DocumentCode :
3193413
Title :
Finite Element Modeling of scattered electromagnetic waves for stroke analysis
Author :
Priyadarshini, N. ; Rajkumar, E.R.
Author_Institution :
Biomed. Eng. Div., VIT Univ., Vellore, India
fYear :
2013
fDate :
3-7 July 2013
Firstpage :
2404
Lastpage :
2407
Abstract :
Stroke has become one of the leading causes of mortality worldwide and about 800 in every 100,000 people suffer from stroke each year. The occurrence of stroke is ranked third among the causes of acute death and first among the causes for neurological dysfunction. Currently, Neurological examinations followed by medical imaging with CT, MRI or Angiography are used to provide better identification of the location and the type of the stroke, however they are neither fast, cost-effective nor portable. Microwave technology has emerged to complement these modalities to diagnose stroke as it is sensitive to the differences between the distinct dielectric properties of the brain tissues and blood. This paper investigates the possibility of diagnosing the type of stroke using Finite Element Analysis (FEA). The object of interest is a simulated head phantom with stroke, created with its specifying material characteristics like electrical conductivity and relative permittivity. The phantom is then placed in an electromagnetic field generated by a dipole antenna radiating at 1 GHz. The FEM forward model solver computes the scattered electromagnetic field by finding the solution for the Maxwell´s wave equation in the head volume. Subsequently the inverse scattering problem is solved using the Contrast Source Inversion (CSI) method to reconstruct the dielectric profile of the head phantom.
Keywords :
Maxwell equations; bioelectric phenomena; biological tissues; blood; brain; dipole antennas; diseases; electrical conductivity; electromagnetic wave scattering; finite element analysis; image reconstruction; medical image processing; microwave imaging; neurophysiology; permittivity; phantoms; physiological models; wave equations; CT; FEA method; FEM forward model solver; MRI; Maxwell wave equation; acute death; angiography; blood dielectric properties; brain tissue dielectric properties; contrast source inversion method; dipole antenna radiation; electrical conductivity; electromagnetic field generation; finite element analysis; finite element modeling; frequency 1 GHz; head phantom dielectric profile reconstruction; head phantom simulation; inverse scattering problem; material characteristics specification; medical imaging; microwave technology; mortality; neurological dysfunction; neurological examination; relative permittivity; scattered electromagnetic field computation; scattered electromagnetic wave; stroke analysis; stroke location identification; stroke type diagnosis; Dielectrics; Electric fields; Head; Microwave imaging; Microwave theory and techniques; Permittivity; Finite Element Modeling; Maxwell´s wave equation; Microwave imaging; Stroke diagnosis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
ISSN :
1557-170X
Type :
conf
DOI :
10.1109/EMBC.2013.6610023
Filename :
6610023
Link To Document :
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