Title :
Efficient implementation of a real-time dynamic synthetic aperture beamformer
Author :
Jongho Park ; Jongpil Lee ; Do-Hyung Kim ; Minsoo Kim ; Jin Ho Chang ; Tai-Kyong Song ; Yangmo Yoo
Author_Institution :
Dept. of Electron. Eng., Sogang Univ., Seoul, South Korea
Abstract :
Synthetic aperture (SA) imaging techniques can provide high resolution over imaging depths, unlike a conventional receive focusing methods (CRDF) that suffered from a considerable degradation in resolution far from a transmit focal depth. However, it is difficult to incorporate SA on modern medical ultrasound imaging systems due to its high computational complexity. In this paper, the efficient implementation of a real-time dynamic SA beamformer where the number of synthetic scanlines is dynamically adjusted based on transmit beam pattern is presented. In the developed dynamic SA imaging system, 128-channel radio-frequency (RF) data are fed into four field programmable gate array (FPGAs, Virtex-5 LX330, Xilinx, USA) chips and 16 synthetic scanlines can be combined. Each FPGA operates at 160 MHz to produce 16 synthetic scanlines in parallel by a time sharing method. The partial synthetic scanline data from each module are sent to an accumulator to combine and stored in an internal buffer. This SA beamforming operation is repeated with RF data acquired from each excitation, and the final 16 synthetic scanline data are transferred to a personal computer (PC) for backend processing and image display. The developed SA beamformer with 16 synthetic beams is implemented by 51% of slice registers, 43% look-up-tables (LUTs), 71% of random access memories (RAMs) and 50% of digital signal processing (DSP) blocks in each FPGA.
Keywords :
array signal processing; biomedical electronics; biomedical transducers; biomedical ultrasonics; field programmable gate arrays; image resolution; medical signal processing; ultrasonic transducer arrays; FPGA digital signal processing blocks; FPGA look up tables; FPGA random access memories; backend processing; computational complexity; field programmable gate array; image display; image resolution; imaging depths; modern medical ultrasound imaging systems; partial synthetic scanline data; personal computer; radiofrequency data; real time dynamic SA beamformer; real time dynamic synthetic aperture beamformer; synthetic aperture imaging techniques; synthetic scanlines; time sharing method; transmit beam pattern; Arrays; Delays; Field programmable gate arrays; Image resolution; Imaging; Radio frequency; Ultrasonic imaging; Synthetic aperture; field programmable gate array; real-time;
Conference_Titel :
Ultrasonics Symposium (IUS), 2012 IEEE International
Conference_Location :
Dresden
Print_ISBN :
978-1-4673-4561-3
DOI :
10.1109/ULTSYM.2012.0562