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High-Volume-Rate 3-D Ultrasound Imaging Based on Synthetic Aperture Sequential Beamforming With Chirp-Coded Excitation
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Metadata
Document Title
High-Volume-Rate 3-D Ultrasound Imaging Based on Synthetic Aperture Sequential Beamforming With Chirp-Coded Excitation
Author
Zhou J, Wei SY, Jintamethasawat R, Sampson R, Kripfgans OD, Fowlkes JB, Wenisch TF, Chakrabarti C
Name from Authors Collection
Affiliations
Arizona State University; Arizona State University-Tempe; University of Michigan System; University of Michigan; National Science & Technology Development Agency - Thailand; National Electronics & Computer Technology Center (NECTEC); Philips; Philips Healthcare; University of Michigan System; University of Michigan
Type
Article
Source Title
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL
Year
2018
Volume
65
Issue
8
Page
1346-1358
Open Access
hybrid
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI
10.1109/TUFFC.2018.2839085
Format
Abstract
Three-dimensional (3-D) ultrasound imaging is a promising modality for many medical applications. Unfortunately, it generates voluminous data in the front end, making it unattractive for high-volume-rate portable medical applications. We apply synthetic aperture sequential beamforming (SASB) to greatly compress the front-end receive data. Baseline 3-D SASB has a low volume rate, because subapertures fire one by one. In this paper, we propose to increase the volume rate of 3-D SASB without degrading imaging quality through: I) transmitting and receiving simultaneously with four subapertures and 2) using linear chirps as the excitation waveform to reduce interference. We design four linear chirps that operate on two overlapped frequency bands with chirp pairs in each band having opposite chirp rates. Direct implementation of this firing scheme results in grating lobes. Therefore, we design a sparse array that mitigates the grating lobe levels through optimizing the locations of transducer elements in the bin-based random array. Compared with the baseline 3-D SASB, the proposed method increases the volume rate from 8.56 to 34.2 volumes/s without increasing the front-end computation requirement. Field-II-based cyst simulations show that the proposed method achieves imaging quality comparable with baseline 3-D SASS in both shallow and deep regions.
Funding Sponsor
National Science Foundation [CCF-1406739, CCF-1406810]
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Publication Source
WOS