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Updated: May 25, 2026

Software for Analysis of Heart Rate and Blood Pressure Time-series Data from the Valsalva Maneuver
Published on: June 27, 2025
New insight into arrhythmia onset using HRV and BPV analysis
Gabriela Postolache1, Mário Oliveira, Isabel Rocha
1Escola Superior de Saúde, Universidade Atlântica, Oeiras, and Unidade de Sistema Nervoso Autónomo, Instituto de Medicina Molecular, Lisbon, Portugal. gabrielap@uatlantica.pt
Insights
Analyzing Heart Rate Variability (HRV) and Blood Pressure Variability (BPV) before cardiac arrhythmia can forecast its onset. Combined frequency, phase, and time-frequency analyses offer insights into cardiovascular control and arrhythmia risk.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Non-invasive Diagnostics
Background:
- Cardiac arrhythmia detection is crucial for patient outcomes.
- Short-term forecasting of arrhythmia can enable timely intervention.
- Understanding the interplay between cardiovascular signals is key.
Purpose of the Study:
- To identify predictive markers for cardiac arrhythmia using Heart Rate Variability (HRV) and Blood Pressure Variability (BPV).
- To analyze cardiovascular signal dynamics before arrhythmia onset.
- To explore the utility of frequency, phase, and time-frequency analyses for forecasting arrhythmia.
Main Methods:
- Analysis of coherence between systolic blood pressure (SBP) and cardiac oscillations in low-frequency (LF) and high-frequency (HF) bands.
- Assessment of phase fluctuations between cardiovascular signals.
- Evaluation of HRV and BPV in frequency and time-frequency domains.
- Transfer function analysis of cardiovascular signals.
Main Results:
- Arrhythmia onset was preceded by lower coherence, increased phase fluctuations, higher spectral energy in the blood pressure signal at respiratory frequency, increased sympathetic outflow, and decreased HRV.
- Cardiac arrhythmia was characterized by increased LF power in blood pressure, cardiac signals, and transfer function.
- Self-termination of arrhythmia correlated with increased total BPV and HRV.
Conclusions:
- Combined frequency, phase, and time-frequency analysis of blood pressure and cardiac oscillations provide valuable information.
- These analyses offer insights into neuronal cardiovascular control.
- The findings suggest potential for improved short-term forecasting of spontaneous cardiac arrhythmia.
Abstract:
In this paper Heart Rate Variability (HRV) and Blood Pressure Variability (BPV) were analyzed before the onset of cardiac arrhythmia in order to derive markers for short-term forecasting. The (a) coherence between systolic blood pressure (SBP) and cardiac oscillations in low-frequency (LF) and high-frequency (HF) band; (b) fluctuations of phase; (c) HRV and BPV as a LF power and HF power in frequency and time-frequency domain; (d) transfer function analysis of cardiovascular signals were analyzed. Arrhythmia was preceded by: a) lower coherence; b) increase in fluctuations of phase between signals; c) higher spectral energy associated with respiratory frequency in blood pressure signal; d) raise of sympathetic outflow to the heart; e) decreased HRV. Cardiac arrhythmia was characterized mainly by an increase in LF power of blood pressure, cardiac signal and transfer function. During self-termination of arrhythmia a larger increased in total BPV and HRV was recorded. These results suggest that important information about both neuronal cardiovascular control and risk for spontaneous arrhythmia can be provided by combined analysis of frequency, phase, and time-frequency analysis of blood pressure and cardiac oscillation.
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