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Smartphone-Based Real-time Assessment of Swallowing Ability From the Swallowing Sound

机译:基于智能手机的吞咽能力实时评估吞咽能力

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摘要

Dysphagia can cause serious challenges to both physical and mental health. Aspiration due to dysphagia is a major health risk that could cause pneumonia and even death. The videofluoroscopic swallow study (VFSS), which is considered the gold standard for the diagnosis of dysphagia, is not widely available, expensive and causes exposure to radiation. The screening tests used for dysphagia need to be carried out by trained staff, and the evaluations are usually non-quantifiable. This paper investigates the development of the Swallowscope, a smartphone-based device and a feasible real-time swallowing sound-processing algorithm for the automatic screening, quantitative evaluation, and the visualisation of swallowing ability. The device can be used during activities of daily life with minimal intervention, making it potentially more capable of capturing aspirations and risky swallow patterns through the continuous monitoring. It also consists of a cloud-based system for the server-side analyzing and automatic sharing of the swallowing sound. The real-time algorithm we developed for the detection of dry and water swallows is based on a template matching approach. We analyzed the wavelet transformation-based spectral characteristics and the temporal characteristics of simultaneous synchronised VFSS and swallowing sound recordings of 25% barium mixed 3-ml water swallows of 70 subjects and the dry or saliva swallowing sound of 15 healthy subjects to establish the parameters of the template. With this algorithm, we achieved an overall detection accuracy of 79.3% (standard error: 4.2%) for the 92 water swallows; and a precision of 83.7% (range: 66.6%–100%) and a recall of 93.9% (range: 72.7%–100%) for the 71 episodes of dry swallows.
机译:吞咽困难会严重影响身心健康。吞咽困难引起的误吸是一种主要的健康隐患,可能导致肺炎甚至死亡。被认为是吞咽困难诊断的金标准的视频荧光吞咽研究(VFSS)尚不广泛,价格昂贵并且会导致辐射暴露。用于吞咽困难的筛查测试需要由受过训练的人员进行,并且评估通常是无法量化的。本文研究了Swallowscope(基于智能手机的设备)和可行的实时吞咽声音处理算法(用于自动筛选,定量评估和可视化吞咽能力)的开发。该设备可以在日常活动中使用,而无需进行过多干预,因此它可能会通过连续监控来更有效地捕获愿望和危险的吞咽模式。它还包括一个基于云的系统,用于服务器端分析和自动共享吞咽声音。我们开发的用于检测干和燕子的实时算法是基于模板匹配方法的。我们分析了基于小波变换的频谱特征和同时同步VFSS的时间特征,以及70位受试者的25%钡混合3 ml燕子和15位健康受试者的干咽或唾液吞咽声的同时同步VFSS和吞咽声记录,以建立参数模板。使用该算法,我们对92只燕子的整体检测精度为79.3%(标准误:4.2%);对于71次干燕子发作,其准确度为83.7%(范围:66.6%–100%),召回率为93.9%(范围:72.7%–100%)。

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