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Real-Time High-Frame-Rate Cardiac B-Mode and Tissue Doppler Imaging Based on Multiline Transmission and Multiline
Insights
This study introduces real-time high-frame-rate cardiac ultrasound imaging for better assessment of left ventricular function. New multiline transmission and acquisition methods achieve high frame rates for both B-mode and Doppler imaging, improving cardiovascular disease diagnosis.
Area of Science:
- Medical Imaging
- Cardiovascular Ultrasound
- Biomedical Engineering
Background:
- Cardiovascular diseases are a leading cause of death, often linked to left ventricular dysfunction.
- Current clinical assessment relies on visual wall motion scoring, but quantitative methods like ultrasound tissue Doppler imaging (TDI) are limited by frame rate and field of view trade-offs.
Purpose of the Study:
- To demonstrate the real-time feasibility of multiline transmission (TX) and acquisition for high-frame-rate (HFR) cardiac B-mode and TDI.
- To evaluate the performance of these new methods in terms of image quality and frame rate.
Main Methods:
- Implementation of multiline TX and acquisition on the ULA-OP 256 research scanner.
- Optimization of scanner resources for HFR cardiac B-mode and TDI.
- Experiments using a 128-element phased array probe.
Main Results:
- Real-time B-mode imaging achieved up to 1150 Hz without compromising image quality or field of view.
- Real-time TDI imaging reached a frame rate of 288 Hz with a 90° field of view.
- In vivo examples confirmed the clinical feasibility and suitability of the method.
Conclusions:
- The developed multiline TX and acquisition methods enable real-time HFR cardiac B-mode and TDI.
- This advancement offers improved quantitative assessment of myocardial function for clinical studies.
- The technology shows significant potential for enhanced cardiovascular disease diagnosis and monitoring.
Abstract:
Cardiovascular diseases, the leading cause of death in the world, are often associated with the dysfunction of the left ventricle. Even if, in clinical practice, the myocardial function is often assessed through visual wall motion scoring on B-mode images, quantitative techniques have been introduced, e.g., ultrasound tissue Doppler imaging (TDI). However, this technique suffers from the limited frame rate of currently available imaging techniques that needs to be balanced with the field of view. High-frame-rate (HFR) cardiac imaging has been recently tested off-line by simultaneously transmitting multiple focused beams into different directions and acquiring raw channel data into a PC. Several image lines were then reconstructed from the echoes of each transmission (TX) event. The same approach has been used to increase the TDI frame rate without restricting the field of view. This paper demonstrates the real-time feasibility of multiline TX and acquisition methods for both HFR cardiac B-mode and TDI. These approaches have been implemented on the ULA-OP 256 research scanner, by taking care that the related resources were optimally exploited for these new applications. The obtainable performance in terms of image quality and frame rate has also been investigated. Experiments performed with a 128-element phased array probe show, for the first time, that real-time B-mode imaging is feasible at up to 1150 Hz without significant reduction in image quality or field of view. The implementation of a real-time TDI algorithm allowed obtaining TDI images with a frame rate of 288 Hz for a 90°-wide field of view. Finally, in vivo examples demonstrate the feasibility and the suitability of the method in clinical studies.
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