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基于独立成分分析的成像光电容积脉搏波描记术中心率识别技术的性能限制

Performance limits of ICA-based heart rate identification techniques in imaging photoplethysmography.

作者信息

Mannapperuma Kavan, Holton Benjamin D, Lesniewski Peter J, Thomas John C

机构信息

School of Electrical and Information Engineering, University of South Australia, Mawson Lakes, SA 5095, Australia. Power Systems Design Pty Ltd, 16 Williams Ct, Pooraka, SA 5095, Australia.

出版信息

Physiol Meas. 2015 Jan;36(1):67-83. doi: 10.1088/0967-3334/36/1/67. Epub 2014 Dec 12.

Abstract

Imaging photoplethysmography is a relatively new technique for extracting biometric information from video images of faces. This is useful in non-invasive monitoring of patients including neonates or the aged, with respect to sudden infant death syndrome, sleep apnoea, pulmonary disease, physical or mental stress and other cardio-vascular conditions. In this paper, we investigate the limits of detection of the heart rate (HR) while reducing the video quality. We compare the performance of three independent component analysis (ICA) methods (JADE, FastICA, RADICAL), autocorrelation with signal conditioning techniques and identify the most robust approach. We discuss sources of increasing error and other limiting conditions in three situations of reduced signal-to-noise ratio: one where the area of the analyzed face is decreased from 100 to 5%, another where the face area is progressively re-sampled down to a single RGB pixel and one where the HR signal is severely reduced with respect to the boundary noise. In most cases, the cardiac pulse rate can be reliably and accurately detected from videos containing only 5% facial area or from a face occupying just 4 pixels or containing only 5% of the facial HR modulation.

摘要

成像光电容积脉搏波描记法是一种从面部视频图像中提取生物特征信息的相对较新的技术。这对于包括新生儿或老年人在内的患者进行无创监测非常有用,可用于监测婴儿猝死综合征、睡眠呼吸暂停、肺部疾病、身体或精神压力以及其他心血管疾病。在本文中,我们研究了在降低视频质量的情况下心率(HR)的检测极限。我们比较了三种独立成分分析(ICA)方法(JADE、FastICA、RADICAL)、带信号调节技术的自相关的性能,并确定最稳健的方法。我们讨论了在三种信噪比降低的情况下误差增加的来源和其他限制条件:一种是分析的面部面积从100%减小到5%,另一种是面部面积逐渐重新采样到单个RGB像素,还有一种是HR信号相对于边界噪声严重降低。在大多数情况下,仅从包含5%面部面积的视频中,或从仅占4个像素的面部,或仅包含5%面部HR调制的视频中,就可以可靠且准确地检测到心率。

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