Classification of Craniomaxillofacial Free Flap: Mechanism and Model.

IEEE transactions on bio-medical engineering 2026 Vol.73(3) p. 1210-1220

Men Y, Han J, Yao S, Zhai G, Hu M, Liu J

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Abstract

Timely detection and effective management of postoperative flap crises are critical for improving flap salvage rates. Flap crisis often stems from impaired blood circulation, leading to changes in the flap's color, texture, and temperature. Therefore, we analyzed flap crises using anatomical and colorimetric parameters and designed pixel curve features using a biologically derived foundation model. To mitigate the challenges posed by the complex craniomaxillofacial environment, we developed a dual-segmentation preprocessing approach combined with image morphology operations. During classification, a clustering-based constrained line extraction method was introduced to accurately identify effective feature regions. A voting-based decision mechanism was further employed to maximize the reliability of feature curve extraction and analysis. The experimental results demonstrate that the proposed classification model based on extracted pixel curve features, effectively distinguishes flap status and reduces the incidence of missed true-positive crisis cases. Continuous monitoring tests further validated the model's clinical utility.

추출된 의학 개체 (NER)

유형영어 표현한국어 / 풀이UMLS CUI출처등장
시술 flap 피판재건술 dict 6
시술 free flap 피판재건술 dict 1

MeSH Terms

Humans; Free Tissue Flaps; Algorithms; Image Processing, Computer-Assisted; Face

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