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A Comparison of Evaluation Measures for Emotion Recognition in Dimensional Space

机译:多维空间中情感识别评价指标的比较

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摘要

Emotion recognition from physiological signals like electroencephalography (EEG) can be performed using different underlying emotion models. While dimensional emotion models have recently gained attention, measures to evaluate recognition methods that are based on these models differ from study to study. This paper offers an analysis of proposed evaluation measures by comparing recognition results achieved on a self recorded dataset. Emotions are estimated using ridge regression and estimation results are compared using different evaluation measures. Additionally, three different baselines are studied, two types of random regression as well as naive estimation. Among the investigated evaluation measures, bandwidth accuracy was found to have many desirable characteristics.
机译:可以使用不同的基础情感模型来执行来自诸如脑电图(EEG)之类的生理信号的情感识别。尽管维数情感模型最近受到关注,但基于这些模型的评估识别方法的方法因研究而异。本文通过比较在自记录数据集上获得的识别结果,对提议的评估措施进行了分析。使用岭回归估计情绪,并使用不同的评估方法比较估计结果。此外,研究了三种不同的基准,两种类型的随机回归以及幼稚的估计。在研究的评估方法中,发现带宽精度具有许多理想的特性。

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