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Recognition of Emotions in Mexican Spanish Speech: An Approach Based on Acoustic Modelling of Emotion-Specific Vowels

机译:墨西哥西班牙语语音中的情绪识别:一种基于情绪特定元音声学模型的方法

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摘要

An approach for the recognition of emotions in speech is presented. The target language is Mexican Spanish, and for this purpose a speech database was created. The approach consists in the phoneme acoustic modelling of emotion-specific vowels. For this, a standard phoneme-based Automatic Speech Recognition (ASR) system was built with Hidden Markov Models (HMMs), where different phoneme HMMs were built for the consonants and emotion-specific vowels associated with four emotional states (anger, happiness, neutral, sadness). Then, estimation of the emotional state from a spoken sentence is performed by counting the number of emotion-specific vowels found in the ASR's output for the sentence. With this approach, accuracy of 87–100% was achieved for the recognition of emotional state of Mexican Spanish speech.
机译:提出了一种识别语音情感的方法。目标语言是墨西哥西班牙语,并为此创建了语音数据库。该方法包括特定情感元音的音素声学建模。为此,使用隐马尔可夫模型(HMM)构建了基于标准音素的自动语音识别(ASR)系统,其中针对与四种情绪状态(愤怒,幸福,中立)相关的辅音和特定于情绪的元音构建了不同的音素HMM。 ,悲伤)。然后,通过对在句子的ASR输出中找到的特定于情绪的元音进行计数,可以根据口头句子对情绪状态进行估算。通过这种方法,在识别墨西哥西班牙语语音的情绪状态时,可以达到87-100%的准确度。

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