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Iskanje ponavljajočih tem in vzorcev v glasbi s pomočjo kompozicionalnega hierarhičnega modela
ID Juvan, Urša (Author), ID Marolt, Matija (Mentor) More about this mentor... This link opens in a new window

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PID: 20.500.12556/rul/f447779f-a4f9-4d97-9658-129dafa57a77

Abstract
V magistrski nalogi se posvetimo iskanju ponavljajočih vzorcev v glasbi, kar spada na področje pridobivanja informacij iz glasbe. Uporabimo kompozicionalni hierarhični model, ki je bil izdelan za reševanje drugih nalog s tega področja, in ga prilagodimo za obdelavo skladb v simbolnem glasbenem zapisu ter iskanje ponavljajočih vzorcev. Za lažje testiranje in interpretacijo rezultatov implementiramo tudi vizualizacijo modela. Rezultate evalviramo na dveh zbirkah podatkov in jih primerjamo z rezultati ostalih raziskovalcev. Primerjava pokaže, da kompozicionalni hierarhični model enako dobro ali bolje kot ostali algoritmi najde veliko število ponovitev prepoznanega vzorca, nekoliko pa zaostaja v iskanju vsaj ene pojavitve čim več glasbeno relevantnih vzorcev. Za izboljšave šibkejših točk modela predlagamo več možnih rešitev ter podamo možnosti za njegov nadaljnji razvoj.

Language:Slovenian
Keywords:Pridobivanje informacij iz glasbe, iskanje vzorcev, kompozicionalni hierarhični model, simbolni glasbeni zapis
Work type:Master's thesis/paper
Organization:FRI - Faculty of Computer and Information Science
Year:2016
PID:20.500.12556/RUL-84652 This link opens in a new window
Publication date in RUL:30.08.2016
Views:1407
Downloads:495
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Secondary language

Language:English
Title:Discovery of Repeated Themes and Sections in Music with a Compositional Hierarchical Model
Abstract:
In this thesis we focus on the discovery of repeated patterns in music, one of the tasks in the research field of music information retrieval. We use a compositional hierarchical model, which was previously successfully applied to other tasks from this field, and adjust it to process symbolic music and find repeated patterns in musical pieces. In order to facilitate testing and interpretation of algorithm's output we develop a visual representation of the model. Results are evaluated on two datasets and compared to results of other researchers. Comparison shows that the proposed model is comparable to or better than other approaches in finding multiple repetitions of one pattern, but lags in identifying at least one occurrence of each structurally salient pattern. We propose several possible solutions for increasing the share of successfully identified salient patterns and suggest some guidelines for further development of the model.

Keywords:Music information retrieval, pattern discovery, compositional hierarchical model, symbolic music representation

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