High fidelity correction of pressure signals from fluid-filled systems by harmonic analysis

Citation
E. Wellnhofer et al., High fidelity correction of pressure signals from fluid-filled systems by harmonic analysis, J CLIN M C, 15(5), 1999, pp. 307-315
Citations number
30
Categorie Soggetti
Aneshtesia & Intensive Care
Journal title
JOURNAL OF CLINICAL MONITORING AND COMPUTING
ISSN journal
13871307 → ACNP
Volume
15
Issue
5
Year of publication
1999
Pages
307 - 315
Database
ISI
SICI code
1387-1307(199907)15:5<307:HFCOPS>2.0.ZU;2-K
Abstract
Fluid-filled systems are generally used for invasive pressure measurements in cardiology, anesthesiology and intensive care medicine. Wave reflection and attenuation cause considerable signal distortion. Methods. The transduc er signal is amplified (no filtering) and sampled (rate 1 kHz) using an aut ocorrelation based algorithm to detect instantaneous cycle length. A digita l Fourier transformation (DFT) for each heart cycle is performed. Amplitude and phase distortion are corrected using data matrices determined in in vi tro experiments or calibration measurements for each fluid-filled system to be used. As a measure for accuracy the maximum of the difference of refere nce and corrected pressures (DIFF) was selected. 960 analyses were performe d to assess the impact of correction, used system, mean pressure, time and A/D sampling rate on the agreement with reference pressure. Clinical exampl es are presented. Results. Mean pressure was correlated with DIFF (r = 0.83 ). The correction algorithm achieves a significant (p < 0.001) reduction of DIFF from 20-30 mm Hg to 0-5 mm Hg in the high pressure range and from 1-3 mm Hg to 0-1.5 mm Hg in the low pressure system in in vitro experiments an d in clinical pressure recordings. Sampling frequency < 1 kHz reduces accur acy. Conclusions. High fidelity correction of pressure signals from fluid-f illed systems by harmonic analysis is feasible.