DSM-V模型在基于时间范围的失眠症倾向分类中的专家系统先导作用

Talitha Syahla Janiar Arifin, Wahyuningdiah Trisari Harsanti Putri, Tia Rahmania
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引用次数: 0

摘要

失眠是一种睡眠障碍。本研究开发了一个专家系统模型,该模型可以帮助确定基于精神障碍诊断与统计手册(DSM-V)指南的失眠趋势。本研究采用正向链设计方法,因为它是自下而上的,通过收集患者的事实,并根据DSM-V指南得出结论。选择前向链法对失眠症倾向分类假设进行检验。然后,事实信息作为知识库输入计算机程序,从而生成系统规则。此外,通过O’leary验证,运用隐性知识加强了心理学从业者的验证性。有三个验证标准:知识库的准确性、知识库的完整性和条件-决策匹配。使用的参数基于投诉、功能障碍、时间范围和其他因素。使用前向链方法对规则系统进行建模和分析的结果将失眠倾向根据时间范围分为三种类型:发作性、持续性和复发性。执业心理学家在分析的基础上进行的验证结果表明,这三种规则体系都遵循了DSM-V指南和实践经验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DSM-V Modelling as an Expert System Pilot in Classification of Insomnia Tendency Based on Time Range
Insomnia is a form of sleep disorder. This study develops an expert system model that can help determine the tendency of insomnia based on the Diagnostic and Statistical Manual for Mental Disorders (DSM-V) guidelines. The forward chaining design method was used in this study because it is bottom-up by collecting facts from patients and concluded based on the DSM-V guidelines. The forward chaining method was chosen to test the hypothesis of the classification of insomnia tendencies. The factual information then acts as a knowledge base fed into computer programs that can generate system rules. In addition, tacit knowledge is used, as evidenced by O'Leary validation, to strengthen the validation of psychologist practitioners. There are three validation criteria: the accuracy of the knowledge base, completeness of the knowledge base, and condition-decision matches. The parameters used are based on complaints, dysfunction, time range, and other factors. The results of modeling and analysis of the rule system using the forward chaining method classify insomnia tendencies into three types based on time range: episodic, persistent, and recurring. The validation results carried out by practicing psychologists based on the analysis showed that the three rule systems were following the DSM-V guidelines and practical experience.
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