Title :
Modelling Prostate Motion for Data Fusion During Image-Guided Interventions
Author :
Hu, Yipeng ; Carter, Timothy J. ; Ahmed, Hashim Uddin ; Emberton, Mark ; Allen, Clare ; Hawkes, David J. ; Barratt, Dean C.
Author_Institution :
Dept. of Med. Phys. & Bioeng., Univ. Coll. London, London, UK
Abstract :
There is growing clinical demand for image registration techniques that allow multimodal data fusion for accurate targeting of needle biopsy and ablative prostate cancer treatments. However, during procedures where transrectal ultrasound (TRUS) guidance is used, substantial gland deformation can occur due to TRUS probe pressure. In this paper, the ability of a statistical shape/motion model, trained using finite element simulations, to predict and compensate for this source of motion is investigated. Three-dimensional ultrasound images acquired on five patient prostates, before and after TRUS-probe-induced deformation, were registered using a nonrigid, surface-based method, and the accuracy of different deformation models compared. Registration using a statistical motion model was found to outperform alternative elastic deformation methods in terms of accuracy and robustness, and required substantially fewer target surface points to achieve a successful registration. The mean final target registration error (based on anatomical landmarks) using this method was 1.8 mm. We conclude that a statistical model of prostate deformation provides an accurate, rapid and robust means of predicting prostate deformation from sparse surface data, and is therefore well-suited to a number of interventional applications where there is a need for deformation compensation.
Keywords :
biomedical ultrasonics; cancer; finite element analysis; image fusion; image registration; medical image processing; TRUS guidance; ablative prostate cancer treatments; deformation model; elastic deformation method; finite element simulation; gland deformation; image guided interventions; image registration; multimodal data fusion; needle biopsy; prostate motion; statistical motion model; transrectal ultrasound guidance; Biological system modeling; Biopsy; Finite element methods; Glands; Image segmentation; Material properties; Biomechanical modelling; finite element analysis; image-guided interventions; prostate cancer; statistical shape modelling; ultrasound; Computer Simulation; Finite Element Analysis; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Image Processing, Computer-Assisted; Imaging, Three-Dimensional; Male; Models, Statistical; Motion; Prostate; Prostatic Neoplasms; Sensitivity and Specificity; Subtraction Technique; Ultrasonography, Interventional; Ultrasound, High-Intensity Focused, Transrectal;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2011.2158235