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Sentiment analysis of mental health disorder symptoms

机译:精神健康障碍症状的情绪分析

摘要

Monitoring and analysis of a user's speech to detect symptoms of a mental health disorder by continuously monitoring a user's speech in real-time to generate audio data based, transcribing the audio data to text and analyzing the text of the audio data to determine a sentiment of the audio data is disclosed. A trained machine learning model may be applied to correlate the text and the determined sentiment to clinical information associated with symptoms of a mental health disorder to determine whether the symptoms are a symptom event. The initial determination may be transmitted to a second device to determine (and/or verify) whether or not the symptom event was falsely recognized. The trained machine learning model may be updated based on a response from the second device.
机译:监视和分析用户的语音以检测精神健康疾病的症状,方法是连续不断地实时实时监视用户的语音以生成基于音频的数据,将音频数据转录为文本,然后分析音频数据的文本以确定情绪音频数据被公开。可以将训练有素的机器学习模型应用于将文本和所确定的情感与与精神健康障碍的症状相关的临床信息相关联,以确定症状是否为症状事件。初始确定可以被发送到第二设备,以确定(和/或验证)症状事件是否被错误识别。可以基于来自第二设备的响应来更新经训练的机器学习模型。

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