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https://dspace.univ-ouargla.dz/jspui/handle/123456789/39933| Title: | Developing an Evolutionary-based Algorithm for the Multi-Level Thresholding Problem in Medical Image Segmentation |
| Authors: | Zitouni, Farouq Djili, Adam Boukhalfa, Mohammed Ayoub |
| Keywords: | Image segmentation Optimization Multi-modality Medical Image Analysis |
| Issue Date: | 2025 |
| Publisher: | UNIVERSITY OF KASDI MERBAH OUARGLA |
| Citation: | FACULTY OF NEW TECHNOLOGIES OF INFORMATION AND COMMUNICATION |
| Abstract: | Image segmentation is a critical operation in medical image processing, enabling precise diagnosis, treatment planning, and patient follow-up. However, the complex nature and heterogeneity of tumor diagnosis render segmentation a difficult process, particularly for multi-modal scans. This paper explores the integration of optimization techniques into the segmentation process to enhance accuracy and robustness. It begins with an intro- ductory account of optimization principles, including classical and modern methods, and their application to high-dimensional, non-linear situations like medical image analysis. The focus then turns to brain tumor segmentation, where the role of imaging modalities, segmentation techniques like classical and optimization-based. A number of measures of evaluation are used to find segmentation quality objectively. Experimental findings indi- cate that optimization-augmented segmentation methods improve accuracy, consistency, especially with the inclusion of additional clinical ground truth data. Finally, the paper demonstrates the potential of optimization-based methods in reducing manual workload and assisting AI-enabled radiology systems in the detection of brain tumors. |
| Description: | Fundamental Computer Science |
| URI: | https://dspace.univ-ouargla.dz/jspui/handle/123456789/39933 |
| Appears in Collections: | Département d'informatique et technologie de l'information - Master |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| DJILI-BOUKHALFA.pdf | Fundamental Computer Science | 10,96 MB | Adobe PDF | View/Open |
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