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dc.contributor.advisorMawengkang, Herman
dc.contributor.advisorSitumorang, Zakarias
dc.contributor.authorLestari, Valencya
dc.date.accessioned2023-02-17T03:50:01Z
dc.date.available2023-02-17T03:50:01Z
dc.date.issued2022
dc.identifier.urihttps://repositori.usu.ac.id/handle/123456789/81955
dc.description.abstractArtificial neural networks are information processing systems that have certain performance characteristics in common with biological neural networks. Backpropagation is a method in artificial neural networks that uses supervised learning. Backpropagation has a weakness in reaching the convergence level. The convergence rate is the difference from the mean square error value. The mean square error is the difference between the target value and the actual value. One way to increase the convergence rate is to provide input values. in this study using the nguyen widrow backpropagation method. The network will predict Tuberculosis cases. Data sourced from the North Sumatra Provincial Health Office from 2019 to 2021. architectural testing with a learning rate ranging from -0.5 to 0.5 and momentum ranging from 0 to 1 obtained a learning rate of 0.5, the epoch process stops at the 172nd iteration with an achievement gradient of 0.0001598 and the R value for training data is 0.99841 which means it is very good because it is close to 1 with an accuracy rate of 81.82%.en_US
dc.language.isoiden_US
dc.publisherUniversitas Sumatera Utaraen_US
dc.subjectArtificial Neural Networken_US
dc.subjectBackpropagationen_US
dc.subjectMean Square Erroren_US
dc.subjectNguyen Widrowen_US
dc.subjectRate Convergenceen_US
dc.titleAnalisis Kinerja Jaringan Syaraf Tiruan untuk Memprediksi Kasus Tuberkulosis Paru dengan Metode Backpropagationen_US
dc.typeThesisen_US
dc.identifier.nimNIM207038054
dc.identifier.nidnNIDN8859540017
dc.identifier.kodeprodiKODEPRODI55101#Teknik Informatika
dc.description.pages89 Halamanen_US
dc.description.typeTesis Magisteren_US


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