Ultra Wideband Breast Cancer Detection by Using SAR for Indication the Tumor Location
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32794
Ultra Wideband Breast Cancer Detection by Using SAR for Indication the Tumor Location

Authors: Wittawat Wasusathien, Samran Santalunai, Thanaset Thosdeekoraphat, Chanchai Thongsopa

Abstract:

This paper presents breast cancer detection by observing the specific absorption rate (SAR) intensity for identification tumor location, the tumor is identified in coordinates (x,y,z) system. We examined the frequency between 4-8 GHz to look for the most appropriate frequency. Results are simulated in frequency 4-8 GHz, the model overview include normal breast with 50 mm radian, 5 mm diameter of tumor, and ultra wideband (UWB) bowtie antenna. The models are created and simulated in CST Microwave Studio. For this simulation, we changed antenna to 5 location around the breast, the tumor can be detected when an antenna is close to the tumor location, which the coordinate of maximum SAR is approximated the tumor location. For reliable, we experiment by random tumor location to 3 position in the same size of tumor and simulation the result again by varying the antenna position in 5 position again, and it also detectable the tumor position from the antenna that nearby tumor position by maximum value of SAR, which it can be detected the tumor with precision in all frequency between 4-8 GHz.

Keywords: Specific absorption rate (SAR), ultra wideband (UWB), coordinates and cancer detection

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1093896

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 2674

References:


[1] American Cancer Society, "Breast Cancer Fact & Figures 2013-2014,” 2013
[2] M. Klemm, I. J. Craddock, J. A. Leendertz, A. Preece, and R. Benjamin, "Radar-based breast cancer detection using a hemispherical antenna array—experimental results,” IEEE Transactions on Antennas and Propagation, vol. 57, no.6 pp. 1692-1232, 2010.
[3] P. M. Meaney, M. W. Fanning, T. Raynolds, C. J. Fox, Q. Fang, C. A. Kogel, S. P. Popalack, and K. D. Paulsen , "Initial clinical experience with microwave breast imaging in women with normal mammography,” Academic Radiol, vol. 14, pp. 207-218, 2007.
[4] A. Christ, A. Klingenbock, T. Samaras, C. Goiceanu, and N. Kuster, "The dependence of electromagnetic far-field absorption on body tissue composition in the frequency range from 300 MHz to 6 GHz,” IEEE Transaction on Microwave Theory and Techniques, vol. 54 ,no. 5, pp. 2188-2195, 2006.
[5] E. C. Fear, P. M. Meaney, and M. A. Stuchly, "Microwaves for breast cancer detection?,” IEEE Potentials, vol. 22, pp. 12-18, 2003.
[6] P. Thosdee, "Design of an antenna and RF front end transmitter circuit for ultra wideband wireless communication systems,” Suranaree university of technology, 2008.
[7] S. Thanormsuay, P. Thosdee, and C. Thongsopa, "Array of quasi-rhomboid antenna for ultra wideband applications,” ECTI-CON 2008, pp. 293-296, 2008.
[8] N. S. Hassaine, L. Merad, S. M. Meriah, and F. T. Bendimerad, "UWB bowtie slot antenna for breast cancer detection,” World Academy of Science, Engineering and Technology, vol. 6, pp. 1218-1221, 2012.
[9] A. Santorelli, "Breast screening with custom-shaped pulsed microwaves (ch. 4),”McGill University, 2012.
[10] S. A. Winkler, E. Porter, A. Santorelli, M. Coates, and M. Popovic, "Recent progreass in ultra-wideband microwave breast cancer detection,” Ultra-wideband (ICUWB), pp. 182-186, 2012.
[11] S. M. Razavizadeh, "A new link set-up for breast tumor detection,” Power Amplifiers for Wireless and Radio Applications (PAWR), pp. 109-111, 2013.
[12] S. I. Al-Mously, and M. M. Abousetta, "A study of the hand-hold impact on the EM interaction of a cellular handset and a human,”World Academy of Science, Engineering and Technology, Vol. 2, pp. 157-161, 2008.
[13] D. X. Yin, M. Li, and J. L. Li, "Non-invasive breast cancer thermotherapy studies using conformal microstrip antennas,” Antenna, Propagation & EM Theory (ISAPE),pp. 159-162, 2012.