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Impressão digital de áudio×Algoritmo de Detecção de Altura×
ÁreaRecuperação de informação musicalRecuperação de informação musical
FamíliaMachine learningMachine learning
Ano de origem20022002
Autor originalJeroen HaitsmaAlain de Cheveigné
TipoPerceptual audio hashingFundamental frequency estimation
Fonte seminalHaitsma, J., & Kalker, T. (2002). A highly robust audio fingerprinting system. In Proceedings of the International Symposium on Music Information Retrieval. link ↗de Cheveigné, A., & Kawahara, H. (2002). YIN, a fundamental frequency estimator for speech and music. The Journal of the Acoustical Society of America, 111(4), 1917-1930. DOI ↗
Outros nomesrobust hashing, perceptual hashing, music identificationf0 detection, fundamental frequency tracking, monophonic pitch extraction
Relacionados55
ResumoAudio fingerprinting is a technique for creating a compact, robust identifier (fingerprint) for audio recordings that uniquely represents the content while being tolerant to modifications such as compression, noise, or time-shifting. Introduced by Haitsma and Kalker (2002), it underlies music identification services like Shazam and is critical for copyright enforcement, music matching, and library deduplication. A fingerprint is not a waveform hash; it captures perceptual content and remains stable across reasonable audio alterations.Pitch detection (or fundamental frequency estimation) is the task of automatically determining the perceived pitch of a monophonic (single-source) audio signal at each moment in time. Formalized by de Cheveigné and Kawahara (2002) through the YIN algorithm, it is foundational to music and speech processing. Pitch detection enables vocal analysis, music transcription, instrument tuning, and speech analysis. Monophonic pitch is unambiguous; polyphonic pitch detection is fundamentally harder and a distinct problem.
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ScholarGateComparar métodos: Audio Fingerprinting · Pitch Detection Algorithm. Recuperado em 2026-06-18 de https://scholargate.app/pt/compare