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Assessing Cerebral Autoregulation via Oscillatory Lower Body Negative Pressure and Projection Pursuit Regression
Published on: December 10, 2014
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Investigation of Cerebral Autoregulation Using Time-Frequency Transformations
Vladimir Semenyutin1, Valery Antonov2, Galina Malykhina3
1Almazov National Medical Research Center, Ministry of Health of Russia, Polenov Neurosurgical Research Institute, 12 Mayakovsky Street, Saint-Petersburg 191014, Russia.
Biomedicines
|December 23, 2022
Summary
This study introduces a novel wavelet transform method for analyzing cerebral blood flow and arterial pressure. It offers improved sensitivity and localization for assessing cerebral autoregulation in neurosurgical patients.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Signal Processing
Background:
- Systemic and cerebral hemodynamics are crucial in neurosurgical pathologies.
- Effective treatment relies on understanding cerebral circulation regulation.
- Current methods may lack sensitivity in assessing autoregulation.
Purpose of the Study:
- To develop and validate a new signal processing method for assessing cerebral autoregulation.
- To analyze hemodynamics in neurosurgical patients using advanced techniques.
- To improve the real-time monitoring of cerebral circulation regulation.
Main Methods:
- Continuous wavelet transform (CWT) applied to systemic arterial pressure (SAP) and middle cerebral artery blood flow velocity (MCA-BFV) signals.
- Non-invasive recording using photoplethysmography (PPG) and transcranial Doppler ultrasonography (TCD).
- Cross-wavelet spectrum analysis to determine wavelet coherence and phase shift in the Mayer wave frequency range.
Main Results:
- The CWT-based method effectively characterizes cerebral autoregulation mechanisms.
- Real-time analysis in the Mayer wave range allows for determining autoregulation status.
- The proposed method demonstrated higher sensitivity and better time-frequency localization compared to short-time Fourier transform (STFT).
Conclusions:
- The novel wavelet transform method provides a sensitive tool for assessing cerebral autoregulation.
- This technique aids in addressing fundamental and clinical problems in neurosurgery.
- It enables effective treatment strategies for patients with various pathologies.

