Özet
This paper presents a deep learning-based approach for comprehensively characterizing multiple breast tumors in a simple setup using microwaves. A convolutional neural network (CNN) detects and localizes the tumors, accurately determining their center coordinates and radii. Furthermore, the network is designed to estimate each identified object's dielectric permittivity (r ), enabling classification into distinct material classes (0,1, and 2). The proposed methodology leverages the rich information content of microwave data to achieve robust and precise object detection and classification. Simulation results demonstrate the efficacy of the CNN in accurately extracting geometric parameters and material properties, showcasing its potential for applications in experimental breast cancer screening.
| Orijinal dil | İngilizce |
|---|---|
| Ana bilgisayar yayını başlığı | ISAS 2025 - 9th International Symposium on Innovative Approaches in Smart Technologies, Proceedings |
| Yayınlayan | Institute of Electrical and Electronics Engineers Inc. |
| ISBN (Elektronik) | 9798331514822 |
| DOI'lar | |
| Yayın durumu | Yayınlandı - 2025 |
| Etkinlik | 9th International Symposium on Innovative Approaches in Smart Technologies, ISAS 2025 - Gaziantep, Türkiye Süre: 27 Haz 2025 → 28 Haz 2025 |
Yayın serisi
| Adı | ISAS 2025 - 9th International Symposium on Innovative Approaches in Smart Technologies, Proceedings |
|---|
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| ???event.eventtypes.event.conference??? | 9th International Symposium on Innovative Approaches in Smart Technologies, ISAS 2025 |
|---|---|
| Ülke/Bölge | Türkiye |
| Şehir | Gaziantep |
| Periyot | 27/06/25 → 28/06/25 |
Bibliyografik not
Publisher Copyright:© 2025 IEEE.
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