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Emirati-Accented Emotion Verification based on HMM3s, HMM2s, and HMM1s

机译:基于HMM3S,HMM2S和HMM1S的Emirati-Egrented情感核查

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The proposed research is dedicated to verifying the claimed emotion of speaker-independent and text-independent formed on three dissimilar classifiers. The HMM3 short for Third-Order Hidden Markov Model, HMM2 short for Second-Order Hidden Markov Model, and HMM1 short for First-Order Hidden Markov Model are the three classifiers utilized in this study. Our work has been evaluated on our collected Emirati-accented speech corpus which entails 50 speakers of Emirati origin (25 female and 25 male) uttering sentences in six emotions by means of the extracted features by Mel-Frequency Cepstral Coefficients (MFCCs). Our outcomes prove that HMM3 is superior to each of HMM1 and HMM2 to authenticate the claimed emotion. The achieved results formed on HMM3 are very similar to the outcomes attained in the subjective valuation by Arab listeners.
机译:拟议的研究致力于验证在三个不同分类器上形成的扬声器无关和文本无关的声称情感。 三阶隐马尔可夫模型的HMM3短,二阶隐马尔可夫模型的HMM2短,以及一阶隐马尔可夫模型的HMM1短路是本研究中使用的三个分类器。 我们的工作已经在我们收集的Emirati-Embented演讲语料库中进行了评估,该语料库有50名Emirati Origin(25名女性和25名男性)发出句子,通过熔融频率谱系数(MFCCs)提取的特征在六种情绪中发出句子。 我们的结果证明,HMM3优于HMM1和HMM2,以验证所要求保护的情绪。 在HMM3上形成的结果与阿拉伯听众主观估值所获得的结果非常相似。

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