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Continuous monitoring of emotions by a multimodal cooperative sensor system

机译:通过多式联合协同传感器系统持续监测情绪

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Multimodal emotion recognition is a challenging topic that aims at determining the affective state of a subject by combining audio-visual and physiological signals acquired in a naturalistic environment. This procedure can be used to monitor the emotional state of a subject affected by mental disorder or under medical treatment. Common attempts principally learn a unique complex machine learning system on descriptors collected from different subjects. The novel paradigm of single-subject multimodal regression model (SSMRM) that we propose in this study is embedded in a averaging-based merging strategy that aggregates the responses provided by each model during the test of a new subject. This new approach presents a flexible architecture able to continuously embed new models without global re-training.
机译:多模式情绪识别是一个具有挑战性的话题,旨在通过组合在自然环境中获得的视听和生理信号来确定受试者的情感状态。该程序可用于监测受精神障碍或医学治疗影响的受试者的情绪状态。常见的尝试主要从不同主题收集的描述符上学习一个独特的复杂机器学习系统。我们在本研究中提出的单亲多模式回归模型(SSMRM)的新颖范式嵌入了基于平均的合并策略,该策略聚合在新对象的测试期间每种模型提供的响应。这种新方法提供了一种灵活的架构,能够在没有全球重新培训的情况下连续嵌入新型号。

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