Improving Lithological Mapping by SVM Classification of Spectral and Morphological Features: The Discovery of a New Chromite Body in the Mawat Ophiolite Complex (Kurdistan, NE Iraq)
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[1] Fabio Del Frate,et al. Optical and SAR sensor synergies for forest and land cover mapping in a tropical site in West Africa , 2013, Int. J. Appl. Earth Obs. Geoinformation.
[2] Chengquan Huang,et al. Use of a dark object concept and support vector machines to automate forest cover change analysis , 2008 .
[3] D. D. Krezhova,et al. Development and testing of a statistical texture model for land cover classification of the Black Sea region with MODIS imagery , 2010 .
[4] Lawrence C. Rowan,et al. Hyperspectral analysis of the ultramafic complex and adjacent lithologies at Mordor, NT, Australia , 2004 .
[5] Paul M. Mather,et al. An evaluation of Landsat TM spectral data and SAR-derived textural information for lithological discrimination in the Red Sea Hills, Sudan , 1998 .
[6] Arko Lucieer,et al. apping invasive Fallopia japonica by combined spectral , spatial , and temporal nalysis of digital orthophotos , 2012 .
[7] M. Batistella,et al. A Comparative Study of Landsat TM and SPOT HRG Images for Vegetation Classification in the Brazilian Amazon. , 2008, Photogrammetric engineering and remote sensing.
[8] José Vicente Pérez-Peña,et al. CalHypso: An ArcGIS extension to calculate hypsometric curves and their statistical moments. Applications to drainage basin analysis in SE Spain , 2009, Comput. Geosci..
[9] Kurtis J. Thome,et al. Effects of assumed solar spectral irradiance on intercomparisons of Earth-observing sensors , 2001, Remote Sensing.
[10] T. J. Majumdar,et al. Utilization of Landsat ETM+ data for mineral-occurrences mapping over Dalma and Dhanjori, Jharkhand, India: an Advanced Spectral Analysis approach , 2011 .
[11] Gregory Asner,et al. Mapping Savanna Tree Species at Ecosystem Scales Using Support Vector Machine Classification and BRDF Correction on Airborne Hyperspectral and LiDAR Data , 2012, Remote. Sens..
[12] M. Caffee,et al. Temporally and spatially uniform rates of erosion in the southern Appalachian Great Smoky Mountains , 2003 .
[13] A. N. Strahler. Hypsometric (area-altitude) analysis of erosional topography. , 1952 .
[14] L. Rowan,et al. Lithologic mapping of the Mordor, NT, Australia ultramafic complex by using the Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) , 2005 .
[15] Jungho Im,et al. Support vector machines in remote sensing: A review , 2011 .
[16] Mazlan Hashim,et al. Processing and interpretation of advanced space-borne thermal emission and reflection radiometer (ASTER) data for lithological mapping in ophiolite complex , 2011 .
[17] Bertrand Meyer,et al. Zagros orogeny: a subduction-dominated process , 2011, Geological Magazine.
[18] Benjamin W. Heumann. An Object-Based Classification of Mangroves Using a Hybrid Decision Tree - Support Vector Machine Approach , 2011, Remote. Sens..
[19] S. Willett,et al. On steady states in mountain belts , 2002 .
[20] Shuhab D. Khan,et al. Lithological mapping of Bela ophiolite with remote-sensing data , 2011 .
[21] D. Leverington,et al. Landsat-TM-Based Discrimination of Lithological Units Associated with the Purtuniq Ophiolite, Quebec, Canada , 2012, Remote. Sens..
[22] Graham R. Hunt,et al. The use of near-infrared spectroscopy to determine the degree of serpentinization of ultramafic rocks , 1981 .
[23] Richard Gloaguen,et al. Evaluating SAR polarization modes at L-band for forest classification purposes in Eastern Amazon, Brazil , 2013, Int. J. Appl. Earth Obs. Geoinformation.
[24] Stefano Pignatti,et al. Evaluating Hyperion capability for land cover mapping in a fragmented ecosystem : Pollino National Park, Italy , 2009 .
[25] Wei Su,et al. Textural and local spatial statistics for the object‐oriented classification of urban areas using high resolution imagery , 2008 .
[26] Sankaran Rajendran,et al. Capability of advanced spaceborne thermal emission and reflection radiometer (ASTER) on discrimination of carbonates and associated rocks and mineral identification of eastern mountain region (Saih Hatat window) of Sultanate of Oman , 2011 .
[27] A. Brenning,et al. Balancing misclassification errors of land cover classification maps using support vector machines and Landsat imagery in the Maipo river basin (Central Chile, 1975–2010) , 2013 .
[28] Y. Yamaguchi,et al. Geological mapping of the Francistown area in northeastern Botswana by surface temperature and spectral emissivity information derived from Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) thermal infrared data , 2013 .
[29] Lei Liu,et al. Targeting Mineral Resources with Remote Sensing and Field Data in the Xiemisitai Area, West Junggar, Xinjiang, China , 2013, Remote. Sens..
[30] R. J. Pike,et al. Elevation-Relief Ratio, Hypsometric Integral, and Geomorphic Area-Altitude Analysis , 1971 .
[31] T. J. Majumdar,et al. Generation of emissivity and land surface temperature maps using MODIS TIR data for lithological mapping over the Singhbhum-Orissa Craton , 2012, Journal of the Geological Society of India.
[32] Hemin Koyi,et al. TECTONO‐STRATIGRAPHIC EVOLUTION OF THE NW SEGMENT OF THE ZAGROS FOLD‐THRUST BELT, KURDISTAN, NE IRAQ , 2013 .
[33] Abbas Bahroudi,et al. Support vector machine for multi-classification of mineral prospectivity areas , 2012, Comput. Geosci..
[34] Nancy F. Glenn,et al. Influence of rock strength on the valley morphometry of Big Creek, central Idaho, USA , 2009 .
[35] Daniel G. Brown,et al. Supervised classification of types of glaciated landscapes using digital elevation data , 1998 .
[36] J. R. Jensen. Remote Sensing of the Environment: An Earth Resource Perspective , 2000 .
[37] William B. White,et al. Existence of Chromous Ion in the Spinel Solid Solution Series FeCr2O4‐MgCr2O4 , 1966 .
[38] Jonathan Naden,et al. Integrating airborne multispectral imagery and airborne LiDAR data for enhanced lithological mapping in vegetated terrain , 2011 .
[39] Richard Gloaguen,et al. TecDEM: A MATLAB based toolbox for tectonic geomorphology, Part 2: Surface dynamics and basin analysis , 2011, Comput. Geosci..
[40] A. Ghulam,et al. Lithological mapping in the Central Eastern Desert of Egypt using ASTER data , 2010 .
[41] Y. Ninomiya,et al. Detecting lithology with Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) multispectral thermal infrared “radiance-at-sensor” data , 2005 .
[42] M. S. Moran,et al. Obtaining Surface Reflectance Factors from Atmospheric and View Angle Corrected SPOT-1 HRV Data , 1990 .
[43] Timothy M. Kusky,et al. Precambrian ophiolites and related rocks , 2004 .
[44] Xiangguo Lin,et al. SVM-Based Classification of Segmented Airborne LiDAR Point Clouds in Urban Areas , 2013, Remote. Sens..
[45] R. V. Morris,et al. Spectral reflectance‐compositional properties of spinels and chromites: Implications for planetary remote sensing and geothermometry , 2004 .
[46] M. Alavi. the Zagros erogenic belt of Iran: data and interpretations , 1994 .
[47] J. T. Hack. Interpretation of erosional topography in humid temperate regions. , 1960 .
[48] Nina S. N. Lam,et al. A comparison of local variance, fractal dimension, and Moran's I as aids to multispectral image classification , 2005 .
[49] A. Brenning,et al. Detecting rock glacier flow structures using Gabor filters and IKONOS imagery , 2012 .
[50] Robert M. Haralick,et al. Textural Features for Image Classification , 1973, IEEE Trans. Syst. Man Cybern..
[51] S. Gabr,et al. Detection of hydrothermal mineralized zones associated with listwaenites in Central Oman using ASTER data , 2013 .
[52] K. Tansey,et al. Lithological mapping of the Troodos ophiolite, Cyprus, using airborne LiDAR topographic data , 2010 .
[53] Abduwasit Ghulam,et al. ASTER detection of chromite bearing mineralized zones in Semail Ophiolite Massifs of the northern Oman Mountains: Exploration strategy , 2012 .
[54] D. Rothery,et al. Mapping in the Oman ophiolite using enhanced Landsat Thematic Mapper images , 1988 .
[55] Carlos Roberto de Souza Filho,et al. Spectroscopic characterization of oils yielded from Brazilian offshore basins: Potential applications of remote sensing , 2011 .
[56] Khalid J. A. Aswad,et al. The geochronology and petrogenesis of Walash volcanic rocks, Mawat nappes: constraints on the evolution of the northwestern Zagros suture zone, Kurdistan Region, Iraq , 2014, Arabian Journal of Geosciences.
[57] Roger N. Clark,et al. The US Geological Survey, digital spectral reflectance library: version 1: 0.2 to 3.0 microns , 1993 .
[58] Le Yu,et al. Towards automatic lithological classification from remote sensing data using support vector machines , 2010, Comput. Geosci..
[59] Arindam Guha,et al. nalysis of ASTER data for mapping bauxite rich pockets within high altitude ateritic bauxite , Jharkhand , India , 2012 .
[60] F. Pazzaglia. Landscape evolution models , 2003 .
[61] N. Rubinstein,et al. Hydrothermal alteration mapping using ASTER data in the Infiernillo porphyry deposit, Argentina , 2007 .
[62] Sildomar T. Monteiro,et al. Evaluating Classification Techniques for Mapping Vertical Geology Using Field-Based Hyperspectral Sensors , 2012, IEEE Transactions on Geoscience and Remote Sensing.
[63] Carlos Henrique Grohmann,et al. Morphometric analysis in geographic information systems: applications of free software GRASS and R , 2004, Comput. Geosci..
[64] A. Mather. Adjustment of a drainage network to capture induced base-level change: an example from the Sorbas Basin, SE Spain , 2000 .
[65] M. Gül,et al. Lithology Discrimination in Foreland Basin with Landsat TM , 2012, Journal of the Indian Society of Remote Sensing.
[66] Richard Gloaguen,et al. DEM-Based Analysis of Interactions between Tectonics and Landscapes in the Ore Mountains and Eger Rift (East Germany and NW Czech Republic) , 2014, Remote. Sens..
[67] Mark W. Williams,et al. Decision Tree and Texture Analysis for Mapping Debris-Covered Glaciers in the Kangchenjunga Area, Eastern Himalaya , 2012, Remote. Sens..
[68] G. Hunt. SPECTRAL SIGNATURES OF PARTICULATE MINERALS IN THE VISIBLE AND NEAR INFRARED , 1977 .
[69] S. Linden,et al. Support vector regression and synthetically mixed training data for quantifying urban land cover , 2013 .
[70] C. Patnaik,et al. Discrimination of mangrove forests and characterization of adjoining land cover classes using temporal C-band Synthetic Aperture Radar data: A case study of Sundarbans , 2013, Int. J. Appl. Earth Obs. Geoinformation.
[71] Mazlan Hashim,et al. The earth observing-1 (eo-1) satellite data for geological mapping, southeastern segment of the central Iranian volcanic belt, Iran , 2011 .
[72] Robin Gill,et al. Igneous Rocks and Processes: A Practical Guide , 2010 .
[73] A. Nair,et al. Lithological discrimination of the Phenaimata felsic–mafic complex, Gujarat, India, using the Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) , 2012 .
[74] Jordi Cristóbal,et al. Enhanced land use/cover classification of heterogeneous tropical landscapes using support vector machines and textural homogeneity , 2013, Int. J. Appl. Earth Obs. Geoinformation.
[75] Anne E. Mather,et al. Quantifying long-term catchment changes of alluvial fan systems , 2000 .
[76] Richard Gloaguen,et al. Automatic Extraction and Size Distribution of Landslides in Kurdistan Region, NE Iraq , 2013, Remote. Sens..
[77] Robert K. Vincent,et al. Spectral characterization and ASTER-based lithological mapping of an ophiolite complex: A case study from Neyriz ophiolite, SW Iran , 2011 .
[78] Rainer Zah,et al. Deriving fine-scale socioeconomic information of urban areas using very high-resolution satellite imagery , 2011 .
[79] Daniel Ierodiaconou,et al. Evaluation of Four Supervised Learning Methods for Benthic Habitat Mapping Using Backscatter from Multi-Beam Sonar , 2012, Remote. Sens..
[80] Jonathan Naden,et al. Application of airborne LiDAR data and airborne multispectral imagery to structural mapping of the upper section of the Troodos ophiolite, Cyprus , 2011, International Journal of Earth Sciences.
[81] K. Wegmann,et al. Miocene rejuvenation of topographic relief in the southern Appalachians , 2013 .
[82] Xiaojun Yang,et al. Parameterizing Support Vector Machines for Land Cover Classification , 2011 .
[83] Y. Ouma,et al. Analysis of co‐occurrence and discrete wavelet transform textures for differentiation of forest and non‐forest vegetation in very‐high‐resolution optical‐sensor imagery , 2008 .
[84] Lawrence C. Rowan,et al. Spectral assessment of new ASTER SWIR surface reflectance data products for spectroscopic mapping of rocks and minerals , 2010 .
[85] P. Gong,et al. Assessment of multi-resolution and multi-sensor data for urban surface temperature retrieval , 2006 .
[86] J. Stock,et al. Cenozoic evolution of Neotethys and implications for the causes of plate motions , 2003 .
[87] P. Sheik Mujabar,et al. Investigation of heavy-mineral deposits using multispectral satellite data , 2011 .
[88] T. Kusky,et al. ASTER spectral ratioing for lithological mapping in the Arabian–Nubian shield, the Neoproterozoic Wadi Kid area, Sinai, Egypt , 2007 .
[89] B. Markham,et al. Summary of Current Radiometric Calibration Coefficients for Landsat MSS, TM, ETM+, and EO-1 ALI Sensors , 2009 .
[90] Parviz Moarefvand,et al. Using ETM+ and ASTER sensors to identify iron occurrences in the Esfordi 1:100,000 mapping sheet of Central Iran , 2013 .
[91] Russell G. Congalton,et al. A review of assessing the accuracy of classifications of remotely sensed data , 1991 .
[92] Vladimir N. Vapnik,et al. The Nature of Statistical Learning Theory , 2000, Statistics for Engineering and Information Science.
[93] Albert Rango,et al. Temperature and emissivity separation from multispectral thermal infrared observations , 2002 .
[94] Richard Gloaguen,et al. River Courses Affected by Landslides and Implications for Hazard Assessment: A High Resolution Remote Sensing Case Study in NE Iraq-W Iran , 2013, Remote. Sens..
[95] Massimo Chiaradia,et al. Geochemistry and tectonic evolution of the Late Cretaceous Gogher–Baft ophiolite, central Iran , 2013 .
[96] M. Alavi,et al. Regional stratigraphy of the Zagros fold-thrust belt of Iran and its proforeland evolution , 2004 .
[97] Fred A. Kruse,et al. The Spectral Image Processing System (SIPS) - Interactive visualization and analysis of imaging spectrometer data , 1993 .
[98] Varoujan K. Sissakian,et al. Geological evolution of the Iraqi Mesopotamia Foredeep, inner platform and near surroundings of the Arabian Plate , 2013 .
[99] L. S. Davis,et al. An assessment of support vector machines for land cover classi(cid:142) cation , 2002 .
[100] L. Rowan,et al. Lithologic mapping in the Mountain Pass, California area using Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) data , 2003 .