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A Machine Learning Approach to Evaluating Illness-Induced Religious Struggle

机译:一种机器学习方法来评估疾病引发的宗教斗争

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摘要

Religious or spiritual struggles are clinically important to health care chaplains because they are related to poorer health outcomes, involving both mental and physical health problems. Identifying persons experiencing religious struggle poses a challenge for chaplains. One potentially underappreciated means of triaging chaplaincy effort are prayers written in chapel notebooks. We show that religious struggle can be identified in these notebooks through instances of negative religious coping, such as feeling anger or abandonment toward God. We built a data set of entries in chapel notebooks and classified them as showing religious struggle, or not. We show that natural language processing techniques can be used to automatically classify the entries with respect to whether or not they reflect religious struggle with as much accuracy as humans. The work has potential applications to triaging chapel notebook entries for further attention from pastoral care staff.
机译:宗教斗争或精神斗争对医疗牧师在临床上很重要,因为它们与健康状况较差有关,涉及精神和身体健康问题。识别经历宗教斗争的人对牧师构成了挑战。对牧师的努力进行分类的一种可能未得到充分重视的方法是在教堂笔记本中书写祈祷。我们表明,通过消极的宗教应对方式(例如感到愤怒或对上帝的抛弃),可以在这些笔记本中识别出宗教斗争。我们在教堂笔记本中建立了一组数据条目,并将其归类为是否显示出宗教斗争。我们证明了自然语言处理技术可用于根据其是否能像人类一样准确地反映宗教斗争来对条目进行自动分类。这项工作有可能用于分类教堂笔记本的条目,以引起牧师的进一步关注。

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