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Creating a prediction model for weather forecasting based on artificial neural network supported by association rules mining / Vytvoření predikčního modelu předpovědi počasí pomocí neuronové sítě a asociačních pravidel

This diploma thesis introduces three different methods of creating a neural network binary classifier for the purpose of automated weather prediction with attribute pre-selection using association rules and correlation patters mining by the LISp-Miner system. First part of the thesis consists of collection of theoretical knowledge enabling the creation of such predictive model, whereas the second part describes the creation of the model itself using the CRISP-DM methodology. Final part of the thesis analyses the performance of created classifiers and concludes the proposed methods and their possible benefits over training the network without attribute pre-selection.

Identiferoai:union.ndltd.org:nusl.cz/oai:invenio.nusl.cz:203981
Date January 2016
CreatorsKadlec, Jakub
ContributorsRauch, Jan, Berka, Petr
PublisherVysoká škola ekonomická v Praze
Source SetsCzech ETDs
LanguageEnglish
Detected LanguageEnglish
Typeinfo:eu-repo/semantics/masterThesis
Rightsinfo:eu-repo/semantics/restrictedAccess

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