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Three-Dimensional Phase Resolved Functional Lung Magnetic Resonance Imaging
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Multicycle Temporal Compounding Sonography for Despeckling at Specified Respiratory Phases
IEEE Transactions on Medical Imaging
|August 25, 2025
Summary
This new ultrasound technique eliminates breath-holding for abdominal imaging by using respiratory phase-guided compounding to reduce noise and motion artifacts. It improves image quality in critical care and routine settings.
Area of Science:
- Medical Imaging
- Ultrasound Technology
- Image Processing
Background:
- Abdominal ultrasound imaging is often hindered by speckle noise and motion artifacts, particularly in intensive care units (ICUs).
- Current methods frequently require patients to hold their breath, which can be challenging or impossible in critical care settings.
- Motion artifacts and speckle noise degrade image quality, impacting diagnostic accuracy.
Purpose of the Study:
- To develop a breath-hold-free abdominal ultrasound method for improved image quality in clinical and ICU settings.
- To address and mitigate speckle noise and motion artifacts in ultrasound images.
- To enhance the reliability and efficiency of abdominal ultrasound examinations.
Main Methods:
- A novel respiratory phase-guided multicycle temporal compounding technique was employed.
- The method identifies motion states across respiratory cycles to fuse images for effective despeckling.
- A synergistic framework combined anisotropic diffusion for speckle removal and guided filtering for structure transfer.
Main Results:
- The method achieved high performance metrics, including an average β of 0.931/0.930 and a Speckle Suppression and Mean Preservation Index (SMPI) of 0.483/0.584.
- Pratt's figure of merit was high at 0.842/0.827, indicating superior edge preservation and despeckling.
- The technique demonstrated computational efficiency comparable to established methods, with ~2.65s/iteration.
Conclusions:
- The developed breath-hold-free ultrasound method effectively suppresses speckle noise and motion artifacts.
- It outperforms existing despeckling methods in terms of edge preservation and overall image quality.
- This technique offers a streamlined workflow for abdominal ultrasound in critical care and routine practice without requiring breath-holding.
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