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Emotion Recognition Based on Feedback Weighted Fusion of Multimodal Emotion Data

机译:基于反馈加权融合的多式联情绪数据的情感识别

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Emotion recognition with decision-level weighted fusion based on multimodal emotion data is a challenging research topic and has attracted great attention in the past few years. This paper presents a novel method, utilizing recognition rate of single set of emotion feature to calculate weight. First, we concatenate a physiological feature and facial expression feature together form two sets of multimodal emotion feature. Then, we calculate each emotion recognition rate of each sets of emotion feature and get weight matrix. Lastly, we construct a classifier based on decision-level weighted fusion strategy. And the experiments on the MAHNOB-HCI database show that our method has achieved encouraging recognition results compared to the state-of-the-art methods.
机译:基于多模式情绪数据的决策级加权融合的情感认同是一个具有挑战性的研究主题,在过去几年中引起了极大的关注。本文介绍了一种新的方法,利用单组情感特征的识别率来计算重量。首先,我们将生理特征和面部表达特征连接在一起,形成两套多模式情绪特征。然后,我们计算每组情感特征的每个情绪识别率并获得权重矩阵。最后,我们根据决策级加权融合策略构建分类器。与Mahnob-HCI数据库的实验表明,与最先进的方法相比,我们的方法已经实现了令人鼓舞的识别结果。

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