研究目的
To propose a multimodal DBT/NRI imaging system for early breast cancer detection by exploiting the individual strengths of digital breast tomosynthesis (DBT) and near-field radar imaging (NRI) while minimizing their weaknesses.
研究成果
The study concludes that the proposed multimodal DBT/NRI imaging system has the potential to improve early breast cancer detection by combining the high contrast of microwave imaging with the high resolution of DBT. The preliminary experimental results demonstrate the system's capability in imaging a strong scatterer in a homogenous medium, and computational results show efficacy in detecting tumors surrounded by fibroglandular tissue. The SAR analysis confirms the safety of the implemented antennas for human use.
研究不足
The study acknowledges the limitations of the NRI system in terms of resolution and the complexity of scattering patterns at microwave frequencies. The initial experiments are simplified, using a homogenous medium and a strong scatterer, which differ from the highly heterogeneous breast tissue and small tumor sizes in early stages.
1:Experimental Design and Method Selection:
The study reviews the foundation of combining DBT and NRI for breast cancer detection, proposing a preliminary design and experimental validation of the NRI system as a DBT complement.
2:Sample Selection and Data Sources:
The study utilizes data from global statistics on breast cancer incidence and mortality, and experimental data from a designed NRI system.
3:List of Experimental Equipment and Materials:
The NRI system includes antipodal Vivaldi antennas (AVAs), a two-dimensional motion stage, and a data acquisition system. The system is designed to fit into the compression paddle of a DBT system.
4:Experimental Procedures and Operational Workflow:
The NRI system scans the breast in a co-registered fashion using mechanical motion. The system's performance is evaluated through SAR analysis and imaging experiments with a bearing ball in sunflower oil.
5:Data Analysis Methods:
The study employs an imaging algorithm based on Helmholtz equation and Tikhonov regularization scheme for reconstructing dielectric maps of the medium and the object.
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