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.fcr.2014.11.013",{"mag":766,"openalex":767,"doi":768},"2067292018","W2067292018","10.1016\u002Fj.fcr.2014.11.013",{"id":23,"text":770,"url":771,"identifiers":772},"Liu, 2015, Soil carbon content drives the biogeographical distribution of fungal communities in the black soil zone of Northeast China, Soil Biol. Biochem., 83, 29, 10.1016\u002Fj.soilbio.2015.01.009","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.soilbio.2015.01.009",{"mag":773,"openalex":774,"doi":775},"2089752813","W2089752813","10.1016\u002Fj.soilbio.2015.01.009",{"id":777,"text":778,"url":779,"identifiers":780},"b20f02a2-c067-4c5c-a697-396f336447df","Macedo, 2022, Intensification of rice-pasture rotations with annual crops reduces the stability of sustainability across productivity, economic, and environmental indicators, Agric. Syst., 202, 10.1016\u002Fj.agsy.2022.103488","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0308521X2200124X",{"doi":781},"10.1016\u002Fj.agsy.2022.103488",{"id":23,"text":783,"url":784,"identifiers":785},"Martins, 2017, Short-term impacts on soil-quality assessment in alternative land uses of traditional Paddy fields in southern Brazil, L. Degrad. Dev., 28, 534, 10.1002\u002Fldr.2640","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fldr.2640",{"mag":786,"openalex":787,"doi":788},"2529142525","W2529142525","10.1002\u002Fldr.2640",{"id":23,"text":790,"url":791,"identifiers":792},"Marques Neto, 2023, Understanding the dynamics of attributes of medium and short cycle rice cultivars under nitrogen effect, Ciência Rural, 53, 10.1590\u002F0103-8478cr20210584","https:\u002F\u002Fdoi.org\u002F10.1590\u002F0103-8478cr20210584",{"openalex":793,"doi":794},"W4281913501","10.1590\u002F0103-8478cr20210584",{"id":23,"text":796,"url":797,"identifiers":798},"Mcdaniel, 2016, Soil microbial biomass and function are altered by 12 years of crop rotation, Soil, 2, 583, 10.5194\u002Fsoil-2-583-2016","https:\u002F\u002Fdoi.org\u002F10.5194\u002Fsoil-2-583-2016",{"mag":799,"openalex":800,"doi":801},"2470234116","W2470234116","10.5194\u002Fsoil-2-583-2016",{"id":23,"text":803,"url":804,"identifiers":805},"Menezes, 2001, Semeadura direta de genótipos de arroz irrigado em sucessão a espécies de cobertura de inverno, Pesqui. Agropecuária Bras., 36, 1107, 10.1590\u002FS0100-204X2001000900004","http:\u002F\u002Fdx.doi.org\u002F10.1590\u002Fs0100-204x2001000900004",{"doi":806},"10.1590\u002Fs0100-204x2001000900004",{"id":23,"text":808,"url":809,"identifiers":810},"O’Connell, 2015, Short-term nitrogen mineralization from warm-season cover crops in organic farming systems, Plant Soil, 396, 353, 10.1007\u002Fs11104-015-2594-2","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11104-015-2594-2",{"mag":811,"openalex":812,"doi":813},"1171019098","W1171019098","10.1007\u002Fs11104-015-2594-2",{"id":815,"text":816,"url":817,"identifiers":818},"af090fb9-dfd8-4549-a357-bb006c8c483a","Six, 2004, A history of research on the link between (micro)aggregates, soil biota, and soil organic matter dynamics, Soil Tillage Res., 79, 7, 10.1016\u002Fj.still.2004.03.008","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0167198704000881",{"doi":819},"10.1016\u002Fj.still.2004.03.008",{"id":23,"text":821,"url":23,"identifiers":822},"SOSBAI, 2018",{},{"id":693,"text":824,"url":695,"identifiers":825},"Sousa, 2021, No-tillage for flooded rice in Brazilian subtropical paddy fields: history, challenges, advances and perspectives, Rev. Bras. Ciência Solo, 45",{"doi":697},{"id":23,"text":827,"url":23,"identifiers":828},"Stotzky, 1972, Activity, ecology, and population dynamics, Crit. Rev. Microbiol., 1, 59, 10.3109\u002F10408417209108383",{"doi":829},"10.3109\u002F10408417209108383",{"id":23,"text":831,"url":23,"identifiers":832},"Tabatabai, 1982, Soil enzymes·. Methods soil anal. Part 2, Microbiol. Biochem. Prop., 9, 903",{},{"id":23,"text":834,"url":23,"identifiers":835},"Tedesco, 1995",{},{"id":23,"text":837,"url":838,"identifiers":839},"Tenelli, 2019, Can reduced tillage sustain sugarcane yield and soil carbon if straw is removed?, Bioenergy Res., 12, 764, 10.1007\u002Fs12155-019-09996-3","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12155-019-09996-3",{"mag":840,"openalex":841,"doi":842},"2953559899","W2953559899","10.1007\u002Fs12155-019-09996-3",{"id":23,"text":844,"url":23,"identifiers":845},"US Soil Taxonomy, 1999",{},{"id":23,"text":847,"url":848,"identifiers":849},"Weinert, 2023, Legume winter cover crop (Persian clover) reduces nitrogen requirement and increases grain yield in specialized irrigated hybrid rice system, Eur. J. Agron., 142, 10.1016\u002Fj.eja.2022.126645","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.eja.2022.126645",{"openalex":850,"doi":851},"W4296970251","10.1016\u002Fj.eja.2022.126645",{"id":853,"createTime":854,"updateTime":855,"relativeEntities":856,"slug":857,"properties":858,"entityType":118,"verifyStatus":119,"verifyTime":867,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":868,"fullTextUrl":23,"authors":869,"publicationType":217,"publisherRelationship":945,"citationCount":84,"citationInfo":994,"publishDate":997,"publishYear":995,"citationAnalyzeStatus":22,"lastCitationAnalyze":998,"indexDatabases":999,"openAccess":23,"references":23,"isForceReanalyzing":271},"769f0c6d-8f23-4650-809b-4982a80e18fc","2024-01-15T09:09:24.143+00:00","2026-04-22T20:55:28.350+00:00",[],"Disaggregating-conventional-soil-maps-with-limited-descriptive-data-A-knowledge-based-approach-in-Serra-Ga%C3%BAcha-Brazil",{"title":859,"gsPaper":861,"references":863,"doi":865},{"EN":860},"Disaggregating conventional soil maps with limited descriptive data: A knowledge-based approach in Serra Gaúcha, Brazil",{"VOID":862},"[\"506202639466786521\"]",{"VOID":864},"Ashtekar, 2014, Remembering knowledge: an expert knowledge based approach to digital soil mapping, Soil Horiz., 54, 1, 10.2136\u002Fsh13-01-0007\nBarringer, 2008, National mapping of landform elements in support of S-Map, a New Zealand soils database, 443\nBoardman, 2016, The value of Google Earth™ for erosion mapping, Catena, 143, 123, 10.1016\u002Fj.catena.2016.03.031\nBöettinger, 2010, Environmental covariates for digital soil mapping in the Western USA, 17\nBui, 2004, Soil survey as a knowledge system, Geoderma, 120, 17, 10.1016\u002Fj.geoderma.2003.07.006\nBui, 2001, Disaggregation of polygons of surficial geology and soil maps using spatial modelling and legacy data, Geoderma, 103, 79, 10.1016\u002FS0016-7061(01)00070-2\nBui, 2003, A strategy to fill gaps in soil survey over large spatial extents: an example from the Murray–darling basin of Australia, Geoderma, 111, 21, 10.1016\u002FS0016-7061(02)00238-0\nBulmer, 2016, Improved soil mapping in British Columbia, Canada, with legacy soil data and random forest, 291\nCarré, 2007, Digital soil assessments: beyond DSM, Geoderma, 142, 69, 10.1016\u002Fj.geoderma.2007.08.015\nChagas, 2007, Utilização de redes neurais artificiais para predição de classes de solo em uma bacia hidrográfica no Domínio do Mar de Morros, 2421\nde Bruin, 1999, Formalisation of soil–landscape knowledge through interactive hierarchical disaggregation, Geoderma, 91, 151, 10.1016\u002FS0016-7061(99)00004-X\nDilts\nEastman, 2012\nEmbrapa, 2008\nEMBRAPA, 2013\nESRI, 2013\nFelten, 2011\nFinnen, 2013\nFisk, 2010, Department of agriculture (USDA) TEUI geospatial toolkit: an operational ecosystem inventory application, 399\nFlores, 2007\nFlores, 2007, Potencial edáfico da Serra Gaúcha, Brasil para viticultura\nFlores, 2012\nGOOGLE, 2015\nGrinand, 2008, Extrapolating regional soil landscapes from an existing soil map: sampling intensity, validation procedures, and integration of spatial context, Geoderma, 143, 180, 10.1016\u002Fj.geoderma.2007.11.004\nHansen, 2009, Inductively mapping expert-derived soil-landscape units within dambo wetland catenae using multispectral and topographic data, Geoderma, 150, 72, 10.1016\u002Fj.geoderma.2009.01.013\nHäring, 2012, Spatial disaggregation of complex soil map units: a decision-tree based approach in Bavarian forest soils, Geoderma, 185–186, 37, 10.1016\u002Fj.geoderma.2012.04.001\nHartemink, 2010, GlobalSoilMap.net—a new digital soil map of the world, 423\nHasenack, H.; Weber, E. (Org.) 2007. Base cartográfica digital da Serra Gaúcha - escala 1:50.000. Porto Alegre: UFRGS Centro de Ecologia. 1 CD-ROM. (Série Geoprocessamento n.2).\nHeuvelink, 2001, Modelling soil variation: past, present and future, Geoderma, 100, 269, 10.1016\u002FS0016-7061(01)00025-8\nHodza, 2010, Fuzzy logic and differences between interpretive soil maps, Geoderma, 156, 189, 10.1016\u002Fj.geoderma.2010.02.016\nHolmes, 2014, Spatial disaggregation of conventional soil mapping across Western Australia using DSMART, 273\nIBGE, 1986\nIBGE, 2015\nKerry, 2012, Disaggregation of legacy soil data using area to point kriging for mapping soil organic carbon at the regional scale, Geoderma, 170, 347, 10.1016\u002Fj.geoderma.2011.10.007\nLi, 2012, Spatially locating soil classes within complex soil polygons – mapping soil capability for agriculture in Saskatchewan Canada, Agric. Ecosyst. Environ., 152, 59, 10.1016\u002Fj.agee.2012.02.007\nLippitt, 2008, Mapping selective logging in mixed deciduous forest: a comparison of machine learning algorithms, Photogramm. Eng. Remote. Sens., 74, 1201, 10.14358\u002FPERS.74.10.1201\nMacMillan, 2003\nMacMillan, 2000, A generic procedure for automatically segmenting landforms into landform elements using DEMs, heuristic rules and fuzzy logic, Fuzzy Sets Syst., 113, 81, 10.1016\u002FS0165-0114(99)00014-7\nMacMillan, 2005, An expert system for allocating soils to landforms through the application of soil survey tacit knowledge, Can. J. Soil Sci., 85, 103, 10.4141\u002FS04-029\nMacMillan, 2010, Predictive ecosystem mapping (PEM) for 8.2millionha of Forestland, British Columbia, Canada, 337\nMalone, 2014, Using model averaging to combine soil maps from point data, Geoderma, 232–234, 34, 10.1016\u002Fj.geoderma.2014.04.033\nMiller, 2012, The need to continue improving soil survey maps, Soil Horiz., 53, 11, 10.2136\u002Fsh12-02-0005\nNauman, 2014, Semi-automated disaggregation of conventional soil maps using knowledge driven data mining and classification trees, Geoderma, 213, 385, 10.1016\u002Fj.geoderma.2013.08.024\nNauman, 2012, Fuzzy disaggregation of conventional soil maps using database knowledge extraction to produce soil property maps, 203\nNauman, 2014, Semi-automated disaggregation of a conventional soil map using knowledge driven data mining and random forests in the Sonoran Desert, USA, Photogramm. Eng. Remote. Sens., 80, 353, 10.14358\u002FPERS.80.4.353\nOdgers, 2014, Disaggregation and harmonisation of soil map units through resampled classification trees, Geoderma, 214, 91, 10.1016\u002Fj.geoderma.2013.09.024\nOdgers, 2014, Digital soil property mapping and uncertainty estimation using soil class probability rasters, 341\nOmuto, 2013, 66\nPathak\nPhillips, 2013, Evaluating taxonomic adjacency as a source of soil map uncertainty, Eur. J. Soil Sc. Oxford, 64, 391, 10.1111\u002Fejss.12049\nPontius, 2011, Death to kappa: birth of quantity disagreement and allocation disagreement for accuracy assessment, Int. J. Remote Sens., 32, 4407, 10.1080\u002F01431161.2011.552923\nRoecker, 2010, A qualitative comparison of conventional soil survey and digital soil mapping approaches, 369\nRossiter, 2000\nRossiter, 2004, Digital soil resource inventories: status and prospects, Soil Use Manag., 20, 296, 10.1079\u002FSUM2004258\nSarmento, 2014, Caracterização de mapas legados de solos: uso de indicadores em mapas com diferentes escalas no Rio Grande do Sul, Rev. Bras. Ciênc. Solo, 38, 1672, 10.1590\u002FS0100-06832014000600002\nScull, 2005, The application of classification tree analysis to soil type prediction in a desert landscape, Ecol. Model., 181, 1, 10.1016\u002Fj.ecolmodel.2004.06.036\nShi, 2004, A case-based reasoning approach to fuzzy soil mapping, Soil Sci. Soc. Am. J., 68, 885, 10.2136\u002Fsssaj2004.8850\nSmith, 2012, Use of weights of evidence statistics to define inference rules to disaggregate soil survey maps, 215\nStum, 2010, Random forests applied as a soil spatial predictive model in arid Utah, 179\nSubburayalu, 2014, Disaggregation of component soil series using possibilistic decision trees from an Ohio County soil survey map, Geoderma, 213, 334, 10.1016\u002Fj.geoderma.2013.08.018\nThompson, 2010, Regional approach to soil property mapping using legacy data and spatial disaggregation techniques\nVincent, 2016, Spatial disaggregation of complex Soil Map Units at the regional scale based on soil-landscape relationships, Geoderma, 10.1016\u002Fj.geoderma.2016.06.006\nWei, 2010, Digital harmonisation of adjacent soil survey areas - 4 Iowa Counties\nZhu, 2000, Mapping soil landscape as spatial continua: the neural network approach, Water Resour. Res., 36, 663, 10.1029\u002F1999WR900315",{"VOID":866},"10.1016\u002Fj.geodrs.2016.12.004","2024-05-08T14:35:25.085+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009416300402",[870,885,900,915,932],{"id":871,"sortIndex":84,"researcher":23,"roles":872,"affiliations":873,"properties":882,"displayName":884,"givenName":23,"familyName":23},"0d672ca3-d5f2-4d5a-a000-47c406f9a9b5",[127],[874],{"id":875,"sortIndex":84,"affiliation":876,"properties":23},"b4fa8858-2c03-4152-b1e4-aa106ac9c728",{"id":875,"createTime":23,"updateTime":23,"relativeEntities":877,"slug":23,"properties":878,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":881,"statistic":23},[],{"title":879},{"VI":880},"Universidade Federal do Rio Grande do Sul (UFRGS), Departamento de Solos, Caixa Postal 15100, CEP 91501-970 Porto Alegre, RS, Brazil",[],{"title":883},{"VI":884},"Eliana Casco Sarmento",{"id":886,"sortIndex":144,"researcher":23,"roles":887,"affiliations":888,"properties":895,"displayName":897,"givenName":23,"familyName":23},"f22f633d-6e65-4d3d-924a-ba10920fef75",[127],[889],{"id":875,"sortIndex":84,"affiliation":890,"properties":23},{"id":875,"createTime":23,"updateTime":23,"relativeEntities":891,"slug":23,"properties":892,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":894,"statistic":23},[],{"title":893},{"VI":880},[],{"title":896,"gsAuthor":898},{"VI":897},"Elvio Giasson",{"VOID":899},"[\"GLhNOS0AAAAJ\"]",{"id":901,"sortIndex":160,"researcher":23,"roles":902,"affiliations":903,"properties":912,"displayName":914,"givenName":23,"familyName":23},"03f9fb08-e797-482b-8524-5c3a71567b64",[127],[904],{"id":905,"sortIndex":84,"affiliation":906,"properties":23},"bc90ae5d-7c88-49e7-80fc-314f65ed1b4f",{"id":905,"createTime":23,"updateTime":23,"relativeEntities":907,"slug":23,"properties":908,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":911,"statistic":23},[],{"title":909},{"VI":910},"UFRGS, Centro de Ecologia, Caixa Postal 15007, CEP 91501-970 Porto Alegre, RS, Brazil",[],{"title":913},{"VI":914},"Eliseu José Weber",{"id":916,"sortIndex":174,"researcher":23,"roles":917,"affiliations":918,"properties":927,"displayName":929,"givenName":23,"familyName":23},"7a1548c5-a266-400e-94aa-69b956688a15",[127],[919],{"id":920,"sortIndex":84,"affiliation":921,"properties":23},"4903db67-43e0-46c6-88bb-212b4ad2e685",{"id":920,"createTime":23,"updateTime":23,"relativeEntities":922,"slug":23,"properties":923,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":926,"statistic":23},[],{"title":924},{"VI":925},"Embrapa Clima Temperado, Caixa Postal 403, CEP96001-970 Pelotas, RS, Brazil",[],{"title":928,"gsAuthor":930},{"VI":929},"Carlos Alberto Flores",{"VOID":931},"[\"oBDGcGoAAAAJ\"]",{"id":933,"sortIndex":24,"researcher":23,"roles":934,"affiliations":935,"properties":942,"displayName":944,"givenName":23,"familyName":23},"bab1a1b1-97a9-4d0e-b3a3-a9eecef77a9f",[127],[936],{"id":905,"sortIndex":84,"affiliation":937,"properties":23},{"id":905,"createTime":23,"updateTime":23,"relativeEntities":938,"slug":23,"properties":939,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":941,"statistic":23},[],{"title":940},{"VI":910},[],{"title":943},{"VI":944},"Heinrich Hasenack",{"url":868,"publisher":946,"properties":989},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":947,"slug":10,"properties":948,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":953,"manageAffiliations":958,"indexDatabases":969,"url":82,"thumbnailPath":23,"statistic":984,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":949,"eissn":950,"issn":951,"title":952},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[954],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":955,"label":956,"description":957,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[959,964],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":960,"slug":23,"properties":961,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":963,"statistic":23},[],{"title":962},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":965,"slug":23,"properties":966,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":968,"statistic":23},[],{"title":967},{"EN":45},[],[970,977],{"id":49,"indexDatabase":971,"url":60,"indexYears":61,"academicFieldIds":976,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":972,"label":973,"description":974,"key":57,"publicationTags":975,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":978,"url":79,"indexYears":23,"academicFieldIds":983,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":979,"label":980,"description":981,"key":75,"publicationTags":982,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":985,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":986,"totalCitation":84,"totalCitationByYear":987,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":988,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":990,"volume":992},{"VOID":991},"12-23",{"VOID":993},"8",{"total":84,"publishYear":995,"statisticByYear":996},2017,{},"2017-03-01","2026-04-22T20:55:28.349+00:00",[64,77],{"id":1001,"createTime":1002,"updateTime":1003,"relativeEntities":1004,"slug":1005,"properties":1006,"entityType":118,"verifyStatus":119,"verifyTime":1013,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":144,"primaryUrl":1014,"fullTextUrl":23,"authors":1015,"publicationType":217,"publisherRelationship":1094,"citationCount":160,"citationInfo":1142,"publishDate":615,"publishYear":613,"citationAnalyzeStatus":22,"lastCitationAnalyze":1143,"indexDatabases":1144,"openAccess":23,"references":1145,"isForceReanalyzing":271},"a35513ce-cecb-4358-8036-261724876465","2024-01-09T00:46:16.688+00:00","2026-01-28T22:53:15.970+00:00",[],"Greening-and-browning-of-urban-lawns-in-Geneva-Switzerland-as-influenced-by-soil-properties",{"title":1007,"gsPaper":1009,"doi":1011},{"EN":1008},"Greening and browning of urban lawns in Geneva (Switzerland) as influenced by soil properties",{"VOID":1010},"[\"9568972321899724512\"]",{"VOID":1012},"10.1016\u002Fj.geodrs.2023.e00677","2024-05-02T12:16:16.123+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009423000731",[1016,1031,1053,1066,1079],{"id":1017,"sortIndex":84,"researcher":23,"roles":1018,"affiliations":1019,"properties":1028,"displayName":1030,"givenName":23,"familyName":23},"6ebe621f-d8af-47c1-98b0-967fcdab9f22",[127],[1020],{"id":1021,"sortIndex":84,"affiliation":1022,"properties":23},"dc8fc867-f587-4f05-ae0b-71c52af78d5e",{"id":1021,"createTime":23,"updateTime":23,"relativeEntities":1023,"slug":23,"properties":1024,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1027,"statistic":23},[],{"title":1025},{"VI":1026},"Swiss Federal Research Institute WSL, Land Change Science Research Unit, Birmensdorf, Switzerland",[],{"title":1029},{"VI":1030},"Silvia Tobias",{"id":1032,"sortIndex":144,"researcher":23,"roles":1033,"affiliations":1034,"properties":1050,"displayName":1052,"givenName":23,"familyName":23},"0ff2fe8d-6ed2-4b1c-b3e3-d34ed7d4708f",[127],[1035,1041],{"id":1021,"sortIndex":84,"affiliation":1036,"properties":23},{"id":1021,"createTime":23,"updateTime":23,"relativeEntities":1037,"slug":23,"properties":1038,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1040,"statistic":23},[],{"title":1039},{"VI":1026},[],{"id":1042,"sortIndex":144,"affiliation":1043,"properties":1049},"50e25229-0649-4636-916a-71347fb9ea8c",{"id":1042,"createTime":23,"updateTime":23,"relativeEntities":1044,"slug":23,"properties":1045,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1048,"statistic":23},[],{"title":1046},{"VI":1047},"ETH Zurich, Department of Environmental Systems Science, Zurich, Switzerland",[],{},{"title":1051},{"VI":1052},"Manon Davies",{"id":1054,"sortIndex":160,"researcher":23,"roles":1055,"affiliations":1056,"properties":1063,"displayName":1065,"givenName":23,"familyName":23},"919f9bfe-f3d6-4479-ab22-d3d126e16872",[127],[1057],{"id":1021,"sortIndex":84,"affiliation":1058,"properties":23},{"id":1021,"createTime":23,"updateTime":23,"relativeEntities":1059,"slug":23,"properties":1060,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1062,"statistic":23},[],{"title":1061},{"VI":1026},[],{"title":1064},{"VI":1065},"Carole S. Imhof",{"id":1067,"sortIndex":174,"researcher":23,"roles":1068,"affiliations":1069,"properties":1076,"displayName":1078,"givenName":23,"familyName":23},"4f016896-51bd-4185-bf64-9968cee56322",[127],[1070],{"id":1021,"sortIndex":84,"affiliation":1071,"properties":23},{"id":1021,"createTime":23,"updateTime":23,"relativeEntities":1072,"slug":23,"properties":1073,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1075,"statistic":23},[],{"title":1074},{"VI":1026},[],{"title":1077},{"VI":1078},"Achilleas Psomas",{"id":1080,"sortIndex":24,"researcher":23,"roles":1081,"affiliations":1082,"properties":1091,"displayName":1093,"givenName":23,"familyName":23},"e633fbca-0cb4-4dd0-aae3-8b26c79e48db",[127],[1083],{"id":1084,"sortIndex":84,"affiliation":1085,"properties":23},"6ccbddd6-aa8d-4eae-a9e6-c6802ce3c958",{"id":1084,"createTime":23,"updateTime":23,"relativeEntities":1086,"slug":23,"properties":1087,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1090,"statistic":23},[],{"title":1088},{"VI":1089},"University of Applied Sciences of Western Switzerland, HES-SO, HEPIA-Agronomy, Geneva, Switzerland",[],{"title":1092},{"VI":1093},"Pascal Boivin",{"url":1014,"publisher":1095,"properties":1138},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1096,"slug":10,"properties":1097,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":1102,"manageAffiliations":1107,"indexDatabases":1118,"url":82,"thumbnailPath":23,"statistic":1133,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":1098,"eissn":1099,"issn":1100,"title":1101},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[1103],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":1104,"label":1105,"description":1106,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[1108,1113],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":1109,"slug":23,"properties":1110,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1112,"statistic":23},[],{"title":1111},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":1114,"slug":23,"properties":1115,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1117,"statistic":23},[],{"title":1116},{"EN":45},[],[1119,1126],{"id":49,"indexDatabase":1120,"url":60,"indexYears":61,"academicFieldIds":1125,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":1121,"label":1122,"description":1123,"key":57,"publicationTags":1124,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":1127,"url":79,"indexYears":23,"academicFieldIds":1132,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":1128,"label":1129,"description":1130,"key":75,"publicationTags":1131,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":1134,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":1135,"totalCitation":84,"totalCitationByYear":1136,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":1137,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":1139,"volume":1141},{"VOID":1140},"e00677",{"VOID":610},{"total":160,"publishYear":613,"statisticByYear":23},"2026-01-28T22:53:15.969+00:00",[64,77],[1146,1149,1154,1160,1167,1170,1177,1180,1186,1195,1204,1211,1214,1221,1224,1229,1233,1236,1243,1249,1255,1258,1261,1268,1274,1281,1290,1293,1299,1305,1311,1317,1323,1330,1333,1336,1342,1350,1357,1363,1370,1377,1383,1390,1396,1399,1406,1409,1415,1418,1425,1433,1440,1446,1453,1459,1466],{"id":693,"text":1147,"url":695,"identifiers":1148},"Aram, 2019, Urban green space cooling effect in cities, Heliyon, 5",{"doi":697},{"id":23,"text":1150,"url":1151,"identifiers":1152},"Asmuss, 2019, On the potential of Sentinel-1 for high resolution monitoring of water table dynamics in grasslands on organic soils, Remote Sens., 11, 14, 10.3390\u002Frs11141659","http:\u002F\u002Fdx.doi.org\u002F10.3390\u002Frs11141659",{"doi":1153},"10.3390\u002Frs11141659",{"id":1155,"text":1156,"url":1157,"identifiers":1158},"4b37db94-d890-46f2-a430-24ba8fbaff35","Ball, 2017, Visual soil evaluation: a summary of some applications and potential developments for agriculture, Soil Tillage Res., 173, 114, 10.1016\u002Fj.still.2016.07.006","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS016719871630126X",{"doi":1159},"10.1016\u002Fj.still.2016.07.006",{"id":23,"text":1161,"url":1162,"identifiers":1163},"Bascietto, 2021, Spatial variations of vegetation index from remote sensing linked to soil colloidal status, Land, 10, 80, 10.3390\u002Fland10010080","https:\u002F\u002Fdoi.org\u002F10.3390\u002Fland10010080",{"mag":1164,"openalex":1165,"doi":1166},"3124132322","W3124132322","10.3390\u002Fland10010080",{"id":23,"text":1168,"url":23,"identifiers":1169},"Boivin, 1990, Densité apparente d’échantillon de sol: méthode de la poche plastique, 57",{},{"id":23,"text":1171,"url":1172,"identifiers":1173},"Boivin, 2009, Quantifying the relationship between soil organic carbon and soil physical properties using shrinkage modelling, Eur. J. Soil Sci., 60, 265, 10.1111\u002Fj.1365-2389.2008.01107.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1365-2389.2008.01107.x",{"mag":1174,"openalex":1175,"doi":1176},"2065510183","W2065510183","10.1111\u002Fj.1365-2389.2008.01107.x",{"id":23,"text":1178,"url":23,"identifiers":1179},"Cantonal Laboratory of Agriculture, 1992",{},{"id":1181,"text":1182,"url":1183,"identifiers":1184},"876815e5-74d6-4195-8fe3-d5e5556f7910","Cârlan, 2020, Identifying urban vegetation stress factors based on open access remote sensing imagery and field observations, Ecol. Inform., 55, 101032, 10.1016\u002Fj.ecoinf.2019.101032","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1574954119303437",{"doi":1185},"10.1016\u002Fj.ecoinf.2019.101032",{"id":23,"text":1187,"url":1188,"identifiers":1189},"Chang, 2017, Assessing the ecosystem services provided by urban green spaces along urban center – edge gradients, Sci. Rep., 7, 11226, 10.1038\u002Fs41598-017-11559-5","https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41598-017-11559-5",{"mag":1190,"pmc":1191,"openalex":1192,"pm":1193,"doi":1194},"2752541426","5593898","W2752541426","28894226","10.1038\u002Fs41598-017-11559-5",{"id":23,"text":1196,"url":1197,"identifiers":1198},"Charzynski, 2017, Influence of the soil sealing on the geoaccumulation index of heavy metals and various pollution factors, Environ. Sci. Pollut. Res., 24, 4801, 10.1007\u002Fs11356-016-8209-5","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11356-016-8209-5",{"mag":1199,"pmc":1200,"openalex":1201,"pm":1202,"doi":1203},"2561838791","5350235","W2561838791","27987118","10.1007\u002Fs11356-016-8209-5",{"id":23,"text":1205,"url":1206,"identifiers":1207},"Cortés, 2021, Where are global vegetation greening and browning trends significant?, Geophys. Res. Lett., 48, 10.1029\u002F2020GL091496","https:\u002F\u002Fdoi.org\u002F10.1029\u002F2020gl091496",{"mag":1208,"openalex":1209,"doi":1210},"3128570900","W3128570900","10.1029\u002F2020gl091496",{"id":23,"text":1212,"url":23,"identifiers":1213},"de Genève",{},{"id":23,"text":1215,"url":1216,"identifiers":1217},"de Jong, 2011, Analysis of monotonic greening and browning trends from global NDVI time-series, Remote Sens. Environ., 115, 692, 10.1016\u002Fj.rse.2010.10.011","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rse.2010.10.011",{"mag":1218,"openalex":1219,"doi":1220},"2117490284","W2117490284","10.1016\u002Fj.rse.2010.10.011",{"id":693,"text":1222,"url":695,"identifiers":1223},"de la Iglesia Martinez, 2023, Demystifying normalized vegetation index (NDVI) for greenness exposure assessments and policy interventions in urban greening, Environ. Res., 220",{"doi":697},{"id":23,"text":1225,"url":1226,"identifiers":1227},"Drusch, 2012, Sentinel-2: ESA's Optical High-Resolution Mission for GMES Operational Services, Remote Sens. Environ., 120, 25, 10.1016\u002Fj.rse.2011.11.026","http:\u002F\u002Fdx.doi.org\u002F10.1016\u002Fj.rse.2011.11.026",{"doi":1228},"10.1016\u002Fj.rse.2011.11.026",{"id":23,"text":1230,"url":23,"identifiers":1231},"Edmondson, 2016, Sci. Rep., 6, 33708, 10.1038\u002Fsrep33708",{"doi":1232},"10.1038\u002Fsrep33708",{"id":23,"text":1234,"url":23,"identifiers":1235},"EOS Data Analytics Inc",{},{"id":23,"text":1237,"url":1238,"identifiers":1239},"Foti, 2021, Topsoil characteristics of forests and lawns along an urban–rural gradient in the Paris region (France), Soil Use Manag., 37, 10.1111\u002Fsum.12640","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fsum.12640",{"mag":1240,"openalex":1241,"doi":1242},"3083671867","W3083671867","10.1111\u002Fsum.12640",{"id":1244,"text":1245,"url":1246,"identifiers":1247},"5c4be33a-765c-4817-888f-e2c82bb59337","Franck-Néel, 2015, Mapping the land use history for protection of soils in urban planning: what reliable scales in time and space?, J. Soils Sediments, 15, 1687, 10.1007\u002Fs11368-014-1017-y","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11368-014-1017-y",{"doi":1248},"10.1007\u002Fs11368-014-1017-y",{"id":1250,"text":1251,"url":1252,"identifiers":1253},"f14b5e0f-c7b1-48df-8dfe-630dbc0cca0d","Gao, 1996, NDWI—A normalized difference water index for remote sensing of vegetation liquid water from space, Remote Sens. Environ., 58, 257, 10.1016\u002FS0034-4257(96)00067-3","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0034425796000673",{"doi":1254},"10.1016\u002Fs0034-4257(96)00067-3",{"id":23,"text":1256,"url":23,"identifiers":1257},"Gee, 2002, Particle-Size Analysis, 255",{},{"id":23,"text":1259,"url":23,"identifiers":1260},"GmbH",{},{"id":23,"text":1262,"url":1263,"identifiers":1264},"Gräf, 2021, Water-stressed plants do not cool: Leaf surface temperature of living wall plants under drought stress, Sustainability, 13, 7, 10.3390\u002Fsu13073910","https:\u002F\u002Fdoi.org\u002F10.3390\u002Fsu13073910",{"mag":1265,"openalex":1266,"doi":1267},"3144450781","W3144450781","10.3390\u002Fsu13073910",{"id":1269,"text":1270,"url":1271,"identifiers":1272},"daee94b3-e734-4fd9-a1b2-04d5f382c703","Greinert, 2015, The heterogeneity of urban soils in the light of their properties, J. Soils Sediments, 15, 1725, 10.1007\u002Fs11368-014-1054-6","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11368-014-1054-6",{"doi":1273},"10.1007\u002Fs11368-014-1054-6",{"id":23,"text":1275,"url":1276,"identifiers":1277},"Groh, 2019, Quantification and prediction of nighttime evapotranspiration for two distinct grassland ecosystems, Water Resour. Res., 55, 2961, 10.1029\u002F2018WR024072","https:\u002F\u002Fdoi.org\u002F10.1029\u002F2018wr024072",{"mag":1278,"openalex":1279,"doi":1280},"2924799270","W2924799270","10.1029\u002F2018wr024072",{"id":23,"text":1282,"url":1283,"identifiers":1284},"Herrmann, 2018, Widespread loss of intermediate soil horizons in urban landscapes, Proc. Natl. Acad. Sci. U. S. A., 115, 6751, 10.1073\u002Fpnas.1800305115","https:\u002F\u002Fdoi.org\u002F10.1073\u002Fpnas.1800305115",{"mag":1285,"pmc":1286,"openalex":1287,"pm":1288,"doi":1289},"2808567041","6042071","W2808567041","29891715","10.1073\u002Fpnas.1800305115",{"id":23,"text":1291,"url":23,"identifiers":1292},"Hillel, 2003, Introduction to environmental soil physics",{},{"id":1294,"text":1295,"url":1296,"identifiers":1297},"9a5a2993-ff38-4abf-ac54-19eadcfbca59","Huete, 1988, A soil-adjusted vegetation index (SAVI), Remote Sens. Environ., 25, 295, 10.1016\u002F0034-4257(88)90106-X","https:\u002F\u002Flinkinghub.elsevier.com\u002Fretrieve\u002Fpii\u002F003442578890106X",{"doi":1298},"10.1016\u002F0034-4257(88)90106-x",{"id":1300,"text":1301,"url":1302,"identifiers":1303},"b308997f-6b1b-4e4b-940c-68227b04842d","Huete, 2002, Overview of the radiometric and biophysical performance of the MODIS vegetation indices, Remote Sens. Environ., 83, 195, 10.1016\u002FS0034-4257(02)00096-2","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0034425702000962",{"doi":1304},"10.1016\u002Fs0034-4257(02)00096-2",{"id":1306,"text":1307,"url":1308,"identifiers":1309},"9c069084-9d8d-419d-9ece-702c3569816b","Hulisz, 2018, Urban soil resources of medium-sized cities in Poland: a comparative case study of Toruń and Zielona Góra, J. Soils Sediments, 18, 358, 10.1007\u002Fs11368-016-1596-x","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11368-016-1596-x",{"doi":1310},"10.1007\u002Fs11368-016-1596-x",{"id":1312,"text":1313,"url":1314,"identifiers":1315},"11cd099c-cc89-44ff-a54c-2ef737ba1cbc","Johannes, 2019, Soil structure quality indicators and their limit values, Ecol. Indic., 104, 686, 10.1016\u002Fj.ecolind.2019.05.040","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1470160X19303851",{"doi":1316},"10.1016\u002Fj.ecolind.2019.05.040",{"id":1318,"text":1319,"url":1320,"identifiers":1321},"8f2ad25c-4461-4f38-b485-3db42518b56e","Joiner, 2018, Global relationships among traditional reflectance vegetation indices (NDVI and NDII), evapotranspiration (ET), and soil moisture variability on weekly timescales, Remote Sens. Environ., 219, 339, 10.1016\u002Fj.rse.2018.10.020","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0034425718304723",{"doi":1322},"10.1016\u002Fj.rse.2018.10.020",{"id":23,"text":1324,"url":1325,"identifiers":1326},"Lal, 1991, Soil structure and sustainability, J. Sustain. Agric., 1, 67, 10.1300\u002FJ064v01n04_06","https:\u002F\u002Fdoi.org\u002F10.1300\u002Fj064v01n04_06",{"mag":1327,"openalex":1328,"doi":1329},"2094302563","W2094302563","10.1300\u002Fj064v01n04_06",{"id":693,"text":1331,"url":695,"identifiers":1332},"Lal, 2018, Urban agriculture in the 21st century, 1",{"doi":697},{"id":23,"text":1334,"url":23,"identifiers":1335},"LECO Corporation",{},{"id":1337,"text":1338,"url":1339,"identifiers":1340},"d682dfcf-6a4f-4f56-8f72-9071b147cfd8","Manns, 2015, Soil organic carbon as factor in passive microwave retrievals of soil water content over agricultural croplands, J. Hydrol., 528, 643, 10.1016\u002Fj.jhydrol.2015.06.058","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0022169415004710",{"doi":1341},"10.1016\u002Fj.jhydrol.2015.06.058",{"id":23,"text":1343,"url":1344,"identifiers":1345},"Manoli, 2019, Magnitude of urban heat islands largely explained by climate and population, Nature, 573, 55, 10.1038\u002Fs41586-019-1512-9","https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41586-019-1512-9",{"mag":1346,"openalex":1347,"pm":1348,"doi":1349},"2971795275","W2971795275","31485056","10.1038\u002Fs41586-019-1512-9",{"id":23,"text":1351,"url":1352,"identifiers":1353},"Mónok, 2021, Comparison of soil properties in urban and non-urban grasslands in Budapest area, Soil Use Manag., 37, 4, 10.1111\u002Fsum.12632","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fsum.12632",{"mag":1354,"openalex":1355,"doi":1356},"3048559284","W3048559284","10.1111\u002Fsum.12632",{"id":1358,"text":1359,"url":1360,"identifiers":1361},"b0d1d8fa-f96f-4282-b2c9-4ef201b00e67","Morel, 2015, Ecosystem services provided by soils of urban, industrial, traffic, mining, and military areas (SUITMAs), J. Soils Sediments, 15, 1659, 10.1007\u002Fs11368-014-0926-0","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11368-014-0926-0",{"doi":1362},"10.1007\u002Fs11368-014-0926-0",{"id":23,"text":1364,"url":1365,"identifiers":1366},"Mulder, 2011, The use of remote sensing in soil and terrain mapping – a review, Geoderma, 162, 1, 10.1016\u002Fj.geoderma.2010.12.018","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2010.12.018",{"mag":1367,"openalex":1368,"doi":1369},"2116395914","W2116395914","10.1016\u002Fj.geoderma.2010.12.018",{"id":23,"text":1371,"url":1372,"identifiers":1373},"Nouri, 2014, High spatial resolution WorldView-2 imagery for mapping NDVI and its relationship to temporal urban landscape evapotranspiration factors, Remote Sens., 6, 10.3390\u002Frs6010580","https:\u002F\u002Fdoi.org\u002F10.3390\u002Frs6010580",{"mag":1374,"openalex":1375,"doi":1376},"1974015592","W1974015592","10.3390\u002Frs6010580",{"id":23,"text":1378,"url":1379,"identifiers":1380},"Panagea, 2021, Soil water retention as affected by management induced changes of soil organic carbon: analysis of long-term experiments in Europe, Land, 10, 1362, 10.3390\u002Fland10121362","https:\u002F\u002Fdoi.org\u002F10.3390\u002Fland10121362",{"openalex":1381,"doi":1382},"W4200332864","10.3390\u002Fland10121362",{"id":23,"text":1384,"url":1385,"identifiers":1386},"Peng, 2017, A review of spatial downscaling of satellite remotely sensed soil moisture, Rev. Geophys., 55, 341, 10.1002\u002F2016RG000543","https:\u002F\u002Fdoi.org\u002F10.1002\u002F2016rg000543",{"mag":1387,"openalex":1388,"doi":1389},"2599868771","W2599868771","10.1002\u002F2016rg000543",{"id":1391,"text":1392,"url":1393,"identifiers":1394},"69e9fce3-b81a-4f1d-a72e-dab2f3d85fc8","Petropoulos, 2015, Surface soil moisture retrievals from remote sensing: Current status, products and future trends, Phys. Chem. Earth, 83, 36, 10.1016\u002Fj.pce.2015.02.009","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1474706515000200",{"doi":1395},"10.1016\u002Fj.pce.2015.02.009",{"id":693,"text":1397,"url":695,"identifiers":1398},"Pouyat, 2010, Chemical, physical, and biological characteristics of urban soils, 119",{"doi":697},{"id":23,"text":1400,"url":1401,"identifiers":1402},"Qi, 1994, A modified soil adjusted vegetation index, Remote Sens. Environ., 48, 119, 10.1016\u002F0034-4257(94)90134-1","https:\u002F\u002Fdoi.org\u002F10.1016\u002F0034-4257(94)90134-1",{"mag":1403,"openalex":1404,"doi":1405},"2000102737","W2000102737","10.1016\u002F0034-4257(94)90134-1",{"id":23,"text":1407,"url":23,"identifiers":1408},"Schwab, 2016, Methoden zur Bestimmung physikalischer Begleitparameter an Bodenproben, Agroscope Sci., 40",{},{"id":23,"text":1410,"url":1411,"identifiers":1412},"Stuckey, 1941, Seasonal Growth of Grass Roots, Am. J. Bot., 28, 486, 10.1002\u002Fj.1537-2197.1941.tb10966.x","https:\u002F\u002Fdoi.org\u002F10.2307\u002F2437049",{"openalex":1413,"doi":1414},"W4229990475","10.2307\u002F2437049",{"id":23,"text":1416,"url":23,"identifiers":1417},"Swiss Federal Office of Statistics, 2023, City statistics portraits 2022: core cities, Neuchâtel., 5",{},{"id":23,"text":1419,"url":1420,"identifiers":1421},"Tesfa, 2009, Modeling soil depth from topographic and land cover attributes, Water Resour. Res., 45, 10.1029\u002F2008WR007474","https:\u002F\u002Fdoi.org\u002F10.1029\u002F2008wr007474",{"mag":1422,"openalex":1423,"doi":1424},"2161270333","W2161270333","10.1029\u002F2008wr007474",{"id":23,"text":1426,"url":1427,"identifiers":1428},"Ugolini, 2020, Assessing the influence of topsoil and technosol characteristics on plant growth for the green regeneration of urban built sites, J. Environ. Manag., 273, 10.1016\u002Fj.jenvman.2020.111168","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jenvman.2020.111168",{"mag":1429,"openalex":1430,"pm":1431,"doi":1432},"3048007189","W3048007189","32777645","10.1016\u002Fj.jenvman.2020.111168",{"id":23,"text":1434,"url":1435,"identifiers":1436},"Viana, 2022, Deconstructing the root system of grass through an exploration of development, anatomy and function, Plant Cell Environ., 45, 602, 10.1111\u002Fpce.14270","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fpce.14270",{"openalex":1437,"pm":1438,"doi":1439},"W4210342974","35092025","10.1111\u002Fpce.14270",{"id":1441,"text":1442,"url":1443,"identifiers":1444},"453d1649-62c9-4cb2-b80f-0b558fdee816","Walker, 2017, Combining measured sites, soil-scapes map and soil sensing for mapping soil properties of a region, Geoderma, 300, 64, 10.1016\u002Fj.geoderma.2016.12.011","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706116310084",{"doi":1445},"10.1016\u002Fj.geoderma.2016.12.011",{"id":23,"text":1447,"url":1448,"identifiers":1449},"Wang, 2018, Quantifying and characterizing the dynamics of urban greenspace at the patch level: A new approach using object-based image analysis, Remote Sens. Environ., 204, 94, 10.1016\u002Fj.rse.2017.10.039","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rse.2017.10.039",{"mag":1450,"openalex":1451,"doi":1452},"2765886605","W2765886605","10.1016\u002Fj.rse.2017.10.039",{"id":23,"text":1454,"url":1455,"identifiers":1456},"Winkler, 2021, Slowdown of the greening trend in natural vegetation with further rise in atmospheric CO2, Biogeosciences, 18, 4985, 10.5194\u002Fbg-18-4985-2021","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fessoar.10503202.2",{"openalex":1457,"doi":1458},"W4235174033","10.1002\u002Fessoar.10503202.2",{"id":23,"text":1460,"url":1461,"identifiers":1462},"Zahedi, 2017, Soil depth modelling using terrain analysis and satellite imagery: the case study of Qeshlaq mountainous watershed (Kurdistan, Iran), J. Agric. Eng., 48, 167, 10.4081\u002Fjae.2017.595","https:\u002F\u002Fdoi.org\u002F10.4081\u002Fjae.2017.595",{"mag":1463,"openalex":1464,"doi":1465},"2755361801","W2755361801","10.4081\u002Fjae.2017.595",{"id":23,"text":1467,"url":23,"identifiers":1468},"Zhiyanski, 2017, Soil Quality, 49",{},{"id":1470,"createTime":1471,"updateTime":1472,"relativeEntities":1473,"slug":1474,"properties":1475,"entityType":118,"verifyStatus":119,"verifyTime":1482,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":1483,"fullTextUrl":23,"authors":1484,"publicationType":217,"publisherRelationship":1545,"citationCount":84,"citationInfo":1594,"publishDate":1597,"publishYear":1595,"citationAnalyzeStatus":22,"lastCitationAnalyze":1598,"indexDatabases":1599,"openAccess":23,"references":1600,"isForceReanalyzing":271},"93c1a3ae-0a6f-402d-807a-95fea0982e76","2024-01-15T05:43:37.091+00:00","2025-09-18T11:30:21.994+00:00",[],"Local-soil-knowledge-sustainable-agriculture-and-soil-conservation-in-Central-Vietnam",{"title":1476,"gsPaper":1478,"doi":1480},{"EN":1477},"Local soil knowledge, sustainable agriculture and soil conservation in Central Vietnam",{"VOID":1479},"[\"7339470862984475608\"]",{"VOID":1481},"10.1016\u002Fj.geodrs.2021.e00371","2024-05-03T03:48:13.592+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS235200942100016X",[1485,1500,1515,1530],{"id":1486,"sortIndex":84,"researcher":23,"roles":1487,"affiliations":1488,"properties":1497,"displayName":1499,"givenName":23,"familyName":23},"9f9be4d9-dd30-417e-9de4-eb247410d3fd",[127],[1489],{"id":1490,"sortIndex":84,"affiliation":1491,"properties":23},"9eee72a2-18b3-4c33-adb5-f20d68f845b9",{"id":1490,"createTime":23,"updateTime":23,"relativeEntities":1492,"slug":23,"properties":1493,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1496,"statistic":23},[],{"title":1494},{"VI":1495},"The University of New England, School of Environmental and Rural Science, Armidale, New South Wales 2351, Australia",[],{"title":1498},{"VI":1499},"Ha T.N. Huynh",{"id":1501,"sortIndex":144,"researcher":23,"roles":1502,"affiliations":1503,"properties":1510,"displayName":1512,"givenName":23,"familyName":23},"cc76f84b-d2b7-4a09-9dc7-22b814c5945b",[127],[1504],{"id":1490,"sortIndex":84,"affiliation":1505,"properties":23},{"id":1490,"createTime":23,"updateTime":23,"relativeEntities":1506,"slug":23,"properties":1507,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1509,"statistic":23},[],{"title":1508},{"VI":1495},[],{"title":1511,"gsAuthor":1513},{"VI":1512},"Lisa A. Lobry de Bruyn",{"VOID":1514},"[\"N7H6SgcAAAAJ\"]",{"id":1516,"sortIndex":160,"researcher":23,"roles":1517,"affiliations":1518,"properties":1525,"displayName":1527,"givenName":23,"familyName":23},"08dc7860-162e-44ae-a2fb-d70d846ed4e8",[127],[1519],{"id":1490,"sortIndex":84,"affiliation":1520,"properties":23},{"id":1490,"createTime":23,"updateTime":23,"relativeEntities":1521,"slug":23,"properties":1522,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1524,"statistic":23},[],{"title":1523},{"VI":1495},[],{"title":1526,"gsAuthor":1528},{"VI":1527},"Oliver G.G. Knox",{"VOID":1529},"[\"uf-LPRMAAAAJ\"]",{"id":1531,"sortIndex":174,"researcher":23,"roles":1532,"affiliations":1533,"properties":1542,"displayName":1544,"givenName":23,"familyName":23},"f1ff25a7-2b00-4bf2-ba03-3c7f937c4f45",[127],[1534],{"id":1535,"sortIndex":84,"affiliation":1536,"properties":23},"05958281-0d48-4368-b285-445c7333c5ba",{"id":1535,"createTime":23,"updateTime":23,"relativeEntities":1537,"slug":23,"properties":1538,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1541,"statistic":23},[],{"title":1539},{"VI":1540},"Hue University, Soil Science Department, Faculty of Agronomy, Thua Thien Hue, Viet Nam",[],{"title":1543},{"VI":1544},"Hoa T.T. Hoang",{"url":1483,"publisher":1546,"properties":1589},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1547,"slug":10,"properties":1548,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":1553,"manageAffiliations":1558,"indexDatabases":1569,"url":82,"thumbnailPath":23,"statistic":1584,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":1549,"eissn":1550,"issn":1551,"title":1552},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[1554],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":1555,"label":1556,"description":1557,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[1559,1564],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":1560,"slug":23,"properties":1561,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1563,"statistic":23},[],{"title":1562},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":1565,"slug":23,"properties":1566,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":1568,"statistic":23},[],{"title":1567},{"EN":45},[],[1570,1577],{"id":49,"indexDatabase":1571,"url":60,"indexYears":61,"academicFieldIds":1576,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":1572,"label":1573,"description":1574,"key":57,"publicationTags":1575,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":1578,"url":79,"indexYears":23,"academicFieldIds":1583,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":1579,"label":1580,"description":1581,"key":75,"publicationTags":1582,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":1585,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":1586,"totalCitation":84,"totalCitationByYear":1587,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":1588,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":1590,"volume":1592},{"VOID":1591},"e00371",{"VOID":1593},"25",{"total":84,"publishYear":1595,"statisticByYear":1596},2021,{},"2021-06-01","2025-09-18T11:30:21.993+00:00",[64,77],[1601,1608,1613,1616,1621,1624,1631,1634,1641,1648,1651,1657,1663,1666,1669,1675,1682,1689,1694,1697,1702,1705,1711,1714,1721,1724,1727,1733,1736,1739,1746,1749,1752,1758,1762,1765,1771,1778,1784,1787,1790,1797,1801,1807,1813,1816,1823,1830,1833,1836,1839,1845,1851,1854,1860,1863,1869,1872,1875,1878,1885,1892,1899,1905,1911,1917,1924,1931,1938,1945,1952,1955,1958,1961,1964,1967,1970,1973,1979,1986,1993,2000,2007,2014,2017,2020],{"id":23,"text":1602,"url":1603,"identifiers":1604},"Amsalu, 2006, Farmers’ views of soil erosion problems and their conservation knowledge at Beressa watershed, central highlands of Ethiopia, Agric. Hum. Values, 23, 99, 10.1007\u002Fs10460-005-5872-4","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10460-005-5872-4",{"mag":1605,"openalex":1606,"doi":1607},"2093002626","W2093002626","10.1007\u002Fs10460-005-5872-4",{"id":23,"text":1609,"url":1610,"identifiers":1611},"Aswani, 2004, Scientific evaluation in women’s participatory management: monitoring marine invertebrate refugia in the Solomon Islands, Hum. Organ., 63, 301, 10.17730\u002Fhumo.63.3.r7kgd4thktmyf7k1","http:\u002F\u002Fdx.doi.org\u002F10.17730\u002Fhumo.63.3.r7kgd4thktmyf7k1",{"doi":1612},"10.17730\u002Fhumo.63.3.r7kgd4thktmyf7k1",{"id":23,"text":1614,"url":23,"identifiers":1615},"Ba, 2002",{},{"id":23,"text":1617,"url":1618,"identifiers":1619},"Bampa, 2019, Harvesting European knowledge on soil functions and land management using multi-criteria decision analysis, Soil Use Manag., 35, 6, 10.1111\u002Fsum.12506","http:\u002F\u002Fdx.doi.org\u002F10.1111\u002Fsum.12506",{"doi":1620},"10.1111\u002Fsum.12506",{"id":23,"text":1622,"url":23,"identifiers":1623},"Bandura, 1977",{},{"id":23,"text":1625,"url":1626,"identifiers":1627},"Barbero-Sierra, 2016, Farmer knowledge, perception and management of soils in the Las Vegas agricultural district, Madrid, Spain, Soil Use Manag., 32, 446, 10.1111\u002Fsum.12278","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fsum.12278",{"mag":1628,"openalex":1629,"doi":1630},"2494641138","W2494641138","10.1111\u002Fsum.12278",{"id":23,"text":1632,"url":23,"identifiers":1633},"Barrera-Bassols, 2000",{},{"id":23,"text":1635,"url":1636,"identifiers":1637},"Barrera-Bassols, 2003, Ethnopedology: a worldwide view on the soil knowledge of local people, Geoderma, 111, 171, 10.1016\u002FS0016-7061(02)00263-X","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0016-7061(02)00263-x",{"mag":1638,"openalex":1639,"doi":1640},"2019830623","W2019830623","10.1016\u002Fs0016-7061(02)00263-x",{"id":23,"text":1642,"url":1643,"identifiers":1644},"Barrera-Bassols, 2009, Participatory soil survey: experience in working with a Mesoamerican indigenous community, Soil Use Manag., 25, 43, 10.1111\u002Fj.1475-2743.2008.00192.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1475-2743.2008.00192.x",{"mag":1645,"openalex":1646,"doi":1647},"1982165568","W1982165568","10.1111\u002Fj.1475-2743.2008.00192.x",{"id":23,"text":1649,"url":23,"identifiers":1650},"Barrios, 2012, InPaC-S: participatory knowledge integration on indicators of soil quality: methodological guide",{},{"id":1652,"text":1653,"url":1654,"identifiers":1655},"2e665878-5395-4cdd-a0bb-3d9437dac140","Bekele, 2003, Soil and water conservation decision behavior of subsistence farmers in the Eastern Highlands of Ethiopia: a case study of the Hunde-Lafto area, Ecol. Econ., 46, 437, 10.1016\u002FS0921-8009(03)00166-6","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0921800903001666",{"doi":1656},"10.1016\u002Fs0921-8009(03)00166-6",{"id":1658,"text":1659,"url":1660,"identifiers":1661},"93b978f3-af8c-4f24-8892-3af2f17b53a9","Bouma, 2012, Soil information in support of policy making and awareness raising, Curr. Opin. Environ. Sustain., 4, 552, 10.1016\u002Fj.cosust.2012.07.001","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1877343512000887",{"doi":1662},"10.1016\u002Fj.cosust.2012.07.001",{"id":23,"text":1664,"url":23,"identifiers":1665},"Brinkmann, 2018",{},{"id":693,"text":1667,"url":695,"identifiers":1668},"Buthelezi, 2013, The use of scientific and indigenous knowledge in agricultural land evaluation and soil fertility studies of two villages in KwaZulu-Natal, South Africa, Afr. J. Agric. Res., 8, 507",{"doi":697},{"id":1670,"text":1671,"url":1672,"identifiers":1673},"f96f82aa-5c77-4e45-94ca-14e2caf3063a","Buthelezi-Dube, 2018, Indigenous soil classification in four villages of eastern South Africa, Geoderma, 332, 84, 10.1016\u002Fj.geoderma.2018.06.026","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706118300053",{"doi":1674},"10.1016\u002Fj.geoderma.2018.06.026",{"id":23,"text":1676,"url":1677,"identifiers":1678},"Carr, 2005, Beyond participation: boundary organizations as a new space for farmers and scientists to interact, Soc. Nat. Resour., 18, 255, 10.1080\u002F08941920590908123","https:\u002F\u002Fdoi.org\u002F10.1080\u002F08941920590908123",{"mag":1679,"openalex":1680,"doi":1681},"2084324412","W2084324412","10.1080\u002F08941920590908123",{"id":23,"text":1683,"url":1684,"identifiers":1685},"Christie, 2016, Gender and local soil knowledge: linking farmers’ perceptions with soil fertility in two villages in the Philippines, Singap. J. Trop. Geogr., 37, 6, 10.1111\u002Fsjtg.12134","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fsjtg.12134",{"mag":1686,"openalex":1687,"doi":1688},"2301386893","W2301386893","10.1111\u002Fsjtg.12134",{"id":23,"text":1690,"url":1691,"identifiers":1692},"Clemens, 2010, Soil fertility affected by land use history, relief position, and parent material under a tropical climate in NW-Vietnam, Catena, 81, 87, 10.1016\u002Fj.catena.2010.01.006","http:\u002F\u002Fdx.doi.org\u002F10.1016\u002Fj.catena.2010.01.006",{"doi":1693},"10.1016\u002Fj.catena.2010.01.006",{"id":23,"text":1695,"url":23,"identifiers":1696},"Cohen, 2013",{},{"id":23,"text":1698,"url":1699,"identifiers":1700},"Cummings, 2016, Drawing on traditional knowledge to identify and describe ecosystem services associated with Northern Amazon’s multiple-use plants, Int. J. Biodiversity Sci. Ecosys. Services Manag., 12, 39, 10.1080\u002F21513732.2015.1136841","http:\u002F\u002Fdx.doi.org\u002F10.1080\u002F21513732.2015.1136841",{"doi":1701},"10.1080\u002F21513732.2015.1136841",{"id":693,"text":1703,"url":695,"identifiers":1704},"Dang, 2007, Quantitative and qualitative soil quality assessments of tea enterprises in Northern Vietnam, Afr. J. Agric. Res., 2, 455",{"doi":697},{"id":1706,"text":1707,"url":1708,"identifiers":1709},"b4a3b7f8-82f6-4f95-a7fd-a0f185ac622a","Dawoe, 2012, Exploring farmers’ local knowledge and perceptions of soil fertility and management in the Ashanti Region of Ghana, Geoderma, 179–180, 96, 10.1016\u002Fj.geoderma.2012.02.015","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706112000912",{"doi":1710},"10.1016\u002Fj.geoderma.2012.02.015",{"id":23,"text":1712,"url":23,"identifiers":1713},"De Queiroz, 2013",{},{"id":23,"text":1715,"url":1716,"identifiers":1717},"Dong, 2014, Impact of short-rotation Acacia hybrid plantations on soil properties of degraded lands in Central Vietnam, Soil Res., 52, 271, 10.1071\u002FSR13166","https:\u002F\u002Fdoi.org\u002F10.1071\u002Fsr13166",{"mag":1718,"openalex":1719,"doi":1720},"2060827581","W2060827581","10.1071\u002Fsr13166",{"id":23,"text":1722,"url":23,"identifiers":1723},"Doppler, 2006, Resources and livelihood in mountain areas of South East Asia: Farming and rural systems in a changing environment, Margraf",{},{"id":23,"text":1725,"url":23,"identifiers":1726},"FAO, 2015",{},{"id":1728,"text":1729,"url":1730,"identifiers":1731},"924b2c5d-393e-4c4e-9904-a15246507281","Fredericksen, 2000, Regeneration of timber species following selection logging in a Bolivian tropical dry forest, For. Ecol. Manag., 131, 47, 10.1016\u002FS0378-1127(99)00199-1","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0378112799001991",{"doi":1732},"10.1016\u002Fs0378-1127(99)00199-1",{"id":23,"text":1734,"url":23,"identifiers":1735},"GSO, 2011",{},{"id":23,"text":1737,"url":23,"identifiers":1738},"Hagel, 2013",{},{"id":23,"text":1740,"url":1741,"identifiers":1742},"Hirsch, 1996, Implications of economic reform in Vietnam: agrarian and environmental change in Hien Luong, Aus. Geog., 27, 165, 10.1080\u002F00049189608703166","https:\u002F\u002Fdoi.org\u002F10.1080\u002F00049189608703166",{"mag":1743,"openalex":1744,"doi":1745},"2073068299","W2073068299","10.1080\u002F00049189608703166",{"id":23,"text":1747,"url":23,"identifiers":1748},"Ho, 2000",{},{"id":23,"text":1750,"url":23,"identifiers":1751},"Hoang, 2017",{},{"id":1753,"text":1754,"url":1755,"identifiers":1756},"a3ea9457-22f2-4a96-b2db-ccd9a3219603","Hong, 2019, Forest ecosystem services and local communities: towards a possible solution to reduce forest dependence in Bach Ma National Park, Vietnam, Hum. Ecol., 47, 465, 10.1007\u002Fs10745-019-00083-x","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10745-019-00083-x",{"doi":1757},"10.1007\u002Fs10745-019-00083-x",{"id":23,"text":1759,"url":23,"identifiers":1760},"Huynh, 2016, Community participation and harvesting of non-timber forest products in benefit-sharing pilot scheme in Bach Ma National Park, Central Vietnam, Tropical Conservation Sci., 9, 877, 10.1177\u002F194008291600900218",{"doi":1761},"10.1177\u002F194008291600900218",{"id":23,"text":1763,"url":23,"identifiers":1764},"Huynh, 2020",{},{"id":1766,"text":1767,"url":1768,"identifiers":1769},"0f400537-8a15-4cbe-9035-b84ee0fe1b15","Ingram, 2008, Are farmers in England equipped to meet the knowledge challenge of sustainable soil management? An analysis of farmer and advisor views, J. Environ. Manag., 86, 214, 10.1016\u002Fj.jenvman.2006.12.036","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0301479706004300",{"doi":1770},"10.1016\u002Fj.jenvman.2006.12.036",{"id":23,"text":1772,"url":1773,"identifiers":1774},"Ingram, 2010, Revealing different understandings of soil held by scientists and farmers in the context of soil protection and management, Land Use Policy, 27, 51, 10.1016\u002Fj.landusepol.2008.07.005","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.landusepol.2008.07.005",{"mag":1775,"openalex":1776,"doi":1777},"2128585047","W2128585047","10.1016\u002Fj.landusepol.2008.07.005",{"id":1779,"text":1780,"url":1781,"identifiers":1782},"7eda6327-e628-4464-ba23-83e91c95be12","Jacobi, 2017, Whose knowledge, whose development? Use and role of local and external knowledge in agroforestry projects in Bolivia, Environ. Manag., 59, 464, 10.1007\u002Fs00267-016-0805-0","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00267-016-0805-0",{"doi":1783},"10.1007\u002Fs00267-016-0805-0",{"id":23,"text":1785,"url":23,"identifiers":1786},"Koli, 2010, Protected area co-management in Bangladesh - can enhance the adaptation of the forest communities?, 79",{},{"id":23,"text":1788,"url":23,"identifiers":1789},"Koziell, 2001",{},{"id":23,"text":1791,"url":1792,"identifiers":1793},"Mogoi, 2012, Communities, property rights and forest decentralisation in Kenya: early lessons from participatory forestry management, Conserv. Soc., 10, 182, 10.4103\u002F0972-4923.97490","https:\u002F\u002Fdoi.org\u002F10.4103\u002F0972-4923.97490",{"mag":1794,"openalex":1795,"doi":1796},"2067946955","W2067946955","10.4103\u002F0972-4923.97490",{"id":23,"text":1798,"url":23,"identifiers":1799},"Montanarella, 2016, World's soils are under threat, Soil, 2, 79, 10.5194\u002Fsoil-2-79-2016",{"doi":1800},"10.5194\u002Fsoil-2-79-2016",{"id":1802,"text":1803,"url":1804,"identifiers":1805},"70cb48d4-f02d-4546-b158-4db47d0318a1","Muler, 2014, Can overharvesting of a non-timber-forest-product change the regeneration dynamics of a tropical rainforest? The case study of Euterpe edulis, For. Ecol. Manag., 324, 117, 10.1016\u002Fj.foreco.2013.09.001","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0378112713006087",{"doi":1806},"10.1016\u002Fj.foreco.2013.09.001",{"id":1808,"text":1809,"url":1810,"identifiers":1811},"c37909c4-9c57-4346-a5ae-07df8d2dbfe5","Nath, 2015, Ethnopedology and soil quality of bamboo (Bambusa sp.) based agroforestry system, Sci. Total Environ., 521, 372","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0048969715003344",{"doi":1812},"10.1016\u002Fj.scitotenv.2015.03.059",{"id":23,"text":1814,"url":23,"identifiers":1815},"Neef, 2000",{},{"id":23,"text":1817,"url":1818,"identifiers":1819},"Nguyen, 2014, Basin resources management: simulating soil erosion risk by soil and water assessment tool (SWAT) in Ta Trach river watershed, Central Vietnam, J. Vietnamese Environ., 6, 165, 10.13141\u002Fjve.vol6.no2.pp165-170","https:\u002F\u002Fdoi.org\u002F10.13141\u002Fjve.vol6.no2.pp165-170",{"mag":1820,"openalex":1821,"doi":1822},"2297887121","W2297887121","10.13141\u002Fjve.vol6.no2.pp165-170",{"id":23,"text":1824,"url":1825,"identifiers":1826},"Nguyen, 2008, Evaluating ethnopedological knowledge systems for classifying soil quality. A case study in Bo Hamlet with Muong people of Northern Vietnam, Geogr. Res., 46, 27, 10.1111\u002Fj.1745-5871.2007.00489.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1745-5871.2007.00489.x",{"mag":1827,"openalex":1828,"doi":1829},"2083075866","W2083075866","10.1111\u002Fj.1745-5871.2007.00489.x",{"id":23,"text":1831,"url":23,"identifiers":1832},"Nguyen, 2008",{},{"id":23,"text":1834,"url":23,"identifiers":1835},"Nguyen, 2009",{},{"id":23,"text":1837,"url":23,"identifiers":1838},"Nguyen, 2015",{},{"id":1840,"text":1841,"url":1842,"identifiers":1843},"2f409bd0-e90c-4bd5-8313-5c8f048aaafb","Niemeijer, 2003, Moving beyond indigenous soil taxonomies: local theories of soils for sustainable development, Geoderma, 111, 403, 10.1016\u002FS0016-7061(02)00274-4","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706102002744",{"doi":1844},"10.1016\u002Fs0016-7061(02)00274-4",{"id":1846,"text":1847,"url":1848,"identifiers":1849},"dc7f10eb-0e15-4346-8015-57eeab85f7fa","Payton, 2003, Contrasting approaches to integrating indigenous knowledge about soils and scientific soil survey in East Africa and Bangladesh, Geoderma, 111, 355, 10.1016\u002FS0016-7061(02)00272-0","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706102002720",{"doi":1850},"10.1016\u002Fs0016-7061(02)00272-0",{"id":23,"text":1852,"url":23,"identifiers":1853},"Pham, 2008, Soil erosion risk modeling within upland landscapes using remotely sensed data and the RUSLE model (A case study in Huong Tra district, Thua Thien Hue province, Vietnam)",{},{"id":1855,"text":1856,"url":1857,"identifiers":1858},"69add6be-622f-434d-932b-c04378af764b","Pham, 2018, Integrated universal soil loss equation (USLE) and Geographical Information System (GIS) for soil erosion estimation in A Sap basin: Central Vietnam, Int. Soil Water Conservation Res., 6, 99, 10.1016\u002Fj.iswcr.2018.01.001","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2095633917302162",{"doi":1859},"10.1016\u002Fj.iswcr.2018.01.001",{"id":23,"text":1861,"url":23,"identifiers":1862},"Phuong, 2014, Modeling soil erosion within small moutainous watershed inCentral Vietnam Using GIS and SWAT, Resources and Environment, 4, 139",{},{"id":1864,"text":1865,"url":1866,"identifiers":1867},"8e93051f-6fe0-4feb-8cb4-94bde303688a","Pincus, 2018, Seeing below the surface: making soil processes visible to Ugandan smallholder farmers through a constructivist and experiential extension approach, Agric. Hum. Values, 35, 425, 10.1007\u002Fs10460-017-9836-2","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10460-017-9836-2",{"doi":1868},"10.1007\u002Fs10460-017-9836-2",{"id":23,"text":1870,"url":23,"identifiers":1871},"Poffenberger, 1998, 1",{},{"id":23,"text":1873,"url":23,"identifiers":1874},"Poffenberger, 1998",{},{"id":23,"text":1876,"url":23,"identifiers":1877},"Rambo, 1995",{},{"id":23,"text":1879,"url":1880,"identifiers":1881},"Reed, 2007, Integrating local and scientific knowledge for adaptation to land degradation: Kalahari rangeland management options, Land Degrad. Dev., 18, 249, 10.1002\u002Fldr.777","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fldr.777",{"mag":1882,"openalex":1883,"doi":1884},"2003261178","W2003261178","10.1002\u002Fldr.777",{"id":23,"text":1886,"url":1887,"identifiers":1888},"Roesch-McNally, 2018, Soil as social-ecological feedback: examining the “ethic” of soil stewardship among Corn Belt farmers, Rural. Sociol., 83, 145, 10.1111\u002Fruso.12167","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fruso.12167",{"mag":1889,"openalex":1890,"doi":1891},"2735027353","W2735027353","10.1111\u002Fruso.12167",{"id":23,"text":1893,"url":1894,"identifiers":1895},"Rudel, 2016, Do smallholder, mixed crop-livestock livelihoods encourage sustainable agricultural practices? A meta-analysis, Land, 5, 6, 10.3390\u002Fland5010006","https:\u002F\u002Fdoi.org\u002F10.3390\u002Fland5010006",{"mag":1896,"openalex":1897,"doi":1898},"2253172318","W2253172318","10.3390\u002Fland5010006",{"id":1900,"text":1901,"url":1902,"identifiers":1903},"e9b2834d-674d-4e7c-b607-f01a9da548cd","Ryder, 2003, Local soil knowledge and site suitability evaluation in the Dominican Republic, Geoderma, 111, 289, 10.1016\u002FS0016-7061(02)00269-0","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0016706102002690",{"doi":1904},"10.1016\u002Fs0016-7061(02)00269-0",{"id":1906,"text":1907,"url":1908,"identifiers":1909},"869189b9-af37-403b-81d2-2e3b5d95a6ec","Saïdou, 2004, Sustainable soil fertility management in Benin: learning from farmers, NJAS, 52, 349","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1573521404800216",{"doi":1910},"10.1016\u002Fs1573-5214(04)80021-6",{"id":1912,"text":1913,"url":1914,"identifiers":1915},"21895e18-5267-4249-b3fb-afad57bfd1b5","Saint-Macary, 2010, Land titling policy and soil conservation in the northern uplands of Vietnam, Land Use Policy, 27, 617, 10.1016\u002Fj.landusepol.2009.08.004","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS026483770900091X",{"doi":1916},"10.1016\u002Fj.landusepol.2009.08.004",{"id":23,"text":1918,"url":1919,"identifiers":1920},"Saito, 2006, Farmers’ knowledge of soils in relation to cropping practices: a case study of farmers in upland rice based slash-and-burn systems of northern Laos, Geoderma, 136, 64, 10.1016\u002Fj.geoderma.2006.02.003","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.geoderma.2006.02.003",{"mag":1921,"openalex":1922,"doi":1923},"1985634267","W1985634267","10.1016\u002Fj.geoderma.2006.02.003",{"id":23,"text":1925,"url":1926,"identifiers":1927},"Schneider, 2009, Social learning processes in Swiss soil protection—the ‘from farmer-to farmer’project, Hum. Ecol., 37, 475, 10.1007\u002Fs10745-009-9262-1","https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10745-009-9262-1",{"mag":1928,"openalex":1929,"doi":1930},"2012286202","W2012286202","10.1007\u002Fs10745-009-9262-1",{"id":23,"text":1932,"url":1933,"identifiers":1934},"Siderius, 2003, Toponymy and soil nomenclature in the Netherlands, Geoderma, 111, 521, 10.1016\u002FS0016-7061(02)00280-X","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0016-7061(02)00280-x",{"mag":1935,"openalex":1936,"doi":1937},"2092253198","W2092253198","10.1016\u002Fs0016-7061(02)00280-x",{"id":23,"text":1939,"url":1940,"identifiers":1941},"Sillitoe, 1998, Knowing the land: soil and land resource evaluation and indigenous knowledge, Soil Use Manag., 14, 188, 10.1111\u002Fj.1475-2743.1998.tb00148.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1475-2743.1998.tb00148.x",{"mag":1942,"openalex":1943,"doi":1944},"1971412249","W1971412249","10.1111\u002Fj.1475-2743.1998.tb00148.x",{"id":23,"text":1946,"url":1947,"identifiers":1948},"Stringer, 2007, Land degradation assessment in Southern Africa: integrating local and scientific knowledge bases, Land Degrad. Dev., 18, 99, 10.1002\u002Fldr.760","https:\u002F\u002Fdoi.org\u002F10.1002\u002Fldr.760",{"mag":1949,"openalex":1950,"doi":1951},"2080589306","W2080589306","10.1002\u002Fldr.760",{"id":23,"text":1953,"url":23,"identifiers":1954},"Sunderland, 2011, 209",{},{"id":23,"text":1956,"url":23,"identifiers":1957},"Thang, 2010, Changes in property rights, forest use and forest dependency of Katu Communities in Nam Dong District, Thua Thien Hue Province, Vietnam, Int. For. Rev., 12, 307",{},{"id":23,"text":1959,"url":23,"identifiers":1960},"Thanh, 2008",{},{"id":23,"text":1962,"url":23,"identifiers":1963},"Thua Thien Hue",{},{"id":23,"text":1965,"url":23,"identifiers":1966},"Tran, 2002",{},{"id":23,"text":1968,"url":23,"identifiers":1969},"Tran, 2004",{},{"id":23,"text":1971,"url":23,"identifiers":1972},"Tran, 2017",{},{"id":1974,"text":1975,"url":1976,"identifiers":1977},"65180d9e-120b-4ae4-ba68-609d2200340b","Van Dung, 2008, Analysis of the sustainability within the composite swidden agroecosystem in northern Vietnam: 1. Partial nutrient balances and recovery times of upland fields, Agriculture, Ecosystems & Environment, 128, 37, 10.1016\u002Fj.agee.2008.05.004","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0167880908001394",{"doi":1978},"10.1016\u002Fj.agee.2008.05.004",{"id":23,"text":1980,"url":1981,"identifiers":1982},"Webb, 2007, Biophysical and policy drivers of landscape change in a central Vietnamese district, Environ. Conserv., 34, 164, 10.1017\u002FS037689290700389X","https:\u002F\u002Fdoi.org\u002F10.1017\u002Fs037689290700389x",{"mag":1983,"openalex":1984,"doi":1985},"1967356021","W1967356021","10.1017\u002Fs037689290700389x",{"id":23,"text":1987,"url":1988,"identifiers":1989},"Wetterwald, 2004, Non-timber forest products in Nam Dong District, Central Vietnam: ecological and economic prospects, Schweizerische Zeitschrift fur Forstwesen, 155, 45, 10.3188\u002Fszf.2004.0045","https:\u002F\u002Fdoi.org\u002F10.3188\u002Fszf.2004.0045",{"mag":1990,"openalex":1991,"doi":1992},"2016119008","W2016119008","10.3188\u002Fszf.2004.0045",{"id":23,"text":1994,"url":1995,"identifiers":1996},"Wezel, 2002, Slope position effects on soil fertility and crop productivity and implications for soil conservation in upland Northwest Vietnam, Agric. Ecosyst. Environ., 91, 113, 10.1016\u002FS0167-8809(01)00242-0","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0167-8809(01)00242-0",{"mag":1997,"openalex":1998,"doi":1999},"1993916789","W1993916789","10.1016\u002Fs0167-8809(01)00242-0",{"id":23,"text":2001,"url":2002,"identifiers":2003},"Winklerprins, 1999, Insights and applications local soil knowledge: a tool for sustainable land management, Soc. Nat. Resour., 12, 151, 10.1080\u002F089419299279812","https:\u002F\u002Fdoi.org\u002F10.1080\u002F089419299279812",{"mag":2004,"openalex":2005,"doi":2006},"2156483776","W2156483776","10.1080\u002F089419299279812",{"id":23,"text":2008,"url":2009,"identifiers":2010},"WinklerPrins, 2004, Latin American ethnopedology: a vision of its past, present, and future, Agric. Hum. Values, 21, 139, 10.1023\u002FB:AHUM.0000029405.37237.c8","https:\u002F\u002Fdoi.org\u002F10.1023\u002Fb:ahum.0000029405.37237.c8",{"mag":2011,"openalex":2012,"doi":2013},"1970855484","W1970855484","10.1023\u002Fb:ahum.0000029405.37237.c8",{"id":693,"text":2015,"url":695,"identifiers":2016},"WinklerPrins, 2003, Local soil knowledge: insights, applications, and challenges, Geofis. Int., 111, 165",{"doi":697},{"id":693,"text":2018,"url":695,"identifiers":2019},"Winowiecki, 2014, Local soil knowledge and its use in crop allocation: implications for landscape-scale agricultural production and conservation efforts in Talamanca, Costa Rica, Agric. Forestry Fish., 32, 93",{"doi":697},{"id":23,"text":2021,"url":2022,"identifiers":2023},"Ziegler, 2011, Recognizing contemporary roles of swidden agriculture in transforming landscapes of Southeast Asia, Conservation Biology, 25, 846, 10.1111\u002Fj.1523-1739.2011.01664.x","https:\u002F\u002Fdoi.org\u002F10.1111\u002Fj.1523-1739.2011.01664.x",{"mag":2024,"openalex":2025,"pm":2026,"doi":2027},"1927821446","W1927821446","21453366","10.1111\u002Fj.1523-1739.2011.01664.x",{"id":2029,"createTime":2030,"updateTime":2031,"relativeEntities":2032,"slug":2033,"properties":2034,"entityType":118,"verifyStatus":119,"verifyTime":2031,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":2041,"fullTextUrl":23,"authors":2042,"publicationType":217,"publisherRelationship":2138,"citationCount":23,"citationInfo":23,"publishDate":2187,"publishYear":2188,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":2189,"openAccess":23,"references":23,"isForceReanalyzing":271},"3eadf9bd-4497-42aa-b53b-1870502422cb","2024-02-12T10:54:11.186+00:00","2025-02-26T21:53:27.108+00:00",[],"Using-Landsat-and-soil-clay-content-to-map-soil-organic-carbon-of-oxisols-and-Ultisols-near-S%C3%A3o-Paulo-Brazil",{"title":2035,"references":2037,"doi":2039},{"EN":2036},"Using Landsat and soil clay content to map soil organic carbon of oxisols and Ultisols near São Paulo, Brazil",{"VOID":2038},"Acosta-Martinez, 2004, Soil microbial, chemical and physical properties in continuous cotton and integrated crop-livestock systems, Soil Sci. Soc. Am. J., 68, 1875, 10.2136\u002Fsssaj2004.1875\nAddiscot, 1992, Entropy and sustainability, Eur J Soil Sci Dordrecht, 46, 161, 10.1111\u002Fj.1365-2389.1995.tb01823.x\nAlvares, 2014, Köppen's climate classification map for Brazil, Meteorol. Z., 22, 711, 10.1127\u002F0941-2948\u002F2013\u002F0507\nAndronikov, 1991, Theory and methods for the use of remote sensing in the study of soils, Mapp. Sci. Remote. Sens., 28, 92\nBhunia, 2016, Comparison of GIS-based interpolation methods for spatial distribution of soil organic carbon (SOC), J. Saudi Soc. Agric. Sci., 17, 114\nBreusch, 1979, A simple test for heteroscedasticity and random coefficient variation, Econometrica, 47, 1287, 10.2307\u002F1911963\nBrown, 2006, Global soil characterization with VNIR diffuse reflectance spectroscopy, Geoderma, 132, 273, 10.1016\u002Fj.geoderma.2005.04.025\nBuccini, 2010, Woody fractional cover in Kruger National Park, South Africa: remote-sensing-based maps and ecological insights, 219\nCamargo, 2009, Métodos de Análise Química, Mineralógica e Física de Solos do Instituto Agronômico de Campinas, 106, 77\nDemattê, 2004, Comparação entre mapas de solos obtidos por sensoriamento remoto espectral e pelo método convencional, Pesq Agropec Bras, 39, 1219, 10.1590\u002FS0100-204X2004001200009\nDemattê, 2011, Quantification of soil organic matter using mathematical models based on colorimetry in the Munsell color system, Bragantia, 70, 590, 10.1590\u002FS0006-87052011005000006\nDemattê, 2016, Is it possible to classify topsoil texture using a sensor located 800 km away from the surface?, Rev Bras Ciência do Solo, 40, 1\nDemattê, 2018, Geospatial soil sensing system (GEOS3): a powerful data mining procedure to retrieve soil spectral reflectance from satellite images, Remote Sens. Environ., 212, 161, 10.1016\u002Fj.rse.2018.04.047\nDraper, 1998\nDufrechou, 2015, Geometrical analysis of laboratory soil spectra in the short-wave infrared domain: clay composition and estimation of the swelling potential, Geoderma, 243-244, 92, 10.1016\u002Fj.geoderma.2014.12.014\nDurbin, 1950, Testing for serial correlation in least squares regression I, Biometrika, 37, 409\nFang, 2018, Visible and near-infrared reflectance spectroscopy for investigating soil mineralogy: a review, J Spectrosc, 2018, 1, 10.1155\u002F2018\u002F3168974\nGomez, 2008, Continuum removal versus PLSR method for clay and calcium carbonate content estimation from laboratory and airborne hyperspectral measurements, Geoderma, 148, 141, 10.1016\u002Fj.geoderma.2008.09.016\nGoudge, 2017, A 40,000 yr record of clay mineralogy at Lake Towuti, Indonesia: paleoclimate reconstruction from reflectance spectroscopy and perspectives on paleolakes on Mars, Geol. Soc. Am. Bull., 129, 806, 10.1130\u002FB31569.1\nGuerschman, 2009, Estimating fractional cover of photosynthetic vegetation, non-photosynthetic vegetation and bare soil in the Australian tropical savanna region upscaling the EO-1 Hyperion and MODIS sensors, Remote Sens. Environ., 2009, 928, 10.1016\u002Fj.rse.2009.01.006\nIlliger, 2019, Estimation of regional soil organic carbon stocks merging classified land-use information with detailed soil data, Sci. Total Environ., 695, 10.1016\u002Fj.scitotenv.2019.133755\nJiang, 2006, Analysis of NDVI and scaled difference vegetation index retrievals of vegetation fraction, Remote Sens. Environ., 101, 366, 10.1016\u002Fj.rse.2006.01.003\nKonen, 2003, Organic carbon, texture, and quantitative color measurement relationships for cultivated soils in north Central Iowa, Soil Sci. Soc. Am. J., 67, 1823, 10.2136\u002Fsssaj2003.1823\nLal, 2010, Food Sec., 2, 169, 10.1007\u002Fs12571-010-0060-9\nLewis-Beck, 2012, Variance Inflation Factors\nLiu, 1995, Feedback based modification of the NDVI to minimize canopy background and atmospheric noise, IEEE Trans. Geosci. Remote Sensing, 33, 457, 10.1109\u002FTGRS.1995.8746027\nLiu, 2006, Effects of agricultural management on soil organic matter and carbon transformation – a review, Plant Soil Environ., 52, 531, 10.17221\u002F3544-PSE\nMachado, 2005, Carbono do solo e a mitigação da mudança climática global, Quim. Nova, 10.1590\u002FS0100-40422005000200026\nMarques, 2016, Soil organic carbon, carbon stock and their relationships to physical attributes under forest soils in central Amazônia, Revista Árvore, 40, 197, 10.1590\u002F0100-67622016000200002\nMcQuaid, 1998, Soil quality indices of Piedmont sites under different management systems, 1998, 427\nMoore, 1991, Digital terrain modeling: a review of hydrological, geomorphological and biological applications, Hydrol. Process., 5, 3, 10.1002\u002Fhyp.3360050103\nMoritsuka, 2014, Soil color analysis for statistically estimating total carbon, total nitrogen and active iron contents in Japanese agricultural soils, Soil Sci. Plant Nutr., 60, 475, 10.1080\u002F00380768.2014.906295\nMoura-Bueno, 2019, Stratification of a local VIS-NIR-SWIR spectral library by homogeneity criteria yields more accurate soil organic carbon predictions, Geoderma, 337, 565, 10.1016\u002Fj.geoderma.2018.10.015\nNawar, 2016, Estimating the soil clay content and organic matter by means of different calibration methods of vis-NIR diffuse reflectance spectroscopy, Geoderma, 155, 510\nNocita, 2013, Prediction of soil organic carbon for different levels of soil moisture using Vis-NIR spectroscopy, Geoderma, 199, 37, 10.1016\u002Fj.geoderma.2012.07.020\nOades, 1988, The retention of organic matter in soils, Biogeochemistry, 5, 35, 10.1007\u002FBF02180317\nOgle, 2005, Biogeochemistry, 72, 87, 10.1007\u002Fs10533-004-0360-2\nPadilha, 2018, Modelo estatístico de predição para mapeamento de carbono orgânico do solo em áreas de cultivo agrícola utilizando o satélite Landsat, 44\nPadilha, 2019, Prediction statistical model for soil organic carbon mapping in crop areas using the landsat\u002Foli sensor\nPinheiro, 2017, Prediction of soil physical and chemical properties by visible and near-infrared diffuse reflectance spectroscopy in the Central Amazon, Remote Sens., 9, 293, 10.3390\u002Frs9040293\nRogge, 2018, Building na exposed soil composite processor (SCMaP) for mapping spatial and temporal characteristics of soils with Landsat imagery (1984–2014), Remote Sens. Environ., 205, 1, 10.1016\u002Fj.rse.2017.11.004\nRossel, 2006, Visible, near infrared, mid infrared or combined diffuse reflectance spectroscopy for simultaneous assessment of various soil properties, Geoderma, 131, 59, 10.1016\u002Fj.geoderma.2005.03.007\nSalazar, 2019, Emissivity of agricultural soil attributes in southeastern Brazil via terrestrial and satellite sensors, Geoderma, 114038\nSayão, 2017, Land surface temperature and reflectance spectra integration obtained from Landsat on the soil atributes quantification, 80\nSayão, 2018, Soil texture and organic carbon mapping using surface temperature and reflectance spectra in Southeast Brazil, Geoderma Reg., 2018, 1\nSchultz, 2016, Classificação orientada a objetos em imagens multitemporais Landsat aplicada na identificação de cana-de-açúcar e soja, Rev. Bras. Cartogr., 68, 131, 10.14393\u002Frbcv68n1-44476\nShapiro, 1965, Na analysis of variance test for normality (complete samples), Biometrika, 52, 591, 10.1093\u002Fbiomet\u002F52.3-4.591\nVasques, 2014, 2014. Soil classification using visible\u002Fnear-infrared diffuse reflectance spectra from multiple depths, Geoderma, 223–225, 73, 10.1016\u002Fj.geoderma.2014.01.019\nVicente, 2011, Identification of mineral components in tropical soils using reflectance spectroscopy and advanced spaceborne thermal emission and reflection radiometer (ASTER) data, Remote Sens. Environ., 115, 1824, 10.1016\u002Fj.rse.2011.02.023\nViscarra Rossel, 2010, Using data mining to model and interpret soil diffuse reflectance spectra, Geoderma, 158, 46, 10.1016\u002Fj.geoderma.2009.12.025\nViscarra Rossel, 2006, Determining the composition of mineral-organic mixes using UV-vis-NIR diffuse reflectance spectroscopy, Geoderma, 137, 70, 10.1016\u002Fj.geoderma.2006.07.004\nViscarra Rossel, 2009, In situ measurements of soil colour, mineral composition and clay content by vis–NIR spectroscopy, Geoderma, 150, 253, 10.1016\u002Fj.geoderma.2009.01.025\nWalkley, 1934, An examination of the Degtjarreff method for determining soil organic matter, and proposed modification of the chromic acid titration method, Soil Sci., 37, 29, 10.1097\u002F00010694-193401000-00003\nWills, 2007, Prediction of soil organic carbon content using field and laboratory measurements of soil color, Soil Sci. Soc. Am. J., 71, 380, 10.2136\u002Fsssaj2005.0384\nXu, 2016, Soil properties control decomposition of soil organic carbon: results from data-assimilation analysis, Geoderma, 262, 235, 10.1016\u002Fj.geoderma.2015.08.038\nZhao, 2018, Assessing the utility of visibleto- shortwave infrared reflectance spectroscopy for analysis of soil weathering intensity and paleoclimate reconstruction, Palaeogeogr. Palaeoclimatol. Palaeoecol., 512, 80, 10.1016\u002Fj.palaeo.2017.07.007\nZhong, 2018, Relationship between soil organic carbon stocks and clay content under different climatic conditions in Central China, Forests, 9, 1",{"VOID":2040},"10.1016\u002Fj.geodrs.2020.e00253","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS235200942030002X",[2043,2058,2073,2086,2099,2112,2125],{"id":2044,"sortIndex":84,"researcher":23,"roles":2045,"affiliations":2046,"properties":2055,"displayName":2057,"givenName":23,"familyName":23},"cee2a252-697d-4ca2-86f5-fd4f900020b1",[127],[2047],{"id":2048,"sortIndex":84,"affiliation":2049,"properties":23},"44645da5-6719-441d-bca5-a3ee619b989e",{"id":2048,"createTime":23,"updateTime":23,"relativeEntities":2050,"slug":23,"properties":2051,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2054,"statistic":23},[],{"title":2052},{"VI":2053},"University of São Paulo, “Luiz de Queiroz” College of Agriculture, Av. Pádua Dias, 11 - Cx. Postal 9, Piracicaba, SP CEP 13418-900, PABX, Brazil",[],{"title":2056},{"VI":2057},"Manuela Corrêa de Castro Padilha",{"id":2059,"sortIndex":144,"researcher":23,"roles":2060,"affiliations":2061,"properties":2070,"displayName":2072,"givenName":23,"familyName":23},"6bec72d7-b5b7-4b9d-b9f4-b40b15b78f51",[127],[2062],{"id":2063,"sortIndex":84,"affiliation":2064,"properties":23},"31072290-c5cd-4320-9e52-9add81ece15b",{"id":2063,"createTime":23,"updateTime":23,"relativeEntities":2065,"slug":23,"properties":2066,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2069,"statistic":23},[],{"title":2067},{"VI":2068},"Low Carbon Agriculture Platform\u002F Embrapa Environment, Cx. Postal 69, 13820 -000 Jaguariúna, SP, Brazil",[],{"title":2071},{"VI":2072},"Luiz Eduardo Vicente",{"id":2074,"sortIndex":160,"researcher":23,"roles":2075,"affiliations":2076,"properties":2083,"displayName":2085,"givenName":23,"familyName":23},"a045b68f-ec57-4f44-a2c7-6f53d627db60",[127],[2077],{"id":2048,"sortIndex":84,"affiliation":2078,"properties":23},{"id":2048,"createTime":23,"updateTime":23,"relativeEntities":2079,"slug":23,"properties":2080,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2082,"statistic":23},[],{"title":2081},{"VI":2053},[],{"title":2084},{"VI":2085},"José A.M. Demattê",{"id":2087,"sortIndex":174,"researcher":23,"roles":2088,"affiliations":2089,"properties":2096,"displayName":2098,"givenName":23,"familyName":23},"e8d69424-9522-49ee-947b-6348333bf3f7",[127],[2090],{"id":2063,"sortIndex":84,"affiliation":2091,"properties":23},{"id":2063,"createTime":23,"updateTime":23,"relativeEntities":2092,"slug":23,"properties":2093,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2095,"statistic":23},[],{"title":2094},{"VI":2068},[],{"title":2097},{"VI":2098},"Daniel Gomes dos Santos Wendriner Loebmann",{"id":2100,"sortIndex":24,"researcher":23,"roles":2101,"affiliations":2102,"properties":2109,"displayName":2111,"givenName":23,"familyName":23},"3fb2806f-a404-459d-b775-e221bdd41c73",[127],[2103],{"id":2063,"sortIndex":84,"affiliation":2104,"properties":23},{"id":2063,"createTime":23,"updateTime":23,"relativeEntities":2105,"slug":23,"properties":2106,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2108,"statistic":23},[],{"title":2107},{"VI":2068},[],{"title":2110},{"VI":2111},"Andrea Koga Vicente",{"id":2113,"sortIndex":205,"researcher":23,"roles":2114,"affiliations":2115,"properties":2122,"displayName":2124,"givenName":23,"familyName":23},"4e7ceaae-df03-4e5b-bf4f-1f8b1a1d3c17",[127],[2116],{"id":2048,"sortIndex":84,"affiliation":2117,"properties":23},{"id":2048,"createTime":23,"updateTime":23,"relativeEntities":2118,"slug":23,"properties":2119,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2121,"statistic":23},[],{"title":2120},{"VI":2053},[],{"title":2123},{"VI":2124},"Diego F.U. Salazar",{"id":2126,"sortIndex":520,"researcher":23,"roles":2127,"affiliations":2128,"properties":2135,"displayName":2137,"givenName":23,"familyName":23},"6666dcbc-f09a-498c-921b-87d52f6f446a",[127],[2129],{"id":2048,"sortIndex":84,"affiliation":2130,"properties":23},{"id":2048,"createTime":23,"updateTime":23,"relativeEntities":2131,"slug":23,"properties":2132,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2134,"statistic":23},[],{"title":2133},{"VI":2053},[],{"title":2136},{"VI":2137},"Clécia Cristina Barbosa Guimarães",{"url":2041,"publisher":2139,"properties":2182},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2140,"slug":10,"properties":2141,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":2146,"manageAffiliations":2151,"indexDatabases":2162,"url":82,"thumbnailPath":23,"statistic":2177,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":2142,"eissn":2143,"issn":2144,"title":2145},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[2147],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":2148,"label":2149,"description":2150,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[2152,2157],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":2153,"slug":23,"properties":2154,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2156,"statistic":23},[],{"title":2155},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":2158,"slug":23,"properties":2159,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2161,"statistic":23},[],{"title":2160},{"EN":45},[],[2163,2170],{"id":49,"indexDatabase":2164,"url":60,"indexYears":61,"academicFieldIds":2169,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":2165,"label":2166,"description":2167,"key":57,"publicationTags":2168,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":2171,"url":79,"indexYears":23,"academicFieldIds":2176,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":2172,"label":2173,"description":2174,"key":75,"publicationTags":2175,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":2178,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":2179,"totalCitation":84,"totalCitationByYear":2180,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":2181,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":2183,"volume":2185},{"VOID":2184},"e00253",{"VOID":2186},"21","2020-06-01",2020,[64,77],{"id":2191,"createTime":2192,"updateTime":2193,"relativeEntities":2194,"slug":2195,"properties":2196,"entityType":118,"verifyStatus":119,"verifyTime":2193,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":2203,"fullTextUrl":23,"authors":2204,"publicationType":217,"publisherRelationship":2250,"citationCount":23,"citationInfo":23,"publishDate":2299,"publishYear":1595,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":2300,"openAccess":23,"references":23,"isForceReanalyzing":271},"0f39eedf-2963-4b57-b4c5-5c93de5520c5","2024-02-09T13:52:16.961+00:00","2025-02-26T01:09:34.984+00:00",[],"Chemical-properties-and-magnetic-susceptibility-as-proxy-indicators-of-past-settlement-activities-on-contemporary-arable-soil-in-the-Czech-Republic",{"title":2197,"references":2199,"doi":2201},{"EN":2198},"Chemical properties and magnetic susceptibility as proxy indicators of past settlement activities on contemporary arable soil in the Czech Republic",{"VOID":2200},"Asare, 2020, Traces of German and British settlement in soils of the Volta Region of Ghana, Geoderma Reg, 21, e00270, 10.1016\u002Fj.geodrs.2020.e00270\nAsare, 2020, A medieval hillfort as an island of extraordinary fertile Archaeological Dark Earth soil in the Czech Republic, Euro. J. Soil Sci., 1\nBarrón, 2013, Iron, manganese and aluminium oxides, and oxyhydroxides, EMU Notes Mineralogy, 14, 297\nBethell, 1989, The use of soil phosphate analysis in archaeology: A critique, 1\nCanti, 2015, Scientific advances in geoarchaeology during the last twenty years, J. Archaeo. Sci., 56, 96, 10.1016\u002Fj.jas.2015.02.024\nChiroma, 2014, Comparative assessment of heavy metal levels in soil, vegetables, and urban grey wastewater used for irrigation in Yola and Kano, Int. Refereed J. Eng. Sci., 3, 1\nCourty, 1990, Soils and micromorphology in archaeology, Endeavor, 14, 163, 10.1016\u002F0160-9327(90)90039-T\nCzech Geological Survey\nCzech Hydrometeorological Institute\nEtiégni, 1991, Physical and chemical characteristics of wood ash, Bioresour Technol, 37, 173, 10.1016\u002F0960-8524(91)90207-Z\nFabijańczyk, 2016, A methodology of integration of magnetometric and geochemical soil contamination measurements, Geoderma, 277, 51, 10.1016\u002Fj.geoderma.2016.05.009\nFenger-Nielsen, 2019, Footprints from the past: the influence of past human activities on vegetation and soil across five archaeological sites in Greenland, Sci. Total Environ., 654, 895, 10.1016\u002Fj.scitotenv.2018.11.018\nGórecka, 2006, The application of ICP-MS and ICP-OES in determination of micronutrients in wood ashes used as soil conditioners, Talanta, 70, 950, 10.1016\u002Fj.talanta.2006.05.061\nHájek, 2017, Long-lasting imprint of former glassworks on vegetation pattern in an extremely species-rich grassland: a battle of species pools on Mesic soils, Ecosystems., 20, 1233, 10.1007\u002Fs10021-017-0107-2\nHanesch, 2005, The influence of soil type on the magnetic susceptibility measured throughout the profile, Geophys. J. Intern., 161, 50, 10.1111\u002Fj.1365-246X.2005.02577.x\nHejcman, 2011, Ancient waste pits with wood ash irreversibly increase crop production in Central Europe, Plant and Soil, 339, 341, 10.1007\u002Fs11104-010-0585-x\nHejcman, 2013, Prehistoric settlement activities changed soil pH, nutrient availability, and growth of contemporary crops in Central Europe, Plant and Soil, 369, 131, 10.1007\u002Fs11104-012-1559-y\nHejcman, 2013, Short-term medieval settlement activities irreversibly changed forest soils and vegetation in Central Europe, Ecosystems., 16, 652, 10.1007\u002Fs10021-013-9638-3\nHjulstrom, 2009, Identification of activity area signatures in a reconstructed iron age house by combing element and lipid analysis of sediments, J Archaeol Sci, 36, 174, 10.1016\u002Fj.jas.2008.08.005\nHolliday, 2004, 53\nHolliday, 2007, Methods of soil P analysis in archaeology, J Archaeol Sci, 34, 301, 10.1016\u002Fj.jas.2006.05.004\nHoward, 2017, 149\nHuang, 1992, Wood ash as a soil additive and liming agent for wheat: Field studies, Commun. Soil Sci.Plan., 23, 25, 10.1080\u002F00103629209368567\nJordanova, 2019, Temporal changes in magnetic signal of burnt soils – A compelling three years pilot study, Sci. Total Environ., 669, 729, 10.1016\u002Fj.scitotenv.2019.03.173\nKabata-Pendias, 2001\nKaila, 1968, Calcium, magnesium, and potassium in clay, silt, and fine sand fractions of some Finnish soils. Agricultural and, Food Science, 40, 1\nKalnicky, 2001, Field portable XRF analysis of environmental samples, J Hazard Mater, 83, 93, 10.1016\u002FS0304-3894(00)00330-7\nKlute, 1986\nKozák, 2010, 150\nLecoanet, 2003, Combination of magnetic parameters: an efficient way to discriminate soil-contamination sources (south France), Environ. Pollution, 122, 229, 10.1016\u002FS0269-7491(02)00299-3\nLehmann, 2003\nLindsay, 2008, The chemistry of iron in soils and its availability to plants, J. Plan. Nutri., 5, 821, 10.1080\u002F01904168209363012\nLyskowski, 2018, Historical anthropogenic layers identification by geophysical and geochemical methods in the old town area of Krakow (Poland), Catena, 163, 196, 10.1016\u002Fj.catena.2017.12.012\nMcCauley, 2017\nMehlich, 1984, Mehlich No. 3 soil test extractant: a modification of Mehlich No. 2 extractant, Commun. Soil Sci. Plan., 15, 1409, 10.1080\u002F00103628409367568\nMoskowitz, 2015, Geophysical properties of the near-surface earth: Magnetic properties, Treatise on Geophysics, 11, 139, 10.1016\u002FB978-0-444-53802-4.00191-3\nNěmeček, 2005, Status of soil surveys, inventory, and soil monitoring in the Czech Republic, 103\nNicosia, 2012, Medieval Dark Earth in an active alluvial setting from the Uffizi gallery complex in Florence, Geoarchaeol, 27, 105, 10.1002\u002Fgea.21403\nNovák, 2008, A comparison of lead pollution record in sphagnum peat with known historical Pb emission rates in the British Isles and the Czech Republic, Atmos Environ, 42, 8997, 10.1016\u002Fj.atmosenv.2008.09.031\nNováková\nOroian, 2015, Analyzing the properties as fertilizer of ash from oak wood combustion, Environ Eng Manag J, 14, 2617, 10.30638\u002Feemj.2015.278\nPalacký\nParkin, 2017, The past ubiquity and environment of the lost earth building of Scotland, Human Ecol. Interdisci. J., 45, 569, 10.1007\u002Fs10745-017-9931-4\nPetrovský, 1999, Magnetic monitoring of air- land- and water pollution, 279\nSchwertmann, 1988, Occurrence and formation of iron oxides in various Pedoenvironments, 276\nSimniškytė-Strimaitienė, 2017, Tracing archaeology through geochemistry: An example of a disturbed prehistoric hilltop settlement site in South-Eastern Lithuania, Interdisci Archaeol Nat. Sci. Archaeol., 8, 17\nŠmejda, 2017, Ancient settlement activities as important sources of nutrients (P, K, S, Zn, and cu) in eastern Mediterranean ecosystems – the case of biblical Tel Burna, Israel, Catena, 156, 62, 10.1016\u002Fj.catena.2017.03.024\nŠmejda, 2018, Multi-element mapping of anthropogenically modified soils and sediments at the bronze to iron ages site of Tel Burna in the southern Levant, Quat Int, 483, 111, 10.1016\u002Fj.quaint.2017.11.005\nSolomon, 2016, Indigenous African soil enrichment as a climate-smart sustainable agriculture alternative, Front Ecol Environ, 14, 71, 10.1002\u002Ffee.1226\nStránka města Bělá nad Radbuzou\nTerry, 2004, The story in the floors: chemical signatures of ancient and modern Maya activities at Aguateca, Guatemala, J Archaeol Sci, 32, 1237, 10.1016\u002Fj.jas.2004.03.017\nVassilev, 2013, An overview of the composition and application of biomass ash. Part 1. Phase–mineral and chemical composition and classification, Fuel, 105, 40, 10.1016\u002Fj.fuel.2012.09.041\nVranová, 2015, Soil scientific research methods used in Archaeology – Promising soil biochemistry: A Mini-review, Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, 63, 1417, 10.11118\u002Factaun201563041417\nWilson, 2009, An evaluation of the site-specificity of soil elemental signatures for identifying and interpreting former functional areas, J. Archaeo. Sci., 36, 2327, 10.1016\u002Fj.jas.2009.06.022\nWorld Reference Base (WRB), 2006, 128\nWorld Reference Base (WRB)",{"VOID":2202},"10.1016\u002Fj.geodrs.2021.e00357","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS235200942100002X",[2205,2220,2235],{"id":2206,"sortIndex":84,"researcher":23,"roles":2207,"affiliations":2208,"properties":2217,"displayName":2219,"givenName":23,"familyName":23},"a56a2128-a32c-4af3-bb4b-063cb4d7193e",[127],[2209],{"id":2210,"sortIndex":84,"affiliation":2211,"properties":23},"3975e067-b4a3-4bee-b8cc-6b05be910a4d",{"id":2210,"createTime":23,"updateTime":23,"relativeEntities":2212,"slug":23,"properties":2213,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2216,"statistic":23},[],{"title":2214},{"VI":2215},"Department of Ecology, Faculty of Environmental Sciences, Czech University of Life Sciences, Prague, Kamýcká 129, Prague 6, Suchdol CZ165 00, Czech Republic",[],{"title":2218},{"VI":2219},"Michael O. Asare",{"id":2221,"sortIndex":144,"researcher":23,"roles":2222,"affiliations":2223,"properties":2232,"displayName":2234,"givenName":23,"familyName":23},"78384e4b-f4ff-4f4e-8a85-a69418e7ec10",[127],[2224],{"id":2225,"sortIndex":84,"affiliation":2226,"properties":23},"a5ac68aa-3762-4777-b0e2-a351cd7b1239",{"id":2225,"createTime":23,"updateTime":23,"relativeEntities":2227,"slug":23,"properties":2228,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2231,"statistic":23},[],{"title":2229},{"VI":2230},"Faculty of Agrobiology, Food, and Natural Resources, Department of Agroecology and Plant Production, Czech University of Life Sciences, Prague, Kamýcká 129, Prague 6, Suchdol CZ165 00, Czech Republic",[],{"title":2233},{"VI":2234},"Szabó Ondřej",{"id":2236,"sortIndex":160,"researcher":23,"roles":2237,"affiliations":2238,"properties":2247,"displayName":2249,"givenName":23,"familyName":23},"e31b9a97-5c83-45d4-a3f2-842046e6c423",[127],[2239],{"id":2240,"sortIndex":84,"affiliation":2241,"properties":23},"5aaf281a-6429-422c-bca4-1b9ed5735633",{"id":2240,"createTime":23,"updateTime":23,"relativeEntities":2242,"slug":23,"properties":2243,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2246,"statistic":23},[],{"title":2244},{"VI":2245},"Department of Animal Science and Food Processing in the Tropics, Faculty of Tropical AgriSciences, Czech University of Life Sciences, Prague, Kamycka 129, Prague 6, Suchdol CZ165 00, Czech Republic",[],{"title":2248},{"VI":2249},"Jerry Owusu Afriyie",{"url":2203,"publisher":2251,"properties":2294},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2252,"slug":10,"properties":2253,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":2258,"manageAffiliations":2263,"indexDatabases":2274,"url":82,"thumbnailPath":23,"statistic":2289,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":2254,"eissn":2255,"issn":2256,"title":2257},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[2259],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":2260,"label":2261,"description":2262,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[2264,2269],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":2265,"slug":23,"properties":2266,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2268,"statistic":23},[],{"title":2267},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":2270,"slug":23,"properties":2271,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2273,"statistic":23},[],{"title":2272},{"EN":45},[],[2275,2282],{"id":49,"indexDatabase":2276,"url":60,"indexYears":61,"academicFieldIds":2281,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":2277,"label":2278,"description":2279,"key":57,"publicationTags":2280,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":2283,"url":79,"indexYears":23,"academicFieldIds":2288,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":2284,"label":2285,"description":2286,"key":75,"publicationTags":2287,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":2290,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":2291,"totalCitation":84,"totalCitationByYear":2292,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":2293,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":2295,"volume":2297},{"VOID":2296},"e00357",{"VOID":2298},"24","2021-03-01",[64,77],{"id":2302,"createTime":2303,"updateTime":2304,"relativeEntities":2305,"slug":2306,"properties":2307,"entityType":118,"verifyStatus":119,"verifyTime":2304,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":2314,"fullTextUrl":23,"authors":2315,"publicationType":217,"publisherRelationship":2389,"citationCount":23,"citationInfo":23,"publishDate":414,"publishYear":415,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":2437,"openAccess":23,"references":23,"isForceReanalyzing":271},"2836dcda-cb3c-4f36-b408-a7923ff1b8d7","2024-01-15T05:04:49.303+00:00","2025-02-24T23:26:45.629+00:00",[],"Assessment-of-soil-erosion-using-RUSLE-GIS-and-remote-sensing-in-NW-Ethiopia",{"title":2308,"references":2310,"doi":2312},{"EN":2309},"Assessment of soil erosion using RUSLE, GIS and remote sensing in NW Ethiopia",{"VOID":2311},"Abebe, 2014, Adoption of soil conservation practices in North Achefer District, Northwest Ethiopia, Chinese J. Popul. Resour. Environ., 12, 261, 10.1080\u002F10042857.2014.934953\nAbu-Hammad, 2009, Watershed erosion risk assessment and management utilizing revised universal soil loss equation-geographic information systems in the Mediterranean environments, Water Environ. J., 25, 149, 10.1111\u002Fj.1747-6593.2009.00202.x\nAmsalu, 2014, GIS based soil loss estimation using RUSLE model: the case of Jabi Tenan Woreda, ANRS, Ethiopia. Nat. Resour., 5\nBai, 2008, Proxy global assessment of land degradation, Soil Use Manag., 24, 223, 10.1111\u002Fj.1475-2743.2008.00169.x\nBalthazar, 2013, Human impact on sediment fluxes within the Blue Nile and Atbara River basins, Geomorphology, 180, 231, 10.1016\u002Fj.geomorph.2012.10.013\nBewket, 2003, Assessment of soil erosion in cultivated fields using a survey methodology for rills in the Chemoga watershed, Ethiopia, Agric Ecosyst Environ, 97, 81, 10.1016\u002FS0167-8809(03)00127-0\nBiondi, 2012, Validation of hydrological models: conceptual basis, methodological approaches and a proposal for a code of practice, Phys. Chem. Earth Parts A\u002FB\u002FC, 42, 70, 10.1016\u002Fj.pce.2011.07.037\nBono, 1984, Erodibility in the Suke-Harerge and Andit Tid Research Units (Ethiopia)\nChen, 2011, Regional soil erosion risk mapping using RUSLE, GIS, and remote sensing: a case study in Miyun watershed, North China, Environ. Earth Sci., 63, 533, 10.1007\u002Fs12665-010-0715-z\nDabral, 2008, Soil erosion assessment in a hilly catchment of North Eastern India using USLE, GIS and remote sensing, Water Resour. Manag., 22, 1783, 10.1007\u002Fs11269-008-9253-9\nDe Vente, 2005, Predicting soil erosion and sediment yield at the basin scale: scale issues and semi-quantitative models, Earth Sci. Rev., 71, 95, 10.1016\u002Fj.earscirev.2005.02.002\nDesmet, 1996, A GIS procedure for automatically calculating the USLE LS factor on topographically complex landscape units, J Soil Water Conserv, 51, 427\nEfe, 2008, Erosion analysis of Sahin Creek Watershed (NW of Turkey) using GIS based on RUSLE (3D) Method, J. Appl. Sci., 8, 49, 10.3923\u002Fjas.2008.49.58\nEstifanos, 2014\nFAO, 1988, FAO\u002FUNESCO soil map of the World: revised legend\nFarhan, 2013, Spatial estimation of soil erosion risk using RUSLE approach, RS, and GIS techniques: a case study of Kufranja watershed, northern Jordan, J. Water Resour. Prot., 5, 1247, 10.4236\u002Fjwarp.2013.512134\nFernández, 2016, Evaluation of RUSLE and PESERA models for predicting soil erosion losses in the first year after wildfire in NW Spain, Geoderma, 273, 64, 10.1016\u002Fj.geoderma.2016.03.016\nFernandez, 2003, Estimating water erosion and sediment yield with GIS, RUSLE, and SEDD, J Soil Water Conserv, 58, 128\nGarzanti, 2006, Petrology of Nile River sands (Ethiopia and Sudan): sediment budgets and erosion patterns, Earth Planet Sci Lett, 252, 327, 10.1016\u002Fj.epsl.2006.10.001\nGebrehiwot, 2014, Forest cover change over four decades in the Blue Nile Basin, Ethiopia: comparison of three watersheds, Reg. Environ. Chang., 14, 253, 10.1007\u002Fs10113-013-0483-x\nGelagay, 2016, Soil loss estimation using GIS and Remote sensing techniques: a case of Koga watershed, Northwestern Ethiopia, Int. Soil Water Conserv. Res., 4, 126, 10.1016\u002Fj.iswcr.2016.01.002\nGete, 2000\nHaregeweyn, 2008, Sediment-bound nutrient export from micro-dam catchments in Northern Ethiopia, L. Degrad. Dev., 19, 136, 10.1002\u002Fldr.830\nHaregeweyn, 2015, Sediment yield variability at various catchment scales and its impact on reservoirs in the Ethiopian highlands, 227\nHaregeweyn, 2015, Soil erosion and conservation in Ethiopia: a review, Prog. Phys. Geogr., 39, 750, 10.1177\u002F0309133315598725\nHaregeweyn, 2016, Analyzing the hydrologic effects of region-wide land and water development interventions: a case study of the Upper Blue Nile basin, Reg. Environ. Chang., 16, 951, 10.1007\u002Fs10113-015-0813-2\nHaregeweyn, 2017, Comprehensive assessment of soil erosion risk for better land use planning in river basins: case study of the Upper Blue Nile River, Sci Total Environ, 574, 95, 10.1016\u002Fj.scitotenv.2016.09.019\nHurni, 1985\nHurni, 2015, Economics of land degradation (ELD) ethiopia case study\nJain, 2001, Estimation of soil erosion for a Himalayan watershed using GIS technique, Water Resour. Manag., 15, 41, 10.1023\u002FA:1012246029263\nKefeni, 1995, Soil erosion and conservation in Ethiopia\nMitas, 1996, Modelling topographic potential for erosion and deposition using GIS, Int. J. GIS, 10, 629\nMoore, 1986, Modeling erosion and deposition: topographic effects, Trans. Asae, 26, 1624, 10.13031\u002F2013.30363\nMoore, 1986, Physical basis of the length-slope factor in the universal soil loss equation, Soil Sci. Soc. Am. J., 50, 1294, 10.2136\u002Fsssaj1986.03615995005000050042x\nMoore, 1992, Length–slope factors for the revised universal soil loss equation: simplified method of estimation, J. Soil Water Conserv., 47, 423\nNearing, 1985, Single waterdrop splash detachment and mechanical properties of soils, Soil Sci. Soc. Am. J., 49, 547, 10.2136\u002Fsssaj1985.03615995004900030003x\nNyssen, 2004, Human impact on the environment in the Ethiopian and Eritrean highlands—a state of the art, Earth Sci. Rev., 64, 273, 10.1016\u002FS0012-8252(03)00078-3\nNyssen, 2006, Assessment of gully erosion rates through interviews and measurements: a case study from Northern Ethiopia, Earth Surf. Process. Landforms, 31, 167, 10.1002\u002Fesp.1317\nOstovari, 2017, Soil loss prediction by an integrated system using RUSLE, GIS and remote sensing in semi-arid region, Geoderma Reg., 11, 28, 10.1016\u002Fj.geodrs.2017.06.003\nPrasannakumar, 2011, Spatial prediction of soil erosion risk by remote sensing, GIS and RUSLE approach: a case study of Siruvani river watershed in Attapady valley, Kerala, India, Environ. Earth Sci., 64, 965, 10.1007\u002Fs12665-011-0913-3\nRenard, 1997\nRobert, P.S., Hilborn, D., 2000. Fact sheet: universal soil loss equation (USLE), Queen’s printer for Ontario.\nSingh, 1992\nSonneveld, 2011, Evaluating quantitative and qualitative models: an application for nationwide water erosion assessment in Ethiopia, Environ Model Software, 26, 1161, 10.1016\u002Fj.envsoft.2011.05.002\nVolk, 2010, A pragmatic approach for soil erosion risk assessment within policy hierarchies, Land Use Policy, 27, 997, 10.1016\u002Fj.landusepol.2009.12.011\nWieschmeier, 1978, Predicting rainfall erosion losses – a guide to conservation planning\nYihenew, 2013, Costs of nutrient losses in priceless soils eroded from the highlands of Northwestern Ethiopia, J Agric Sci, 5, 1916",{"VOID":2313},"10.1016\u002Fj.geodrs.2018.01.002","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009417302006",[2316,2331,2346,2359,2374],{"id":2317,"sortIndex":84,"researcher":23,"roles":2318,"affiliations":2319,"properties":2328,"displayName":2330,"givenName":23,"familyName":23},"eec369c3-ab6f-43de-a73b-cc3ed1b9ce9b",[127],[2320],{"id":2321,"sortIndex":84,"affiliation":2322,"properties":23},"acd3f16f-4aec-4be3-bbbd-3a56b295c069",{"id":2321,"createTime":23,"updateTime":23,"relativeEntities":2323,"slug":23,"properties":2324,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2327,"statistic":23},[],{"title":2325},{"VI":2326},"Department of Civil Engineering, Institute of Technology, Debre Markos University, P.O. Box 269, Debre Markos, Ethiopia",[],{"title":2329},{"VI":2330},"Mengesha Zerihun",{"id":2332,"sortIndex":144,"researcher":23,"roles":2333,"affiliations":2334,"properties":2343,"displayName":2345,"givenName":23,"familyName":23},"bedf61aa-dffb-4a3f-9e9b-c254d6f9dae9",[127],[2335],{"id":2336,"sortIndex":84,"affiliation":2337,"properties":23},"b70ef982-ded8-46f7-8386-99b9bcfd5660",{"id":2336,"createTime":23,"updateTime":23,"relativeEntities":2338,"slug":23,"properties":2339,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2342,"statistic":23},[],{"title":2340},{"VI":2341},"Department of Geology, School of Earth Sciences, Bahir Dar University, P.O.Box: 79, Bahir Dar, Ethiopia",[],{"title":2344},{"VI":2345},"Mohammed S. Mohammedyasin",{"id":2347,"sortIndex":160,"researcher":23,"roles":2348,"affiliations":2349,"properties":2356,"displayName":2358,"givenName":23,"familyName":23},"835bd866-5b38-4215-b7ee-ac42d0652e1d",[127],[2350],{"id":2321,"sortIndex":84,"affiliation":2351,"properties":23},{"id":2321,"createTime":23,"updateTime":23,"relativeEntities":2352,"slug":23,"properties":2353,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2355,"statistic":23},[],{"title":2354},{"VI":2326},[],{"title":2357},{"VI":2358},"Demeke Sewnet",{"id":2360,"sortIndex":174,"researcher":23,"roles":2361,"affiliations":2362,"properties":2371,"displayName":2373,"givenName":23,"familyName":23},"68fe447d-dc88-47ab-bd9d-9ef141f63db6",[127],[2363],{"id":2364,"sortIndex":84,"affiliation":2365,"properties":23},"4da61b88-83e6-49ae-adab-200da0b9fe80",{"id":2364,"createTime":23,"updateTime":23,"relativeEntities":2366,"slug":23,"properties":2367,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2370,"statistic":23},[],{"title":2368},{"VI":2369},"Department of Natural Resources Management, College of Agriculture, Bahir Dar University, P.O. Box 79, Bahir Dar, Ethiopia",[],{"title":2372},{"VI":2373},"Anwar A. Adem",{"id":2375,"sortIndex":24,"researcher":23,"roles":2376,"affiliations":2377,"properties":2386,"displayName":2388,"givenName":23,"familyName":23},"2450a02a-f4c8-4227-9428-a3e3a8a29378",[127],[2378],{"id":2379,"sortIndex":84,"affiliation":2380,"properties":23},"1d7253a6-129c-473d-9758-b7560092345d",{"id":2379,"createTime":23,"updateTime":23,"relativeEntities":2381,"slug":23,"properties":2382,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2385,"statistic":23},[],{"title":2383},{"VI":2384},"Department of Hydraulics and Water Resources Engineering, Institute of Technology, Debre Markos University, P.O. Box 269, Debre Markos, Ethiopia",[],{"title":2387},{"VI":2388},"Mindesilew Lakew",{"url":2314,"publisher":2390,"properties":2433},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2391,"slug":10,"properties":2392,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":2397,"manageAffiliations":2402,"indexDatabases":2413,"url":82,"thumbnailPath":23,"statistic":2428,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":2393,"eissn":2394,"issn":2395,"title":2396},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[2398],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":2399,"label":2400,"description":2401,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[2403,2408],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":2404,"slug":23,"properties":2405,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2407,"statistic":23},[],{"title":2406},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":2409,"slug":23,"properties":2410,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2412,"statistic":23},[],{"title":2411},{"EN":45},[],[2414,2421],{"id":49,"indexDatabase":2415,"url":60,"indexYears":61,"academicFieldIds":2420,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":2416,"label":2417,"description":2418,"key":57,"publicationTags":2419,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":2422,"url":79,"indexYears":23,"academicFieldIds":2427,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":2423,"label":2424,"description":2425,"key":75,"publicationTags":2426,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":2429,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":2430,"totalCitation":84,"totalCitationByYear":2431,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":2432,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":2434,"volume":2436},{"VOID":2435},"83-90",{"VOID":413},[64,77],{"id":2439,"createTime":2440,"updateTime":2441,"relativeEntities":2442,"slug":2443,"properties":2444,"entityType":118,"verifyStatus":119,"verifyTime":2441,"verifyNote":121,"languages":23,"translateLanguages":23,"viewCount":84,"primaryUrl":2451,"fullTextUrl":23,"authors":2452,"publicationType":217,"publisherRelationship":2535,"citationCount":23,"citationInfo":23,"publishDate":2187,"publishYear":2188,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":2583,"openAccess":23,"references":23,"isForceReanalyzing":271},"9611c348-e277-4b9a-b41d-8e041bc78921","2024-01-26T07:28:39.575+00:00","2025-02-24T22:50:32.641+00:00",[],"Precompression-stress-in-response-to-water-content-and-bulk-density-under-no-till-Oxisols-in-southern-Brazil",{"title":2445,"references":2447,"doi":2449},{"EN":2446},"Precompression stress in response to water content and bulk density under no-till Oxisols in southern Brazil",{"VOID":2448},"Associação Brasileira de Normas Técnicas – ABNT, 1990\nDias Junior, 1994, 114\nAjayi, 2009, Assessment of vulnerability of oxisols to compaction in the Cerrado Region of Brazil, Pedosphere, 20, 2010\nAlexandrou, 1998, The relationship among the pre-compaction stress, volumetric water content and initial dry bulk density of soil, J. Agric. Eng. Res., 71, 75, 10.1006\u002Fjaer.1998.0300\nAn, 2015, Quantifying the effect of soil physical properties on the compressive characteristics of two arable soils using uniaxial compression tests, Soil Tillage Res., 145, 216, 10.1016\u002Fj.still.2014.09.002\nBraida, 2008, Elasticidade do solo em função da umidade e do teor de carbono orgânico, Rev. Bras. Ciênc Solo, 32, 477, 10.1590\u002FS0100-06832008000200002\nBraunack, 2014, Changes in soil cone resistance due to cotton picker traffic during harvest on Australian cotton soils, Soil Tillage Res., 140, 29, 10.1016\u002Fj.still.2014.02.007\nCalonego, 2017, Soil compaction management and soybean yields with cover crops under no-till and occasional chiseling, Eur. J. Agron., 85, 31, 10.1016\u002Fj.eja.2017.02.001\nCanarache, 2000, Compressibility of soils in a long term field experiment with intensive deep ripping in Romania, Soil Tillage Res., 56, 185, 10.1016\u002FS0167-1987(00)00143-4\nCid, 2014, No-tillage permanent bed planting and controlled traffic in a maize-cotton irrigated system under Mediterranean conditions: effects on soil compaction, crop performance and carbon sequestration, Eur. J. Agron., 61, 24, 10.1016\u002Fj.eja.2014.08.002\nR Core Team, 2018. R: A Language and Environment for Statistical Computing [Internet]. Vienna, Austria: R Foundation for Statistical Computing; 2018 [accessed on: 17 Feb. 2018]. Available at: http:\u002F\u002Fwww.R-project.org\u002F.\nEMBRAPA, 2000\nFigueiredo, 2011, Desenvolvimento de um consolidômetro pneumático: modelagem da compactação, penetrometria e resistência tênsil de agregados de solo, Rev. Bras. Ciênc Solo, 35, 389, 10.1590\u002FS0100-06832011000200009\nGötze, 2016, Environmental impacts of different crop rotations in terms of soil compaction, J. Environ. Manag., 181, 54, 10.1016\u002Fj.jenvman.2016.05.048\nGuedes Filho, 2014, Least-limiting water range of the soil seedbed submitted to mechanical and biological chiselling under no-till, Soil Res., 52, 521, 10.1071\u002FSR13155\nIAPAR - Instituto Agronômico do Paraná, 2000\nImhoff, 2004, Susceptibility to compaction, load support capacity, and soil compressibility of Hapludox, Soil Sci. Soc. Am. J., 68, 17, 10.2136\u002Fsssaj2004.1700\nImhoff, 2016, Physical quality indicators and mechanical behavior of agricultural soils of Argentina, PLoS One, 11, 1, 10.1371\u002Fjournal.pone.0153827\nKeller, 2007, SoilFlex: a model for prediction of soil stresses and soil compaction due to agricultural field traffic including a synthesis of analytical approaches, Soil Tillage Res., 93, 391, 10.1016\u002Fj.still.2006.05.012\nLebert, 1991, A method to predict the mechanical strength of agricultural soils, Soil Tillage Res., 19, 275, 10.1016\u002F0167-1987(91)90095-F\nLima, 2015, Simple models for predicting agricultural trafficability on cohesive soils cultivated with sugarcane in Brazil, Sugar Tech, 18, 347, 10.1007\u002Fs12355-015-0413-y\nLozano, 2013, Evaluation of soil compaction by modeling field vehicle traffic with SoilFlex during sugarcane harvest, Soil Tillage Res., 129, 61, 10.1016\u002Fj.still.2013.01.010\nMazzoncini, 2016, Soil carbon and nitrogen changes after 28 years of no-tillage management under Mediterranean conditions, Eur. J. Agron., 77, 156, 10.1016\u002Fj.eja.2016.02.011\nMohammadshirazi, 2017, A multi-year study of tillage and amendment effects on compacted soils, J. Environ. Manag., 203, 533, 10.1016\u002Fj.jenvman.2017.07.031\nMosaddeghi, 2003, Pre-compression stress and its relation with the physical and mechanical properties of a structurally unstable soil in Central Iran, Soil Tillage Res., 70, 53, 10.1016\u002FS0167-1987(02)00120-4\nNunes, 2015, Mitigation of clayey soil compaction managed under no-tillage, Soil Tillage Res., 148, 119, 10.1016\u002Fj.still.2014.12.007\nPereira, 2007, Soil susceptibility to compaction by wheeling as a function of some properties of a silty soil as affected by the tillage system, Eur. J. Soil Sci., 58, 34, 10.1111\u002Fj.1365-2389.2006.00798.x\nReichert, 2009, Reference bulk density and critical degree-of-compactness for no-till crop production in subtropical highly weathered soils, Soil Tillage Res., 102, 242, 10.1016\u002Fj.still.2008.07.002\nSaffih-Hdadi, 2009, Method for predicting soil susceptibility to the compaction of surface layers as a function of water content and bulk density, Soil Tillage Res., 105, 96, 10.1016\u002Fj.still.2009.05.012\nSeveriano, 2013, Preconsolidation pressure, soil water retention characteristics, and texture of Latosols in the Brazilian Cerrado, Soil Res., 51, 193, 10.1071\u002FSR12366\nSilva, 2015, soilphysics: Na R package to determine soil preconsolidation pressure, Comput. Geosci., 84, 54, 10.1016\u002Fj.cageo.2015.08.008\nSilva, 2014, Soil structure and greenhouse gas production differences between row and interrow positions under no-tillage, Sci. Agric., 71, 157, 10.1590\u002FS0103-90162014000200011\nSoil Survey Staff, 2010, Keys to Soil Taxonomy\nStettler, 2014, Terranimo® – a web-based tool for evaluating soil compaction, Landtechnik, 69, 132",{"VOID":2450},"10.1016\u002Fj.geodrs.2020.e00261","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2352009420300109",[2453,2468,2481,2494,2507,2522],{"id":2454,"sortIndex":84,"researcher":23,"roles":2455,"affiliations":2456,"properties":2465,"displayName":2467,"givenName":23,"familyName":23},"ef730b24-1883-4419-83d5-87419e79daa1",[127],[2457],{"id":2458,"sortIndex":84,"affiliation":2459,"properties":23},"7e100949-4d52-4d1f-8562-d4678ea17cd6",{"id":2458,"createTime":23,"updateTime":23,"relativeEntities":2460,"slug":23,"properties":2461,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2464,"statistic":23},[],{"title":2462},{"VI":2463},"Department of Agricultural Engineering, Federal Rural University of Pernambuco, Rua Dom Manoel de Medeiros, s\u002Fn, Dois Irmãos, CEP 52171-900, Recife, PE, Brazil",[],{"title":2466},{"VI":2467},"Edwardo A.S. Mendonça",{"id":2469,"sortIndex":144,"researcher":23,"roles":2470,"affiliations":2471,"properties":2478,"displayName":2480,"givenName":23,"familyName":23},"aa00990e-ef93-43fc-b979-74abf85c422b",[127],[2472],{"id":2458,"sortIndex":84,"affiliation":2473,"properties":23},{"id":2458,"createTime":23,"updateTime":23,"relativeEntities":2474,"slug":23,"properties":2475,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2477,"statistic":23},[],{"title":2476},{"VI":2463},[],{"title":2479},{"VI":2480},"Renato P. de Lima",{"id":2482,"sortIndex":160,"researcher":23,"roles":2483,"affiliations":2484,"properties":2491,"displayName":2493,"givenName":23,"familyName":23},"38782f14-64d2-41f0-8ad6-346fc759f4d1",[127],[2485],{"id":2458,"sortIndex":84,"affiliation":2486,"properties":23},{"id":2458,"createTime":23,"updateTime":23,"relativeEntities":2487,"slug":23,"properties":2488,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2490,"statistic":23},[],{"title":2489},{"VI":2463},[],{"title":2492},{"VI":2493},"Daniel da C. Dantas",{"id":2495,"sortIndex":174,"researcher":23,"roles":2496,"affiliations":2497,"properties":2504,"displayName":2506,"givenName":23,"familyName":23},"b1ccbe29-2cb1-4b48-b393-1e9734d7c661",[127],[2498],{"id":2458,"sortIndex":84,"affiliation":2499,"properties":23},{"id":2458,"createTime":23,"updateTime":23,"relativeEntities":2500,"slug":23,"properties":2501,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2503,"statistic":23},[],{"title":2502},{"VI":2463},[],{"title":2505},{"VI":2506},"Pedro H.D. Batista",{"id":2508,"sortIndex":24,"researcher":23,"roles":2509,"affiliations":2510,"properties":2519,"displayName":2521,"givenName":23,"familyName":23},"26f38196-7560-4465-ac78-3aa91aed0cb4",[127],[2511],{"id":2512,"sortIndex":84,"affiliation":2513,"properties":23},"65270fa8-dfcd-437f-8357-79d88d7f2b7d",{"id":2512,"createTime":23,"updateTime":23,"relativeEntities":2514,"slug":23,"properties":2515,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2518,"statistic":23},[],{"title":2516},{"VI":2517},"Department of Soil Science and Agricultural Engineering, State University of Ponta Grossa (UEPG) Av. Gal. Carlos Cavalcanti, 4748, CEP84030-900, Ponta Grossa, PR, Brazil",[],{"title":2520},{"VI":2521},"Neyde F.B. Giarola",{"id":2523,"sortIndex":205,"researcher":23,"roles":2524,"affiliations":2525,"properties":2532,"displayName":2534,"givenName":23,"familyName":23},"3daecc63-4692-4b4b-8fe4-1712e41ba50d",[127],[2526],{"id":2458,"sortIndex":84,"affiliation":2527,"properties":23},{"id":2458,"createTime":23,"updateTime":23,"relativeEntities":2528,"slug":23,"properties":2529,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2531,"statistic":23},[],{"title":2530},{"VI":2463},[],{"title":2533},{"VI":2534},"Mário M. Rolim",{"url":2451,"publisher":2536,"properties":2579},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2537,"slug":10,"properties":2538,"entityType":21,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":24,"subjectFields":2543,"manageAffiliations":2548,"indexDatabases":2559,"url":82,"thumbnailPath":23,"statistic":2574,"gsStatistic":23,"type":23,"analyzePriority":23},[],{"country":2539,"eissn":2540,"issn":2541,"title":2542},{"VOID":13},{"VOID":15},{"VOID":15},{"EN":18},[2544],{"id":27,"createTime":23,"updateTime":23,"relativeEntities":2545,"label":2546,"description":2547,"parentId":23,"standard":23,"scholarHubFieldId":23},[],{"EN":30},{},[2549,2554],{"id":34,"createTime":23,"updateTime":23,"relativeEntities":2550,"slug":23,"properties":2551,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2553,"statistic":23},[],{"title":2552},{"EN":38},[],{"id":41,"createTime":23,"updateTime":23,"relativeEntities":2555,"slug":23,"properties":2556,"entityType":23,"verifyStatus":23,"verifyTime":23,"verifyNote":23,"languages":23,"translateLanguages":23,"viewCount":23,"url":23,"parentIds":2558,"statistic":23},[],{"title":2557},{"EN":45},[],[2560,2567],{"id":49,"indexDatabase":2561,"url":60,"indexYears":61,"academicFieldIds":2566,"indexDatabaseRanking":64},{"id":51,"createTime":23,"updateTime":23,"relativeEntities":2562,"label":2563,"description":2564,"key":57,"publicationTags":2565,"standard":23},[],{"EN":54,"VI":54},{"EN":54,"VI":56},[59],[63],{"id":66,"indexDatabase":2568,"url":79,"indexYears":23,"academicFieldIds":2573,"indexDatabaseRanking":23},{"id":68,"createTime":23,"updateTime":23,"relativeEntities":2569,"label":2570,"description":2571,"key":75,"publicationTags":2572,"standard":23},[],{"EN":71,"VI":71},{"EN":73,"VI":74},[77,78],[81],{"impactFactor":84,"impactFactorByYear":2575,"i10Index":84,"i10IndexLast5Year":84,"totalPublication":86,"totalPublicationByYear":2576,"totalCitation":84,"totalCitationByYear":2577,"totalCitationPerPublication":84,"totalCitationPerPublicationByYear":2578,"hindexLast5Year":84,"hindex":84},{},{"2014":88,"2015":89,"2016":90,"2017":91,"2018":92,"2019":90,"2020":93,"2021":94,"2022":95,"2023":96},{},{},{"pages":2580,"volume":2582},{"VOID":2581},"e00261",{"VOID":2186},[64,77]]