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Changes in volume and extent of NW Svalbard glaciers using airborne lidar and digital photogrammetry. Ph.D. Thesis, Dept. of Geography, Swansea University, Swansea, Wales.\nBarrand, 2009, Optimizing photogrammetric DEMs for glacier volume change assessment using laser-scanning derived ground control points, Journal of Glaciology, 55, 103, 10.3189\u002F002214309788609001\nBarrand, 2010, Spatiotemporal variability in elevation changes of two high-Arctic valley glaciers, Journal of Glaciology, 56, 771, 10.3189\u002F002214310794457362\nBennett, 2000, Resedimentation of debris on an ice-cored lateral moraine in the high-Arctic (Kongsvegen, Svalbard), Geomorphology, 35, 21, 10.1016\u002FS0169-555X(00)00017-9\nBeylich, 2004, Effects of high-magnitude\u002Flow-frequency fluvial events generated by intense snowmelt or heavy rainfall in Arctic periglacial environments in northern Swedish Lapland and northern Siberia, Geografiska Annaler, 86A, 11, 10.1111\u002Fj.0435-3676.2004.00210.x\nBeylich, 2009, Subrecent sediment dynamics and sediment budget of the braided sandur system at Sandane, Erdalen (Nordfjord, western Norway), Norsk Geografisk Tidsskrift, 63, 123, 10.1080\u002F00291950902907934\nBjörnsson, 1996, The thermal regime of sub-polar glaciers mapped by multi-frequency radio-echo sounding, Journal of Glaciology, 42, 23, 10.1017\u002FS0022143000030495\nBruland, 2001, Energy and water balance studies of a snow cover during snowmelt period at a high arctic site, Theoretical and Applied Climatology, 70, 53, 10.1007\u002Fs007040170005\nCharlton, 2003, Application of airborne lidar in river environments: the River Coquet, Northumberland, UK, Earth Surface Processes and Landforms, 28, 299, 10.1002\u002Fesp.482\nDriscoll, 1980, Wastage of the Klutlan ice-cored moraines, Yukon Territory, Canada, Quaternary Research, 14, 31, 10.1016\u002F0033-5894(80)90005-8\nDyke, 2000, Major end moraines of Younger Dryas age on Wollaston Peninsula, Victoria Island, Canadian Arctic: implications for palaeoclimate and for formation of hummocky moriane, Canadian Journal of Earth Science, 37, 601, 10.1139\u002Fe99-118\nEtienne, 2008, Temporal scales and deglaciation rhythms in a polar glacier margin, Baronbreen, Svalbard, Norsk Geografisk Tidsskrift, 62, 102, 10.1080\u002F00291950802095111\nEtzelmüller, 2000, Quantification of thermo-erosion in proglacial areas — examples from Svalbard, Zeitschrift für Geomorphologie, 44, 343, 10.1127\u002Fzfg\u002F44\u002F2000\u002F343\nEtzelmüller, 2005, Glacier-permafrost interaction in Arctic and alpine mountain environments with examples from southern Norway and Svalbard, 11\nEtzelmüller, 1993, Mass balance changes of surface slope, crevasse and flow pattern of Erikbreen, northern Spitsbergen: an application of a geographical information system, Polar Research, 12, 131, 10.1111\u002Fj.1751-8369.1993.tb00428.x\nEtzelmüller, 2000, Glacial characteristics and sediment transfer system of Longyearbreen and Larsbreen, western Spitsbergen, Norsk Geografisk Tidsskrift, 54, 157, 10.1080\u002F002919500448530\nEverest, 2003, Buried glacier ice in southern Iceland and its wider significance, Geomorphology, 52, 347, 10.1016\u002FS0169-555X(02)00277-5\nFinsterwalder, 1954, Photogrammetry and glacier research with special reference to glacier retreat in the eastern Alps, Journal of Glaciology, 2, 306, 10.1017\u002FS0022143000025119\nFørland, 1997, Climate Statistics and Longterm Series of Temperature and Precipitation at Svalbard and Jan Mayen\nGeist, 2005, Investigations on intra-annual elevation changes using multi-temporal airborne laser scanning data: case study Engabreen, Norway, Annals of Glaciology, 42, 195, 10.3189\u002F172756405781812592\nGibas, 2005, Application of DC resistivity soundings and geomorphological surveys in studies of modern Arctic glacier marginal zones, Petuniabukta, Spitsbergen, Polish Polar Research, 26, 239\nGlasser, 2001, Styles of sedimentation beneath Svalbard valley glaciers under changing dynamic and thermal regimes, Journal of the Geological Society, 158, 697, 10.1144\u002Fjgs.158.4.697\nGraham, 2007, ‘A test of the englacial thrusting hypothesis of “hummocky” moraine formation: case studies from the northwest Highlands, Scotland’: comments, Boreas, 36, 103\nGurnell, 1988, A comparison of the sediment yield characteristics of two adjacent glacier basins, Val d'Herens, Switzerland, IAHS Publication, 174, 431\nGurnell, 1994, Water and sediment discharge from glacier basins: an arctic and alpine comparison, IAHS Publication, 224, 325\nHagen, 1993, Glacier Atlas of Svalbard and Jan Mayen, 129\nHallet, 1986, Dynamics of periglacial sorted circles in western Spitsbergen, Quaternary Research, 26, 81, 10.1016\u002F0033-5894(86)90085-2\nHambrey, 1984, Sedimentary processes and buried ice phenomena in the proglacial areas of Spitsbergen glaciers, Journal of Glaciology, 30, 116, 10.1017\u002FS002214300000856X\nHambrey, 1999, Debris entrainment and transfer in polythermal valley glaciers, Journal of Glaciology, 45, 69, 10.3189\u002FS0022143000003051\nHambrey, 2005, Structure and changing dynamics of a polythermal valley glacier on a centennial timescale: Midre Lovénbreen, Svalbard, Journal of Geophysical Research, 110\nHan, 2006, A simple model to estimate ice ablation under a thick debris layer, Journal of Glaciology, 52, 528, 10.3189\u002F172756506781828395\nHansen, 2003, From surge-type to non-surge-type glacier behaviour: midre Lovénbreen, Svalbard, Annals of Glaciology, 36, 97, 10.3189\u002F172756403781816383\nHanssen-Bauer, 1998, Long-term trends in precipitation and temperature in the Norwegian Arctic: can they be explained by changes in atmospheric circulation patterns?, Climate Research, 10, 143, 10.3354\u002Fcr010143\nHjelle, 1993, Geology of Svalbard, 7\nHodgkins, 2003, Suspended sediment fluxes in a high-Arctic glacierised catchment: implications for fluvial sediment storage, Sedimentary Geology, 162, 105, 10.1016\u002FS0037-0738(03)00218-5\nHodson, 1999, Fluvial suspended sediment transport from cold and warm-based glaciers in Svalbard, Earth Surface Processes and Landforms, 24, 957, 10.1002\u002F(SICI)1096-9837(199910)24:11\u003C957::AID-ESP19>3.0.CO;2-J\nHodson, 2005, Multi-year water and surface energy budget of a high-latitude polythermal glacier: evidence for overwinter water storage in a dynamic subglacial reservoir, Annals of Glaciology, 42, 42, 10.3189\u002F172756405781812844\nHoelzle, 1993\nHopkinson, 2006, Using airborne lidar to assess the influence of glacier downwasting on water resources in the Canadian Rocky Mountains, Canadian Journal of Remote Sensing, 32, 212, 10.5589\u002Fm06-012\nHopkinson, C., Barlow, J., Demuth, M., Pomeroy, J., in press. Mapping changing temperature patterns over a glacial moraine using oblique thermal imagery and LiDAR. Canadian Journal of Remote Sensing.\nHugenholtz, 2008, Large-scale moraine deformation at the Athabaska Glacier, Jasper National Park, Alberta, Canada, Landslides, 5, 251, 10.1007\u002Fs10346-008-0116-5\nIrvine-Fynn, T.D.L., 2008. Modelling runoff from the maritime Arctic cryosphere: water storage and routing at Midtre Lovénbreen. Ph.D. Thesis, Dept. of Geography, University of Sheffield, Sheffield, UK, 384 pp.\nIrvine-Fynn, 2005, Cryological processes implied in Arctic proglacial stream sediment dynamics using principal components analysis and regression, 83\nJames, 2006, Extracting photogrammetric ground control from LiDAR DEMs for change detection, The Photogrammetric Record, 21, 312, 10.1111\u002Fj.1477-9730.2006.00397.x\nJohnson, 1971, Ice cored moraine formation and degradation, Donjek Glacier, Yukon Territory, Canada, Geografiska Annaler, 53A, 198, 10.1080\u002F04353676.1971.11879845\nJohnson, 1992, Stagnant glacier ice, St. Elias Mountains, Yukon, Geografiska Annaler, 74A, 13, 10.1080\u002F04353676.1992.11880345\nKing, 1994, Glaziologie und glazialgeomorphologie des Liefde- und Bock-fjordgebieties NW-Spitzbergen, Zeitschrift für Geomorphologie Supplement, 97, 145\nKohler, 2003\nKohler, 2007, Acceleration in thinning rate on western Svalbard glaciers, Geophysical Research Letters, 34\nKozarski, 1982, The genetic variety of ice cores in the marginal forms of some Spitsbergen glaciers, Hornsund region, Acta Universitatis Wratislaviensis, 525, 153\nKrabill, 2002, Aircraft laser altimetry measurement of elevation changes of the Greenland ice sheet: technique and accuracy assessment, Journal of Geodynamics, 34, 357, 10.1016\u002FS0264-3707(02)00040-6\nKrüger, 2000, De-icing progression of ice-cored moraines in a humid, subpolar climate, Kötlujökull, Iceland, The Holocene, 10, 737, 10.1191\u002F09596830094980\nLaffy, 2002, Global change and paraglacial morphodynamic modification in Svalbard, International Journal of Remote Sensing, 23, 4743, 10.1080\u002F01431160110113872\nLefauconnier, 1999, Glacier balance trends in the Kongsfjorden area, western Spitsbergen, Svalbard, in relation to the climate, Polar Research, 18, 307, 10.1111\u002Fj.1751-8369.1999.tb00308.x\nLiestøl, 1976, Pingos, springs and permafrost in Spitsbergen, Norsk Polarinstitutt Årbok, 1975, 7\nLønne, 2005, Deglaciation dynamics following the Little Ice Age on Svalbard: implications for shaping of landscapes at high latitudes, Geomorphology, 72, 300, 10.1016\u002Fj.geomorph.2005.06.003\nLougeay, 1974, Detection of buried glacial and ground ice with thermal infrared remote sensing, 487\nLukas, 2005, A test of the englacial thrusting hypothesis of ‘hummocky’ moraine formation: case studies from the north-west Highlands, Scotland, Boreas, 34, 287, 10.1080\u002F03009480510013042\nLukas, 2007, ‘A test of the englacial thrusting hypothesis of “hummocky” moraine formation: case studies from the northwest Highlands, Scotland’: reply to comments, Boreas, 36, 108\nLukas, 2005, Formation, meltout processes and landscape alteration of High-Arctic ice-cored moraines — examples from Nordenskiöld Land, central Spitsbergen, Polar Geography, 29, 157, 10.1080\u002F789610198\nLyså, 2001, Moraine development at a small High-Arctic valley glacier: Rieperbreen, Svalbard, Journal of Quaternary Science, 16, 519, 10.1002\u002Fjqs.613\nMattson, 1991, Mass wasting on valley-side ice-cored moraines, Boundary Glacier, Alberta, Canada, Geografiska Annaler, 73A, 123, 10.1080\u002F04353676.1991.11880337\nMattson, 1993, Ablation on debris covered glaciers: an example from the Rakhiot Glacier, Punjab, Himalaya, IAHS Publication, 218, 289\nMcKean, 2004, Objective landslide detection and surface morphology mapping using high-resolution airborne laser altimetry, Geomorphology, 57, 331, 10.1016\u002FS0169-555X(03)00164-8\nMcKenzie, 1969, Observations on a collapsing kame terrace in Glacier Bay National Monument, southeastern Alaska, Journal of Glaciology, 8, 413, 10.1017\u002FS0022143000027003\nMercier, 2005, Actual paraglacial progradation of the coastal zone in the Kongsfjorden area, western Spitsbergen (Svalbard), 111\nMoreau, 2008, Impacts of recent paraglacial dynamics on plant colonization: a case study on Midtre Lovénbreen forefield, Spitsbergen (79°N), Geomorphology, 95, 48, 10.1016\u002Fj.geomorph.2006.07.031\nNakawo, 1982, Estimate of glacier ablation under a debris layer from surface temperature and meteorological variables, Journal of Glaciology, 28, 29, 10.1017\u002FS002214300001176X\nNicholson, 2006, Calculating ice melt beneath a debris layer using meteorological data, Journal of Glaciology, 52, 463, 10.3189\u002F172756506781828584\nNordli, 2003, The Early 20th Century Warming: Daily Observations at Green Harbour, Grønfjorden, Spitsbergen\nNuth, 2007, Glacier geometry and elevation changes on Svalbard (1936-90): a baseline dataset, Annals of Glaciology, 46, 106, 10.3189\u002F172756407782871440\nO'Farrell, 2009, Quantifying periglacial erosion: insights on a glacial sediment budget, Matanuska Glacier, Alaska, Earth Surface Processes and Landforms, 34, 2008, 10.1002\u002Fesp.1885\nØstrem, 1959, Ice melting under a thin layer of moraine, and the existence of ice cores in moraine ridges, Geografiska Annaler, 41, 228, 10.1080\u002F20014422.1959.11907953\nØstrem, 1965, Problems of dating ice-cored moraines, Geografiska Annaler, 47A, 1\nOtto, 2009, Quantifying sediment storage in and high alpine valley (Turtmanntal, Switzerland), Earth Surface Processes and Landforms, 34, 1726, 10.1002\u002Fesp.1856\nPearce, 2003, Bedload component of glacially discharged sediment: insights from the Matanuska Glacier, Alaska, Geology, 31, 7, 10.1130\u002F0091-7613(2003)031\u003C0007:BCOGDS>2.0.CO;2\nPickard, 1983, Surface lowering of ice-cored moraine by wandering lakes, Journal of Glaciology, 29, 338, 10.1017\u002FS0022143000008388\nRippin, 2003, Changes in geometry and subglacial drainage of Midre Lovenbreen, Svalbard, determined from digital elevation models, Earth Surface Processes and Landforms, 28, 273, 10.1002\u002Fesp.485\nRoss, A.B., 1976. A form and process study of a terminal ice-cored moraine. M.A. Thesis, University of Ottawa, Ottawa, 178 pp.\nRutter, N., Hodson, A., Irvine-Fynn, T., Kristensen, M., submitted for publication. The hydrology and hydrochemistry of deglaciation in a high-Arctic catchment, Svalbard. Journal of Hydrology.\nSchiefer, 2007, Reconstructing morphometric change in a proglacial landscape using historical aerial photography and automated DEM generation, Geomorphology, 88, 167, 10.1016\u002Fj.geomorph.2006.11.003\nSchomacker, 2008, What controls dead-ice melting under different climate conditions? A discussion, Earth-Science Reviews, 90, 103, 10.1016\u002Fj.earscirev.2008.08.003\nSchomacker, 2007, Origin and melt-out of multiple generations of ice-cored moraines at Brúarjökull, Iceland, Boreas, 36, 411, 10.1080\u002F03009480701213554\nSchomacker, 2008, Quantification of dead-ice melting in ice-cored moraines at the high-Arctic glacier Holmströmbreen, Svalbard, Boreas, 37, 211, 10.1111\u002Fj.1502-3885.2007.00014.x\nSerreze, 2000, Observational evidence of recent change in the northern high-latitude environment, Climatic Change, 46, 159, 10.1023\u002FA:1005504031923\nSletten, 2001, Formation and disintegration of a high-arctic ice-cored moraine complex, Scott Turnerbreen, Svalbard, Boreas, 30, 272, 10.1111\u002Fj.1502-3885.2001.tb01046.x\nSmall, 1987, Moraine sediment budgets, 165\nSmith, 2006, Geomorphological mapping of glacial landforms from remotely sensed data: an evaluation of the principal data sources and an assessment of their quality, Geomorphology, 76, 148, 10.1016\u002Fj.geomorph.2005.11.001\nSvendsen, 1997, Holocene glacial and climatic variations on Spitsbergen, Svalbard, The Holocene, 7, 45, 10.1177\u002F095968369700700105\nSyvitski, 2002, Sediment discharge variability in Arctic rivers: implications for a warmer future, Polar Research, 21, 323, 10.3402\u002Fpolar.v21i2.6494\nSzponar, 1975, Ablation of ice–moraine ridges and its morphological effects, with glaciers of the Hornsund region as example, Acta Universitatis Wratislaviensis, 251, 101\nWatson, 1980, Landform development on moraines of the Klutlan Glacier, Yukon Territory, Canada, Quaternary Research, 14, 50, 10.1016\u002F0033-5894(80)90006-X\nWerner, 1993, Holocene moraine chronology, Spitsbergen, Svalbard: lichenometric evidence for multiple Neoglacial advances in the Arctic, The Holocene, 3, 128, 10.1177\u002F095968369300300204\nWoodward, 2002, Formation and reorientation of structure in the surge-type glacier Kongsvegen, Svalbard, Journal of Quaternary Science, 17, 201, 10.1002\u002Fjqs.673\nZiaja, 2001, Glacier recession in Sørkappland and central Nordenskiöldland, Sptisbergen, Svalbard, during the 20th century, Arctic Antarctic and Alpine Research, 33, 36, 10.1080\u002F15230430.2001.12003402\nZiaja, 2005, Response of the Nordenskiöld Land (Spitsbergen) glaciers Grumantbreen, Håbergbreen and Dryadbreen to the climate warming after the Little Ice Age, Annals of Glaciology, 42, 189, 10.3189\u002F172756405781812673",{"VOID":88},"10.1016\u002Fj.geomorph.2010.08.012","PUBLICATION","VERIFIED","2024-05-06T06:59:15.452+00:00","Auto Verify","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0169555X10003697",[95,113,131,149,165],{"id":96,"sortIndex":18,"researcher":17,"roles":97,"affiliations":99,"properties":108,"displayName":110,"givenName":17,"familyName":17},"4a3887b1-1577-48b5-9554-df6ea68da2f4",[98],"AUTHOR",[100],{"id":101,"sortIndex":18,"affiliation":102,"properties":17},"2ff53fba-ddf3-4d2d-ab5e-a9e8c0bdd279",{"id":101,"createTime":17,"updateTime":17,"relativeEntities":103,"slug":17,"properties":104,"entityType":17,"verifyStatus":17,"verifyTime":17,"verifyNote":17,"languages":17,"translateLanguages":17,"viewCount":17,"url":17,"parentIds":107,"statistic":17},[],{"title":105},{"VI":106},"Department of Geography, University of Sheffield, Winter Street, Sheffield, S10 2TN, UK, ",[],{"title":109,"gsAuthor":111},{"VI":110},"T.D.L. 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Physics of the Earth and Planetary Interiors, Physics of the Earth and Planetary Interiors, 171, 76, 10.1016\u002Fj.pepi.2008.05.003\nBull, 1977, The alluvial fan environment, Progress in Physical Geography, 1, 222, 10.1177\u002F030913337700100202\nBull, 1991\nBull, 1996, Global climate change and active tectonics: effective tools for teaching and research, Geomorphology, 16, 217, 10.1016\u002FS0169-555X(96)80002-X\nChen, 1986, Chinese concepts of modeling hyperconcentrated streamflow and debris flow, 1647\nClevis, 2003, Numerical modelling of drainage basin evolution and three-dimensional alluvial fan stratigraphy, Sedimentary Geology, 163, 85, 10.1016\u002FS0037-0738(03)00174-X\nCowie, 2006, Investigating the surface process response to fault interaction and linkage using a numerical modelling approach, Basin Research, 18, 231, 10.1111\u002Fj.1365-2117.2006.00298.x\nCulling, 1960, Analytical theory of erosion, Journal of Geology, 68, 336, 10.1086\u002F626663\nDe Chant, 1999, Modelling alluvial fan morphology, Earth Surface Processes and Landforms, 24, 641, 10.1002\u002F(SICI)1096-9837(199907)24:7\u003C641::AID-ESP979>3.0.CO;2-3\nDecker, 2005, Active tectonics and Quaternary basin formation along the Vienna Basin transform fault, Quaternary Science Reviews, 24, 305, 10.1016\u002Fj.quascirev.2004.04.012\nEinsele, 1998, Quantifying denudation and sediment-accumulation systems (open and closed lakes): basic concepts and first results, Palaeogeography, Palaeoclimatology, Palaeoecology, 140, 7, 10.1016\u002FS0031-0182(98)00041-8\nFaber, 2005, Modelling of topography and sedimentation along synsedimentary faults: WinGeol\u002FSedTec, Austrian Journal of Earth Sciences, 97, 60\nFink, 1955, 88\nFink, 1977, Pleistocene climates in central Europe, Quaternary Research, 7, 363, 10.1016\u002F0033-5894(77)90027-8\nGordon, 1993, Evaluating major controls on basinal stratigraphy, Pine Valley, Nevada: implications for syntectonic deposition, Geological Society of America Bulletin, 105, 47, 10.1130\u002F0016-7606(1993)105\u003C0047:EMCOBS>2.3.CO;2\nHarvey, 2002, Effective timescales of coupling within fluvial systems, Geomorphology, 44, 175, 10.1016\u002FS0169-555X(01)00174-X\nHarvey, 2002, The role of base-level change in the dissection of alluvial fans: case studies from southeast Spain and Nevada, Geomorphology, 45, 67, 10.1016\u002FS0169-555X(01)00190-8\nHarvey, 1999, The impact of Quaternary sea-level and climatic change on coastal alluvial fans in the Cabo de Gata ranges, southeast Spain, Geomorphology, 28, 1, 10.1016\u002FS0169-555X(98)00100-7\nHabersack, 2005\nHavinga, 1972, A palynological investigation in the Pannonian climate region of Lower Austria, Review of Palaeobotany and Palynology, 14, 319, 10.1016\u002F0034-6667(72)90025-5\nHinsch, 2005, 3-D mapping of segmented active faults in the southern Vienna Basin, Quaternary Science Reviews, 24, 321, 10.1016\u002Fj.quascirev.2004.04.011\nHodel, 2000, Mittlere Fliessgeschwindigkeiten in Wildbächen und Gebirgsflüssen – Welche Maximalwerte sind realistisch?\nHöggerl, 1980, Repeated levelling and vertical crustal movements. Problems and results, Rock Mechanics, 201\nKrieger, 1959, A mechanism of non-Newtonian flow in suspension of rigid spheres, Transactions of the Society of Rheology, 3, 137, 10.1122\u002F1.548848\nKüpper, 1950\nLeeder, 1998, Sediment supply and climate change: implications for basin stratigraphy, Basin Research, 10, 7, 10.1046\u002Fj.1365-2117.1998.00054.x\nMolnar, 1990, Late Cenozoic uplift of mountain ranges and global cooling: chicken or egg?, Nature, 346, 29, 10.1038\u002F346029a0\nNemec, 1993, Quaternary alluvial fans in southwestern Crete; sedimentation processes and geomorphic evolution, 235\nOldfield, 2005\nPaola, 2000, Quantitative models of sedimentary basin filling, Sedimentology, 47, 121, 10.1046\u002Fj.1365-3091.2000.00006.x\nRitter, 1995, Reconciling the roles of tectonism and climate in Quaternary alluvial fan evolution, Geology, 23, 245, 10.1130\u002F0091-7613(1995)023\u003C0245:RTROTA>2.3.CO;2\nSalcher, B., 2008. Sedimentology and Modelling of the Mitterndorf Basin, PhD Thesis. University of Vienna, Vienna: 107 pp.\nSalcher, B., Wagreich, M., in press. Climate and tectonic controls on sequence development and river evolution in Austria's largest Pleistocene basin. Quaternary International. doi:10.1016\u002Fj.quaint.2009.04.007.\nSchulze, 2005, Simulating river flow velocity on global scale, Advances in Geosciences, 133, 10.5194\u002Fadgeo-5-133-2005\nShanley, 1994, Perspectives on the sequence stratigraphy of continental strata, American Association of Petroleum Geologists, Bulletin, 78, 544\nSlingerland, 1994\nStock, 1999, Geologic constraints on bedrock river incision using the streampower law, Journal of Geophysical Research, 104, 4983, 10.1029\u002F98JB02139\nTucker, 1994, Erosional dynamics, flexural isostasy, and long-lived escarpments: a numerical modeling study, Journal of Geophysical Research, 99, 12,229, 10.1029\u002F94JB00320\nVan Husen, 1987\nVan Husen, 2000, Geological processes during the Quarternary, Mitteilungen der Österreichischen Geologischen Gesellschaft, 92, 135\nVandenberghe, 2002, The relation between climate and river processes, landforms and deposits during the Quaternary, Quaternary International, 91, 17, 10.1016\u002FS1040-6182(01)00098-2\nVandenberghe, 2008, The fluvial cycle at cold–warm–cold transitions in lowland regions, a refinement of theory, Geomorphology, 98, 275, 10.1016\u002Fj.geomorph.2006.12.030\nViseras, 2003, Differential features of alluvial fans controlled by tectonic or eustatic accommodation space. Examples from the Betic Cordillera, Spain, Geomorphology, 50, 181, 10.1016\u002FS0169-555X(02)00214-3\nWaltham, 2008, Stratigraphic modelling of turbidite prospects to reduce exploration risk, Petroleum Geoscience, 14, 273, 10.1144\u002F1354-079308-763\nWarrlich, 2008, 3D stratigraphic forward modelling for analysis and prediction of carbonate platform stratigraphies in exploration and production, Marine and Petroleum Geology, 25, 25, 10.1016\u002Fj.marpetgeo.2007.04.005\nWeissmann, 2002, Glacially driven cycles in accumulation space and sequence stratigraphy of a stream-dominated alluvial fan, San Joaquin Valley, California, U.S.A., Journal of Sedimentary Research, 72, 240, 10.1306\u002F062201720240\nWeissmann, 2005, Factors controlling sequence development on Quaternary fluvial fans, San Joaquin Basin, California, USA, London Special Publication, 251, 169, 10.1144\u002FGSL.SP.2005.251.01.12\nWells, 1987, Sedimentologic and geomorphic variations in storm-generated alluvial fans, Howgill Fells, northwest England, Geological Society of America, Bulletin, 98, 182, 10.1130\u002F0016-7606(1987)98\u003C182:SAGVIS>2.0.CO;2\nWhipple, 1996, Tectonic control of fan size: the importance of spatially variable subsidence rates, Basin Research, 8, 351, 10.1046\u002Fj.1365-2117.1996.00129.x\nWillgoose, 1991, Results from a model river basin evolution, Earth Surface Processes and Landforms, 16, 237, 10.1002\u002Fesp.3290160305\nWillis, 2000, The full-glacial forests of central and southeastern Europe, Quaternary Research, 53, 203, 10.1006\u002Fqres.1999.2119\nWu, J.E., McClay, K., Whitehouse, P., Dooley, T., 2009. 4D analogue modelling of transtensional pull apart basins. 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Appl., 314, 297, 10.1002\u002Frra.1160\nBollati, 2014, Reach-scale morphological adjustments and stages of channel evolution: the case of the Trebbia River (northern Italy), Geomorphology, 221, 176, 10.1016\u002Fj.geomorph.2014.06.007\nBrandt, 2000, Classification of geomorphological effects downstream of dams, Catena, 40, 375, 10.1016\u002FS0341-8162(00)00093-X\nBrandt, 1999, Sedimentological and geomorphological effects of reservoir flushing: the Cachí reservoir, Costa Rica, Geogr. Ann., 3, 391, 10.1111\u002Fj.0435-3676.1999.00069.x\nBrannstrom, 2000, Human modification of stream valleys in the western plateau of São Paulo, Brazil: implications for environmental narratives and management, Land Degrad. Dev., 11, 535, 10.1002\u002F1099-145X(200011\u002F12)11:6\u003C535::AID-LDR412>3.0.CO;2-L\nBrice, 1974, Evolution of meander loops, Geol. Soc. Am. Bull., 85, 581, 10.1130\u002F0016-7606(1974)85\u003C581:EOML>2.0.CO;2\nCâmara, 1996, SPRING: integrating remote sensing and GIS by object-oriented data modelling, Comput. Graph., 20, 395, 10.1016\u002F0097-8493(96)00008-8\nCamporeale, 2005, On the long-term behavior of meandering rivers, Water Resour. Res., 41, 10.1029\u002F2005WR004109\nCamporeale, 2008, Significance of cutoff in meandering river dynamics, J. Geophys. Res., 113, 10.1029\u002F2006JF000694\nCândido, 1971, Contribuição ao estudo dos meandramentos fluviais, Not. Geomorf., 11, 21\nCBH-AP (Comitê das bacias hidrográficas dos rios Aguapeí e Peixe).\nCBH-AP (Comitê das bacias hidrográficas dos rios Aguapeí e Peixe), 1997, Relatório de situação dos recursos hídricos das bacias hidrográficas dos rios Aguapeí e Peixe, Centro Tecnológico da Fundação Paulista\nCCG (Comissão Geographica e Geológica do estado de São Paulo)., 1913\nChiarini, 1976, Levantamento por fotointerpretação do uso atual das terras do Estado de São Paulo - culturas perenes e temporárias e pastagem, Boletim Tecnico IAC, 37\nConstantine, 2008, Meander cutoff and the controls on the production of oxbow lakes, Geology, 36, 23, 10.1130\u002FG24130A.1\nConstantine, 2014, Sediment supply as a driver of river evolution in the Amazon Basin, Nat. 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