JOURNAL OF CLINICAL SURGERY ›› 2026, Vol. 34 ›› Issue (3): 258-261.doi: 10.3969/j.issn.1005-6483.20260129
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GAO Zhenghong,XU Bo,CAI Wensong
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Abstract: Active surveillance(AS) has become one of the management strategies for low-risk papillary thyroid carcinoma(T1aN0M0 papillary thyroid carcinoma,low-risk PTC).The key is to identify patients who are suitable for AS.Conventional Ultrasonography(CUS) is the main evaluation method at present,but it has limitations in detecting indicators such as occult lymph node metastasis.Ultrasonic Elastography(UE) provides a new method for risk assessment by quantifying tissue stiffness,although it still has limitations when used alone.Artificial Intelligence(AI) has shown high diagnostic performance in identifying pathological features including lymph node metastasis.However,most models are established based on high-risk surgical cohorts,leading to low generalizability when applied to AS decision-making for low-risk PTC.Future research should focus on establishing and validating a multi-technique prediction model combining conventional ultrasonography,elastography and AI.Meanwhile,standardized data collection and model transparency can further improve the clinical applicability and generalizability of the model,thus contributing to more accurate identification of low-risk PTC.
Key words: low-risk papillary thyroid carcinoma; active surveillance; ultrasonic elastography; artificial intelligence
GAO Zhenghong,XU Bo,CAI Wensong. Applicationstatus of ultrasonic elastography and AI-assisted diagnosis in active surveillance for low-risk papillary thyroid carcinoma[J].JOURNAL OF CLINICAL SURGERY, 2026, 34(3): 258-261.
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