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Updated: Jan 9, 2026

Measuring the Carotid to Femoral Pulse Wave Velocity Cf-PWV to Evaluate Arterial Stiffness
Published on: May 3, 2018
Toward Noninvasive Assessment of Arterial Stiffness: Regression Modeling From Radial-Tibial Pulse Wave Features
Insights
Researchers developed a new method to estimate cardiovascular health using accessible pulse wave measurements. This approach enables non-invasive, wearable devices for continuous monitoring of arterial stiffness and cardiovascular disease risk.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Medical Device Development
Background:
- Cardiovascular diseases (CVDs) are a leading global cause of mortality.
- Pulse Wave Velocity (PWV) is a critical indicator of arterial stiffness and CVD risk.
- Current PWV measurement methods require access to carotid and femoral arteries, hindering wearable applications.
Purpose of the Study:
- To develop a regression algorithm for predicting carotid-femoral PWV from accessible pulse wave signals.
- To enable continuous, non-invasive vascular health monitoring using wearable technology.
- To overcome limitations of traditional PWV measurement sites for home-based monitoring.
Main Methods:
- Pulse wave signals were acquired from accessible sites: carotid, radial, and tibial arteries.
- A regression algorithm was employed to predict carotid-femoral PWV.
- The study involved 90 healthy voluntary participants at Candiolo Cancer Institute.
Main Results:
- Carotid-radial models achieved a mean error (ME) < 0.1 m/s and standard deviation error (SDE) < 1 m/s.
- Radial-tibial models demonstrated similar ME and an SDE < 0.9 m/s.
- The developed models showed strong predictive accuracy for PWV.
Conclusions:
- The proposed method accurately predicts PWV using pulse waves from accessible body sites.
- This approach holds significant promise for developing wearable devices for continuous vascular health monitoring.
- The findings support future clinical implementation for non-invasive CVD risk assessment.
Abstract:
In the last decade, research in developing systems for monitoring clinical parameters has grown exponentially, driven by the increasing demand for continuous and remote observation. Monitoring cardiovascular diseases (CVDs) is crucial, as they remain the leading cause of mortality worldwide. Pulse Wave Velocity (PWV) is a key clinical indicator for assessing arterial stiffness, highly correlated with CVDs. Current methods for measuring PWV require acquiring pulse wave signals at the carotid and femoral sites, configurations that are widely validated in the literature. However, accessing these specific anatomical points presents a significant challenge for developing wearable devices for continuous or home-based PWV monitoring. The present study proposes an innovative approach using a regression algorithm to predict the carotid-femoral PWV value from pulse waves acquired at more accessible sites, including the carotid, radial, and tibial, compatible with wearable use. The study was conducted on a cohort of 90 voluntary healthy participants at the Candiolo Cancer Institute FPO-IRCCS. The best-performing carotid-radial models show a mean error (ME) of less than 0.1 m/s, with a standard deviation error (SDE) below 1 m/s. Similarly, the radial-tibial models exhibit a mean error of the same magnitude but with an even smaller standard deviation error, below 0.9 m/s. These results highlight the strong predictive capabilities of the developed models, offering promising prospects for future clinical implementation aimed at non-invasive and potentially continuous vascular health monitoring.
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