Mapping of geological complexity and analyzing its relationship with the distribution of gold deposits in the Guangxi Gold Ore Province, Southern China
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L. Yang | E. Carranza | Qingfei Wang | Qizuan Zhang | Li Feng | Xing Le | Changhao Xiao | Yushan Zeng | Yushan Zeng | J. Lu | Shicai Huang | Jipu Lu | Shicai Huang | Qingfei Wang
[1] M. Yousefi,et al. Translation of the function of hydrothermal mineralization-related focused fluid flux into a mappable exploration criterion for mineral exploration targeting , 2023, Applied Geochemistry.
[2] L. Yang,et al. Texture and geochemistry of pyrite from the Jinya, Nakuang and Gaolong gold deposits in the Youjiang Basin: implications for basin-scale gold mineralization , 2022, Mineralium Deposita.
[3] L. Yang,et al. Contrasting Anomaly Patterns of Magmatic–Hydrothermal Polymetallic and Orogenic Gold Deposits and their Suitable Exploration Methods: A Case Study from the Qinling Orogen , 2022, Natural Resources Research.
[4] M. Barbieri,et al. A regional-scale geochemical survey of stream sediment samples in Nappe zone, northern Tunisia: Implications for mineral exploration , 2022, Journal of Geochemical Exploration.
[5] A. Abedini,et al. Primary geochemical haloes and alteration zoning applied to gold exploration in the Zarshuran Carlin-type deposit, northwestern Iran , 2021 .
[6] D. Groves,et al. Towards a universal model for orogenic gold systems: A perspective based on Chinese examples with geodynamic, temporal, and deposit-scale structural and geochemical diversity , 2021, Earth-Science Reviews.
[7] Chunzeng Wang,et al. Neoproterozoic to Palaeozoic tectonic deformation history of the western Jiangnan Orogen, South China: Insights from new structural and geochronological data from northern Guangxi , 2021, Geological Journal.
[8] R. Zuo,et al. Visualization and interpretation of geochemical exploration data using GIS and machine learning methods , 2021, Applied Geochemistry.
[9] K. Khalil,et al. Stream sediment geochemical exploration for gold in Central Eastern Desert, Egypt: Application of the concentration-number fractal model, factor analysis, and geochemical mineralization probability index , 2021, Geochemistry.
[10] R. Zuo,et al. Recognition of multivariate geochemical anomalies associated with mineralization using an improved generative adversarial network , 2021 .
[11] M. Santosh,et al. Conditions and processes leading to large-scale gold deposition in the Jiaodong province, eastern China , 2021, Science China Earth Sciences.
[12] R. Zuo,et al. Detection of the multivariate geochemical anomalies associated with mineralization using a deep convolutional neural network and a pixel-pair feature method , 2021, Applied Geochemistry.
[13] Qingfei Wang,et al. Genesis of end-Guadalupian bauxite and pyrite deposits in the Youjiang Basin (South China): Insights into the causative link between magmatic events and mass extinction , 2021 .
[14] E. Carranza. Fuzzy Modeling of Surficial Uranium Prospectivity in British Columbia (Canada) with a Weighted Fuzzy Algebraic Sum Operator , 2021, Journal of Earth Science.
[15] M. Silva,et al. Geochemical anomalies from a survey of stream sediments in the Maquelab area (Oecusse, Timor-Leste) and their bearing on the identification of mafic-ultramafic chromite rich complex , 2021 .
[16] J. Nzenti,et al. Identifying multi-metal prospect using regional soil and stream sediment geochemical data in Bidou, Nyong Series, North West of Congo Craton , 2021, Arabian Journal of Geosciences.
[17] Peter A. Cawood,et al. Triassic two-stage intra-continental orogensis of the South China Block, driven by Paleotethyan closure and interactions with adjoining blocks , 2021 .
[18] Xin Qian,et al. The assembly of the South China and Indochina blocks: Constraints from the Triassic felsic volcanics in the Youjiang Basin , 2020, GSA Bulletin.
[19] L. Yang,et al. Multi-stage tectonics and metallogeny associated with Phanerozoic evolution of the South China Block: A holistic perspective from the Youjiang Basin , 2020 .
[20] P. Afzal,et al. Classification of pyrite types using fractal and stepwise factor analyses in the Chah Zard gold-silver epithermal deposit, Central Iran , 2020, Geochemistry: Exploration, Environment, Analysis.
[21] Juan Liao,et al. Flat-slab subduction and formation of “intraplate” porphyry deposits: Insights from the Jurassic high and low La/Yb ore-forming porphyries along the Qin-Hang belt, South China , 2020 .
[22] L. Yang,et al. Recognition of two contrasting structural- and mineralogical-gold mineral systems in the Youjiang basin, China-Vietnam: Orogenic gold in the south and Carlin-type in the north , 2020 .
[23] D. Groves,et al. A scale-integrated exploration model for orogenic gold deposits based on a mineral system approach , 2020, Geoscience Frontiers.
[24] Shouyu Chen,et al. Identifying Geochemical Anomalies Associated with Gold Mineralization Using Factor Analysis and Spectrum–Area Multifractal Model in Laowan District, Qinling-Dabie Metallogenic Belt, Central China , 2020, Minerals.
[25] Qian-hong Wu,et al. Geochemical factors revealing the differences between the Xitian and Dengfuxian composite plutons, middle Qin-Hang Belt: Implications to the W–Sn mineralization , 2020 .
[26] T. Barry,et al. Late Jurassic high-Mg andesites in the Youjiang Basin and their significance for the southward continuation of the Jiangnan Orogen, South China , 2020 .
[27] M. Abedi,et al. Generation of an efficient structural evidence layer for mineral exploration targeting , 2019 .
[28] H. Torshizian,et al. Detection of metallic prospects using staged factor and fractal analysis in Zouzan region, NE Iran , 2019 .
[29] Mark J. Mihalasky,et al. Stream sediment geochemical data analysis for district-scale mineral exploration targeting: Measuring the performance of the spatial U-statistic and C-A fractal modeling , 2019, Ore Geology Reviews.
[30] J. Hronsky. Deposit-scale structural controls on orogenic gold deposits: an integrated, physical process–based hypothesis and practical targeting implications , 2019, Mineralium Deposita.
[31] Renguang Zuo,et al. ArcFractal: An ArcGIS Add-In for Processing Geoscience Data Using Fractal/Multifractal Models , 2019, Natural Resources Research.
[32] D. Groves,et al. A holistic model for the origin of orogenic gold deposits and its implications for exploration , 2019, Mineralium Deposita.
[33] G. Wang,et al. Mesozoic tectono-magmatic response in the East Asian ocean-continent connection zone to subduction of the Paleo-Pacific Plate , 2019, Earth-Science Reviews.
[34] Qingfei Wang,et al. Proto- to Paleo-Tethyan evolution of the eastern margin of Simao block , 2018, Gondwana Research.
[35] D. Groves,et al. Carlin-style gold deposits, Youjiang Basin, China: tectono-thermal and structural analogues of the Carlin-type gold deposits, Nevada, USA , 2018, Mineralium Deposita.
[36] D. Groves,et al. Structural geometry of orogenic gold deposits: Implications for exploration of world-class and giant deposits , 2018, Geoscience Frontiers.
[37] R. Hu,et al. Carlin-Type Gold Deposits in the Dian-Qian-Gui “Golden Triangle” of Southwest China , 2018 .
[38] Q. Cheng,et al. New Insights into Element Distribution Patterns in Geochemistry: A Perspective from Fractal Density , 2018, Natural Resources Research.
[39] P. Filzmoser,et al. A new method for correlation analysis of compositional (environmental) data - a worked example. , 2017, The Science of the total environment.
[40] L. Yang,et al. Identification and mapping of geochemical patterns and their significance for regional metallogeny in the southern Sanjiang, China , 2017 .
[41] Peter A. Cawood,et al. Permo-Triassic detrital records of South China and implications for the Indosinian events in East Asia , 2017 .
[42] D. Peacock,et al. Quantifying structural controls on fluid flow: Insights from carbonate-hosted fault damage zones on the Maltese Islands , 2017 .
[43] Guochun Zhao,et al. Permo-Triassic structural evolution of the Shiwandashan and Youjiang structural belts, South China , 2017 .
[44] Wen-Xin Yang,et al. Early to Middle Triassic sedimentary records in the Youjiang Basin, South China: Implications for Indosinian orogenesis , 2017 .
[45] E. Carranza,et al. Enhancement and Mapping of Weak Multivariate Stream Sediment Geochemical Anomalies in Ahar Area, NW Iran , 2017, Natural Resources Research.
[46] Mei-Fu Zhou,et al. The giant South China Mesozoic low-temperature metallogenic domain: Reviews and a new geodynamic model , 2017 .
[47] D. Wyman,et al. Orogenic gold and the mineral systems approach: Resolving fact, fiction and fantasy , 2016 .
[48] Qingfei Wang,et al. Gold mineralization in China: Metallogenic provinces, deposit types and tectonic framework , 2016 .
[49] M. Yousefi,et al. Delineation of geochemical anomalies based on stream sediment data utilizing fractal modeling and staged factor analysis , 2016 .
[50] V. Lisitsin,et al. Mineral system analysis: Quo vadis , 2016 .
[51] P. Duuring,et al. BIF-hosted iron mineral system : A review , 2016 .
[52] Peter A. Cawood,et al. Intraplate orogenesis in response to Gondwana assembly: Kwangsian Orogeny, South China , 2016, American Journal of Science.
[53] Emmanuel John M. Carranza,et al. An AHP–TOPSIS Predictive Model for District-Scale Mapping of Porphyry Cu–Au Potential: A Case Study from Salafchegan Area (Central Iran) , 2016, Natural Resources Research.
[54] Song Wu,et al. Textures and In Situ Chemical and Isotopic Analyses of Pyrite, Huijiabao Trend, Youjiang Basin, China: Implications for Paragenesis and Source of Sulfur , 2016 .
[55] Wei Lin,et al. Triassic tectonics of the southern margin of the South China Block , 2016 .
[56] D. Groves,et al. Orogenic gold: Common or evolving fluid and metal sources through time , 2015 .
[57] Mahyar Yousefi,et al. Prediction-area (P-A) plot and C-A fractal analysis to classify and evaluate evidential maps for mineral prospectivity modeling , 2015, Comput. Geosci..
[58] Peter A. Cawood,et al. Late Paleozoic to Early Mesozoic provenance record of Paleo‐Pacific subduction beneath South China , 2015 .
[59] M. Santosh,et al. Tectonics and metallogeny of mainland Southeast Asia — A review and contribution , 2014 .
[60] Xueqiu Wang,et al. Application of factor analysis and concentration-volume fractal modeling to delineation of 3D geochemical patterns: a case study of the Jinwozi gold field, NW China , 2014 .
[61] Q. Cheng,et al. Mapping of Fe mineralization-associated geochemical signatures using logratio transformed stream sediment geochemical data in eastern Tianshan, China , 2014 .
[62] E. Carranza,et al. Application of staged factor analysis and logistic function to create a fuzzy stream sediment geochemical evidence layer for mineral prospectivity mapping , 2014 .
[63] Wei Lin,et al. The South China block-Indochina collision: Where, when, and how? , 2014 .
[64] J. Malpas,et al. Detrital zircon record of Neoproterozoic active-margin sedimentation in the eastern Jiangnan Orogen, South China , 2013 .
[65] Guochun Zhao,et al. Precambrian geology of China: Preface , 2012 .
[66] Qingfei Wang,et al. The fractal relationship between orebody tonnage and thickness , 2012 .
[67] Peter A. Cawood,et al. Detrital record of Indosinian mountain building in SW China: Provenance of the Middle Triassic turbidites in the Youjiang Basin , 2012 .
[68] E. Carranza,et al. Geochemical mineralization probability index (GMPI): A new approach to generate enhanced stream sediment geochemical evidential map for increasing probability of success in mineral potential mapping , 2012 .
[69] Renguang Zuo,et al. Identifying geochemical anomalies associated with Cu and Pb–Zn skarn mineralization using principal component analysis and spectrum–area fractal modeling in the Gangdese Belt, Tibet (China) , 2011 .
[70] Jing Zhang,et al. A multifractal analysis of mineralization characteristics of the Dayingezhuang disseminated-veinlet gold deposit in the Jiaodong gold province of China , 2011 .
[71] E. Carranza. Analysis and mapping of geochemical anomalies using logratio-transformed stream sediment data with c , 2011 .
[72] P. Moarefvand,et al. Delineation of mineralization zones in porphyry Cu deposits by fractal concentrationvolume modeling , 2011 .
[73] Huan Liu,et al. Fractal models for estimating local reserves with different mineralization qualities and spatial var , 2011 .
[74] Qingfei Wang,et al. Deformation model for the Tongling ore cluster region,east-central China , 2011 .
[75] Emmanuel John M. Carranza,et al. Catchment basin modelling of stream sediment anomalies revisited: incorporation of EDA and fractal analysis , 2010 .
[76] Huan Liu,et al. Tonnage-cutoff model and average grade-cutoff model for a single ore deposit , 2010 .
[77] Jun Deng,et al. Delineation and explanation of geochemical anomalies using fractal models in the Heqing area, Yunnan Province, China , 2010 .
[78] E. Carranza. Mapping of anomalies in continuous and discrete fields of stream sediment geochemical landscapes , 2010 .
[79] T. Baker,et al. Active fault and shear processes and their implications for mineral deposit formation and discovery , 2010 .
[80] Jun Deng,et al. Fractal models for ore reserve estimation , 2010 .
[81] Huan Liu,et al. Self-similar fractal analysis of gold mineralization of Dayingezhuang disseminated-veinlet deposit in Jiaodong gold province, China , 2009 .
[82] T. Pettke,et al. Sediment-Hosted Gold Deposits in Guizhou, China: Products of Wall-Rock Sulfidation by Deep Crustal Fluids , 2009 .
[83] Wei Lin,et al. Phanerozoic tectonics of south China block: New insights from the polyphase deformation in the Yunkai massif , 2008 .
[84] Q. Cheng. Non-Linear Theory and Power-Law Models for Information Integration and Mineral Resources Quantitative Assessments , 2008 .
[85] D. Groves,et al. Science of targeting: definition, strategies, targeting and performance measurement , 2008 .
[86] Peter A. Cawood,et al. Indosinian high‐strain deformation for the Yunkaidashan tectonic belt, south China: Kinematics and 40Ar/39Ar geochronological constraints , 2007 .
[87] S. Occhipinti,et al. Early history of the eastern Sibao Orogen (South China) during the assembly of Rodinia: New mica 40Ar/39Ar dating and SHRIMP U-Pb detrital zircon provenance constraints , 2007 .
[88] Q. Cheng. Mapping singularities with stream sediment geochemical data for prediction of undiscovered mineral deposits in Gejiu, Yunnan Province, China , 2007 .
[89] D. Groves,et al. Complexity gradients in the Yilgarn Craton: Fundamental controls on crustal-scale fluid flow and the formation of world-class orogenic-gold deposits , 2005 .
[90] G. Mateu-Figueras,et al. Isometric Logratio Transformations for Compositional Data Analysis , 2003 .
[91] Changjiang Li,et al. Application of a fractal method relating concentrations and distances for separation of geochemical anomalies from background , 2003 .
[92] Jianming Liu,et al. Sediment-hosted micro-disseminated gold mineralization constrained by basin paleo-topographic highs in the Youjiang basin, South China , 2002 .
[93] X. Bi,et al. Geology and geochemistry of Carlin-type gold deposits in China , 2002 .
[94] Mark A. Knackstedt,et al. Principles of Structural Control on Permeability and Fluid Flow in Hydrothermal Systems , 2001 .
[95] Q. Cheng,et al. Integrated Spatial and Spectrum Method for Geochemical Anomaly Separation , 2000 .
[96] D. Groves,et al. First evidence of >3.2 Ga continental crust in the Yangtze craton of south China and its implications for Archean crustal evolution and Phanerozoic tectonics , 2000 .
[97] S. Cox. Deformational controls on the dynamics of fluid flow in mesothermal gold systems , 1999, Geological Society, London, Special Publications.
[98] Xie Xuejing,et al. Geochemical mapping in China , 1997 .
[99] Qiuming Cheng,et al. Discrete multifractals , 1997 .
[100] Xixi Zhao,et al. Isotopic and paleomagnetic constraints on the Mesozoic tectonic evolution of south China , 1996 .
[101] Qiuming Cheng,et al. Multifractal modeling and spatial statistics , 1996 .
[102] Q. Cheng,et al. The separation of geochemical anomalies from background by fractal methods , 1994 .
[103] H. Kaiser. The Application of Electronic Computers to Factor Analysis , 1960 .