يعرض 1 - 20 نتائج من 39 نتيجة بحث عن '"Area ratio method"', وقت الاستعلام: 0.57s تنقيح النتائج
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    المصدر: International Journal of Environmental Research and Public Health; Volume 19; Issue 20; Pages: 13055

    جغرافية الموضوع: agris

    وصف الملف: application/pdf

    Relation: Chemoenvironment; https://dx.doi.org/10.3390/ijerph192013055

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    وصف الملف: application/pdf

    Relation: Fry, L. M.; Hunter, T. S.; Phanikumar, M. S.; Fortin, V.; Gronewold, A. D. (2013). "Identifying streamgage networks for maximizing the effectiveness of regional water balance modeling." Water Resources Research 49(5): 2689-2700.; https://hdl.handle.net/2027.42/98795; Water Resources Research; Pietroniro, A., et al. ( 2007 ), Development of the MESH modelling system for hydrological ensemble forecasting of the Laurentian Great Lakes at the regional scale, Hydrol. Earth Syst. Sci., 11 ( 4 ), 1279 – 1294, doi:10.5194/hess‐11‐1279‐2007.; McIntyre, N., H. Lee, H. Wheater, A. Young, and T. Wagener ( 2005 ), Ensemble predictions of runoff in ungauged catchments, Water Resour. Res., 41, W12434, doi:10.1029/2005WR004289.; Milly, P. C. D., J. Betancourt, M. Falkenmark, R. M. Hirsch, W. Zbigniew, D. P. Lettenmaier, and R. J. Stouffer ( 2008 ), Stationarity is dead: Whither water management? Science, 319 (February), 573 – 574.; Mishra, A., and P. Coulibaly ( 2010 ), Hydrometric network evaluation for Canadian watersheds, J. Hydrol., 380 ( 3–4 ), 420 – 437, doi:10.1016/j.jhydrol.2009.11.015.; Moriasi, D. N., J. G. Arnold, M. W. Van Liew, R. L. Bingner, R. D. Harmel, and T. L. Veith ( 2007 ), Model evaluation guidelines for systematic quantification of accuracy in watershed simulations, Trans. Am. Soc. Agric. Biol. Eng., 50 ( 3 ), 885 – 900.; Nippgen, F., B. L. McGlynn, L. A. Marshall, and R. E. Emanuel ( 2011 ), Landscape structure and climate influences on hydrologic response, Water Resour. Res., 47, W12528, doi:10.1029/2011WR011161.; Noto, L., and G. La Loggia ( 2007 ), Derivation of a distributed unit hydrograph integrating GIS and remote sensing, J. Hydrol. Eng., 12 ( 6 ), 639 – 650, doi:10.1061/?ASCE?1084‐0699?2007?12:6?639?.; Reichl, J. P. C., A. W. Western, N. R. McIntyre, and F. H. S. Chiew ( 2009 ), Optimization of a similarity measure for estimating ungauged streamflow, Water Resour. Res., 45, W10423, doi:10.1029/2008WR007248.; Robertson, D. M., and D. A. Saad ( 2011 ), Nutrient inputs to the Laurentian Great Lakes by source and watershed estimated using SPARROW watershed models., J. Am. Water Resour. Assoc., 47 ( 5 ), 1011 – 1033, doi:10.1111/j.1752‐1688.2011.00574.x.; Sawicz, K., T. Wagener, M. Sivapalan, P. A. Troch, and G. Carrillo ( 2011 ), Catchment classification: empirical analysis of hydrologic similarity based on catchment function in the eastern USA, Hydrol. Earth Syst. Sci., 15 ( 9 ), 2895 – 2911, doi:10.5194/hess‐15‐2895‐2011.; Shen, C., J. Niu, and M.S. Phanikumar ( 2013 ), Evaluating controls on coupled hydrologic and vegetation dynamics in a humid continental climate watershed using a subsurface–land surface processes model, Water Resour. Res., doi:10.1002/wrcr.20189.; Singh, R., T. Wagener, K. van Werkhoven, M. E. Mann, and R. Crane ( 2011 ), A trading‐space‐for‐time approach to probabilistic continuous streamflow predictions in a changing climate accounting for changing watershed behavior, Hydrol. Earth Syst. Sci., 15 ( 11 ), 3591 – 3603, doi:10.5194/hess‐15‐3591‐2011.; Sivapalan, M., K. Takeuchi, S. W. Franks, V. K. Gupta, H. Karambiri, and V. Lakshmi ( 2003 ), IAHS Decade on Predictions in Ungauged Basins (PUB), 2003–2012: Shaping an Exciting Future for the Hydrological Sciences, Hydrol. Sci., 48 ( 6 ), 857 – 880, doi:10.1623/hysj.48.6.857.51421.; United Nations Department of Economic and Social Affairs ( 2012 ), World urbanization prospects: The 2011 revision, Tech. Rep., ST/ESA/SER.A/322, United Nations, New York.; Vrugt, J. A., and C. J. F. Ter Braak ( 2011 ), DREAM(D): an adaptive Markov Chain Monte Carlo simulation algorithm to solve discrete, noncontinuous, and combinatorial posterior parameter estimation problems, Hydrol. Earth Syst. Sci., 15 ( 12 ), 3701 – 3713, doi:10.5194/hess‐15‐3701‐2011.; Wagener, T., and A. Montanari ( 2011 ), Convergence of approaches toward reducing uncertainty in predictions in ungauged basins, Water Resour. Res., 47, W06301, doi:10.1029/2010WR009469.; Wagener, T., M. Sivapalan, P. Troch, and R. Woods ( 2007 ), Catchment classification and hydrologic similarity, Geogr. Compass, 1 ( 4 ), 901 – 931, doi:10.1111/j.1749‐8198.2007.00039.x.; Wood, E. F., et al. ( 2011 ), Hyperresolution global land surface modeling: Meeting a grand challenge for monitoring Earth's terrestrial water, Water Resour. Res., 47, W05301, doi:10.1029/2010WR010090.; Yadav, M., T. Wagener, and H. Gupta ( 2007 ), Regionalization of constraints on expected watershed response behavior for improved predictions in ungauged basins, Adv. Water Resour., 30 ( 8 ), 1756 – 1774, doi:10.1016/j.advwatres.2007.01.005.; Zambrano‐Bigiarini, M. ( 2011 ), hydroGOF: Goodness‐Of‐Fit Functions for Comparison of Simulated and Observed Hydrological Time Series, R package version 0.3‐2. [Available at http://CRAN.R‐project.org/package=hydroGOF.]; Zhang, Z., T. Wagener, P. Reed, and R. Bhushan ( 2008 ), Reducing uncertainty in predictions in ungauged basins by combining hydrologic indices regionalization and multiobjective optimization, Water Resour. Res., 44, W00B04, doi:10.1029/2008WR006833.; Anderson, E. J., D. J. Schwab, and G. A. Lang ( 2010 ), Real‐time hydraulic and hydrodynamic model of the St. Clair River, Lake St. Clair, Detroit River system, J. Hydraul. Eng., 136 ( 8 ), 507 – 518, doi:10.1061/(ASCE)HY.1943‐7900.0000203.; Andrews, F., B. Croke, and A. J. Jakeman ( 2011 ), An open software environment for hydrological model assessment and development, Environ. Model. Software, 26 ( 10 ), 1171 – 1185, doi:10.1016/j.envsoft.2011.04.006.; Archfield, S. A., and R. M. Vogel ( 2010 ), Map correlation method: Selection of a reference streamgage to estimate daily streamflow at ungaged catchments, Water Resour. Res., 46, W10513, doi:10.1029/2009WR008481.; Beven, K. ( 2007 ), Towards integrated environmental models of everywhere: uncertainty, data and modelling as a learning process, Hydrol. Earth Syst. Sci., 11 ( 1 ), 460 – 467, doi:10.5194/hess‐11‐460‐2007.; Beven, K., and J. Freer ( 2001 ), Equifinality, data assimilation, and uncertainty estimation in mechanistic modelling of complex environmental systems using the GLUE methodology, J. Hydrol., 249 ( 1–4 ), 11 – 29, doi:10.1016/S0022‐1694(01)00421‐8.; Bulygina, N., N. Mcintyre, and H. Wheater ( 2009 ), Conditioning rainfall‐runoff model parameters for ungauged catchments and land management impacts analysis, Hydrol. Earth Syst. Sci., 13 ( 6 ), 893 – 904.; Carrillo, G., P. A. Troch, M. Sivapalan, T. Wagener, C. Harman, and K. Sawicz ( 2011 ), Catchment classification: hydrological analysis of catchment behavior through process‐based modeling along a climate gradient, Hydrol. Earth Syst. Sci., 15 ( 11 ), 3411 – 3430, doi:10.5194/hess‐15‐3411‐2011.; Coon, W. F., E. A. Murphy, D. T. Soong, and J. B. Sharpe ( 2011 ), Compilation of watershed models for tributaries to the Great Lakes, United States, as of 2010, and identification of watersheds for future modeling for the Great Lakes Restoration Initiative, U.S. Geol. Surv. Open‐File Rep. 2011‐1202, U.S. Geol. Surv., Reston, Va.; Croley, II, T. E., and H. C. Hartmann ( 1986 ), NOAA technical memorandum ERL GLERL‐61: Near‐real‐time forecasting of large‐lake water supplies; a user's manual, Tech. Rep., ERL GLERL‐61, U.S. Dept. of Commer., Nat. Oceanic and Atmos. Admin., Great Lakes Environ. Res. Lab., Ann Arbor, Mich.; Croley, II, T. E., and C. He ( 2002 ), Great Lakes Large Basin runoff modeling, paper presented at Second Federal Interagency Hydrologic Modeling Conference, Subcommittee on Hydrology of the Interagency Advisory Committee on Water Data, Las Vegas, Nev.; Deacu, D., V. Fortin, E. Klyszejko, C. Spence, and P. D. Blanken ( 2012 ), Predicting the Net Basin Supply to the Great Lakes with a hydrometeorological model, J. Hydrometeorol., 13, 1739–1759, doi:10.1175/JHM‐D‐11‐0151.1.; Doherty, J. ( 2011 ), Modeling: Picture perfect or abstract art? Ground Water, 49 ( 4 ), 455, doi:10.1111/j.1745‐6584.2011.00812.x.; Doherty, J., and J. M. Johnston ( 2003 ), Methodologies for calibration and predictive analysis of a watershed model, J. Am. Water Works Assoc., 39 ( 2 ), 251 – 265, doi:10.1111/j.1752‐1688.2003.tb04381.x.; Emerson, D. G., A. V. Vecchia, and A. L. Dahl ( 2005 ), Evaluation of drainage‐area ratio method used to estimate streamflow for the Red River of the North Basin, North Dakota and Minnesota, Scientific Investigations Rep. 20055017, U.S. Geol. Surv. (USGS), Reston, Va.; Fry, J., G. Xian, S. Jin, J. Dewitz, C. Homer, L. Yang, C. Barnes, N. Herold, and J. Wickham ( 2011 ), Completion of the 2006 National Land Cover Database for the conterminous United States, Photogramm. Eng. Remote Sensing, 77 ( 9 ), 858 – 864.; Grimaldi, S., A. Petroselli, G. Alonso, and F. Nardi ( 2010 ), Flow time estimation with spatially variable hillslope velocity in ungauged basins, Adv. Water Resour., 33 ( 10 ), 1216 – 1223, doi:10.1016/j.advwatres.2010.06.003.; Gronewold, A. D., and V. Fortin ( 2012 ), Advancing Great Lakes hydrological science through targeted binational collaborative research, Bull. Am. Meteorol. Soc., 93 ( 12 ), 1921 – 1925, doi:10.1175/BAMS‐D‐12‐00006.1.; Gronewold, A. D., A. H. Clites, T. S. Hunter, and C. A. Stow ( 2011 ), An appraisal of the Great Lakes advanced hydrologic prediction system, J. Great Lakes Res., 37 ( 3 ), 577 – 583, doi:10.1016/j.jglr.2011.06.010.; Holtschlag, D. ( 2009 ), Application guide for AFINCH (Analysis of Flows in Networks of Channels) described by NHDPlus, Sci. Invest. Rep. 2009–5188, U.S. Geol. Surv., Reston, Va.; Hortness, J. E. ( 2006 ), Estimating low‐flow frequency statistics for unregulated streams in Idaho, Sci. Invest. Rep. 20065035, U.S. Geol. Surv. (USGS), Reston, Va.; Hunt, R., M. Anderson, and V. Kelson ( 1998 ), Improving a complex finite‐difference ground water flow model through the use of an analytic element screening model, Ground Water, 36 ( 6 ), 1011 – 1017.; Jencso, K. G., and B. L. McGlynn ( 2011 ), Hierarchical controls on runoff generation: Topographically driven hydrologic connectivity, geology, and vegetation, Water Resour. Res., 47, W11527, doi:10.1029/2011WR010666.; Juckem, P. F., P. C. Reneau, and D. M. Robertson ( 2012 ), Estimation of natural historical flows for the Manitowish River near Manitowish Waters, Wisconsin, Sci. Invest. Rep. 20125135, U.S. Geol. Surv. (USGS), Reston, Va.; Kay, A. L., D. A. Jones, S. M. Crooks, T. R. Kjeldsen, and C. F. Fung ( 2007 ), An investigation of site‐similarity approaches to generalisation of a rainfall‐runoff model, Hydrol. Earth Syst. Sci., 11 ( 1 ), 500 – 515, doi:10.5194/hess‐11‐500‐2007.; Legates, D. R., and G. McCabe Jr. ( 1999 ), Evaluating the use of “goodness‐of‐fit” measures in hydrologic and hydroclimatic model validation, Water Resour. Res., 35 ( 1 ), 233 – 241, doi:10.1029/1998WR900018.; Lofgren, B. M. ( 2004 ), A model for simulation of the climate and hydrology of the Great Lakes basin, J. Geophys. Res., 109, 1 – 20, doi:10.1029/2004JD004602.; Mao, D., and K. A. Cherkauer ( 2009 ), Impacts of land‐use change on hydrologic responses in the Great Lakes region, J. Hydrol., 374 ( 1–2 ), 71 – 82, doi:10.1016/j.jhydrol.2009.06.016.; Martin, E. H., C. Kelleher, and T. Wagener ( 2012 ), Has urbanization changed ecological streamflow characteristics in Maine (USA)? Hydrol. Sci., 57 ( 7 ), 1337 – 1354.

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    المؤلفون: Shu, Chang, Ouarda, Taha B. M. J.

    وصف الملف: application/pdf

    Relation: https://espace.inrs.ca/id/eprint/7298/1/P2145.pdf; Shu, Chang et Ouarda, Taha B. M. J. (2012). Improved methods for daily streamflow estimates at ungauged sites. Water Resources Research , vol. 48 , nº 2. W02523. DOI:10.1029/2011WR011501 .

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    المساهمون: Pritchin, B

    المصدر: At. Energ. (USSR) 26: 456-7(May 1969) as paper No. 299/4686.; Other Information: Orig. Receipt Date: 31-DEC-71

    وصف الملف: Medium: X