Modeling of water induced surface soil erosion and the potential risk zone prediction in a sub-tropical watershed of Eastern India
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[1] S. Samanta,et al. Estimation of Soil Loss Using Remote Sensing and Geographic Information System Techniques (case Study of Kaliaghai River Basin, Purba & Paschim Medinipur District, West Bengal, India) , 2011 .
[2] O. Rendon‐Herrero. unit sediment graph , 1978 .
[3] S. D. Angima,et al. Soil erosion prediction using RUSLE for central Kenyan highland conditions , 2003 .
[4] J. Poesen,et al. The European Soil Erosion Model (EUROSEM): A dynamic approach for predicting sediment transport from fields and small catchments. , 1998 .
[5] Guangxing Wang,et al. Spatial prediction and uncertainty analysis of topographic factors for the Revised Universal Soil Loss Equation (RUSLE) , 2000 .
[6] G. R. Foster,et al. RUSLE: Revised universal soil loss equation , 1991 .
[7] Baoyuan Liu,et al. Slope Length Effects on Soil Loss for Steep Slopes , 2000 .
[8] D.D.V. Morgan,et al. A predictive model for the assessment of soil erosion risk , 1984 .
[9] Rattan Lal,et al. No-tillage and soil-profile carbon sequestration : An on-farm assessment , 2008 .
[10] Loredana Antronico,et al. Soil erosion risk scenarios in the Mediterranean environment using RUSLE and GIS: An application model for Calabria (southern Italy) , 2009 .
[11] Lei Wang,et al. Estimation of soil erosion in some sections of Lower Jinsha River based on RUSLE , 2015, Natural Hazards.
[12] C. K. Mutchler,et al. Revised slope steepness factor for the universal soil loss equation , 1987 .
[13] A. Bera. Assessment of soil loss by universal soil loss equation (USLE) model using GIS techniques: a case study of Gumti River Basin, Tripura, India , 2017, Modeling Earth Systems and Environment.
[14] D. Dissanayake,et al. GIS-based soil loss estimation using RUSLE model: a case of Kirindi Oya river basin, Sri Lanka , 2018, Modeling Earth Systems and Environment.
[15] V. Prasannakumar,et al. Estimation of soil erosion risk within a small mountainous sub-watershed in Kerala, India, using Revised Universal Soil Loss Equation (RUSLE) and geo-information technology , 2012 .
[16] Alan J. Franzluebbers,et al. Principles of Soil Conservation and Management , 2010 .
[17] Gouri Sankar Bhunia,et al. Soil erosion risk mapping using RUSLE model on jhargram sub-division at West Bengal in India , 2015, Modeling Earth Systems and Environment.
[18] Joe W. Johnson. Distribution Graphs of Suspended-Matter Concentration , 1943 .
[19] Jagannath Aryal,et al. A geospatial approach to assessing soil erosion in a watershed by integrating socio-economic determinants and the RUSLE model , 2014, Natural Hazards.
[20] N. Stolpe. A comparison of the RUSLE, EPIC and WEPP erosion models as calibrated to climate and soil of south-central Chile , 2005 .
[21] Dengsheng Lu,et al. Mapping soil erosion risk in Rondônia, Brazilian Amazonia: using RUSLE, remote sensing and GIS , 2004 .
[22] Subodh Chandra Pal,et al. Application of forest canopy density model for forest cover mapping using LISS-IV satellite data: a case study of Sali watershed, West Bengal , 2018, Modeling Earth Systems and Environment.
[23] Murugesu Sivapalan,et al. A conceptual model of sediment transport: Application to the Avon River Basin in Western Australia , 1999 .
[24] Rabin Bhattarai,et al. Estimation of Soil Erosion and Sediment Yield Using GIS at Catchment Scale , 2007 .
[25] V. Uygur,et al. Estimating spatial distribution of soil loss over Seyhan River Basin in Turkey , 2007 .
[26] Swades Pal. Identification of soil erosion vulnerable areas in Chandrabhaga river basin: a multi-criteria decision approach , 2016, Modeling Earth Systems and Environment.
[27] H. Ramesh,et al. Assessment of soil erosion by RUSLE model using remote sensing and GIS - A case study of Nethravathi Basin , 2016 .
[28] C. Samuel. SOIL EROSION HAZARD ASSESSMENT USING USLE MODEL: A CASE STUDY OF LEGEDADI & DIRE RESERVOIR CATCHMENT , 2007 .
[29] Xu Yue-qing,et al. Adapting the RUSLE and GIS to model soil erosion risk in a mountains karst watershed, Guizhou Province, China , 2008, Environmental monitoring and assessment.
[30] S. Samanta,et al. Estimation of potential soil erosion rate using RUSLE and E30 model , 2016, Modeling Earth Systems and Environment.
[31] J. N. Kostler,et al. Roots of Forest Trees (Wurzeln der Waldbäume) , 1972 .
[32] K. Balasubramani,et al. Estimation of soil erosion in a semi-arid watershed of Tamil Nadu (India) using revised universal soil loss equation (rusle) model through GIS , 2015, Modeling Earth Systems and Environment.
[33] N. Haregeweyn,et al. Landscape changes and its consequences on soil erosion in Baro river basin, Ethiopia , 2018, Modeling Earth Systems and Environment.
[34] R. Pérez-Rodríguez,et al. Spatial variability of the soil erodibility parameters and their relation with the soil map at subgroup level. , 2007, The Science of the total environment.
[35] Suresh Kumar,et al. Identification of areas vulnerable to soil erosion risk in India using GIS methods , 2015 .
[36] Kyoung Jae Lim,et al. GIS-based sediment assessment tool , 2005 .
[37] U. C. Kothyari,et al. Estimation of soil erosion and sediment yield using GIS , 2000 .
[38] A. Pandey,et al. Identification of critical erosion prone areas in the small agricultural watershed using USLE, GIS and remote sensing , 2007 .
[39] Deepak Khare,et al. Impact assessment of climate change on future soil erosion and SOC loss , 2016, Natural Hazards.
[40] David J. Mulla,et al. Comparing landscape-scale estimation of soil erosion in the palouse using Cs-137 and RUSLE , 1993 .
[41] M. Adamo,et al. Remote sensing and GIS to assess soil erosion with RUSLE3D and USPED at river basin scale in southern Italy , 2015 .
[42] S. Dutta. Soil erosion, sediment yield and sedimentation of reservoir: a review , 2016, Modeling Earth Systems and Environment.
[43] I. Moore,et al. Length-slope factors for the Revised Universal Soil Loss Equation: simplified method of estimation , 1992 .
[44] T. L. Lyon,et al. The Nature and Properties of Soils , 1930 .
[45] J. Williams. A sediment graph model based on an instantaneous unit sediment graph , 1978 .
[46] Sunil Saha,et al. Application of weights-of-evidence (WoE) and evidential belief function (EBF) models for the delineation of soil erosion vulnerable zones: a study on Pathro river basin, Jharkhand, India , 2017, Modeling Earth Systems and Environment.
[47] G. R. Foster,et al. closed-form soil erosion equation for upland areas , 1972 .
[48] N. M. Alam,et al. Impact of conservation practices on soil aggregation and the carbon management index after seven years of maize–wheat cropping system in the Indian Himalayas , 2016 .
[49] J. Poesen,et al. Reply to discussion on ‘The European Soil Erosion Model (EUROSEM): a dynamic approach for predicting sediment transport from fields and small catchments’ , 1999 .
[50] Md. Rejaur Rahman,et al. Soil erosion hazard evaluation—An integrated use of remote sensing, GIS and statistical approaches with biophysical parameters towards management strategies , 2009 .
[51] Filippos Vallianatos,et al. Soil erosion prediction using the Revised Universal Soil Loss Equation (RUSLE) in a GIS framework, Chania, Northwestern Crete, Greece , 2009 .
[52] W. H. Wischmeier,et al. Predicting rainfall erosion losses : a guide to conservation planning , 1978 .
[53] Debasree Sinha,et al. Application of Universal Soil Loss Equation (USLE) to recently reclaimed badlands along the Adula and Mahalungi Rivers, Pravara Basin, Maharashtra , 2012, Journal of the Geological Society of India.
[54] A. Belasri,et al. Estimation of Soil Erosion Risk Using the Universal Soil Loss Equation (USLE) and Geo-Information Technology in Oued El Makhazine Watershed, Morocco , 2016 .
[55] Honglei Zhu,et al. RUSLE applied in a GIS framework: Calculating the LS factor and deriving homogeneous patches for estimating soil loss , 2005, Int. J. Geogr. Inf. Sci..
[56] D. Robinson,et al. Soil Erosion and Conservation , 1988 .
[57] P. Shit,et al. Spatial modelling of soil erosion susceptibility mapping in lower basin of Subarnarekha river (India) based on geospatial techniques , 2016, Modeling Earth Systems and Environment.
[58] Donald K. McCool,et al. Modeling the impacts of no-till practice on soil erosion and sediment yield with RUSLE, SEDD, and ArcView GIS , 2006 .
[59] G. R. Foster,et al. Predicting soil erosion by water : a guide to conservation planning with the Revised Universal Soil Loss Equation (RUSLE) , 1997 .
[60] O. Aladejana,et al. GIS-based estimation of soil erosion rates and identification of critical areas in Anambra sub-basin, Nigeria , 2016, Modeling Earth Systems and Environment.
[61] H. Vijith,et al. Identification of critical soil erosion prone areas and annual average soil loss in an upland agricultural watershed of Western Ghats, using analytical hierarchy process (AHP) and RUSLE techniques , 2015, Arabian Journal of Geosciences.
[62] S. Biswas,et al. Estimation of soil erosion using RUSLE and GIS techniques: a case study of Barakar River basin, Jharkhand, India , 2015, Modeling Earth Systems and Environment.
[63] Swades Pal,et al. Influences of soil erosion susceptibility toward overloading vulnerability of the gully head bundhs in Mayurakshi River basin of eastern Chottanagpur Plateau , 2018, Environment, Development and Sustainability.
[64] D. Dutta,et al. Soil erosion risk assessment in Sanjal watershed, Jharkhand (India) using geo-informatics, RUSLE model and TRMM data , 2015, Modeling Earth Systems and Environment.
[65] Sadhan Malik,et al. Morphometric Analysis for Hydrological Assessment using Remote Sensing and GIS Technique: A Case Study of Dwarkeswar River Basin of Bankura District, West Bengal , 2018 .
[66] I. Moore,et al. Physical basis of the length-slope factor in the universal soil loss equation , 1986 .
[67] S. Kushwaha,et al. Modelling soil erosion risk based on RUSLE-3D using GIS in a Shivalik sub-watershed , 2013, Journal of Earth System Science.
[68] Luca Montanarella,et al. Soil erosion risk assessment in Italy , 1999 .
[69] Shane Seaton,et al. New software to aid water quality management in the catchments and waterways of the south-east Queensland region , 2001 .
[70] Daniel C. Yoder,et al. The future of RUSLE: Inside the new Revised Universal Soil Loss Equation , 1995 .
[71] John R. Williams,et al. Sediment yield prediction based on watershed hydrology. , 1977 .
[72] J. C. Shickluna,et al. Soils. An Introduction to Soils and Plant Growth , 1972 .
[73] A. Karaburun,et al. Estimation of soil erosion using RUSLE in a GIS framework: a case study in the Buyukcekmece Lake watershed, northwest Turkey , 2012, Environmental Earth Sciences.
[74] Yasser Alashker,et al. Risk assessment of soil erosion in semi-arid mountainous watershed in Saudi Arabia by RUSLE model coupled with remote sensing and GIS , 2014 .
[75] P. K. Pandey,et al. Soil erosion risk assessment of hilly terrain through integrated approach of RUSLE and geospatial technology: a case study of Tirap District, Arunachal Pradesh , 2018, Modeling Earth Systems and Environment.
[76] Reuven H. Heiblum,et al. Analyzing coastal precipitation using TRMM observations , 2011 .
[77] Bo Du,et al. Regional soil erosion risk mapping using RUSLE, GIS, and remote sensing: a case study in Miyun Watershed, North China , 2011 .
[78] P. Kinnell. Discussion on ‘The European Soil Erosion Model (EUROSEM): a dynamic approach for predicting sediment transport from fields and small catchments’ , 1999 .
[79] J. Desloges,et al. Modelling surface geomorphic processes using the RUSLE and specific stream power in a GIS framework, NE Peloponnese, Greece , 2017, Modeling Earth Systems and Environment.
[80] S. Ghosh,et al. Soil Loss Estimation through USLE and MMF Methods in the Lateritic Tracts of Eastern Plateau Fringe of Rajmahal Traps, India , 2012 .
[81] Subodh Chandra Pal,et al. Application of RUSLE model for soil loss estimation of Jaipanda watershed, West Bengal , 2017, Spatial Information Research.
[82] Sunil Saha,et al. Prioritization of sub-watersheds for soil erosion based on morphometric attributes using fuzzy AHP and compound factor in Jainti River basin, Jharkhand, Eastern India , 2018, Environment, Development and Sustainability.
[83] G. R. Foster,et al. REVISED UNIVERSAL SOIL LOSS EQUATION , 2003 .
[84] Arabinda Sharma,et al. Integrating terrain and vegetation indices for identifying potential soil erosion risk area , 2010, Geo spatial Inf. Sci..
[85] K. Renard,et al. Dynamic Behavior Model of Ephemeral Stream , 1975 .
[86] Ghulam M. Hashim,et al. Prediction of Soil and Nutrient Losses in A Highland Catchment , 2005 .
[87] Anup Das,et al. Conservation agriculture towards achieving food security in North East India. , 2010 .
[88] J. A. Schell,et al. Monitoring vegetation systems in the great plains with ERTS , 1973 .
[89] Andrew A. Millward,et al. Adapting the RUSLE to model soil erosion potential in a mountainous tropical watershed , 1999 .