Literature DB >> 12148820

Confocal microwave imaging for breast cancer detection: localization of tumors in three dimensions.

Elise C Fear1, Xu Li, Susan C Hagness, Maria A Stuchly.   

Abstract

The physical basis for breast tumor detection with microwave imaging is the contrast in dielectric properties of normal and malignant breast tissues. Confocal microwave imaging involves illuminating the breast with an ultra-wideband pulse from a number of antenna locations, then synthetically focusing reflections from the breast. The detection of malignant tumors is achieved by the coherent addition of returns from these strongly scattering objects. In this paper, we demonstrate the feasibility of detecting and localizing small (<1 cm) tumors in three dimensions with numerical models of two system configurations involving synthetic cylindrical and planar antenna arrays. Image formation algorithms are developed to enhance tumor responses and reduce early- and late-time clutter. The early-time clutter consists of the incident pulse and reflections from the skin, while the late-time clutter is primarily due to the heterogeneity of breast tissue. Successful detection of 6-mm-diameter spherical tumors is achieved with both planar and cylindrical systems, and similar performance measures are obtained. The influences of the synthetic array size and position relative to the tumor are also explored.

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Year:  2002        PMID: 12148820     DOI: 10.1109/TBME.2002.800759

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  47 in total

1.  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

2.  Application of Two-Dimensional Discrete Dipole Approximation in Simulating Electric Field of a Microwave Breast Imaging System.

Authors:  Samar Hosseinzadegan; Andreas Fhager; Mikael Persson; Paul M Meaney
Journal:  IEEE J Electromagn RF Microw Med Biol       Date:  2018-11-21

3.  Initial clinical experience with microwave breast imaging in women with normal mammography.

Authors:  Paul M Meaney; Margaret W Fanning; Timothy Raynolds; Colleen J Fox; Qianqian Fang; Christine A Kogel; Steven P Poplack; Keith D Paulsen
Journal:  Acad Radiol       Date:  2007-02       Impact factor: 3.173

4.  Automated gradient-based electrical properties tomography in the human brain using 7 Tesla MRI.

Authors:  Yicun Wang; Pierre-Francois Van de Moortele; Bin He
Journal:  Magn Reson Imaging       Date:  2019-08-16       Impact factor: 2.546

5.  Mapping electrical properties heterogeneity of tumor using boundary informed electrical properties tomography (BIEPT) at 7T.

Authors:  Yicun Wang; Qi Shao; Pierre-Francois Van de Moortele; Emilian Racila; Jiaen Liu; John Bischof; Bin He
Journal:  Magn Reson Med       Date:  2018-09-19       Impact factor: 4.668

6.  Viable Three-Dimensional Medical Microwave Tomography: Theory and Numerical Experiments.

Authors:  Qianqian Fang; Paul M Meaney; Keith D Paulsen
Journal:  IEEE Trans Antennas Propag       Date:  2010-02-01       Impact factor: 4.388

7.  3D printed PLA/copper bowtie antenna for biomedical imaging applications.

Authors:  Emine Avşar Aydın; Ahmet Refah Torun
Journal:  Phys Eng Sci Med       Date:  2020-08-31

Review 8.  Magnetic-resonance-based electrical properties tomography: a review.

Authors:  Xiaotong Zhang; Jiaen Liu; Bin He
Journal:  IEEE Rev Biomed Eng       Date:  2014

9.  Portable impulse-radar detector for breast cancer: a pilot study.

Authors:  Shinsuke Sasada; Norio Masumoto; Hang Song; Keiko Kajitani; Akiko Emi; Takayuki Kadoya; Koji Arihiro; Takamaro Kikkawa; Morihito Okada
Journal:  J Med Imaging (Bellingham)       Date:  2018-06-13

10.  EVOLUTION OF ANTENNA PERFORMANCE FOR APPLICATIONS IN THERMAL MEDICNE.

Authors:  P R Stauffer; P F Maccarini
Journal:  Proc Eur Conf Antennas Propag       Date:  2011
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