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Photoplethysmogram signal quality estimation using repeated Gaussian filters and cross-correlation

机译:使用重复高斯滤波器和互相关的光体积描记图信号质量估计

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摘要

Pulse oximeters are monitors that noninvasively measure heart rate and blood oxygen saturation (SpO _2). Unfortunately, pulse oximetry is prone to artifacts which negatively impact the accuracy of the measurement and can cause a significant number of false alarms. We have developed an algorithm to segment pulse oximetry signals into pulses and estimate the signal quality in real time. The algorithm iteratively calculates a signal quality index (SQI) ranging from 0 to 100. In the presence of artifacts and irregular signal morphology, the algorithm outputs a low SQI number. The pulse segmentation algorithm uses the derivative of the signal to find pulse slopes and an adaptive set of repeated Gaussian filters to select the correct slopes. Cross-correlation of consecutive pulse segments is used to estimate signal quality. Experimental results using two different benchmark data sets showed a good pulse detection rate with a sensitivity of 96.21% and a positive predictive value of 99.22%, which was equivalent to the available reference algorithm. The novel SQI algorithm was effective and produced significantly lower SQI values in the presence of artifacts compared to SQI values during clean signals. The SQI algorithm may help to guide untrained pulse oximeter users and also help in the design of advanced algorithms for generating smart alarms.
机译:脉搏血氧仪是无创测量心率和血氧饱和度(SpO _2)的监视器。不幸的是,脉搏血氧饱和度仪容易产生伪影,这些伪影会对测量的准确性产生负面影响,并可能导致大量的误报。我们已经开发出一种算法,可将脉搏血氧饱和度信号分段为脉冲并实时估计信号质量。该算法迭代地计算范围为0到100的信号质量指数(SQI)。在存在伪影和不规则信号形态的情况下,该算法输出的SQI值较低。脉冲分割算法使用信号的导数找到脉冲斜率,并使用一组自适应的重复高斯滤波器来选择正确的斜率。连续脉冲段的互相关用于估计信号质量。使用两个不同基准数据集的实验结果显示出良好的脉冲检测率,灵敏度为96.21%,阳性预测值为99.22%,与可用的参考算法相当。与纯信号期间的SQI值相比,新颖的SQI算法有效且在存在伪像的情况下产生的SQI值明显较低。 SQI算法可能有助于指导未经培训的脉搏血氧仪用户,也有助于设计用于生成智能警报的高级算法。

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