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A Novel Method to Build and Validate an Affective State Prediction Model from Touch-Typing

机译:一种从触摸键入构建和验证情感状态预测模型的新方法

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Affective systems are supposed to improve user satisfaction and hence usability by identifying and complementing the affective state of a user at the time of interaction. The first and most important challenge for building such systems is to identify the affective state in a systematic way. This is generally done based on computational models. Building such models requires affective data. In spite of the extensive growth in this research area, there are a number of challenges in affect induction method for collecting the affective data as well as for building models for real-time prediction of affective states. In this article, we have reported a novel method for inducing particular affective states to unobtrusively collect the affective data as well as a minimalist model to predict the affective states of a user from her/his typing pattern on a touchscreen of a smartphone. The prediction accuracy for our model was 86.60%. The method for inducing the specific affective states and the model to predict these states are validated through empirical studies comprising EEG signals of twenty two participants.
机译:应该通过在交互时识别和补充用户的情感状态来改善用户满意度,因此可用性提高。建立这种系统的第一个也是最重要的挑战是以系统的方式识别情感状态。这通常基于计算模型来完成。建立此类模型需要情感数据。尽管该研究领域的广泛增长,影响了收集情感数据的诱导方法以及建筑模型,但对情感状态的实时预测的建筑模型存在许多挑战。在本文中,我们报告了一种新的方法,可以诱导特定的情感状态,以不显着地收集情感数据以及最小主义模型,以预测来自智能手机的触摸屏上的用户/他的键入模式的用户的情感状态。我们模型的预测准确性为86.60%。通过包括二十二届参与者的脑电图信号的经验研究验证了诱导特定情感状态和模型预测这些状态的方法。

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