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Studying and enhancing talking condition recognition in stressful and emotional talking environments based on HMMs, CHMM2s and SPHMMs

机译:研究和增强基于HMM,CHMM2和SPHMM的压力和情感谈话环境中的谈话条件识别

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The work of this research is devoted to studying and enhancing talking condition recognition in stressful and emotional talking environments (completely two separate environments) based on three different and separate classifiers. The three classifiers are: Hidden Markov Models (HMMs), Second-Order Circular Hidden Markov Models (CHMM2s) and Suprasegmental Hidden Markov Models (SPHMMs). The stressful talking environments that have been used in this work are composed of neutral, shouted, slow, loud, soft and fast talking conditions, while the emotional talking environments are made up of neutral, angry, sad, happy, disgust and fear emotions. The achieved results in the current work show that SPHMMs lead each of HMMs and CHMM2s in improving talking condition recognition in stressful and emotional talking environments. The results also demonstrate that talking condition recognition in stressful talking environments outperforms that in emotional talking environments by 2.7%, 1.8% and 3.3% based on HMMs, CHMM2s and SPHMMs, respectively. Based on subjective assessment by human judges, the recognition performance of stressful talking conditions leads that of emotional ones by 5.2%.
机译:这项研究的工作致力于基于三个不同且独立的分类器,在压力和情感交谈环境(完全两个独立的环境)中研究和增强交谈条件识别。这三个分类器是:隐马尔可夫模型(HMM),二阶圆形隐马尔可夫模型(CHMM2)和超分段隐马尔可夫模型(SPHMM)。这项工作中使用的压力性谈话环境由中立,大喊,缓慢,响亮,柔和和快速的谈话条件组成,而情绪性谈话环境则由中立,愤怒,悲伤,快乐,厌恶和恐惧情绪组成。在当前工作中取得的结果表明,SPHMM领先于HMM和CHMM2在改善压力和情感谈话环境中的谈话条件识别方面。结果还表明,基于HMM,CHMM2和SPHMM,在压力谈话环境中的谈话条件识别分别比在情绪谈话环境中的识别条件高出2.7%,1.8%和3.3%。根据人类法官的主观评估,压力性谈话条件的识别性能比情绪性谈话条件的识别性能高5.2%。

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