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Updated: Apr 29, 2026

Retrospective Cardiac Gating with A Prototype Small-Animal X-ray Computed Tomograph
Published on: February 21, 2025
Image artefact propagation in motion estimation and reconstruction in interventional cardiac C-arm CT
K Müller1, A K Maier, C Schwemmer
1Pattern Recognition Lab, Department of Computer Science, Friedrich-Alexander-Universität Erlangen-Nürnberg, Martensstr 3, D-91058 Erlangen, Germany. Erlangen Graduate School in Advanced Optical Technologies (SAOT), Paul-Gordan-Str 6, D-91052 Erlangen, Germany.
Insights
This study evaluates cardiac C-arm CT image reconstruction methods for motion correction. Removing dense object shadows before reconstruction, specifically using the cathFDK algorithm, is crucial for accurate cardiac motion estimation and improved image quality.
Area of Science:
- Medical Imaging
- Image Reconstruction
- Cardiovascular Imaging
Background:
- Cardiac imaging with C-arm CT is limited by motion artifacts due to long acquisition times.
- Motion correction during reconstruction can improve image quality by utilizing all acquired data.
- Accurate motion estimation relies on high-quality initial 3D images, which are challenging with sparse ECG-gated data.
Purpose of the Study:
- To investigate the sensitivity of 3D/3D registration for cardiac motion estimation to initial image quality.
- To evaluate different reconstruction algorithms for cardiac C-arm CT in the context of motion-compensated reconstruction.
- To identify the optimal reconstruction method balancing image quality and computational complexity.
Main Methods:
- Evaluated five initial image reconstruction algorithms: FDK, FFDK, cathFDK, cathFFDK, and iterative few-view (FV) reconstruction.
- Assessed image quality using phantom and porcine models with qualitative and quantitative measures.
- Tested algorithms on data with and without dense objects like catheters and pacing electrodes.
Main Results:
- FDK reconstruction quality is sufficient for motion estimation when no dense objects are present.
- Removing dense object shadows (cathFDK) is essential when catheters or pacing electrodes are present.
- An additional bilateral filter did not significantly improve final motion-compensated reconstruction quality.
- cathFDK, cathFFDK, and FV methods yielded comparable image quality.
Conclusions:
- The cathFDK algorithm is the preferred choice for cardiac C-arm CT due to its balance of image quality and computational efficiency.
- Accurate initial image reconstruction, particularly shadow removal, is critical for effective motion-compensated cardiac imaging.
- Further research may explore advanced iterative techniques for improved performance in challenging scenarios.
Abstract:
The acquisition of data for cardiac imaging using a C-arm computed tomography system requires several seconds and multiple heartbeats. Hence, incorporation of motion correction in the reconstruction step may improve the resulting image quality. Cardiac motion can be estimated by deformable three-dimensional (3D)/3D registration performed on initial 3D images of different heart phases. This motion information can be used for a motion-compensated reconstruction allowing the use of all acquired data for image reconstruction. However, the result of the registration procedure and hence the estimated deformations are influenced by the quality of the initial 3D images. In this paper, the sensitivity of the 3D/3D registration step to the image quality of the initial images is studied. Different reconstruction algorithms are evaluated for a recently proposed cardiac C-arm CT acquisition protocol. The initial 3D images are all based on retrospective electrocardiogram (ECG)-gated data. ECG-gating of data from a single C-arm rotation provides only a few projections per heart phase for image reconstruction. This view sparsity leads to prominent streak artefacts and a poor signal to noise ratio. Five different initial image reconstructions are evaluated: (1) cone beam filtered-backprojection (FDK), (2) cone beam filtered-backprojection and an additional bilateral filter (FFDK), (3) removal of the shadow of dense objects (catheter, pacing electrode, etc) before reconstruction with a cone beam filtered-backprojection (cathFDK), (4) removal of the shadow of dense objects before reconstruction with a cone beam filtered-backprojection and a bilateral filter (cathFFDK). The last method (5) is an iterative few-view reconstruction (FV), the prior image constrained compressed sensing combined with the improved total variation algorithm. All reconstructions are investigated with respect to the final motion-compensated reconstruction quality. The algorithms were tested on a mathematical phantom data set with and without a catheter and on two porcine models using qualitative and quantitative measures. The quantitative results of the phantom experiments show that if no dense object is present within the scan field of view, the quality of the FDK initial images is sufficient for motion estimation via 3D/3D registration. When a catheter or pacing electrode is present, the shadow of these objects needs to be removed before the initial image reconstruction. An additional bilateral filter shows no major improvement with respect to the final motion-compensated reconstruction quality. The results with respect to image quality of the cathFDK, cathFFDK and FV images are comparable. In conclusion, in terms of computational complexity, the algorithm of choice is the cathFDK algorithm.
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