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December 15, 2011European Heart Journal - Cardiovascular Imaging50 citations

How to optimize intracardiac blood flow tracking by echocardiographic particle image velocimetry? Exploring the influence of data acquisition using computer-generated data sets

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HGHang GaoPCPiet ClausMAMihaela Amzulescu

Key Result

In a simulated left ventricular flow model, optimal echocardiographic particle image velocimetry vorticity measurements required a frame rate of 113 fps and a contrast bubble density of 19 bubbles/mL.

Structured PICO

Does optimizing frame rate and contrast bubble density improve the accuracy of intracardiac blood flow tracking by echocardiographic particle image velocimetry in a simulated LV model?

P
Population
Simulated computational three-dimensional (3D) blood flow field of the left ventricle (LV) with contrast microbubbles
I
Intervention
Different frame rates (227, 113, 76, and 57 fps) and bubble densities (100, 63, 36, 19, 10, and 3 bubbles/mL)
C
Comparator
Ground truth known from the computational LV flow model
O
Outcome
Accuracy of vorticity and in-plane velocity vector field tracking (amplitude error, angle error, correlation of estimated and true vorticity)surrogate

Accurate vorticity measurements using echocardiographic particle image velocimetry require optimized frame rate acquisitions (e.g., 113 fps) and contrast bubble density (e.g., 19 bubbles/mL).

Main Result

Effect estimate: r = 0.79 ± 0.02

Abstract

AIMS: Echocardiographic particle image velocimetry (EPIV) has been used for tracking contrast-enhanced intracavitary blood flow. Little is known, however, how basic imaging parameters (line density, frame rate, contrast bubble density) affect the quality of such tracking results. Our study aimed at investigating this by using simulated echo data sets. METHODS AND RESULTS: A computational three-dimensional (3D) blood flow field of the left ventricle (LV) was built using Fluent 12.1 (ANSYS Inc., USA). Then, the 3D motion of contrast microbubbles was simulated and 2D B-mode image loops were obtained (f = 4.5 MHz; 50 sector angle) and analysed using flow tracking software (Omega Flow, Siemens, USA). Vorticity and the resulting in-plane velocity vector field was calculated at different frame rates (227, 113, 76, and 57 fps) and bubble densities (100, 63, 36, 19, 10, and 3 bubbles/mL) and compared with the ground truth known from the computational LV flow model. The normal distribution of the amplitude error and angle error histograms confirmed the overall good performance of the tracking method. In the standard deviation analysis of error histograms, tracked velocity amplitudes correlated best with the ground truth at 10 bubbles/mL and 227 fps (45.81 ± 3.43%, P < 0.05), while the best performance of flow direction estimates was at 10 bubbles/mL and 76 fps (25.41 ± 1.22°, P < 0.05). The correlation of estimated and true vorticity tended to grow with increasing frame rate and was optimal at 19 bubbles/mL and 113 fps (r = 0.79 ± 0.02). CONCLUSION: To achieve accurate vorticity measurements, frame rate acquisitions as 113 fps and contrast bubble density of 19 bubbles/mL are needed.

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Cite This Study

Gao et al. (2011) studied Simulated left ventricular blood flow. Echocardiographic particle image velocimetry (EPIV) parameter optimization vs. Ground truth from computational LV flow model was evaluated on Correlation of estimated and true vorticity (r = 0.79 ± 0.02). In a simulated left ventricular flow model, optimal echocardiographic particle image velocimetry vorticity measurements required a frame rate of 113 fps and a contrast bubble density of 19 bubbles/mL.

synapsesocial.com/papers/6a81b75f933117ee29776f0dhttps://doi.org/10.1093/ejechocard/jer285
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1High Frame Rate Ultrasound Particle Image Velocimetry for Estimating High Velocity Flow Patterns in the Left Ventricle2017 · 35 citations
  2. 2Optimized Time-Resolved Echo Particle Image Velocimetry– Particle Tracking Velocimetry Measurements Elucidate Blood Flow in Patients With Left Ventricular Thrombus2018 · 16 citations
  3. 3Validation of Left Ventricular High Frame Rate Echo-Particle Image Velocimetry against 4D Flow MRI in Patients2023
  4. 44-D Echo-Particle Image Velocimetry in a Left Ventricular Phantom2020 · 63 citations
  5. 5Coupling Myocardium and Vortex Dynamics in Diverging-Wave Echocardiography2018 · 23 citations