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trend-surface analysis
A systematic, science-driven approach for predicting subsurface properties
Pattern of Sediment Transport in a Microtidal River Mouth Using Geostatistical Sediment-Trend Analysis
Statistical analysis and data display at the Geochemical Prospecting Research Centre and Applied Geochemistry Research Group, Imperial College, London
Geologist-controlled trends versus computer-controlled trends: introducing a high-resolution approach to subsurface structural mapping using well-log data, trend surface analysis, and geospatial analysis A companion paper to Mei, S. 2009. New insights on faults in the Peace River Arch region, northwest Alberta, based on existing well-log data and refined trend surface analysis. Canadian Journal of Earth Sciences, 46 (1): 41–65.
New insights on faults in the Peace River Arch region, northwest Alberta, based on existing well-log data and refined trend surface analysis
New Madrid seismic zone fault geometry
Present-day tilting of the Great Lakes region based on water level gauges
IHS Energy's report on 10-year petroleum trends (1994–2003)
The use of Gaussian trend surfaces for modelling glacio-isostatic crustal rebound
Storms Consolidated Field, Illinois Basin: Identifying New Reserves in a Mature Area
Lake-gauge evidence for regional postglacial tilting in southern Manitoba
Refining TEM data from complicated areas by using trend surface analysis
Secondary-ion mass spectrometry and geology
Applications of Auger-electron spectroscopy to geochemistry
Permian longitudes of Wrangellia, Stikinia, and Eastern Klamath terranes based on coral biogeography
Structural Trend Analysis by Axial Surface Mapping
Biogeographic constraints for tectonic reconstructions of the Pacific region
Determination of the macroseismic field by means of trend and multivariate analysis of questionnaire data
Relations between ash-fusion characteristics and depositional environment for an Appalachian Basin coal seam
Ash-fusion characteristics of the Lower Kittanning seam (western Pennsylvania) can be related to environment of deposition. Non-slagging coals (coals with ashes that have ash-fusion temperatures [AFTs] in excess of 2,600°F) are associated with freshwater environments that occur toward the margins of the basin. Slagging coals (coals with ashes that melt at temperatures less than 2,200°F) occur in the central part of the basin, in areas overlain by shales that have been interpreted to have formed in a brackish environment. Trend-surface analysis indicates that whereas strong basinal trends do exist, locally variability can modify regional trends. High ash-fusion coals are associated with high clay (primarily kaolinite) contents, whereas low-fusion coals are associated with high pyrite and marcasite (and to a lesser extent, siderite) contents. Bivariate analysis of these data shows highly significant negative correlations between AFT and Fe 2 O 3 , pyrite, and siderite. Positive correlations exist between AFT and SiO 2 , Al 2 O 3 , TiO 2 , MgO, and K 2 O. Illite and kaolinite also correlate positively with AFT. An understanding of the oxide and mineral composition of the ash and the depositional environment of the peat can therefore be useful in the prediction of ash-fusion characteristics.