SPECTRA OF DATA SAMPLED AT FREQUENCY-MODULATED RATES IN APPLICATION TO CARDIOVASCULAR SIGNALS .1. ANALYTICAL DERIVATION OF THE SPECTRA

被引:17
作者
TENVOORDE, BJ [1 ]
FAES, TJC [1 ]
ROMPELMAN, O [1 ]
机构
[1] DELFT UNIV TECHNOL,INFORMAT THEORY GRP,DELFT,NETHERLANDS
关键词
BLOOD-PRESSURE VARIABILITY; HEART-RATE VARIABILITY; INTEGRAL PULSE FREQUENCY MODULATOR; NONUNIFORM SAMPLING; SPECTRAL ANALYSIS;
D O I
10.1007/BF02512480
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Beat-to-beat cardiovascular signals, e.g a series of systolic pressure values, can be considered as time series which are pulse amplitude modulated (PAM) and pulse frequency modulated (PFM). The latter process, due to variations in heart rate, causes the series to become non-uniformly spaced in time. If PAM is to be quantified by spectral analysis, the influence of PFM must be known. An analytical expression is therefore derived for the spectrum of sinusoids which are sampled according to the output event series of a linear integral pulse frequency modulator (IPFM). We conclude that two spectral components arise at the difference and sum of PFM and PAM frequencies, f(p) +/- f(x,) with amplitudes proportional to the PFM modulation depth. These components appear as a DC component and as a first harmonic if both modulating frequencies are equal. In addition, a cluster of spectral components appears around the mean pulse frequency f(o) (i.e. mean heart rate), at frequencies f(o)-nf(p) +/- f(x,) which may leak into the signal band. From these theoretical considerations, we conclude that the amplitude spectrum of a sinusoidally varying systolic blood pressure series can contain up to 20-30% spurious components, owing to the heart rate modulation process.
引用
收藏
页码:63 / 70
页数:8
相关论文
共 28 条
[1]   RESPIRATORY AND CARDIAC EFFECTS ON VENOUS RETURN [J].
ABEL, FL ;
WALDHAUS.JA .
AMERICAN HEART JOURNAL, 1969, 78 (02) :266-&
[2]   HEMODYNAMIC REGULATION - INVESTIGATION BY SPECTRAL-ANALYSIS [J].
AKSELROD, S ;
GORDON, D ;
MADWED, JB ;
SNIDMAN, NC ;
SHANNON, DC ;
COHEN, RJ .
AMERICAN JOURNAL OF PHYSIOLOGY, 1985, 249 (04) :H867-H875
[3]   BASIC TECHNOLOGY OF VOLUNTARY CARDIORESPIRATORY SYNCHRONIZATION IN ELECTROCARDIOLOGY [J].
ALMASI, JJ ;
SCHMITT, OH .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1974, BM21 (04) :264-273
[4]  
[Anonymous], 1970, HDB MATH FNCTIONS
[5]   SPECTRAL AND CROSS-SPECTRAL ANALYSIS OF HEART-RATE AND ARTERIAL BLOOD-PRESSURE VARIABILITY SIGNALS [J].
BASELLI, G ;
CERUTTI, S ;
CIVARDI, S ;
LIBERATI, D ;
LOMBARDI, F ;
MALLIANI, A ;
PAGANI, M .
COMPUTERS AND BIOMEDICAL RESEARCH, 1986, 19 (06) :520-534
[7]   AN EFFICIENT ALGORITHM FOR SPECTRAL-ANALYSIS OF HEART-RATE-VARIABILITY [J].
BERGER, RD ;
AKSELROD, S ;
GORDON, D ;
COHEN, RJ .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1986, 33 (09) :900-904
[8]  
CALVAGNO G, 1990, P ICASSP 90 1990, P1535
[9]   RELATIONSHIPS BETWEEN SHORT-TERM BLOOD-PRESSURE FLUCTUATIONS AND HEART-RATE-VARIABILITY IN RESTING SUBJECTS .1. A SPECTRAL-ANALYSIS APPROACH [J].
DEBOER, RW ;
KAREMAKER, JM ;
STRACKEE, J .
MEDICAL & BIOLOGICAL ENGINEERING & COMPUTING, 1985, 23 (04) :352-358
[10]   COMPARING SPECTRA OF A SERIES OF POINT EVENTS PARTICULARLY FOR HEART-RATE-VARIABILITY DATA [J].
DEBOER, RW ;
KAREMAKER, JM ;
STRACKEE, J .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1984, 31 (04) :384-387