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스펙트로그램의 ONMF 와 Eigenvalue 분석을 통한 음성 감정 인식

Title
스펙트로그램의 ONMF 와 Eigenvalue 분석을 통한 음성 감정 인식
Authors
송재윤
Date Issued
2010
Publisher
포항공과대학교
Abstract
Recognizing human emotion from speech signals suffers from uncertainties in both representation and measurement. The traditional approach to representation has been to observe temporal variations of the spectrogram to extract emotion cues. In this paper, we propose a new representation scheme called the Orthogonal Nonnegative Matrix Factorization(ONMF) feature, which is considered to be more related to the human auditory cortex. Unlike previous approaches, this representation scheme removes temporal variations by extracting static spectral information only. This method greater relates to prosodic of linguistic structures. The algorithm has been tested by comparing other algorithms, and providing the speech database. As expected, the ONMF features reveal highly consistent properties in regards to differing emotional classes, as well as robust properties for age.
URI
http://postech.dcollection.net/jsp/common/DcLoOrgPer.jsp?sItemId=000000546552
https://oasis.postech.ac.kr/handle/2014.oak/579
Article Type
Thesis
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