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Breathing Pattern Interpretation as an Alternative and Effective Voice Communication Solution

机译:呼吸模式解释作为一种替代的有效语音通信解决方案

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Augmentative and alternative communication (AAC) systems tend to rely on the interpretation of purposeful gestures for interaction. Existing AAC methods could be cumbersome and limit the solutions in terms of versatility. The study aims to interpret breathing patterns (BPs) to converse with the outside world by means of a unidirectional microphone and researches breathing-pattern interpretation (BPI) to encode messages in an interactive manner with minimal training. We present BP processing work with (1) output synthesized machine-spoken words (SMSW) along with single-channel Weiner filtering (WF) for signal de-noising, and (2) k -nearest neighbor ( k-NN ) classification of BPs associated with embedded dynamic time warping (DTW). An approved protocol to collect analogue modulated BP sets belonging to 4 distinct classes with 10 training BPs per class and 5 live BPs per class was implemented with 23 healthy subjects. An 86% accuracy of k-NN classification was obtained with decreasing error rates of 17%, 14%, and 11% for the live classifications of classes 2, 3, and 4, respectively. The results express a systematic reliability of 89% with increased familiarity. The outcomes from the current AAC setup recommend a durable engineering solution directly beneficial to the sufferers.
机译:增强和替代通信(AAC)系统倾向于依赖有目的的手势进行交互。现有的AAC方法可能很麻烦,并且在通用性方面限制了解决方案。该研究旨在通过单向麦克风来解释呼吸模式(BP),以便与外界对话,并研究呼吸模式解释(BPI)以最少的培训就以交互方式对消息进行编码。我们介绍了BP处理工作,其中包括(1)输出合成机器语言单词(SMSW)以及用于信号降噪的单通道Weiner滤波(WF),以及(2)BP的k近邻(k-NN)分类与嵌入式动态时间规整(DTW)相关联。批准的协议可收集23个健康受试者的方案,该方案可收集属于4个不同类别的模拟调制BP集,每个类别10个训练BP,每个类别5个实时BP。对于第2、3和4类实时分类,k-NN分类的准确度达到86%,错误率降低了17%,14%和11%。结果表明,随着熟悉程度的提高,系统可靠性达到89%。当前AAC设置的结果推荐了一种直接对患者有益的持久工程解决方案。

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