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1 个结果
  • 简介:Animprovedenergydemandforecastingmodelisbuiltbasedontheautoregressivedistributedlag(ARDL)boundstestingapproachandanadaptivegeneticalgorithm(AGA)toobtaincredibleenergydemandforecastingresults.TheARDLboundsanalysisisfirstemployedtoselecttheappropriateinputvariablesoftheenergydemandmodel.Aftertheexistenceofacointegrationrelationshipinthemodelisconfirmed,theAGAisthenemployedtooptimizethecoefficientsofbothlinearandquadraticformswithgrossdomesticproduct,economicstructure,urbanization,andtechnologicalprogressastheinputvariables.Onthebasisofhistoricalannualdatafrom1985to2015,thesimulationresultsindicatethattheproposedmodelhasgreateraccuracyandreliabilitythanconventionaloptimizationmethods.ThepredictedresultsoftheproposedmodelalsodemonstratethatChinawilldemandapproximately4.9,5.6,and6.1billionstandardtonsofcoalequivalentin2020,2025,and2030,respectively.

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