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Supporting decision-making in patient risk assessment using a hierarchical fuzzy model

机译:使用分层模糊模型支持患者风险评估的决策

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In this paper, we present a hierarchical fuzzy model to support patient triage in primary health care. In developing countries like Brazil, public health must usually cover degraded territories; thus, allocating patients to health services is very hard due low availability, enormous demands, and the complexity of assessing patient conditions-which must account for more then physical aspects of patients, but their social conditions as well. This approach combines the fuzzy set theory under the AHP framework in order to illustrate the inherent imprecision in the evaluation of patient risk. Fieldwork was conducted in a primary healthcare facility in Brazil to demonstrate the applicability of the proposed approach. The proposed approach represents criterion in the formation of patients' risk scores encompassing important aspects of primary care triage such as the structure of families, the conditions of residences, exposure to urban violence, and other aspects of patients' lives, taking the risk assessment beyond the simple evaluation of symptoms and physiological conditions. Our approach focuses on enforcing decisions of public health workers by improving the awareness of patients' conditions, which we believe will make the employment of triage criteria uniform and capable of showing tendencies on patients' risks, as well as avoiding bias in patient triage.
机译:在本文中,我们提出了一种分层模糊模型,以支持初级保健中的患者分类。在像巴西这样的发展中国家,公共卫生通常必须覆盖退化领土;因此,将患者分配给卫生服务是非常艰难的低可用性,巨大需求,以及评估患者条件的复杂性 - 这必须考虑到患者的更多的身体方面,但它们的社会条件也是如此。该方法将模糊集理论在AHP框架下结合,以说明患者风险评估中固有的不精确。实地工作是在巴西的主要医疗保健设施中进行的,以证明提出的方法的适用性。拟议的方法代表了患者风险评分的形成的标准,包括初级保健分类的重要方面,例如家庭的结构,居住条件,城市暴力的情况,以及患者生活的其他方面,以超越风险评估简单评价症状和生理条件。我们的方法侧重于通过提高患者条件的认识来强制执行公共卫生工作者的决策,我们认为我们认为将采取均匀的造成分类标准和患者风险倾向,以及避免患者分类的偏见。

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