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Towards Understanding the Nonverbal Signatures of Engagement in Super Mario Bros

机译:了解超级马里奥兄弟的婚姻非语言签名

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In this paper, we present an approach for predicting users' level of engagement from nonverbal cues within a game environment. We use a data corpus collected from 28 participants (152 minutes of video recording) playing the popular platform game Super Mario Bros. The richness of the corpus allows extraction of several visual and facial expression features that were utilised as indicators of players' affects as captured by players' self-reports. Neuroevolution preference learning is used to construct accurate models of player experience that approximate the relationship between extracted features and reported engagement. The method is supported by a feature selection technique for choosing the relevant subset of features. Different setup settings were implemented to analyse the impact of the type of the features and the position of the extraction window on the modelling accuracy. The results obtained show that highly accurate models can be constructed (with accuracies up to 96.82%) and that players' nonverbal behaviour towards the end of the game is the most correlated with engagement. The framework presented is part of a bigger picture where the generated models are utilised to tailor content generation to a player's particular needs and playing characteristics.
机译:在本文中,我们提出了一种方法,以预测用户在游戏环境中的非语言线索接合水平。我们使用从28名参与者收集的数据语料库(录像152分钟录像),播放流行的平台游戏超级马里奥兄弟。语料库的丰富性允许提取用于作为捕获的球员影响的指标使用的几种视觉和面部表情特征由玩家的自我报告。 NeuroVolution偏好学习用于构建准确的玩家体验模型,其近似提取特征与报告的接合之间的关系。该方法由用于选择相关特征子集的特征选择技术支持。实施了不同的设置设置,以分析特征类型的影响以及提取窗口的位置对建模精度。得到的结果表明,可以构建高精度的模型(精度高达96.82%),并且球员对游戏结束的非语言行为与参与最多相关。呈现的框架是更大的图像的一部分,其中所生成的模型用于量身定制到玩家的特定需求和播放特征的内容生成。

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