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User and context adaptive neural networks for emotion recognition

机译:用于情感识别的用户和上下文自适应神经网络

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Recognition of emotional states of users in human-computer interaction (HCI) has been shown to be highly dependent on individual human characteristics and way of behavior. Multimodality is a key issue in achieving more accurate results; however, fusing different modalities is a difficult issue in emotion analysis. Emotion recognition systems are generally either rule-based or extensively trained through emotionally colored HCI data sets. In either case, such systems need to take into account, i.e., adapt their knowledge to, the specific user or context of interaction. Neural networks fit well with the adaptation requirement, by collecting and analyzing data from specific environments. An effective approach is presented in this paper, which uses neural network architectures to both detect the need for adaptation of their knowledge, and adapt it through an efficient adaptation procedure. An experimental study with emotion datasets generate in the framework of the EC IST Humaine Network of Excellence.
机译:在人机交互(HCI)中识别用户的情绪状态已显示出高度依赖于个人的人格特征和行为方式。多模态是获得更准确结果的关键问题;然而,在情绪分析中融合不同的方式是一个难题。情绪识别系统通常是基于规则的,或者通过带有颜色的HCI数据集进行了广泛的培训。在任何一种情况下,这样的系统都需要考虑,即使他们的知识适应特定的用户或交互环境。通过收集和分析来自特定环境的数据,神经网络非常适合适应性要求。本文提出了一种有效的方法,该方法使用神经网络体系结构来检测对知识的适应性需求,并通过有效的适应性过程对其进行适应。在EC IST优秀Humaine网络的框架内进行的带有情感数据集的实验研究。

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