Title :
A Computational Investigation of Microwave Breast Imaging Using Deformable Reflector
Author :
Arunachalam, Kavitha ; Udpa, Lalita ; Udpa, Satish S.
Author_Institution :
Duke Univ. Med. Center, Durham
Abstract :
In recent years, active microwave breast imaging is increasingly being viewed as a promising complementary imaging modality for cancer detection. In this paper, we present a novel deformable reflector microwave tomography technique for noninvasive characterization of the breast tissue. In contrast to conventional multitransceiver designs, the proposed technique utilizes a continuously deformable reflector with metallic coating to acquire field measurements for imaging. Computational feasibility of the proposed technique to image heterogeneous dielectric tissue property is evaluated using simplified 2-D breast models. The robustness of the deformable reflector-based tomography technique in imaging the spatial distribution of the tissue dielectric property in the presence of measurement noise is investigated using first-order Tikhonov regularization. Preliminary results obtained for the 2-D breast models appear promising and indicate further investigation of the new microwave tomography technique for breast imaging.
Keywords :
biological organs; biological tissues; biomedical imaging; cancer; gynaecology; medical diagnostic computing; microwave imaging; physiological models; tomography; tumours; 2-D breast models; breast tissue; cancer detection; deformable reflector; first-order Tikhonov regularization; heterogeneous dielectric tissue property; measurement noise; metallic coating; microwave breast imaging; microwave tomography; noninvasive characterization; spatial distribution; Breast cancer; Breast tissue; Cancer detection; Dielectric measurements; Electromagnetic scattering; Inverse problems; Microwave imaging; Microwave theory and techniques; Tomography; X-ray imaging; Breast cancer; deformable reflector; microwave imaging; tomography; Breast; Breast Neoplasms; Computer-Aided Design; Equipment Design; Equipment Failure Analysis; Humans; Image Interpretation, Computer-Assisted; Microwaves; Reproducibility of Results; Scattering, Radiation; Sensitivity and Specificity; Tomography;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2007.903702