光容积脉搏波信号的远程检测与SVM分类

Shrutkirti D. Kalkhaire, V. Puranik
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引用次数: 4

摘要

远距离光电脉搏波描记是根据皮肤颜色变化来测量心率的最新方法。心脏是人体的重要组成部分,所有与心脏有关的问题都是由焦虑引起的。首先我们要考虑实验的ROI,因此使用Viola Jones算法进行人脸检测。我们提出了一种新的自动化方法来检测使用数码相机远程捕获的PPG波形的收缩期和舒张期峰值。收缩期和舒张期从最高点到最高点的时间与心率有间接关系。在BVP脉冲提取后,我们将这些脉冲分类为正常窦性心律(NSR)、室性早搏(PVC)、房性早搏(APC)、室性心动过速(VT)、心室颤动(VF)和室上性心动过速(SVT)六种不同类型。对于分类,我们将使用支持向量机分类器(SVM)。
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Remote detection of photoplethysmographic signal and SVM based classification
Remote photoplethysmography is most recent method for measuring the heart rate according to skin color variations. The heart is essential part of human body and all the heart related issues causes because of anxiety. Firstly we have to consider ROI for experiment and hence Viola Jones algorithm is used for the face detection. We have presented a new automated method for detection of the systolic and diastolic peaks of a PPG waveform captured remotely using a digital camera. The top to-crest time amongst systolic and diastolic point is in a roundabout way identified with the heart rate. After extraction of BVP pulse, we are extending our work toward classification of these pulses in to six different types as Normal Sinus Rhythm (NSR), Premature Ventricular Contraction (PVC), Atrial Premature Contraction (APC), Ventricular Tachycardia (VT), Ventricular Fibrillation (VF) and Supraventricular Tachycardia (SVT). For classification we will use Support Vector Machine Classifier (SVM).
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