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Dimensional Information-Theoretic Measurement of Facial Emotion Expressions in Schizophrenia

机译:精神分裂症患者面部表情的信息理论量测

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Altered facial expressions of emotions are characteristic impairments in schizophrenia. Ratings of affect have traditionally been limited to clinical rating scales and facial muscle movement analysis, which require extensive training and have limitations based on methodology and ecological validity. To improve reliable assessment of dynamic facial expression changes, we have developed automated measurements of facial emotion expressions based on information-theoretic measures of expressivity of ambiguity and distinctiveness of facial expressions. These measures were examined in matched groups of persons with schizophrenia (n = 28) and healthy controls (n = 26) who underwent video acquisition to assess expressivity of basic emotions (happiness, sadness, anger, fear, and disgust) in evoked conditions. Persons with schizophrenia scored higher on ambiguity, the measure of conditional entropy within the expression of a single emotion, and they scored lower on distinctiveness, the measure of mutual information across expressions of different emotions. The automated measures compared favorably with observer-based ratings. This method can be applied for delineating dynamic emotional expressivity in healthy and clinical populations.
机译:情绪的面部表情改变是精神分裂症的特征性障碍。传统上,影响的等级仅限于临床等级量表和面部肌肉运动分析,这需要大量的培训,并且基于方法论和生态有效性受到限制。为了提高对动态面部表情变化的可靠评估,我们基于信息表达的歧义表达和面部表情独特性的理论测量方法,开发了面部情绪表情的自动测量方法。在精神分裂症患者(n = 28)和健康对照者(n = 26)的匹配组中进行了这些检查,这些患者接受了视频采集,以评估诱发条件下基本情绪(幸福,悲伤,愤怒,恐惧和厌恶)的表现力。精神分裂症患者的歧义度得分较高,是单一情绪表达中条件熵的度量,而其区别性得分较低,即不同情绪表达之间的相互信息度量,其得分较低。自动化的度量与基于观察者的评级相比具有优势。该方法可用于描述健康和临床人群的动态情感表达。

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