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Besedilno iskanje po neoznačenih zbirkah terenskih posnetkov ljudske glasbe
ID Isovski, Matic (Author), ID Marolt, Matija (Mentor) More about this mentor... This link opens in a new window

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Abstract
V dobi digitalizacije se pogosto soočamo z izzivi pri organizaciji in iskanju po zvočnih arhivih ljudske glasbe, katerih potencial ostaja zaradi pomanjkanja metapodatkov in jezikovnih posebnosti pogosto neizkoriščen. V tem delu predstavimo cevovod za avtomatsko indeksiranje in učinkovito besedilno iskanje v obsežnih arhivih terenskih posnetkov ljudske glasbe. Z uporabo naprednih metod zvočne segmentacije, ločevanja zvočnih virov, razpoznave govora in mehkega ujemanja nizov omogočamo besedilno iskanje po arhivu posnetkov, kljub različnim in prepletajočim se vrstam vsebin, vključno z govorom, solističnim petjem, zborovskim petjem in instrumentalno glasbo. Predlagana rešitev se izkaže kot učinkovito orodje pri iskanju po arhivih, tudi ob nepopolnih prepisih, ter predstavlja pomemben prispevek k raziskovanju in ohranjanju kulturne dediščine. Ob evalvaciji sistema na umetno ustvarjenem korpusu doseže 95-odstotno natančnost.

Language:Slovenian
Keywords:besedilno iskanje, terenski posnetki, arhiv ljudske glasbe, razpoznava govora, mehko ujemanje, pridobivanje glasbenih informacij
Work type:Master's thesis/paper
Typology:2.09 - Master's Thesis
Organization:FRI - Faculty of Computer and Information Science
Year:2024
PID:20.500.12556/RUL-166031 This link opens in a new window
COBISS.SI-ID:220040451 This link opens in a new window
Publication date in RUL:18.12.2024
Views:406
Downloads:178
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Secondary language

Language:English
Title:Text-based search in unlabeled collections of field recordings of folk music
Abstract:
In the digital age, we often face challenges in organizing and searching audio archives of folk music, whose potential frequently remains underutilized due to a lack of metadata and linguistic particularities. In this work, we present a pipeline for automatic indexing and efficient text-based search in extensive archives of folk music field recordings. By using advanced methods of audio segmentation, source separation, speech recognition, and fuzzy string matching, we enable text-based search across recording archives, despite the varied and overlapping types of content, including speech, solo singing, choral singing, and instrumental music. The proposed solution has proven to be an effective tool for searching archives, even with incomplete transcriptions, and represents a significant contribution to the research and preservation of cultural heritage. When evaluated on an artificially degraded corpus, the system achieves 95% accuracy.

Keywords:text-based search, field recordings, folk music archives, speech recognition, fuzzy matching, music information retrieval

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