Sensing Emotion from Voice Jitter

Nazia Hossain, Mahmuda Naznin
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引用次数: 4

Abstract

Emotion sensing or detection is nowadays vital research area since it has many applications in mental-health recognition based technology, biometric security analysis, etc. It is a challenging research area because voice features can vary based on gender, physical or mental condition and environmental noise. In our research, we provide a novel framework for emotion detection based on jitter computing. Here, rather than using the entire voice signal, we use short time significant frames, which would be enough to identify the emotional condition of the speaker. This makes our framework less costly. We collect data set from real users and apply our method. We compare our method with other popular methods and we find that our method provides better accuracy, true acceptance rate, less error rate.
从声音抖动中感知情绪
情绪感知或检测在基于心理健康的识别技术、生物识别安全分析等方面有着广泛的应用,是当今重要的研究领域。这是一个具有挑战性的研究领域,因为声音特征会因性别、身体或精神状况以及环境噪音而变化。在我们的研究中,我们提供了一个新的基于抖动计算的情感检测框架。在这里,我们不是使用整个语音信号,而是使用短时间的重要帧,这足以识别说话者的情绪状况。这使得我们的框架成本更低。我们从真实用户那里收集数据集并应用我们的方法。将该方法与其他常用方法进行比较,发现该方法具有更高的准确率、真实接受率和更小的错误率。
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