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Speaker identification investigation and analysis in Two distinct emotional talking environments

机译:两种截然不同的情感谈话环境中的说话人识别调查与分析

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The focus of this work is to investigate and analyze speaker identification in two different emotional talking environments based on a well-known classifier called Hidden Markov Models (HMMs). The first talking environment is unbiased towards any emotional state, while the second one is biased towards different emotional states. Each talking environment is comprised of six distinct emotions. The six emotions are neutral, angry, sad, happy, disgust, and fear. Our investigation and analysis in this work show that speaker identification performance in the second talking environment is superior to that in the first one. The results achieved in the current work are close to those obtained in subjective assessment by human judges.
机译:这项工作的重点是基于众所周知的称为隐马尔可夫模型(HMM)的分类器,在两种不同的情感谈话环境中调查和分析说话者的识别能力。第一个说话环境不偏向任何情绪状态,而第二个说话环境偏向不同的情绪状态。每个谈话环境都由六种不同的情感组成。六种情绪是中立的,愤怒的,悲伤的,快乐的,厌恶的和恐惧的。我们在这项工作中的调查和分析表明,第二种说话环境中的说话人识别性能要优于第一种说话环境。当前工作中取得的结果接近于人类法官在主观评估中获得的结果。

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