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Combining Heterogeneous User Generated Data to Sense Well-being

机译:结合异构用户生成的数据以感知幸福感

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In this paper we address a new problem of predicting affect and well-being scales in a real-world setting of heterogeneous, longitudinal and non-synchronous textual as well as non-linguistic data that can be harvested from on-line media and mobile phones. We describe the method for collecting the heterogeneous longitudinal data, how features are extracted to address missing information and differences in temporal alignment, and how the latter are combined to yield promising predictions of affect and well-being on the basis of widely used psychological scales. We achieve a coefficient of determination (R~2) of 0.71 - 0.76 and a p of 0.68 - 0.87 which is higher than the state-of-the art in equivalent multi-modal tasks for affect.
机译:在本文中,我们解决了一个新的问题,即在现实世界中可以从在线媒体和手机中收集的异类,纵向和非同步文本以及非语言数据中,预测情感和幸福感的规模。我们描述了用于收集异构纵向数据的方法,如何提取特征以解决缺失的信息和时间对齐方式的差异,以及如何在广泛使用的心理量表的基础上将后者组合起来以产生有希望的情感和幸福感预测。我们获得的确定系数(R〜2)为0.71-0.76,p为0.68-0.87,这在影响情感的等效多模态任务中要高于现有技术。

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