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dc.contributor.authorSari, Nadia Roosmalita
dc.contributor.authorMahmudy, Wayan Firdaus
dc.contributor.authorWibawa, Aji P.
dc.contributor.authorSantika, Gayatri Dwi
dc.date.accessioned2019-12-31T07:10:10Z
dc.date.available2019-12-31T07:10:10Z
dc.date.issued2019-10-16
dc.identifier.urihttp://repository.unej.ac.id/handle/123456789/96914
dc.descriptionProceeding The 2019 International Conference on Computer Science, Information Technology and Electrical Engineering (ICOMITEE)en_US
dc.description.abstractInflation is a phenomenon of increasing prices on a continuous basis which results in the increase of other goods. This study proposes the Neural Fuzzy System (NFS) as a method to predict the rate of inflation in Indonesia. To improve the accuracy, the weight at this stage of Neural Network to be determined correctly. So, this research using Genetic Algorithms to determine the best weights in the training process. This weight can be used to obtained output thorough testing process. Then, it can be processed again in the next step using FIS Sugeno until obtained the end forecasting result. To increase more accurate forecasting results, the establishment of fuzzy rules must be specified correctly. It takes a novelty that minimizes the number of fuzzy rules by dividing the initial parameter into the two (positive and negative) on stage Neural Network. So, the fuzzy rules generated less. To measure the accuracy of the system used the RMSE technique. Based on this result, the proposed method obtained for 0.89.en_US
dc.language.isoenen_US
dc.publisherFakultas Ilmu Komputer - UNEJen_US
dc.subjectinflationen_US
dc.subjectforecastingen_US
dc.subjectoptimization Neural Fuzzy Systemen_US
dc.subjectRoot Mean Square Error (RMSE)en_US
dc.titleWeight Optimization of The Neural Fuzzy System (NFS) Using Genetic Algorithm for Forecastingen_US
dc.typeArticleen_US
dc.identifier.kodeprodiKODEPRODI2410101#Sistem Informasi
dc.identifier.nidnNIDN0016019201


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