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Early Diagnosis of Blood Disorders via Enhanced Image Preprocessing and Deep Learning Modeling
- Kutlimuratov, Alpamis;
- Eshmurodov, Dilshod;
- Tulaganova, Fotima;
- Utegenov, Akhmet;
- Allayarov, Piratdin;
- ... Makhmudov, Fazliddin;
- 외 2명
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2초록
Background: Accurate and early detection of hematological disorders from microscopic peripheral blood smear images remains a technically challenging task due to inherent imaging limitations, including noise contamination, low contrast, staining variability, and significant cellular overlap. Conventional deep learning-based object detection frameworks often exhibit limited robustness under such conditions and demonstrate reduced sensitivity to small-scale morphological structures, particularly platelets and abnormal cell variants. Methods: To address these challenges, this study proposes a hybrid detection framework that integrates a fuzzy logic-driven image preprocessing module with the YOLOv11 object detection architecture. The proposed preprocessing pipeline employs adaptive fuzzy membership functions to normalize pixel intensity distributions, suppress high-frequency noise, and enhance edge-defined cellular boundaries. This transformation produces a structurally optimized feature representation, improving downstream feature extraction and localization performance. The proposed framework was evaluated on a curated dataset of 3000 annotated microscopic blood smear images spanning five hematological classes. Results: Experimental results show that the fuzzy logic module improves mAP@0.5 by +3.4% and mAP@0.5:0.95 by +3.6%, confirming its effectiveness in enhancing both classification and localization accuracy. Conclusions: These findings demonstrate the robustness and practical applicability of the proposed hybrid approach under challenging imaging conditions.
키워드
- 제목
- Early Diagnosis of Blood Disorders via Enhanced Image Preprocessing and Deep Learning Modeling
- 저자
- Kutlimuratov, Alpamis; Eshmurodov, Dilshod; Tulaganova, Fotima; Utegenov, Akhmet; Allayarov, Piratdin; Khamzaev, Jamshid; Saymanov, Islambek; Makhmudov, Fazliddin
- 발행일
- 2026-04
- 유형
- Article
- 저널명
- BIOMEDINFORMATICS
- 권
- 6
- 호
- 3