Assessing the hydrological and geomorphic behaviour of a landscape evolution model within a limits‐of‐acceptability uncertainty analysis framework
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[1] J. Freer,et al. The impact of different rainfall products on landscape modelling simulations , 2020, Earth Surface Processes and Landforms.
[2] D. Sear,et al. Using lake sediment archives to improve understanding of flood magnitude and frequency: Recent extreme flooding in northwest UK , 2019, Earth Surface Processes and Landforms.
[3] J. Kwang,et al. Extreme Memory of Initial Conditions in Numerical Landscape Evolution Models , 2019, Geophysical Research Letters.
[4] M. Lazzari,et al. Testing the Prediction Ability of LEM-Derived Sedimentary Budget in an Upland Catchment of the Southern Apennines, Italy: A Source to Sink Approach , 2019, Water.
[5] Thomas V. Schuler,et al. Parameter uncertainty analysis for an operational hydrological model using residual-based and limits of acceptability approaches , 2018, Hydrology and Earth System Sciences.
[6] N. Barrand,et al. Glacio-hydrological melt and run-off modelling: application of a limits of acceptability framework for model comparison and selection , 2018, The Cryosphere.
[7] Keith Beven,et al. The challenges of modelling phosphorus in a headwater catchment: Applying a ‘limits of acceptability’ uncertainty framework to a water quality model , 2018 .
[8] Greg Hancock,et al. Soil erosion predictions from a landscape evolution model - An assessment of a post-mining landform using spatial climate change analogues. , 2017, The Science of the total environment.
[9] G. Hancock,et al. Global sensitivity analysis of parameter uncertainty in landscape evolution models , 2017, Geoscientific Model Development.
[10] A. Whittaker,et al. Numerical modelling of landscape and sediment flux response to precipitation rate change , 2017 .
[11] Leonardo Noto,et al. The role of vegetation on gully erosion stabilization at a severely degraded landscape: A case study from Calhoun Experimental Critical Zone Observatory , 2016 .
[12] C. Skinner,et al. The sensitivity of landscape evolution models to spatial and temporal rainfall resolution , 2016 .
[13] G. Hancock,et al. Long-term landscape trajectory - Can we make predictions about landscape form and function for post-mining landforms? , 2016 .
[14] Tom J. Coulthard,et al. Predicting uncertainty in sediment transport and landscape evolution - the influence of initial surface conditions , 2016, Comput. Geosci..
[15] P. J. Smith,et al. A novel framework for discharge uncertainty quantification applied to 500 UK gauging stations , 2015, Water resources research.
[16] Ingmar Nopens,et al. Dynamic Identifiability Analysis-Based Model Structure Evaluation Considering Rating Curve Uncertainty , 2015 .
[17] Jefferson S. Wong,et al. Sensitivity of a hydraulic model to channel erosion uncertainty during extreme flooding , 2014 .
[18] S. Tarantola,et al. Reduced‐complexity modeling of braided rivers: Assessing model performance by sensitivity analysis, calibration, and validation , 2013 .
[19] P. Bates,et al. Integrating the LISFLOOD‐FP 2D hydrodynamic model with the CAESAR model: implications for modelling landscape evolution , 2013 .
[20] Chong-yu Xu,et al. Exploring the hydrological robustness of model‐parameter values with alpha shapes , 2013 .
[21] J. Freer,et al. Benchmarking observational uncertainties for hydrology: rainfall, river discharge and water quality , 2012 .
[22] A. Fares,et al. Comparison of Rainfall Interpolation Methods in a Mountainous Region of a Tropical Island , 2011 .
[23] Keith Beven,et al. Stage‐discharge uncertainty derived with a non‐stationary rating curve in the Choluteca River, Honduras , 2011 .
[24] Jeroen M. Schoorl,et al. Evaluating choices in multi-process landscape evolution models , 2011 .
[25] Keith Beven,et al. Calibration of hydrological models using flow-duration curves , 2010 .
[26] Keith J. Beven,et al. Environmental Modelling: An Uncertain Future?: An Introduction to Techniques for Uncertainty Estimation in Environmental Prediction , 2010 .
[27] Jim Freer,et al. Ensemble evaluation of hydrological model hypotheses , 2010 .
[28] P. Bates,et al. A simple inertial formulation of the shallow water equations for efficient two-dimensional flood inundation modelling. , 2010 .
[29] Florian Pappenberger,et al. Impacts of uncertain river flow data on rainfall‐runoff model calibration and discharge predictions , 2010 .
[30] G. Tucker,et al. Modelling landscape evolution , 2010 .
[31] Hubert H. G. Savenije,et al. On the calibration of hydrological models in ungauged basins: A framework for integrating hard and soft hydrological information , 2009 .
[32] K. Beven,et al. A limits of acceptability approach to model evaluation and uncertainty estimation in flood frequency estimation by continuous simulation: Skalka catchment, Czech Republic , 2009 .
[33] J. Schoorl,et al. Can uncertain landscape evolution models discriminate between landscape responses to stable and changing future climate? A millennial-scale test , 2009 .
[34] G. Hancock. A catchment scale assessment of increased rainfall and storm intensity on erosion and sediment transport for Northern Australia , 2009 .
[35] R. Chiverrell,et al. Testing a cellular modelling approach to simulating late-Holocene sediment and water transfer from catchment to lake in the French Alps since 1826 , 2009 .
[36] R. Hatfield,et al. Holocene sediment dynamics in an upland temperate lake catchment: climatic and land-use impacts in the English Lake District , 2009 .
[37] Jim Freer,et al. Towards a limits of acceptability approach to the calibration of hydrological models : Extending observation error , 2009 .
[38] R. Hatfield,et al. Suspended sediment characterization and tracing using a magnetic fingerprinting technique: Bassenthwaite Lake, Cumbria, UK , 2008 .
[39] M. Wiel,et al. Quantifying Fluvial Non Linearity and Finding Self Organized Criticality? Insights from Simulations of River Basin Evolution , 2007 .
[40] J. Ritchie. Soil Erosion and Sediment Redistribution in River Catchments: Measurement, Modelling and Management , 2007 .
[41] M. Macklin,et al. Embedding reach-scale fluvial dynamics within the CAESAR cellular automaton landscape evolution model , 2007 .
[42] S. Sorooshian,et al. Multi-model ensemble hydrologic prediction using Bayesian model averaging , 2007 .
[43] P. Mantovan,et al. Hydrological forecasting uncertainty assessment: Incoherence of the GLUE methodology , 2006 .
[44] Martyn P. Clark,et al. Multi‐objective calibration of forecast ensembles using Bayesian model averaging , 2006 .
[45] Keith Beven,et al. Influence of uncertain boundary conditions and model structure on flood inundation predictions. , 2006 .
[46] Keith Beven,et al. Fuzzy set approach to calibrating distributed flood inundation models using remote sensing observations , 2006 .
[47] Qingyun Duan,et al. An integrated hydrologic Bayesian multimodel combination framework: Confronting input, parameter, and model structural uncertainty in hydrologic prediction , 2006 .
[48] Keith Beven,et al. A manifesto for the equifinality thesis , 2006 .
[49] R. T. Clarke,et al. The use of Bayesian methods for fitting rating curves, with case studies , 2005 .
[50] Alberto Montanari,et al. Large sample behaviors of the generalized likelihood uncertainty estimation (GLUE) in assessing the uncertainty of rainfall‐runoff simulations , 2005 .
[51] M. Macklin,et al. Modelling differential catchment response to environmental change , 2005 .
[52] J. Hooke,et al. A simulation model of morphological, vegetation and sediment changes in ephemeral streams , 2005 .
[53] G. Heuvelink,et al. DEM resolution effects on shallow landslide hazard and soil redistribution modelling , 2005 .
[54] R. Bras,et al. Modeling the effects of vegetation‐erosion coupling on landscape evolution , 2004 .
[55] Tom J. Coulthard,et al. Modeling long-term contamination in river systems from historical metal mining , 2003 .
[56] P. Wilcock,et al. Surface-based Transport Model for Mixed-Size Sediment , 2003 .
[57] Roman Krzysztofowicz,et al. Bayesian system for probabilistic river stage forecasting , 2002 .
[58] M. Kirkby,et al. A cellular model of Holocene upland river basin and alluvial fan evolution , 2002 .
[59] Greg Hancock,et al. Testing of the SIBERIA landscape evolution model using the Tin Camp Creek, Northern Territory, Australia, field catchment , 2002 .
[60] Keith Beven,et al. Equifinality, data assimilation, and uncertainty estimation in mechanistic modelling of complex environmental systems using the GLUE methodology , 2001 .
[61] Tom J. Coulthard,et al. How sensitive are river systems to climate and land‐use changes? A model‐based evaluation , 2001 .
[62] J. Poesen,et al. Variability of dry sediment bulk density between and within retention ponds and its impact on the calculation of sediment yields , 2001 .
[63] T. Sturm,et al. Open Channel Hydraulics , 2001 .
[64] Tom J. Coulthard,et al. Modelling geomorphic response to environmental change in an upland catchment , 2000 .
[65] Jeroen M. Schoorl,et al. Three-dimensional landscape process modelling : the effect of DEM resolution , 2000 .
[66] N. Asselman. Fitting and interpretation of sediment rating curves , 2000 .
[67] N. Trustrum,et al. Erosion thresholds and suspended sediment yields, Waipaoa River Basin, New Zealand , 2000 .
[68] Greg Hancock,et al. Medium-term erosion simulation of an abandoned mine site using the SIBERIA landscape evolution model , 2000 .
[69] P. Goovaerts. Geostatistical approaches for incorporating elevation into the spatial interpolation of rainfall , 2000 .
[70] Keith Beven,et al. Flood frequency estimation by continuous simulation for a gauged upland catchment (with uncertainty) , 1999 .
[71] George Kuczera,et al. Monte Carlo assessment of parameter uncertainty in conceptual catchment models: the Metropolis algorithm , 1998 .
[72] Michael A. Ellis,et al. Landsliding and the evolution of normal‐fault‐bounded mountains , 1998 .
[73] G. Tucker,et al. Erosional dynamics, flexural isostasy, and long-lived escarpments: A numerical modeling study , 1994 .
[74] P. Wilson. Ploughing‐boulder characteristics and associated soil properties in the Lake District and southern Scotland , 1993 .
[75] Rafael L. Bras,et al. Sensitivity of a basin evolution model to the nature of runoff production and to initial conditions , 1992 .
[76] Keith Beven,et al. The future of distributed models: model calibration and uncertainty prediction. , 1992 .
[77] J. Fitton. The Geology of the Lake District , 1980, Mineralogical Magazine.
[78] W. Cleveland. Robust Locally Weighted Regression and Smoothing Scatterplots , 1979 .
[79] K. Beven,et al. A physically based, variable contributing area model of basin hydrology , 1979 .
[80] D. Walling. Assessing the accuracy of suspended sediment rating curves for a small basin , 1977 .
[81] R. Folk,et al. Brazos River bar [Texas]; a study in the significance of grain size parameters , 1957 .
[82] H. R. Mill. Bathymetrical Survey of the English Lakes , 1895 .
[83] A. D. Burnett,et al. Streamflow , 2022, Atlas of Yellowstone.
[84] M. Macklin,et al. Modelling the response of river systems to environmental change: Progress, problems and prospects for palaeo-environmental reconstructions , 2011 .
[85] P. Wilson. Lake District Mountain Landforms , 2010 .
[86] J. Warburton. Sediment Transfer in Steep Upland Catchments (Northern England, UK): Landform and Sediment Source Coupling , 2009 .
[87] D. Milledge,et al. Assessment of shallow landslide activity following the January 2005 storm, Northern Cumbria. , 2008 .
[88] David Hinkley,et al. Bootstrap Methods: Another Look at the Jackknife , 2008 .
[89] P. Owens,et al. Soil erosion and sediment redistribution in river catchments: summary, outlook and future requirements. , 2006 .
[90] K. Beven. Equifinality and Uncertainty in Geomorphological Modelling , 2001 .
[91] D. Culler,et al. Comparison of methods , 2000 .
[92] R. Ferguson. Accuracy and precision of methods for estimating river loads , 1987 .
[93] B. Efron. Bootstrap Methods: Another Look at the Jackknife , 1979 .