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Published on: May 12, 2019
Experimental Validation of a Microwave System for Brain Stroke 3-D Imaging
David O Rodriguez-Duarte1, Jorge A Tobon Vasquez1, Rosa Scapaticci2
1Department of Electronics and Telecommunications, Politecnico di Torino, 10129 Torino, Italy.
This study validates a microwave prototype for detecting brain hemorrhages and ischemias. An innovative calibration technique improves localization accuracy using 3D head models and advanced imaging algorithms.
Area of Science:
- Biomedical Engineering
- Medical Imaging
- Electromagnetics
Background:
- Accurate localization of brain hemorrhages and ischemias is critical for timely medical intervention.
- Existing imaging techniques may have limitations in terms of cost, accessibility, or resolution for certain applications.
Purpose of the Study:
- To experimentally validate a microwave prototype device for brain hemorrhage and ischemia localization.
- To propose and validate an innovative calibration technique for enhancing localization accuracy.
Main Methods:
- Utilized a 3D human-like head phantom with brain-mimicking materials or ex vivo calf brains.
- Employed a 1 GHz microwave imaging (MWI) system with 24 printed monopole antennas in a conformal array.
- Applied a differential imaging algorithm using singular value decomposition of the scattering operator.
Main Results:
- The MWI system demonstrated promising reconstruction results for localizing abnormalities within the brain phantom.
- The proposed calibration technique, based on measured data, showed potential for improving device performance.
- The study successfully extended the validation of the MWI device's capabilities.
Conclusions:
- The microwave prototype shows significant potential for non-invasive detection of brain hemorrhages and ischemias.
- The developed calibration method offers an innovative approach to enhance the accuracy of microwave-based brain imaging.
- Further validation and development could lead to a more accessible and effective diagnostic tool.
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