2020
DOI: 10.1007/s12517-020-05437-0
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New input selection procedure for machine learning methods in estimating daily global solar radiation

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Cited by 36 publications
(8 citation statements)
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“…For soil microbial biomass carbon, using the chloroform fumigation K2SO4 extraction method, put 95 ml of a fresh soil sample equivalent to 5 g of dry soil (2 mm sieve) into a small white bottle, and then put the small white bottle into vacuum drying in the box. At the same time, put 3 beakers containing ethanol-free chloroform into an appropriate amount of silica sand to prevent the waterfall from boiling, and then put them into a beaker of dilute NaOH solution and a small beaker of distilled water for fumigation for 24 h (Biazar et al 2020). At the same time, the same soil weight was weighed as a control group.…”
Section: Determination Of Basic Soil Properties and Activated Carbon Componentsmentioning
confidence: 99%
“…For soil microbial biomass carbon, using the chloroform fumigation K2SO4 extraction method, put 95 ml of a fresh soil sample equivalent to 5 g of dry soil (2 mm sieve) into a small white bottle, and then put the small white bottle into vacuum drying in the box. At the same time, put 3 beakers containing ethanol-free chloroform into an appropriate amount of silica sand to prevent the waterfall from boiling, and then put them into a beaker of dilute NaOH solution and a small beaker of distilled water for fumigation for 24 h (Biazar et al 2020). At the same time, the same soil weight was weighed as a control group.…”
Section: Determination Of Basic Soil Properties and Activated Carbon Componentsmentioning
confidence: 99%
“…The GT is a powerful tool for identifying the best input scenarios that are applied in various fields, such as determining the inputs for predicting groundwater (Azadi et al, 2020), determining the inputs for modeling evaporation (Malik et al, 2020a), input selection for predicting solar radiation (Biazar et al, 2020), and selection of the best inputs for evapotranspiration (Seifi and Riahi, 2020). Assume a set of data based on the following equation:…”
Section: Improved Gamma Testmentioning
confidence: 99%
“…Over time, for optimizing the nonlinear problems, the ML models, including the support vector machine (SVM), have been utilized in numerous fields such as for predicting the penetration rate of tunnel-boring machines [33], solar radiation prediction [34], streamflow forecasting [35], landslide hazard modelling [36][37][38], seawater level simulation [39], forecasting electric load [40], and infiltration simulation [41,42]. The SVM approach was recommended by Vapnik [43] and derived from statistical learning theory to solve classification and regression problems [44].…”
Section: Support Vector Machinementioning
confidence: 99%