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Recognizing states of psychological vulnerability to suicidal behavior: a Bayesian network of artificial intelligence applied to a clinical sample

机译:认识到对自杀行为的心理脆弱性的状态:应用于临床样本的人工智能贝叶斯网络

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BACKGROUND:This study aimed to determine conditional dependence relationships of variables that contribute to psychological vulnerability associated with suicide risk. A Bayesian network (BN) was developed and applied to establish conditional dependence relationships among variables for each individual subject studied. These conditional dependencies represented the different states that patients could experience in relation to suicidal behavior (SB). The clinical sample included 650 mental health patients with mood and anxiety symptomatology.RESULTS:Mainly indicated that variables within the Bayesian network are part of each patient's state of psychological vulnerability and have the potential to impact such states and that these variables coexist and are relatively stable over time. These results have enabled us to offer a tool to detect states of psychological vulnerability associated with suicide risk.CONCLUSION:If we accept that suicidal behaviors (vulnerability, ideation, and suicidal attempts) exist in constant change and are unstable, we can investigate what individuals experience at specific moments to become better able to intervene in a timely manner to prevent such behaviors. Future testing of the tool developed in this study is needed, not only in specialized mental health environments but also in other environments with high rates of mental illness, such as primary healthcare facilities and educational institutions.
机译:背景:本研究旨在确定有助于与自杀风险相关的心理脆弱性的变量的条件依赖关系。开发并应用贝叶斯网络(BN),以建立所研究的每个受试者的变量之间的条件依赖关系。这些条件依赖性代表了患者可能与自杀行为有关的不同状态(SB)。临床样本包括650名心理健康患者情绪和焦虑症状。结果:主要表明贝叶斯网络中的变量是每位患者的心理漏洞状态的一部分,并且有可能影响这些状态,并且这些变量共存和相对稳定随着时间的推移。这些结果使我们提供了一种检测与自杀风险相关的心理脆弱性状态的工具。结论:如果我们接受不断变化存在的自杀行为(漏洞,想法和自杀),我们可以调查个人特定时刻经验更好地能够及时干预以防止这种行为。需要在本研究中开发的工具的未来测试,不仅在专业的心理健康环境中,而且还在其他患有精神疾病率高的环境中,例如主要医疗机构和教育机构。

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