Literature DB >> 25554311

3D parallel-detection microwave tomography for clinical breast imaging.

N R Epstein1, P M Meaney2, K D Paulsen2.   

Abstract

A biomedical microwave tomography system with 3D-imaging capabilities has been constructed and translated to the clinic. Updates to the hardware and reconfiguration of the electronic-network layouts in a more compartmentalized construct have streamlined system packaging. Upgrades to the data acquisition and microwave components have increased data-acquisition speeds and improved system performance. By incorporating analog-to-digital boards that accommodate the linear amplification and dynamic-range coverage our system requires, a complete set of data (for a fixed array position at a single frequency) is now acquired in 5.8 s. Replacement of key components (e.g., switches and power dividers) by devices with improved operational bandwidths has enhanced system response over a wider frequency range. High-integrity, low-power signals are routinely measured down to -130 dBm for frequencies ranging from 500 to 2300 MHz. Adequate inter-channel isolation has been maintained, and a dynamic range >110 dB has been achieved for the full operating frequency range (500-2900 MHz). For our primary band of interest, the associated measurement deviations are less than 0.33% and 0.5° for signal amplitude and phase values, respectively. A modified monopole antenna array (composed of two interwoven eight-element sub-arrays), in conjunction with an updated motion-control system capable of independently moving the sub-arrays to various in-plane and cross-plane positions within the illumination chamber, has been configured in the new design for full volumetric data acquisition. Signal-to-noise ratios (SNRs) are more than adequate for all transmit/receive antenna pairs over the full frequency range and for the variety of in-plane and cross-plane configurations. For proximal receivers, in-plane SNRs greater than 80 dB are observed up to 2900 MHz, while cross-plane SNRs greater than 80 dB are seen for 6 cm sub-array spacing (for frequencies up to 1500 MHz). We demonstrate accurate recovery of 3D dielectric property distributions for breast-like phantoms with tumor inclusions utilizing both the in-plane and new cross-plane data.

Entities:  

Mesh:

Year:  2014        PMID: 25554311      PMCID: PMC4272387          DOI: 10.1063/1.4901936

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  24 in total

1.  Three-dimensional microwave tomography: initial experimental imaging of animals.

Authors:  Serguei Y Semenov; Robert H Svenson; Alexander E Bulyshev; Alexander E Souvorov; Alexei G Nazarov; Yuri E Sizov; Vitaly G Posukh; Andrey Pavlovsky; Pavel N Repin; Andrey N Starostin; Boris A Voinov; Michael Taran; George P Tatsis; Vladimir Y Baranov
Journal:  IEEE Trans Biomed Eng       Date:  2002-01       Impact factor: 4.538

2.  Characterization of an Implicitly Resistively-Loaded Monopole Antenna in Lossy Liquid Media.

Authors:  Colleen J Fox; Paul M Meaney; Fridon Shubitidze; Lincoln Potwin; Keith D Paulsen
Journal:  Int J Antennas Propag       Date:  2008       Impact factor: 1.174

3.  False-positive findings at contrast-enhanced breast MRI: a BI-RADS descriptor study.

Authors:  Pascal A T Baltzer; Matthias Benndorf; Matthias Dietzel; Mieczyslaw Gajda; Ingo B Runnebaum; Werner A Kaiser
Journal:  AJR Am J Roentgenol       Date:  2010-06       Impact factor: 3.959

4.  Three-dimensional microwave imaging of realistic numerical breast phantoms via a multiple-frequency inverse scattering technique.

Authors:  Jacob D Shea; Panagiotis Kosmas; Susan C Hagness; Barry D Van Veen
Journal:  Med Phys       Date:  2010-08       Impact factor: 4.071

5.  Integration of microwave tomography with magnetic resonance for improved breast imaging.

Authors:  Paul M Meaney; Amir H Golnabi; Neil R Epstein; Shireen D Geimer; Margaret W Fanning; John B Weaver; Keith D Paulsen
Journal:  Med Phys       Date:  2013-10       Impact factor: 4.071

6.  A large-scale study of the ultrawideband microwave dielectric properties of normal, benign and malignant breast tissues obtained from cancer surgeries.

Authors:  Mariya Lazebnik; Dijana Popovic; Leah McCartney; Cynthia B Watkins; Mary J Lindstrom; Josephine Harter; Sarah Sewall; Travis Ogilvie; Anthony Magliocco; Tara M Breslin; Walley Temple; Daphne Mew; John H Booske; Michal Okoniewski; Susan C Hagness
Journal:  Phys Med Biol       Date:  2007-10-01       Impact factor: 3.609

7.  Ultrasound-guided microwave imaging of breast cancer: tissue phantom and pilot clinical experiments.

Authors:  Huabei Jiang; Changqing Li; David Pearlstone; Laurie L Fajardo
Journal:  Med Phys       Date:  2005-08       Impact factor: 4.071

8.  Three-dimensional microwave breast imaging: dispersive dielectric properties estimation using patient-specific basis functions.

Authors:  David W Winters; Jacob D Shea; Panagiotis Kosmas; Barry D Van Veen; Susan C Hagness
Journal:  IEEE Trans Med Imaging       Date:  2009-02-10       Impact factor: 10.048

9.  Importance of phase unwrapping for the reconstruction of microwave tomographic images.

Authors:  Tomasz M Grzegorczyk; Paul M Meaney; Soon Ik Jeon; Shireen D Geimer; Keith D Paulsen
Journal:  Biomed Opt Express       Date:  2011-01-12       Impact factor: 3.732

10.  Measurement and Analysis of Microwave Frequency Signals Transmitted through the Breast.

Authors:  Jeremie Bourqui; John Garrett; Elise Fear
Journal:  Int J Biomed Imaging       Date:  2012-03-07
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  12 in total

1.  A 4-channel, vector network analyzer microwave imaging prototype based on software defined radio technology.

Authors:  Paul Meaney; Alexander Hartov; Selaka Bulumulla; Timothy Raynolds; Cynthia Davis; Florian Schoenberger; Sebastian Richter; Keith Paulsen
Journal:  Rev Sci Instrum       Date:  2019-04       Impact factor: 1.523

2.  Electrical Characterization of Glycerin: Water Mixtures: Implications for Use as a Coupling Medium in Microwave Tomography.

Authors:  Paul M Meaney; Colleen J Fox; Shireen D Geimer; Keith D Paulsen
Journal:  IEEE Trans Microw Theory Tech       Date:  2017-01-31       Impact factor: 3.599

3.  3D microwave tomography of the breast using prior anatomical information.

Authors:  Amir H Golnabi; Paul M Meaney; Keith D Paulsen
Journal:  Med Phys       Date:  2016-04       Impact factor: 4.071

4.  Advances in Microwave Near-Field Imaging: Prototypes, Systems, and Applications.

Authors:  Wenyi Shao; Todd McCollough
Journal:  IEEE Microw Mag       Date:  2020-03-31       Impact factor: 2.714

Review 5.  Review of methods for intraoperative margin detection for breast conserving surgery.

Authors:  Benjamin W Maloney; David M McClatchy; Brian W Pogue; Keith D Paulsen; Wendy A Wells; Richard J Barth
Journal:  J Biomed Opt       Date:  2018-10       Impact factor: 3.170

6.  Discrete Dipole Approximation-Based Microwave Tomography for Fast Breast Cancer Imaging.

Authors:  Samar Hosseinzadegan; Andreas Fhager; Mikael Persson; Shireen Geimer; Paul M Meaney
Journal:  IEEE Trans Microw Theory Tech       Date:  2021-03-05       Impact factor: 3.599

Review 7.  Recent Advances in Microwave Imaging for Breast Cancer Detection.

Authors:  Sollip Kwon; Seungjun Lee
Journal:  Int J Biomed Imaging       Date:  2016-12-21

8.  Detectability of Breast Tumor by a Hand-held Impulse-Radar Detector: Performance Evaluation and Pilot Clinical Study.

Authors:  Hang Song; Shinsuke Sasada; Takayuki Kadoya; Morihito Okada; Koji Arihiro; Xia Xiao; Takamaro Kikkawa
Journal:  Sci Rep       Date:  2017-11-27       Impact factor: 4.379

Review 9.  Microwave Sensors for Breast Cancer Detection.

Authors:  Lulu Wang
Journal:  Sensors (Basel)       Date:  2018-02-23       Impact factor: 3.576

10.  Effects of the Plastic of the Realistic GeePS-L2S-Breast Phantom.

Authors:  Tomas Rydholm; Andreas Fhager; Mikael Persson; Shireen D Geimer; Paul M Meaney
Journal:  Diagnostics (Basel)       Date:  2018-09-01
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