Title :
Waveform inversion with source encoding for breast sound speed reconstruction in ultrasound computed tomography
Author :
Kun Wang ; Matthews, Thomas ; Anis, Fatima ; Cuiping Li ; Duric, Neb ; Anastasio, Mark
Author_Institution :
Dept. of Biomed. Eng., Washington Univ. in St. Louis, St. Louis, MO, USA
Abstract :
Ultrasound computed tomography (USCT) holds great promise for improving the detection and management of breast cancer. Because they are based on the acoustic wave equation, waveform inversion-based reconstruction methods can produce images that possess improved spatial resolution properties over those produced by ray-based methods. However, waveform inversion methods are computationally demanding and have not been applied widely in USCT breast imaging. In this work, source encoding concepts are employed to develop an accelerated USCT reconstruction method that circumvents the large computational burden of conventional waveform inversion methods. This method, referred to as the waveform inversion with source encoding (WISE) method, encodes the measurement data using a random encoding vector and determines an estimate of the sound speed distribution by solving a stochastic optimization problem by use of a stochastic gradient descent algorithm. Both computer simulation and experimental phantom studies are conducted to demonstrate the use of the WISE method. The results suggest that the WISE method maintains the high spatial resolution of waveform inversion methods while significantly reducing the computational burden.
Keywords :
acoustic tomography; computerised tomography; image reconstruction; mammography; medical image processing; phantoms; waveform analysis; WISE method; acoustic wave equation; breast cancer; breast sound speed reconstruction; phantom study; random encoding vector; sound speed distribution; stochastic gradient descent algorithm; stochastic optimization problem; ultrasound computed tomography breast imaging; waveform inversion with source encoding; waveform inversion-based reconstruction method; Acoustics; Breast; Encoding; Image reconstruction; Imaging; Mathematical model; Propagation;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2014.006788