eprintid: 352 rev_number: 7 eprint_status: archive userid: 5 dir: disk0/00/00/03/52 datestamp: 2011-07-05 lastmod: 2013-06-30 12:42:34 status_changed: 2013-06-28 12:03:45 type: techreport metadata_visibility: show item_issues_count: 0 creators_name: Barrière, P.A. creators_name: Caramanica, Federico creators_name: Benedetti, Manuel creators_name: Massa, Andrea title: Multi-Resolution Approaches for Inverse Scattering Problems ispublished: pub subjects: TU full_text_status: public keywords: Microwave Imaging, Inverse Scattering, Multi-resolution techniques abstract: In the framework of microwave imaging, inverse scattering techniques currently represent the state-of-the-art for the quantitative reconstruction of the region under test. In such a framework, multi-resolution techniques have recently appeared in order to increase the effectiveness of the inversion procedure. To properly deal with the ill-posedness characterizing their mathematical model and at the same time enhance the achievable spatial resolution, such a paper presents and discusses several multi-resolution approaches based on the use of multi-resolution and suitable basis functions for the problem unknowns. date: 2011-01 date_type: published institution: University of Trento department: informaticat refereed: FALSE referencetext: 1 P. J. Shull, Nondestructive Evaluation: Theory, Techniques, and Applications. CRC Press, Boca Raton, 2002. 2 H. Schubert and A. Kuznetsov, Detection of Explosive and Landmines: Methods and Field Experience. Kluwer Academic Pub., Boston, 2001. 3 A. G. Webb, Introduction to Biomedical Imaging, IEEE Press Series on Biomedical Engineering. Wiley-IEEE Press, Hoboken 2002. 4 D. D. Ferris and N. C. Currie, “A survey of current technologies for through wall surveillance (TWS),” Proc. SPIE, vol. 3577, pp. 62-68, 1998. 5 S. Kharkovsky and R. Zoughi, "Microwave and millimeter wave nondestructive testing and evaluation - Overview and recent advances," IEEE Instrum. Meas. Mag., vol. 10, pp. 26-38, Apr. 2007. 6 J. De Zaeytijd, A. Franchois, C. Eyraud, and J. M. Geffrin, "Full wave three dimensional microwave imaging with a regularized gauss-newton method: theory and experiments," IEEE Trans. Antennas Propag., vol. 55, pp. 3279-3292, Nov. 2007. 7 T. Rubk, P. M. Meaney, P. Meincke, and K. D. Paulsen, " Nonlinear microwave imaging for breast cancer screening using gauss newton's method and the CGLS inversion algorithm," IEEE Trans. Antennas Propagat., vol. 55, pp. 2320-2331, Aug. 2007. 8 F. Soldovieri, R. Solimene, and G. Prisco, "A multiarray tomographic approach for through-wall imaging," IEEE Trans. Geosci. Remote Sensing, vol. 46, pp. 1192-1199, Apr. 2008. 9 O. M. Bucci and T. Isernia, "Electromagnetic inverse scattering: retrievable information and measurement strategies," Radio Sci., vol. 32, pp. 2123-2138, Nov.-Dec. 1997. 10 M. Bertero and P. Boccacci, Introduction to Inverse Problems in Imaging. IOP Publishing Ltd, Bristol, 1998. 11 O. M. Bucci and G. Franceschetti, "On the spatial bandwidth of scattered fields," IEEE Trans. Antennas Propagat., vol. 35, no. 12, pp. 1445-1455, Dec. 1987. 12 T. Isernia, V. Pascazio, and R. Pierri, "On the local minima in a tomographic imaging technique," IEEE Trans. Antennas Propagat., vol. 39, no. 7, pp. 1696-1607, Jul. 2001. 13 E. L. Miller and A. S. Willsky, "A multiscale, statistically based inversion scheme for linearized inverse scattering problems," IEEE Trans. Antennas Propag., vol. 34, no. 2, pp. 346-357, Mar. 1996. 14 A. Baussard, E. L. Miller, and D. Lesselier, "Adaptive muliscale reconstruction of buried objects," Inverse Problems, vol. 20, pp. S1-S15, Dec. 2004. 15 S. Caorsi, M. Donelli, and A. Massa, "Detection, location, and imaging of multiple scatterers by means of the iterative multiscaling method," IEEE Trans. Microwave Theory Tech., vol. 52, no. 4, pp. 1217-1228, Apr. 2004. 16 M. Benedetti, D. Lesselier, M. Lambert, and A. Massa, “A multi-resolution technique based on shape optimization for the reconstruction of homogeneous dielectric objects,” Inverse Problems, vol. 25, pp. 1-26, Jan. 2009. 17 A. Litman, D. Lesselier, and F. Santosa, “Reconstruction of a two-dimensional binary obstacle by controlled evolution of a level-set,” Inverse Problems, vol. 14, pp. 685-706, Jun. 1998. citation: Barrière, P.A. and Caramanica, Federico and Benedetti, Manuel and Massa, Andrea (2011) Multi-Resolution Approaches for Inverse Scattering Problems. [Technical Report] document_url: http://www.eledia.org/students-reports/352/1/DISI-11-169.C198.pdf