Heart rate variability indices for very short-term (30 beat) analysis. Part 2: validation

被引:16
作者
Smith, Anne-Louise [1 ,2 ]
Owen, Harry [3 ]
Reynolds, Karen J. [1 ]
机构
[1] Flinders Univ S Australia, Med Device Res Inst, Adelaide, SA 5001, Australia
[2] Flinders Med Ctr, Dept Biomed Engn, Adelaide, SA, Australia
[3] Flinders Univ S Australia, Sch Med, Adelaide, SA 5001, Australia
关键词
Autonomic nervous system (ANS) modulation; Biomedical signal processing; Heart rate variability (HRV); Software algorithms; RESPIRATORY SINUS ARRHYTHMIA; FREQUENCY-DOMAIN MEASURES; RATE DYNAMICS; CARDIOVASCULAR VARIABILITY; CONFIDENCE-INTERVALS; SPECTRAL-ANALYSIS; TIME; SLEEP; STATISTICS; EXERCISE;
D O I
10.1007/s10877-013-9473-2
中图分类号
R614 [麻醉学];
学科分类号
100217 ;
摘要
Heart rate variability (HRV) analysis over shorter periods may be useful for monitoring dynamic changes in autonomic nervous system activity where steady-state conditions are not maintained (e.g. during drug administration, or the start or end of exercise). This study undertakes a validation of 70 HRV indices that have previously been identified as possible for short-term use. The indices were validated over 10 x 30 beat windows using PhysioNet databases with physiological states of rest, active, exercising, sleeping, and meditating (N from 12 to 20). Baseline 95 % confidence intervals of the median were established with bootstrap resampling (10,000x). Statistical significance was assessed using the overlap of 95 % confidence intervals. Thirty-one indices could differentiate between resting and at least one physiological state using 30 beat windows. All respiratory sinus arrhythmia indices and Poincar, plot indices were strongly correlated to time domain measures (SDNN or RMSSD). Spectral indices using the Lomb-Scargle algorithm were able to correctly identify paradoxical shifts in power with meditation and reduced power in exercise. Some less-known indices gave interesting results: PolVar20 identified the higher sympathetic activity of exercise with the largest positive magnitude. These indices should now be considered for rigorous gold standard tests with pharmacological blockade.
引用
收藏
页码:577 / 585
页数:9
相关论文
共 50 条
[21]   Short-term and long-term blood pressure and heart rate variability in the mouse [J].
Janssen, BJA ;
Leenders, PJA ;
Smits, JFM .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2000, 278 (01) :R215-R225
[22]   y Reliability of short-term measurements of heart rate variability: Findings from a longitudinal study [J].
Uhlig, Stefan ;
Meylan, Annett ;
Rudolph, Udo .
BIOLOGICAL PSYCHOLOGY, 2020, 154
[23]   Association of Short-term Heart Rate Variability and Sudden Unexpected Death in Epilepsy [J].
Sivathamboo, Shobi ;
Friedman, Daniel ;
Laze, Juliana ;
Nightscales, Russell ;
Chen, Zhibin ;
Kuhlmann, Levin ;
Devore, Sasha ;
Macefield, Vaughan ;
Kwan, Patrick ;
D'Souza, Wendyl ;
Berkovic, Samuel F. ;
Perucca, Piero ;
O'Brien, Terence J. ;
Devinsky, Orrin .
NEUROLOGY, 2021, 97 (24) :E2357-E2367
[24]   Short-term stability of resting heart rate variability: influence of position and gender [J].
Young, Fiona L. S. ;
Leicht, Anthony S. .
APPLIED PHYSIOLOGY NUTRITION AND METABOLISM, 2011, 36 (02) :210-218
[25]   Short-term heart rate variability-age dependence in healthy subjects [J].
Voss, A. ;
Heitmann, A. ;
Schroeder, R. ;
Peters, A. ;
Perz, S. .
PHYSIOLOGICAL MEASUREMENT, 2012, 33 (08) :1289-1311
[26]   Discrimination Power of Short-Term Heart Rate Variability Measures for CHF Assessment [J].
Pecchia, Leandro ;
Melillo, Paolo ;
Sansone, Mario ;
Bracale, Marcello .
IEEE TRANSACTIONS ON INFORMATION TECHNOLOGY IN BIOMEDICINE, 2011, 15 (01) :40-46
[27]   Short-term studies of heart rate variability: comparison of two methods for recording [J].
Migliaro, ER ;
Canetti, R ;
Contreras, P ;
Hakas, M ;
Eirea, G ;
Machado, A .
PHYSIOLOGICAL MEASUREMENT, 2004, 25 (06) :N15-N20
[28]   Effect of spontaneous saliva swallowing on short-term heart rate variability (HRV) and reliability of HRV analysis [J].
Yildiz, Metin ;
Doma, Serian .
CLINICAL PHYSIOLOGY AND FUNCTIONAL IMAGING, 2018, 38 (04) :710-717
[29]   ActiGraph and Short-term Heart Rate Variability Study Protocol Amended for the COVID-19 Pandemic [J].
Luong, Anna ;
Goodyke, Madison ;
Dunn, Susan L. ;
Baynard, Tracy ;
Bronas, Ulf .
JOURNAL OF CARDIOVASCULAR NURSING, 2021, 36 (06) :599-608
[30]   Validity and Reliability of Short-Term Heart-Rate Variability from the Polar S810 [J].
Nunan, David ;
Donovan, Gay ;
Jakovljevic, Djordje G. ;
Hodges, Lynette D. ;
Sandercock, Gavin R. H. ;
Brodie, David A. .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2009, 41 (01) :243-250