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首页> 外文期刊>Journal of clinical monitoring and computing >Identifying Airway Obstructions Using Photoplethysmography (PPG).
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Identifying Airway Obstructions Using Photoplethysmography (PPG).

机译:使用光电容积描记法(PPG)识别气道阻塞。

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摘要

Objective. Central and obstructive apneas are sources of morbidity and mortality associated with primary patient conditions as well as secondary to medical care such as sedation/analgesia in post-operative patients. This research investigates the predictive value of the respirophasic variation in the noninvasive photoplethysmography (PPG) waveform signal in detecting airway obstruction. Methods. PPG data from 20 consenting healthy adults (12 male, 8 female) undergoing anesthesia were collected directly after surgery and before transfer to the Post Anesthesia Care Unit (PACU). Features of the PPG waveform were calculated and used in a neural network to classify normal and obstructive events. Results. During the postoperative period studied, the neural network classifier yielded an average (+/-standard deviation) 75.4 (+/-3.7)% sensitivity, 91.6 (+/-2.3)% specificity, 84.7 (+/-3.5)% positive predictive value, 85.9 (+/-1.8)% negative predictive value, and an overall accuracy of 85.4 (+/-2.0)%. Conclusions. The accuracy of this method shows promise for use in real-time monitoring situations.
机译:目的。中枢性和阻塞性呼吸暂停是与主要患者状况以及术后患者继发于镇静/镇痛等医疗服务相关的发病率和死亡率的来源。这项研究调查了无创光体积描记术(PPG)波形信号中呼吸道变化对检测气道阻塞的预测价值。方法。在手术后和转移至麻醉后护理单位(PACU)之前,直接收集了20名接受麻醉的健康成人(12名男性,8名女性)的PPG数据。计算出PPG波形的特征并将其用于神经网络中,以对正常事件和阻塞事件进行分类。结果。在所研究的术后期间,神经网络分类器产生的平均(+/-标准偏差)灵敏度为75.4(+/- 3.7)%,特异性为91.6(+/- 2.3)%,阳性预测值为84.7(+/- 3.5)%值,85.9(+/- 1.8)%的阴性预测值和85.4(+/- 2.0)%的整体准确性。结论。该方法的准确性显示了在实时监视情况下使用的希望。

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