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1.
Article in English | MEDLINE | ID: mdl-22003738

ABSTRACT

We present the first system for measurement of proximal isovelocity surface area (PISA) on a 3D ultrasound acquisition using modified ultrasound hardware, volumetric image segmentation and a simple efficient workflow. Accurate measurement of the PISA in 3D flow through a valve is an emerging method for quantitatively assessing cardiac valve regurgitation and function. Current state of the art protocols for assessing regurgitant flow require laborious and time consuming user interaction with the data, where a precise execution is crucial for an accurate diagnosis. We propose a new improved 3D PISA workflow that is initialized interactively with two points, followed by fully automatic segmentation of the valve annulus and isovelocity surface area computation. Our system is first validated against several in vitro phantoms to verify the calculations of surface area, orifice area and regurgitant flow. Finally, we use our system to compare orifice area calculations obtained from in vivo patient imaging measurements to an independent measurement and then use our system to successfully classify patients into mild-moderate regurgitation and moderate-severe regurgitation categories.


Subject(s)
Echocardiography/methods , Mitral Valve Insufficiency/pathology , Ultrasonography, Doppler/methods , Algorithms , Automation , Blood Flow Velocity , Cardiology/methods , Coronary Circulation , Humans , Imaging, Three-Dimensional , Mitral Valve/pathology , Models, Statistical , Pattern Recognition, Automated , Phantoms, Imaging , Software
2.
Article in English | MEDLINE | ID: mdl-20425965

ABSTRACT

This paper describes a novel method for improving the navigation and guidance of devices and catheters in electrophysiology and interventional cardiology procedures using volumetric data fusion. The clinical workflow includes the acquisition and reconstruction of CT data from a C-arm X-ray angiographic system and the real-time acquisition of volumetric ultrasound datasets with a new intracardiac real-time 3D ultrasound catheter. Mono- and multi-modal volumetric registration methods, as well as visualization modes, that are suitable for real-time fusion are described, which are the key components of this work. Evaluation on phantom and in-vivo animal data shows that it is feasible to register and track the motion of real-time 3D intracardiac ultrasound in C-arm CT.


Subject(s)
Catheter Ablation/methods , Echocardiography, Three-Dimensional/methods , Electrophysiologic Techniques, Cardiac/methods , Subtraction Technique , Surgery, Computer-Assisted/methods , Tomography, X-Ray Computed/methods , Algorithms , Computer Systems , Humans , Phantoms, Imaging
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