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Simultaneous respiratory motion correction and image reconstruction in 4D-multi pinhole small animal SPECT
Simultaneous respiratory motion correction and image reconstruction in 4D-multi pinhole small animal SPECT
- Source :
- Medical physicsReferences. 46(11)
- Publication Year :
- 2019
-
Abstract
- Purpose Respiratory motion in the chest region during single photon emission computed tomography (SPECT) is a major degrading factor that reduces the accuracy of image quantification. This effect is more notable when the tumor is very small, or the spatial resolution of the imaging system is less than the respiratory motion amplitude. Small animals imaging systems with sub-millimeter spatial resolution need more attention to the respiratory motion for quantitative studies. We developed a motion-embedded four-dimensional (4D)-multi pinhole SPECT (MPS) reconstruction algorithm for respiratory motion correction. This algorithm makes full use of projection statistics for reconstruction of every individual frame. Methods The ROBY phantom with small tumors in liver was generated in eight different phases during one respiratory cycle. The MPS projections were modeled using a fast ray tracing method simulating an MPS acquisition. Individual frames were reconstructed and used for motion estimation. The Demons non-rigid registration algorithm was used to calculate deformation vector fields (DVFs) for simultaneous motion correction and image reconstruction. A motion-embedded 4D-MPS method was used to reconstruct images using all the projections and corresponding DVFs, simultaneously. The 4D-MPS reconstructed images were compared to the low-count single frame (LCSF) reconstructed image, the three-dimensional (3D)-MPS images reconstructed using individual frames, and post reconstruction registration (PRR) that aligns all individual phases to a reference frame using Demons-derived DVFs. The tumor volume relative error (TVE), tumor contrast relative error (TCE), and dice index (DI) for 2, 3, and 4 mm liver were calculated and compared for different reconstruction methods. Results For the 4D-MPS reconstruction method, TVE was reduced and DI was higher compared to PRR, 3D-MPS, and LCSF. The extent of the improvement was higher for the small tumor size (i.e. 2 mm). For the biggest tumor in contrast 3 (i.e. 4 mm) TVE for 4D-MPS, PRR, 3D-MPS and, LCSF were 1.33%, 8%, 8%, and 14.67%, respectively. Conclusions The results suggest that motion-embedded 4D-MPS method is an effective and practical way for respiratory motion correction. It reconstructs high quality gated frames while using all projection data to reconstruct each frame.
- Subjects :
- Time Factors
Computer science
Movement
Iterative reconstruction
Single-photon emission computed tomography
Imaging phantom
030218 nuclear medicine & medical imaging
03 medical and health sciences
Mice
0302 clinical medicine
Motion estimation
medicine
Image Processing, Computer-Assisted
Animals
Computer vision
Image resolution
Tomography, Emission-Computed, Single-Photon
medicine.diagnostic_test
business.industry
Respiration
Reconstruction algorithm
General Medicine
030220 oncology & carcinogenesis
Ray tracing (graphics)
Artificial intelligence
business
Reference frame
Subjects
Details
- ISSN :
- 24734209
- Volume :
- 46
- Issue :
- 11
- Database :
- OpenAIRE
- Journal :
- Medical physicsReferences
- Accession number :
- edsair.doi.dedup.....0af191794528ac0d62e24414d911cd41