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Personality cannot be predicted from the power of resting state EEG

机译:无法从静止状态脑电图的力量预测人格

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摘要

In the present study we asked whether it is possible to decode personality traits from resting state EEG data. EEG was recorded from a large sample of subjects (n = 289) who had answered questionnaires measuring personality trait scores of the five dimensions as well as the 10 subordinate aspects of the Big Five. Machine learning algorithms were used to build a classifier to predict each personality trait from power spectra of the resting state EEG data. The results indicate that the five dimensions as well as their subordinate aspects could not be predicted from the resting state EEG data. Finally, to demonstrate that this result is not due to systematic algorithmic or implementation mistakes the same methods were used to successfully classify whether the subject had eyes open or closed. These results indicate that the extraction of personality traits from the power spectra of resting state EEG is extremely noisy, if possible at all.
机译:在本研究中,我们询问是否有可能从静止状态EEG数据中解码人格特质。脑电图是从一大批受试者(n = 289)中记录下来的,这些受试者回答了测量五个维度以及十个大五个方面的人格特质得分的问卷。机器学习算法用于构建分类器,以根据静止状态EEG数据的功率谱预测每个人格特征。结果表明,不能从静止状态EEG数据中预测这五个维度及其从属方面。最后,为了证明该结果不是由于系统的算法或实现错误而导致的,使用了相同的方法成功地对受试者的眼睛睁开或闭眼进行了分类。这些结果表明,如果可能的话,从静止状态脑电图的功率谱中提取人格特质非常嘈杂。

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