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Visualisation of survey responses using self-organising maps: A case study on diabetes self-care factors

机译:使用自组织图可视化调查回复:糖尿病自我护理因素的案例研究

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Due to the chronic nature of diabetes, patient self-care factors play an important role in any treatment plan. In order to understand the behaviour of patients in response to medical advice on self-care, clinicians often conduct cross-sectional surveys. When analysing the survey data, statistical machine learning methods can potentially provide additional insight into the data either through deeper understanding of the patterns present or making information available to clinicians in an intuitive manner. In this study, we use self-organising maps (SOMs) to visualise the responses of patients who share similar responses to survey questions, with the goal of helping clinicians understand how patients are managing their treatment and where action should be taken. The principle behavioural patterns revealed through this are that: patients who take the correct dose of insulin also tend to take their injections at the correct time, patients who eat on time also tend to correctly manage their food portions and patients who check their blood glucose with a monitor also tend to adjust their insulin dosage and carry snacks to counter low blood glucose. The identification of these positive behavioural patterns can also help to inform treatment by exploiting their negative corollaries.
机译:由于糖尿病的慢性性质,患者的自我保健因素在任何治疗计划中都起着重要的作用。为了了解患者对自我保健医学建议的反应,临床医生经常进行横断面调查。当分析调查数据时,统计机器学习方法可以通过对现有模式的更深入理解或以直观方式使信息可供临床医生使用,从而提供对数据的更多了解。在这项研究中,我们使用自组织图(SOM)来可视化对调查问题有相似回答的患者的回答,目的是帮助临床医生了解患者如何管理他们的治疗以及应该采取的措施。通过这种方式揭示的主要行为模式是:服用正确剂量胰岛素的患者也倾向于在正确的时间进行注射,准时进食的患者也倾向于正确地管理食物,而用血糖检查血糖的患者监护仪还倾向于调整其胰岛素剂量并携带零食来抵抗低血糖。这些积极行为模式的识别还可以通过利用其消极推论来帮助告知治疗方法。

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