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Modeling multiple time series annotations as noisy distortions of the ground truth: An Expectation-Maximization approach

机译:将多个时间序列注释建模为地面真理的嘈杂失真:一种期望最大化方法

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摘要

Studies of time-continuous human behavioral phenomena often rely on ratings from multiple annotators. Since the ground truth of the target construct is often latent, the standard practice is to use ad-hoc metrics (such as averaging annotator ratings). Despite being easy to compute, such metrics may not provide accurate representations of the underlying construct. In this paper, we present a novel method for modeling multiple time series annotations over a continuous variable that computes the ground truth by modeling annotator specific distortions. We condition the ground truth on a set of features extracted from the data and further assume that the annotators provide their ratings as modification of the ground truth, with each annotator having specific distortion tendencies. We train the model using an Expectation-Maximization based algorithm and evaluate it on a study involving natural interaction between a child and a psychologist, to predict confidence ratings of the children’s smiles. We compare and analyze the model against two baselines where: (i) the ground truth in considered to be framewise mean of ratings from various annotators and, (ii) each annotator is assumed to bear a distinct time delay in annotation and their annotations are aligned before computing the framewise mean.
机译:对时间连续的人类行为现象的研究通常依赖于多个注释者的评级。由于目标构造的基本事实往往是潜在的,因此标准做法是使用临时指标(例如平均注释者等级)。尽管易于计算,但此类度量可能无法提供基础构造的准确表示。在本文中,我们提出了一种在连续变量上建模多个时间序列注释的新颖方法,该方法通过对注释器特定的失真进行建模来计算地面真实性。我们以从数据中提取的一组特征为基础来确定地面真实性,并进一步假设注释者提供其评级,作为对地面真实性的修改,每个注释者都有特定的失真倾向。我们使用基于期望最大化的算法训练模型,并在一项涉及儿童与心理学家之间自然互动的研究中对其进行评估,以预测儿童笑容的置信度。我们针对两个基准对模型进行比较和分析,其中:(i)地面真实性被认为是来自各种注释者的评分的框架平均值,并且,(ii)假定每个注释者在注释中具有明显的时间延迟,并且它们的注释对齐在计算帧均值之前。

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