<HashMap><database>biostudies-other</database><scores/><additional><omics_type>Unknown</omics_type><volume>135(5)</volume><submitter>McAleavey SA</submitter><funding>NIBIB NIH HHS</funding><journal>The Journal of the Acoustical Society of America</journal><pagination>2836-46</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC4032426</full_dataset_link><abstract>Shear wave induced phase encoding (SWIPE) imaging generates ultrasound backscatter images of tissue-like elastic materials by using traveling shear waves to encode the lateral position of the scatters in the phase of the received echo. In contrast to conventional ultrasound B-scan imaging, SWIPE offers the potential advantages of image formation without beam focusing or steering from a single transducer element, lateral resolution independent of aperture size, and the potential to achieve relatively high lateral resolution with low frequency ultrasound. Here a Fourier series description of the phase modulated echo signal is developed, demonstrating that echo harmonics at multiples of the shear wave frequency reveal target k-space data at identical multiples of the shear wavenumber. Modulation transfer functions of SWIPE imaging systems are calculated for maximum shear wave acceleration and maximum shear constraints, and compared with a conventionally focused aperture. The relative signal-to-noise ratio of the SWIPE method versus a conventionally focused aperture is found through these calculations. Reconstructions of wire targets in a gelatin phantom using 1 and 3.5 MHz ultrasound and a cylindrical shear wave source are presented, generated from the fundamental and second harmonic of the shear wave modulation frequency, demonstrating weak dependence of lateral resolution with ultrasound frequency.</abstract><repository>biostudies-other</repository><funding_grant_id>R03 EB016127</funding_grant_id><funding_grant_id>R03 EB016127-01</funding_grant_id><data_source>Europe PMC</data_source><pubmed_authors>McAleavey SA</pubmed_authors></additional><is_claimable>false</is_claimable><name>Analysis and measurement of the modulation transfer function of harmonic shear wave induced phase encoding imaging.</name><description>Shear wave induced phase encoding (SWIPE) imaging generates ultrasound backscatter images of tissue-like elastic materials by using traveling shear waves to encode the lateral position of the scatters in the phase of the received echo. In contrast to conventional ultrasound B-scan imaging, SWIPE offers the potential advantages of image formation without beam focusing or steering from a single transducer element, lateral resolution independent of aperture size, and the potential to achieve relatively high lateral resolution with low frequency ultrasound. Here a Fourier series description of the phase modulated echo signal is developed, demonstrating that echo harmonics at multiples of the shear wave frequency reveal target k-space data at identical multiples of the shear wavenumber. Modulation transfer functions of SWIPE imaging systems are calculated for maximum shear wave acceleration and maximum shear constraints, and compared with a conventionally focused aperture. The relative signal-to-noise ratio of the SWIPE method versus a conventionally focused aperture is found through these calculations. Reconstructions of wire targets in a gelatin phantom using 1 and 3.5 MHz ultrasound and a cylindrical shear wave source are presented, generated from the fundamental and second harmonic of the shear wave modulation frequency, demonstrating weak dependence of lateral resolution with ultrasound frequency.</description><dates><release>2014-01-01T00:00:00Z</release><publication>2014 May</publication><modification>2019-08-04T08:20:29Z</modification><creation>2019-08-04T08:20:29Z</creation></dates><accession>S-EPMC4032426</accession><cross_references/></HashMap>