Continuous respiratory rate monitoring during an acute hypoxic challenge using a depth sensing camera

被引:14
作者
Addison, Paul S. [1 ]
Smit, Philip [1 ]
Jacquel, Dominique [1 ]
Borg, Ulf R. [2 ]
机构
[1] Medtronic, Video Biosignals Grp, Patient Monitoring, Edinburgh EH26 0PJ, Midlothian, Scotland
[2] Medtronic, Med Affairs, Patient Monitoring, Boulder, CO USA
关键词
Non-contact monitoring; Depth sensing; Respiratory rate; Hypoxic challenge;
D O I
10.1007/s10877-019-00417-6
中图分类号
R614 [麻醉学];
学科分类号
100217 ;
摘要
Respiratory rate is a well-known to be a clinically important parameter with numerous clinical uses including the assessment of disease state and the prediction of deterioration. It is frequently monitored using simple spot checks where reporting is intermittent and often prone to error. We report here on an algorithm to determine respiratory rate continuously and robustly using a non-contact method based on depth sensing camera technology. The respiratory rate of 14 healthy volunteers was studied during an acute hypoxic challenge where blood oxygen saturation was reduced in steps to a target 70% oxygen saturation and which elicited a wide range of respiratory rates. Depth sensing data streams were acquired and processed to generate a respiratory rate (RRdepth). This was compared to a reference respiratory rate determined from a capnograph (RRcap). The bias and root mean squared difference (RMSD) accuracy between RRdepth and the reference RRcap was found to be 0.04 bpm and 0.66 bpm respectively. The least squares fit regression equation was determined to be: RRdepth = 0.99 x RRcap + 0.13 and the resulting Pearson correlation coefficient, R, was 0.99 (p < 0.001). These results were achieved with a 100% reporting uptime. In conclusion, excellent agreement was found between RRdepth and RRcap. Further work should include a larger cohort combined with a protocol to further test algorithmic performance in the face of motion and interference typical of that experienced in the clinical setting.
引用
收藏
页码:1025 / 1033
页数:9
相关论文
共 24 条
[1]  
Addison PS, 2017, IEEE ENG MED BIO, P734, DOI 10.1109/EMBC.2017.8036929
[2]   Video-Based Physiologic Monitoring During an Acute Hypoxic Challenge: Heart Rate, Respiratory Rate, and Oxygen Saturation [J].
Addison, Paul S. ;
Jacquel, Dominique ;
Foo, David M. H. ;
Antunes, Andre ;
Borg, Ulf R. .
ANESTHESIA AND ANALGESIA, 2017, 125 (03) :860-873
[3]  
Al-Khalidi F., 2011, Am. J. Eng. Appl. Sci., V4, P586
[4]   Real Time Apnoea Monitoring of Children Using the Microsoft Kinect Sensor: A Pilot Study [J].
Al-Naji, Ali ;
Gibson, Kim ;
Lee, Sang-Heon ;
Chahl, Javaan .
SENSORS, 2017, 17 (02)
[5]  
[Anonymous], 2011, MEMEA 2011 2011 IEEE
[6]  
Aoki H, 2012, 2012 PROCEEDINGS OF SICE ANNUAL CONFERENCE (SICE), P614
[7]   Multicenter Study Validating Accuracy of a Continuous Respiratory Rate Measurement Derived From Pulse Oximetry: A Comparison With Capnography [J].
Bergese, Sergio D. ;
Mestek, Michael L. ;
Kelley, Scott D. ;
McIntyre, Robert, Jr. ;
Uribe, Alberto A. ;
Sethi, Rakesh ;
Watson, James N. ;
Addison, Paul S. .
ANESTHESIA AND ANALGESIA, 2017, 124 (04) :1153-1159
[8]  
Bernacchia N, 2014, IEEE INT SYM MED MEA, P243, DOI 10.1109/MeMeA.2014.6860065
[9]   Agreement between methods of measurement with multiple observations per individual [J].
Bland, J. Martin ;
Altman, Douglas G. .
JOURNAL OF BIOPHARMACEUTICAL STATISTICS, 2007, 17 (04) :571-582
[10]  
Bu N, 2017, 29 ANN INT C IEEE EN, P1362