Title :
Computer-Assisted Scan Protocol and Reconstruction (CASPAR)—Reduction of Image Noise and Patient Dose
Author :
Sperl, Jonathan ; Bequé, Dirk ; Claus, Bernhard ; De Man, Bruno ; Senzig, Bob ; Brokate, Martin
Author_Institution :
GE Global Res., Garching, Germany
fDate :
3/1/2010 12:00:00 AM
Abstract :
X-ray computed tomography is a powerful medical imaging device. It allows high-resolution 3-D visualization of the human body. However, one drawback is the health risk associated with ionizing radiation. Simply downscaling the radiation intensities over the entire scan results in increased quantum noise. This paper proposes the concept of computer-assisted scan protocol and reconstruction. More specifically, we propose a method to compute patient and task-specific intensity profiles that achieve an optimal tradeoff between radiation dose and image quality. Therefore, reasonable image variance and dose metrics are derived. Conventional third-generation systems as well as inverted geometry concepts are considered. Two dose/noise minimization problems are formulated and solved by an efficient algorithm providing optimized milliampere (mA)-profiles. Thorax phantom simulations demonstrate the promising advantage of this technique: in this particular example, the dose is reduced by 53% for third-generation systems and by 86% for an inverted geometry in comparison to a sinusoidal mA-profile at a constant upper noise limit.
Keywords :
computerised tomography; dosimetry; image denoising; image reconstruction; medical image processing; minimisation; phantoms; CASPAR; X-ray computed tomography; computer-assisted scan protocol; health risk; high-resolution 3-D visualization; image noise reduction; image quality; image variance; inverted geometry; ionizing radiation; minimization; optimized milliampere profiles; patient dose; reconstruction; third-generation systems; thorax phantom; Biomedical imaging; Computed tomography; Geometry; Humans; Image quality; Image reconstruction; Ionizing radiation; Protocols; Visualization; X-ray imaging; Covariance analysis; X-ray tomography; dosimetry; intensity modulation; Algorithms; Computer Simulation; Female; Humans; Image Processing, Computer-Assisted; Monte Carlo Method; Phantoms, Imaging; Radiation Dosage; Radiography, Thoracic; Tomography, X-Ray Computed;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2009.2034515