TY - JOUR
T1 - Registration and tracking to integrate X-ray and MR images in an XMR facility
AU - Rhode, Kawal S.
AU - Hill, Derek L.G.
AU - Edwards, Philip J.
AU - Hipwell, John
AU - Rueckert, Daniel
AU - Sanchez-Ortiz, Gerardo
AU - Hegde, Sanjeet
AU - Rahunathan, Vithuran
AU - Razavi, Reza
N1 - Funding Information:
Manuscript received January 31, 2003; revised July 29, 2003. This work was supported by the UK-EPSRC under Grant GR/R41019/1. K. S. Rhode, P. J. Edwards, J. Hipwell, S. Hegde, V. Rahunathan, and R. Razavi are with the Division of Imaging Sciences, Guy’s, King’s & St Thomas’ School of Medicine, King’s College London, Guy’s Hospital, London SE1 9RT, U.K. *D. L. G. Hill is with the Division of Imaging Sciences, Guy’s, King’s & St Thomas’ School of Medicine, King’s College London, 5th Floor Thomas Guy House, Guy’s Hospital, London SE1 9RT, U.K. (e-mail: [email protected]). D. Rueckert and G. Sanchez-Ortiz are with the Department of Computing, Imperial College London, London SW7 2AZ, U.K. Digital Object Identifier 10.1109/TMI.2003.819275
Funding Information:
The authors acknowlege that his work would not have been possible without the dedication of the multidisciplinary team working at their XMR facility. The authors would like to acknowledge that the scanner was purchased using grants from the UK JREI, Philips Medical Systems, and the Charitable Foundation of Guy’s & St Thomas’ Hospitals.
PY - 2003/11
Y1 - 2003/11
N2 - We describe a registration and tracking technique to integrate cardiac X-ray images and cardiac magnetic resonance (MR) images acquired from a combined X-ray and MR interventional suite (XMR). Optical tracking is used to determine the transformation matrices relating MR image coordinates and X-ray image coordinates. Calibration of X-ray projection geometry and tracking of the X-ray C-arm and table enable three-dimensional (3-D) reconstruction of vessel centerlines and catheters from bi-plane X-ray views. We can, therefore, combine single X-ray projection images with registered projection MR images from a volume acquisition, and we can also display 3-D reconstructions of catheters within a 3-D or multi-slice MR volume. Registration errors were assessed using phantom experiments. Errors in the combined projection images (two-dimensional target registration error - TRE) were found to be 2.4 to 4.2 mm, and the errors in the integrated volume representation (3-D TRE) were found to be 4.6 to 5.1 mm. These errors are clinically acceptable for alignment of images of the great vessels and the chambers of the heart. Results are shown for two patients. The first involves overlay of a catheter used for invasive pressure measurements on an MR volume that provides anatomical context. The second involves overlay of invasive electrode catheters (including a basket catheter) on a tagged MR volume in order to relate electrophysiology to myocardial motion in a patient with an arrhythmia. Visual assessment of these results suggests the errors were of a similar magnitude to those obtained inthe phantom measurements.
AB - We describe a registration and tracking technique to integrate cardiac X-ray images and cardiac magnetic resonance (MR) images acquired from a combined X-ray and MR interventional suite (XMR). Optical tracking is used to determine the transformation matrices relating MR image coordinates and X-ray image coordinates. Calibration of X-ray projection geometry and tracking of the X-ray C-arm and table enable three-dimensional (3-D) reconstruction of vessel centerlines and catheters from bi-plane X-ray views. We can, therefore, combine single X-ray projection images with registered projection MR images from a volume acquisition, and we can also display 3-D reconstructions of catheters within a 3-D or multi-slice MR volume. Registration errors were assessed using phantom experiments. Errors in the combined projection images (two-dimensional target registration error - TRE) were found to be 2.4 to 4.2 mm, and the errors in the integrated volume representation (3-D TRE) were found to be 4.6 to 5.1 mm. These errors are clinically acceptable for alignment of images of the great vessels and the chambers of the heart. Results are shown for two patients. The first involves overlay of a catheter used for invasive pressure measurements on an MR volume that provides anatomical context. The second involves overlay of invasive electrode catheters (including a basket catheter) on a tagged MR volume in order to relate electrophysiology to myocardial motion in a patient with an arrhythmia. Visual assessment of these results suggests the errors were of a similar magnitude to those obtained inthe phantom measurements.
KW - 2-D-3-D registration
KW - Cardiovascular intervention
KW - Optical tracking
KW - XMR systems
UR - https://www.scopus.com/pages/publications/0344464991
U2 - 10.1109/TMI.2003.819275
DO - 10.1109/TMI.2003.819275
M3 - Article
C2 - 14606671
AN - SCOPUS:0344464991
SN - 0278-0062
VL - 22
SP - 1369
EP - 1378
JO - IEEE Transactions on Medical Imaging
JF - IEEE Transactions on Medical Imaging
IS - 11
ER -