Title :
Reconstruction algorithm for improved ultrasound image quality
Author :
Madore, B. ; Meral, F. Can
Author_Institution :
Med. Sch., Dept. of Radiol., Harvard Univ., Boston, MA, USA
fDate :
2/1/2012 12:00:00 AM
Abstract :
A new algorithm is proposed for reconstructing raw RF data into ultrasound images. Previous delay-and-sum beamforming reconstruction algorithms are essentially one- dimensional, because a sum is performed across all receiving elements. In contrast, the present approach is two-dimensional, potentially allowing any time point from any receiving element to contribute to any pixel location. Computer-intensive matrix inversions are performed once, in advance, to create a reconstruction matrix that can be reused indefinitely for a given probe and imaging geometry. Individual images are generated through a single matrix multiplication with the raw RF data, without any need for separate envelope detection or gridding steps. Raw RF data sets were acquired using a commercially available digital ultrasound engine for three imaging geometries: a 64-element array with a rectangular field-of-view (FOV), the same probe with a sector-shaped FOV, and a 128-element array with rectangular FOV. The acquired data were reconstructed using our proposed method and a delay-and-sum beamforming algorithm for comparison purposes. Point spread function (PSF) measurements from metal wires in a water bath showed that the proposed method was able to reduce the size of the PSF and its spatial integral by about 20 to 38%. Images from a commercially available quality-assurance phantom had greater spatial resolution and contrast when reconstructed with the proposed approach.
Keywords :
biomedical ultrasonics; image reconstruction; matrix multiplication; optical transfer function; PSF measurement; computer-intensive matrix inversion; delay-and-sum beamforming algorithm; digital ultrasound engine; imaging geometry; matrix multiplication; point spread function; quality-assurance; reconstruction algorithm; rectangular field-of-view; sector-shaped FOV; spatial integral; spatial resolution; ultrasound image quality; Array signal processing; Image quality; Image reconstruction; Probes; RF signals; Reconstruction algorithms;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2012.2182