Smart detection of atrial fibrillation

被引:83
作者
Krivoshei, Lian [1 ,4 ]
Weber, Stefan [2 ]
Burkard, Thilo [3 ]
Maseli, Anna [1 ]
Brasier, Noe [1 ]
Kuhne, Michael [5 ]
Conen, David [1 ]
Huebner, Thomas [6 ]
Seeck, Andrea [6 ]
Eckstein, Jens [1 ]
机构
[1] Basel Univ Hosp, Dept Internal Med, Petersgraben 4, CH-4031 Basel, Switzerland
[2] Univ Hosp Regensburg, Dept Internal Med, Franz Josef Strauss Allee 11, D-93053 Regensburg, Germany
[3] Basel Univ Hosp, Med Outpatient Clin, Petersgraben 4, CH-4031 Basel, Switzerland
[4] Basel Univ Hosp, Dept Cardiol, Freiburgstr 10, CH-3010 Bern, Switzerland
[5] Basel Univ Hosp, Dept Cardiol, Petersgraben 4, CH-4031 Bern, Switzerland
[6] Preventicus GmbH, Tatzendpromenade 2, D-07745 Jena, Germany
来源
EUROPACE | 2017年 / 19卷 / 05期
关键词
fibrillation; Pulse wave analysis; Rhythm monitoring; Smartphone; HEART-RATE-VARIABILITY; POINCARE PLOT;
D O I
10.1093/europace/euw125
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Aims Atrial fibrillation (AF) is the most common arrhythmia encountered in clinical practice, and its paroxysmal nature makes its detection challenging. In this trial, we evaluated a novel App for its accuracy to differentiate between patients in AF and patients in sinus rhythm (SR) using the plethysmographic sensor of an iPhone 4S and the integrated LED only. Methods and results For signal acquisition, we used an iPhone 4S, positioned with the camera lens and LED light on the index fingertip. A 5 min video file was recorded with the pulse wave extracted from the green light spectrum of the signal. RR intervals were automatically identified. For discrimination between AF and SR, we tested three different statistical methods. Normalized root mean square of successive difference of RR intervals (nRMSSD), Shannon entropy (ShE), and SD1/SD2 index extracted from a Poincare plot. Eighty patients were included in the study (40 patients in AF and 40 patients in SR at the time of examination). For discrimination between AF and SR, ShE yielded the highest sensitivity and specificity with 85 and 95%, respectively. Applying a tachogram filter resulted in an improved sensitivity of 87.5%, when combining ShE and nRMSSD, while specificity remained stable at 95%. A combination of SD1/SD2 index and nRMSSD led to further improvement and resulted in a sensitivity and specificity of 95%. Conclusion The algorithm tested reliably discriminated between SR and AF based on pulse wave signals from a smartphone camera only. Implementation of this algorithm into a smartwatch is the next logical step.
引用
收藏
页码:753 / 757
页数:5
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