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Chord Analyzing Based on Signal Processing
Chvoancova, E.
;
Hurtuk, J.
;
Palsa, J.
;
Skerlik, M.
;
Valko, D.
Angol nyelvű Konferenciaközlemény (Könyvrészlet) Tudományos
Megjelent:
IEEE [szerk.]. IEEE 20th Jubilee World Symposium on Applied Machine Intelligence and Informatics SAMI (2022): Proceedings. (2022) ISBN:9781665497046; 9781665497039
pp. 35-40
Azonosítók
MTMT: 33084684
DOI:
10.1109/SAMI54271.2022.9780687
Scopus:
85132139206
Egyéb URL:
https://ieeexplore.ieee.org/document/9780687/
The main aim of the presented paper is to create a web portal, which allows the user to reckognize the sequence of chords in the song. To recognize chords from an audio recording, it is necessary to use input signal processing methods such as constant Q-transform or harmonic pitch class profile. A categorization template is created for each supported chord that maximizes the match between the processed signal and the chord. Techniques such as temporal and spectral smoothing or detection of harmonic changes were used for preprocessing. Based on the evaluation methods, the best classification strategy was selected, whose success prediction accuracy reaches 75 percent. Success has been achieved through the use of machine learning techniques. The system is publicly available on the public domain for anyone interested in this type of service. © 2022 IEEE.
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2026-04-18 03:27
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