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Smartphone derived movement profiles to detect changes in health status in COPD patients - A preliminary investigation

机译:智能手机派生的运动型材,以检测COPD患者健康状况的变化 - 初步调查

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Over 3.2 million people in the UK alone have the lung disease Chronic Obstructive Pulmonary Disease. Identifying when COPD patients are at risk of an exacerbation is a major problem and there is a need for smart solutions that provide us with a means of tracking patient health status. Smart-phone sensor technology provides us with an opportunity to automatically monitor patients. With sensors providing the ability to measure aspects of a patient's daily life, such a motion, methods to interpret these signals and infer health related information are needed. In this work we aim to investigate the feasibility of utilizing motion sensors, built within smartphones, to measure patient movement and to infer the health related information about the patient. We perform experiments, based on 7 COPD patients using data collected over a 12 week period for each patient, and identify a measure to distinguish between periods when a patient feels well Vs periods when a patient feels unwell.
机译:仅英国超过320万人患有肺病慢性阻塞性肺病。识别COPD患者患者发生恶化的风险是一个主要问题,需要智能解决方案,为我们提供跟踪患者健康状况的手段。智能手机传感器技术为我们提供自动监控患者的机会。对于传感器,提供测量患者日常生活的各个方面的能力,需要解释这些信号的方法和解释这些信号的方法和推断健康相关信息。在这项工作中,我们的目标是调查利用智能手机内置运动传感器的可行性,以测量患者运动并推断有关患者的健康相关信息。我们根据7个COPD患者进行实验,使用每位患者12周内收集的数据,并确定当患者感觉不适时患者感觉良好的时期时区分时期的措施。

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