Title :
Gradient-Based Differential Approach for 3-D Motion Compensation in Interventional 2-D/3-D Image Fusion
Author :
Jian Wang ; Borsdorf, Anja ; Heigl, Benno ; Kohler, Thomas ; Hornegger, Joachim
Author_Institution :
Pattern Recognition Lab., Friedrich-Alexander-Univ. Erlangen-Nuremberg, Erlangen, Germany
Abstract :
In interventional radiology, preoperative 3-D volumes can be fused with intra-operative 2-D fluoroscopic images. Since the accuracy is crucial to the clinical usability of image fusion, patient motion resulting in misalignments has to be corrected during the procedure. In this paper, a novel gradient based differential approach is proposed to estimate the 3-D rigid motion from the 2-D tracking of contour points. The mathematical relationship between the 3-D differential motion and the 2-D motion is derived using the 3-D gradient, based on which a tracking-based motion compensation pipeline is introduced. Given the initial registration, the contour points are extracted and tracked along 2-D frames. The 3-D rigid motion is estimated using the iteratively re-weighted least square minimization to enhance the robustness. Our novel approach is evaluated on 10 datasets consisting of 1010 monoplane fluoroscopic images of a thorax phantom with 3-D rigid motion. Over all datasets, the maximum structure shift in the 2-D projection caused by the 3-D motion varies from 17.3 mm to 33.2 mm. Our approach reduces the 2-D structure shift to the range of 1.93 mm to 6.52 mm. For the most challenging longitudinal off-plane rotation, our approach achieves an average coverage of 79.9% regarding to the ground truth.
Keywords :
diagnostic radiography; image fusion; image registration; iterative methods; least squares approximations; medical image processing; minimisation; motion compensation; motion estimation; phantoms; 2D frames; 2D projection; 2D structure; 2D tracking; 3D motion compensation; 3D rigid motion estimation; contour points; gradient-based differential approach; image registration; interventional 2D-3D image fusion; interventional radiology; intraoperative 2D fluoroscopic images; iteratively reweighted least square minimization; longitudinal off-plane rotation; monoplane fluoroscopic images; patient motion; preoperative 3D volumes; thorax phantom; tracking-based motion compensation pipeline; Cameras; Mathematical model; Motion compensation; Motion estimation; Tracking; Vectors; X-ray imaging; 2-D/3-D image fusion; gradient-based approach; interventional radiology; motion compensation;
Conference_Titel :
3D Vision (3DV), 2014 2nd International Conference on
Conference_Location :
Tokyo
DOI :
10.1109/3DV.2014.45