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Applications of signal recognition algorithms to diagnosis and monitoring in chest medicine

机译:信号识别算法在胸医诊断和监测中的应用

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Electronic stethoscopes capable of recording and digitally storing lung sounds have been available for several years. The clinical advantage of these devices is that recordings can be stored and replayed for comparison, either at a later time or to another physician. The next logical step is to offer the user an automatic, objective 'diagnosis' of the clinical condition. This paper presents wavelet-based algorithms that have been developed to detect and quantify crackles and wheezes, associated with asthma, chronic obstructive pulmonary disease and lung fibrosis. However, signal processing is not the only challenge. Practical application for real clinical uses requires a robust and appropriate user platform and the definition of suitable uses, which will complement expert judgement. The potential for applications in chronic disease monitoring, medication regime development, emergency triage and routine screening is discussed. Issues regarding user acceptability, ergonomics and clinical validation are outlined, based on clinical feedback from users of existing commercial devices.
机译:几年来,能够记录和数字储存肺部声音的电子听诊器。这些装置的临床优点是可以在稍后时间或另一个医生中存储并重放记录以进行比较。下一个逻辑步骤是为用户提供自动,客观的临床状况的“诊断”。本文介绍了基于小波的算法,已经开发出来,以检测和量化与哮喘,慢性阻塞性肺病和肺纤维化相关的噼啪声和喘息。但是,信号处理不是唯一的挑战。实际临床用途的实际应用需要强大而适当的用户平台和合适用途的定义,这将补充专家判断。讨论了慢性疾病监测,药物制度发展,应急分类和常规筛查的应用。根据现有商业设备的用户的临床反馈,概述了关于用户可接受性,人体工程学和临床验证的问题。

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