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(Ed.), Précis de télédétection: vol.2: applications thématiques, p. 161-195.\nClandillon, 1995, Assessment of the future SPOT4 MIR for wetland monitoring and soil moisture analysis: simulation over the Ried Centre Alsace (France), SPIE, 2585\nDesconnets, 1993, Le rôle des mares dans le bilan hydrologique d’une région sahélienne, 299\nDingzhi, 2005, Study of Dongting Lake area variation and its influence on water level using MODIS data, Hydrol. Sci. J., 50, 31\nDiop, 2007\nDiop, 2004, Mares de la zone sylvopastorale du Sénégal: tendances évolutives et rôle dans les stratégies de production des populations pastorales, Revue Élev. Méd. vét. Pays trop., 57, 77\nGao, 1996, NDWI—A normalized difference water index for remote sensing of vegetation liquid water from space, Rem. Sens. Environ., 58, 257, 10.1016\u002FS0034-4257(96)00067-3\nHaas, 2009, Time series analysis of optical remote sensing data for the mapping of temporary surface water bodies in sub-Saharan western Africa, J. Hydrol., 370, 52, 10.1016\u002Fj.jhydrol.2009.02.052\nHaas, 2006\nHardisky, 1983, The influence of soil salinity, growth form, and leaf moisture on the spectral radiance of Spartina alterniflora canopies, Photogramm. Eng. Rem. Sens., 49, 77\nLacaux, 2007, Classification of ponds from high-spatial resolution remote sensing: application to Rift Valley Fever epidemics in Senegal, Rem. Sens. Environ., 106, 66, 10.1016\u002Fj.rse.2006.07.012\nMaignan, 2008, Interannual vegetation phenology estimates from global AVHRR measurements: comparison with in situ data and applications, Rem. Sens. Environ., 112, 496, 10.1016\u002Fj.rse.2007.05.011\nMcCloy, 2004, Comparative evaluation of seasonal patterns in long time series of satellite image data and simulations of a global vegetation models, IEEE Trans. Geosci. Rem. Sens., 42, 140, 10.1109\u002FTGRS.2003.817811\nMcFeeters, 1996, The use of the normalised difference water index (NDWI) in the delineation of open water features, Int. J. Rem. Sens., 17, 1425, 10.1080\u002F01431169608948714\nMondet, 2005, Rainfall patterns and population dynamics of Aedes (Aedimorphus) vexans arabiensis, Patton 1905 (Diptera: Culicidae), a potential vector of Rift Valley Fever virus in Senegal, J. Vector Ecol., 30, 102\nPark, 2004, Receiver operating characteristic (ROC) curve: practical review for radiologists, Korean J. Radiol., 5, 11, 10.3348\u002Fkjr.2004.5.1.11\nPuech C., 1992, Evaluation des capacités d’exploitation des plans d’eau sahéliens par imagerie SPOT, Actes de colloque, VIIIèmes Journées Hydrologiques de l’ORSTOM, Montpellier, pp. 195-202.\nPuech, 1994\nR Development Core Team, 2006\nSandholt, 2003, Remote sensing techniques for flood monitoring in the Senegal River Valley, Geografisk Tidsskrofft, 103, 71, 10.1080\u002F00167223.2003.10649481\nSchmidt, 2000, Remote sensing of the seasonal variability of vegetation in a semi-arid environment, J. 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2007\nArtis, 1982, Survey of emissivity variability in thermography of urban areas, Remote Sens. 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Remote Sens., 64, 335, 10.1016\u002Fj.isprsjprs.2009.03.007\nWeng, 2014, Generating daily land surface temperature at Landsat resolution by fusing Landsat and MODIS data, Remote Sens. Environ., 145, 55, 10.1016\u002Fj.rse.2014.02.003\nWeng, 2004, Estimation of land surface temperature–vegetation abundance relationship for urban heat island studies, Remote Sens. Environ., 89, 467, 10.1016\u002Fj.rse.2003.11.005\nYuan, 2007, Comparison of impervious surface area and normalized difference vegetation index as indicators of surface urban heat island effects in Landsat imagery, Remote Sens. Environ., 106, 375, 10.1016\u002Fj.rse.2006.09.003\nZhang, 2004, Review of shape representation and description techniques, Pattern Recognit., 37, 1, 10.1016\u002Fj.patcog.2003.07.008\nZhang, 2015, Thermal infrared inspection of roof insulation using unmanned aerial vehicles, Int. Arch. Photogramm. Remote Sens. Spat. Inf. 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10.1016\u002Fj.rse.2006.10.009\nTompkins, 1997, Optimization of endmembers for spectral mixture analysis, Remote Sensing of Environment, 59, 472, 10.1016\u002FS0034-4257(96)00122-8\nVan der Meer, 1999, Iterative spectral unmixing (ISU), International Journal of Remote Sensing, 20, 3431, 10.1080\u002F014311699211462\nVan der Meer, 2006, Indicator kriging applied to absorption band analysis in hyperspectral imagery: a case study from the Rodalquilar epithermal gold mining area, SE Spain, International Journal of Applied Earth Observation and Geoinformation, 8, 61, 10.1016\u002Fj.jag.2005.07.001\nVan der Meer, 2006, The effectiveness of spectral similarity measures for the analysis of hyperspectral imagery, International Journal of Applied Earth Observation and Geoinformation, 8, 3, 10.1016\u002Fj.jag.2005.06.001\nVan der Meer, 2000, Improving the results of spectral unmixing of Landsat Thematic Mapper imagery by enhancing the orthogonality of end-members, International Journal of Remote 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Space Res., 66, 469, 10.1016\u002Fj.asr.2020.04.015\nBlewitt, 2018, Harnessing the GPS data explosion for interdisciplinary science, EOS Trans. Am. Geophys. Union, 99, 485\nBos, 2019\nBos, 2013, Fast error analysis of continuous GNSS observations with missing data, J. Geod., 87, 351, 10.1007\u002Fs00190-012-0605-0\nCazenave, 1999, Sea level changes from Topex-Poseidon altimetry and tide gauges, and vertical crustal motions from DORIS, Geophys. Res. Lett., 26, 2077, 10.1029\u002F1999GL900472\nChoy, 2017, Uncovering common misconceptions in GNSS Precise Point Positioning and its future prospect, GPS Solut., 21, 13, 10.1007\u002Fs10291-016-0545-x\nCNES, 2017\nDe Biasio, 2020, Revisiting vertical land motion and sea level trends in the Northeastern Adriatic Sea using satellite altimetry and tide gauge data, J. Mar. Sci. Eng., 8, 949, 10.3390\u002Fjmse8110949\nDouglas, 1991, Global sea level rise, J. Geophys. Res.: Oceans, 96, 6981, 10.1029\u002F91JC00064\nDouglas, 2000\nEtcheverry, 2015, A comparison of the annual cycle of sea level in coastal areas from gridded satellite altimetry and tide gauges, Cont. Shelf Res., 92, 87, 10.1016\u002Fj.csr.2014.10.006\nE.U. Copernicus Marine Service Information, ., 2022, Global ocean gridded L4 sea surface heights and derived variables reprocessed (1993-ongoing). https:\u002F\u002Fdoi.org\u002F10.48670\u002Fmoi-00148.\nHaley, 2022, Land subsidence in the Texas Coastal bend: Locations, rates, triggers, and consequences, Remote Sens., 14, 192, 10.3390\u002Frs14010192\nH.G.S.D., 2022\nKasmarek, 2009\nKearns, 2015, Current land subsidence and groundwater level changes in the Houston metropolitan area (2005–2012), J. Surv. Eng., 141, 10.1061\u002F(ASCE)SU.1943-5428.0000147\nKhorzad, 1999, Land subsidence along the Texas Gulf Coast due to oil and gas withdrawal, Environ. 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