4.7 Article

Generalized Signal Models and Direct FID-Based Dielectric Parameter Retrieval in MRI

期刊

IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION
卷 70, 期 2, 页码 1451-1461

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TAP.2021.3111324

关键词

Magnetic resonance imaging; Magnetic domains; Mathematical model; Dielectrics; Dielectric measurement; Antenna measurements; Tensors; Born approximation; dielectric parameter retrieval; free induction decay (FID); magnetic resonance imaging (MRI); scattering formalism

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In this article, we present full-wave signal models for magnetic and electric field measurements in magnetic resonance imaging (MRI). Our analysis takes into account the presence of an object or body via an electric scattering source, allowing the evaluation of these signal models. By deriving explicit signal expressions, we are able to study the sensitivity of the measured signals with respect to the dielectric parameters.
In this article, we present full-wave signal models for magnetic and electric field measurements in magnetic resonance imaging (MRI). Our analysis is based on a scattering formalism in which the presence of an object or body is taken into account via an electric scattering source. We show that these signal models can be evaluated, provided that Green's tensors of the background field are known along with the dielectric parameters of the object and the magnetization within the excited part of the object. Furthermore, explicit signal expressions are derived in the case of a small homogeneous ball that is embedded in free space and for which the quasi-static Born approximation can be applied. The conductivity and permittivity of the ball appear as explicit parameters in the resulting signal models and allow us to study the sensitivity of the measured signals with respect to these dielectric parameters. Moreover, for free induction decay signals, we show through simulations that, under certain conditions, it is possible to retrieve the dielectric parameters of the ball from noise-contaminated induction decay signals that are based on electric or magnetic field measurements.

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