构建语音情感与情绪状态识别系统

Xiaoyan Feng, J. Watada
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引用次数: 3

摘要

在公司或公共组织中,优先级排序起着至关重要的作用。例如,他们的讨论对于利益相关者达成相互共识至关重要。在讨论中,建立共识过程之间的差异会影响最后的结论。因此,有必要进行分析,找到达成共识的批评意见(“焦点评论”)。然而,共识构建过程可以从分歧状态、同意和详细的表达方来准确理解,这是证实gfocus评论的基础。通过演讲进行共识讨论,对促进互动很有帮助。本文讨论了识别系统的设计,并利用Mel频域系数(MFCC)和隐马尔可夫模型(HMM)实现了识别结果。结果对6种情绪模式的识别率为86.8%。根据情绪状态与情绪的关系,对支持进行了较为客观的分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Building a Recognition System of Speech Emotion and Emotional States
To make a decision in companies or public organizations, the priority ordering plays an essential. For example, their discussion is essential for stakeholder to achieve mutual consensus,. In the discussion, the difference among consensus building processes can affect the last conclusion. Therefore, it is necessary for analysis to find critical remarks reaching the consensus ('hfocus remark'h). However, it is a basis to confirm the gfocus remark'h that the consensus building process can understand exactly from the disagreement state consent and detailed exposition parties. The consensus discussion is very helpful to promote interaction by the speech. The paper addresses the design of recognition system and results are achieved by means of MFCC (Mel Frequency Campestral Coefficients) and HMM (Hidden Markov Model). Results in recognition of six emotion patterns obtained 86.8% recognition rate. According to the relation of emotional states and emotions we analyzed the support more objectively.
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