负面情绪与攻击多模态数据集的验证研究

I. Lefter, S. Fitrianie
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引用次数: 5

摘要

在情感计算和社会信号处理社区中,为了收集具有真实(情感)内容的数据,正在做出越来越多的努力。当涉及到负面情绪甚至攻击性时,伦理和隐私相关的问题阻碍了许多情绪激发方法的使用,大多数情况下,演员被雇佣来表演不同的场景。此外,对于大多数数据库来说,情绪唤醒并没有被明确检查,镜头是由外部评分者根据可观察到的行为进行注释的。为了收集更接近现实生活的数据,之前的工作提出了一种启发方法来收集负面情绪和攻击的数据库,该数据库涉及攻击调节训练参与者(演员)和天真参与者(学生)之间的无剧本角色扮演,其中参与者只给出简短的角色描述和目标。本文通过调查演员的行为(如变得更具攻击性)是否对学生的情绪唤醒产生了真实的影响,对消极情感和攻击数据库进行了验证研究。我们发现学生的心率变异性(HRV)参数与演员的攻击水平和情绪状态的变化相对应,因此我们认为这种方法可以被认为是一种很好的情绪激发方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Multimodal Dataset of Negative Affect and Aggression: A Validation Study
Within the affective computing and social signal processing communities, increasing efforts are being made in order to collect data with genuine (emotional) content. When it comes to negative emotions and even aggression, ethical and privacy related issues prevent the usage of many emotion elicitation methods, and most often actors are employed to act out different scenarios. Moreover, for most databases, emotional arousal is not explicitly checked, and the footage is annotated by external raters based on observable behavior. In the attempt to gather data a step closer to real-life, previous work proposed an elicitation method for collecting the database of negative affect and aggression that involved unscripted role-plays between aggression regulation training actors (actors) and naive participants (students), where only short role descriptions and goals are given to the participants. In this paper we present a validation study for the database of negative affect and aggression by investigating whether the actors' behavior (e.g. becoming more aggressive) had a real impact on the students' emotional arousal. We found significant changes in the students' heart rate variability (HRV) parameters corresponding to changes in aggression level and emotional states of the actors, and therefore conclude that this method can be considered as a good candidate for emotion elicitation.
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