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Personalized alerts for patients with COPD using pulse oximetry and symptom scores

机译:使用脉冲血氧滴定法和症状分数的COPD患者的个性化警报

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Chronic Obstructive Pulmonary Disease (COPD) is a progressive chronic disease, predicted to become the third leading cause of death by 2030. COPD patients are at risk of sudden and acute worsening of symptoms, reducing the patient's quality of life and leading to hospitalization. We present the results of a pilot study with 18 COPD patients using an m-Health system, based on a tablet computer and pulse oximeter, for a period of six months. For prioritizing patients for clinical review, a data-driven approach has been developed which generates personalized alerts using the electronic symptom diary, pulse rate, blood oxygen saturation, and respiratory rate derived from oximetry data. This work examines the advantages of multivariate novelty detection over univariate approaches and shows the benefit of including respiratory rate as a predictor.
机译:慢性阻塞性肺病(COPD)是一种渐进的慢性疾病,预计到2030年将成为第三次死亡原因。COPD患者有症状突然和急剧恶化的风险,降低患者的生活质量并导致住院。 我们介绍了使用M-Health系统的18名COPD患者的试验研究结果,基于平板电脑和脉搏血氧计,六个月。 为了优先考虑临床审查的患者,已经开发了一种数据驱动方法,其使用电子症状日记,脉搏率,血氧饱和度和源自血氧血管数据的呼吸速率产生个性化警报。 这项工作探讨了多元新奇检测对单变量方法的优势,并显示了包括呼吸率作为预测因子的益处。

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