Adaptive anatomical preservation optimal denoising for radiation therapy daily MRI
Rapeepan Maitree1, Gloria J Guzman Perez-Carrillo2,3, Joshua S Shimony2
1Washington University School of Medicine, Department of Radiation Oncology, St. Louis, Missouri, United States.
Abstract:
Low-field magnetic resonance imaging (MRI) has recently been integrated with radiation therapy systems to provide image guidance for daily cancer radiation treatments. The main benefit of the low-field strength is minimal electron return effects. The main disadvantage of low-field strength is increased image noise compared to diagnostic MRIs conducted at 1.5 T or higher. The increased image noise affects both the discernibility of soft tissues and the accuracy of further image processing tasks for both clinical and research applications, such as tumor tracking, feature analysis, image segmentation, and image registration. An innovative method, adaptive anatomical preservation optimal denoising (AAPOD), was developed for optimal image denoising, i.e., to maximally reduce noise while preserving the tissue boundaries. AAPOD employs a series of adaptive nonlocal mean (ANLM) denoising trials with increasing denoising filter strength (i.e., the block similarity filtering parameter in the ANLM algorithm), and then detects the tissue boundary losses on the differences of sequentially denoised images using a zero-crossing edge detection method. The optimal denoising filter strength per voxel is determined by identifying the denoising filter strength value at which boundary losses start to appear around the voxel. The final denoising result is generated by applying the ANLM denoising method with the optimal per-voxel denoising filter strengths. The experimental results demonstrated that AAPOD was capable of reducing noise adaptively and optimally while avoiding tissue boundary losses. AAPOD is useful for improving the quality of MRIs with low-contrast-to-noise ratios and could be applied to other medical imaging modalities, e.g., computed tomography.
Insights
Low-field MRI noise is reduced by the new adaptive anatomical preservation optimal denoising (AAPOD) method. AAPOD maximally reduces noise while preserving critical tissue boundaries for improved cancer treatment guidance.
Area of Science:
- Medical Imaging
- Radiotherapy Physics
Background:
- Low-field magnetic resonance imaging (MRI) offers advantages for radiation therapy guidance, such as minimal electron return effects.
- However, low-field MRI suffers from increased image noise compared to higher-field diagnostic MRI, impacting soft tissue visualization and image processing accuracy.
Purpose of the Study:
- To develop an innovative denoising method, adaptive anatomical preservation optimal denoising (AAPOD), for low-field MRI.
- To maximally reduce image noise while preserving critical tissue boundaries for enhanced image quality in radiation therapy applications.
Main Methods:
- AAPOD utilizes adaptive nonlocal mean (ANLM) denoising with iterative increases in filter strength.
- Tissue boundary integrity is assessed using zero-crossing edge detection on sequentially denoised images.
- Optimal denoising filter strength is determined per voxel by identifying the threshold at which boundary loss occurs.
Main Results:
- Experimental results confirmed AAPOD's ability to adaptively and optimally reduce noise.
- The method successfully prevented tissue boundary losses during the denoising process.
- AAPOD demonstrated effectiveness in improving the quality of low-contrast-to-noise ratio MR images.
Conclusions:
- AAPOD is an effective technique for denoising low-field MRI, crucial for radiation therapy image guidance.
- The method preserves anatomical details, enhancing the reliability of downstream image analysis tasks.
- AAPOD shows potential for application in other medical imaging modalities, including computed tomography.
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