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基于ICGA视频的人工智能辅助股前外侧穿支皮瓣穿支识别模型的建立及初步验证

侯新伟 董帅 朱波 吴成龙 田拥胜 王石 柳泽宇 巨积辉 王凯

侯新伟, 董帅, 朱波, 等. 基于ICGA视频的人工智能辅助股前外侧穿支皮瓣穿支识别模型的建立及初步验证[J]. 中华烧伤与创面修复杂志, 2026, 42(9): 1-10. DOI: 10.3760/cma.j.cn501225-20260531-00222.
引用本文: 侯新伟, 董帅, 朱波, 等. 基于ICGA视频的人工智能辅助股前外侧穿支皮瓣穿支识别模型的建立及初步验证[J]. 中华烧伤与创面修复杂志, 2026, 42(9): 1-10. DOI: 10.3760/cma.j.cn501225-20260531-00222.
Hou Xinwei,Dong Shuai,Zhu Bo,et al.Establishment and preliminary validation of an artificial intelligence-assisted model for identification of perforators of anterolateral thigh perforator flaps based on preoperative indocyanine green angiography (ICGA) videos[J].Chin J Burns Wounds,2026,42(9):1-10.DOI: 10.3760/cma.j.cn501225-20260531-00222.
Citation: Hou Xinwei,Dong Shuai,Zhu Bo,et al.Establishment and preliminary validation of an artificial intelligence-assisted model for identification of perforators of anterolateral thigh perforator flaps based on preoperative indocyanine green angiography (ICGA) videos[J].Chin J Burns Wounds,2026,42(9):1-10.DOI: 10.3760/cma.j.cn501225-20260531-00222.

基于ICGA视频的人工智能辅助股前外侧穿支皮瓣穿支识别模型的建立及初步验证

doi: 10.3760/cma.j.cn501225-20260531-00222
基金项目: 

苏州市医学重点学科 SZXK202532

苏州市科技攻关计划 SYWD2025069

2026年度江苏省研究生科研实践创新计划立项项目 26CXJH5988

详细信息
    通讯作者:

    王凯,Email:15962200201@163.com

Establishment and preliminary validation of an artificial intelligence-assisted model for identification of perforators of anterolateral thigh perforator flaps based on preoperative indocyanine green angiography (ICGA) videos

Funds: 

Suzhou Municipal Key Medical Discipline SZXK202532

Suzhou Municipal Science and Technology Research Program SYWD2025069

2026 Jiangsu Province Graduate Research and Practice Innovation Program 26CXJH5988

More Information
  • 摘要:   目的  建立基于吲哚菁绿血管造影(ICGA)视频的人工智能辅助股前外侧穿支皮瓣穿支识别模型并进行初步验证。  方法  该研究为横断面研究。2024年1—7月,苏州大学苏州瑞华骨科医院收治70例符合入选标准且接受股前外侧穿支皮瓣修复手术的患者,术前行彩色多普勒超声(CDU)和ICGA检查。采用Python3.13中的random函数选择50例患者作为训练集用于模型参数训练;剩余20例患者作为验证集,用于独立验证。以术中探查结果为金标准,预设每例患者股前外侧穿支皮瓣区域内有4个穿支定位点。统计训练集和验证集患者CDU、ICGA-人工判读、ICGA-人工智能辅助识别(ICGA-AI)穿支定位点与术中实际穿支入皮点距离≤1.0 cm的情况(真阳性)并计算阳性率。在训练集和验证集患者中,统计3种方法定位穿支的敏感度、特异度、阳性预测值、阴性预测值、准确率、平衡准确率,3种方法穿支定位结果与术中探查结果的一致性,测量3种方法确定的穿支定位点与对应的术中实际穿支入皮点之间的距离(误差距离),记录ICGA-AI定位的优势穿支与术中选择的优势穿支是否一致并计算优势穿支定位准确率。  结果  3种方法定位训练集和验证集患者穿支的阳性率比较,差异均无统计学意义(P>0.05)。在训练集患者中,CDU、ICGA-人工判读、ICGA-AI定位穿支的敏感度、特异度、阳性预测值、阴性预测值、准确率、平衡准确率分别为88.70%、85.88%、89.47%、84.88%、87.50%、87.29%,93.91%、89.41%、92.31%、91.57%、92.00%、91.66%,82.61%、83.53%、87.16%、78.02%、83.00%、83.07%;CDU、ICGA-人工判读和ICGA-AI穿支定位结果与术中探查结果的一致性较强或几乎完全一致(κ分别为0.74、0.84、0.66,P<0.05)。在验证集患者中,CDU、ICGA-人工判读、ICGA-AI定位穿支的敏感度、特异度、阳性预测值、阴性预测值、准确率、平衡准确率分别为95.24%、78.95%、83.33%、93.75%、87.50%、87.09%,95.24%、92.11%、93.02%、94.59%、93.75%、93.67%,95.24%、94.74%、95.24%、94.74%、95.00%、94.99%;CDU、ICGA-人工判读和ICGA-AI穿支定位结果与术中探查结果的一致性较强或几乎完全一致(κ分别为0.75、0.88、0.90,P<0.05)。在训练集患者中,ICGA-AI穿支定位误差距离为0.84(0.70,0.98)cm,明显短于CDU的1.41(0.80,2.00)cm(Z=-2.56,P<0.05)和ICGA-人工判读的1.50(1.03,1.80)cm(Z=-5.88,P<0.05)。在验证集患者中,ICGA-AI穿支定位误差距离为0.52(0.35,0.71)cm,明显短于CDU的1.50(1.00,2.25)cm(Z=-3.23,P<0.05)和ICGA-人工判读的1.56(1.41,2.00)cm(Z=-3.52,P<0.05)。在训练集和验证集患者中,ICGA-AI定位优势穿支的准确率分别为82.00%(41/50)和90.00%(18/20)。  结论  本研究初步建立了基于ICGA视频的人工智能辅助股前外侧穿支皮瓣穿支识别方法,在验证集患者中显示出较小的定位误差和较高的优势穿支定位准确率,可辅助术前穿支定位。

     

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  • 图  1  术前CDU和ICGA-人工判读定位穿支指导股前外侧穿支皮瓣移植修复右小腿创面及ICGA-AI穿支识别效果。1A.清创后可见软组织缺损;1B.术前CDU(蓝色箭头)及ICGA-人工判读(白色箭头)定位穿支及设计股前外侧穿支皮瓣;1C.术中穿支(箭头所示)选择;1D.股前外侧穿支皮瓣切取;1E. ICGA-AI对ICGA视频进行离线分析并识别、排序候选穿支(红色表示优势穿支定位点,黄色表示候选穿支定位点);1F.ICGA-AI识别的候选穿支定位点转换至股前外侧体表后的结果(红色表示优势穿支定位点,黄色表示候选穿支定位点);1G.股前外侧穿支皮瓣移植修复右小腿创面术后即刻;1H.术后12 d,皮瓣顺利成活

    注:CDU为彩色多普勒超声,ICGA为吲哚菁绿血管造影,ICGA-AI为ICGA及人工智能辅助识别

    Table  1.   训练集50例接受股前外侧穿支皮瓣手术的患者采用3种方法定位穿支的效能

    方法穿支定位点(个)敏感度(%)特异度(%)阳性预测值(%)阴性预测值(%)准确率(%)平衡准确率(%)
    真阳性假阳性真阴性假阴性
    CDU10212731388.7085.8889.4784.8887.5087.29
    ICGA-人工判读108976793.9189.4192.3191.5792.0091.66
    ICGA-AI9514712082.6183.5387.1678.0283.0083.07
    注:CDU为彩色多普勒超声,ICGA为吲哚菁绿血管造影,ICGA-AI为ICGA-人工智能辅助识别;将术前定位点与术中实际穿支入皮点之间的距离≤1.0 cm判定为真阳性;若术中在该区域内未探查到穿支,而术前探查存在穿支定位点或术前定位点与术中实际穿支入皮点之间的距离>1.0 cm,则判定为假阳性;若术中在该区域内探查到穿支,而术前探查不存在穿支定位点,则判定为假阴性;若术中在该区域内未探查到穿支且术前探查不存在穿支定位点,则判定为真阴性
    下载: 导出CSV

    Table  2.   验证集20例接受股前外侧穿支皮瓣手术的患者采用3种方法定位穿支的效能

    方法穿支定位点(个)敏感度(%)特异度(%)阳性预测值(%)阴性预测值(%)准确率(%)平衡准确率(%)
    真阳性假阳性真阴性假阴性
    CDU40830295.2478.9583.3393.7587.5087.09
    ICGA-人工判读40335295.2492.1193.0294.5993.7593.67
    ICGA-AI40236295.2494.7495.2494.7495.0094.99
    注:CDU为彩色多普勒超声,ICGA为吲哚菁绿血管造影,ICGA-AI为ICGA-人工智能辅助识别;将术前定位点与术中实际穿支入皮点之间的距离≤1.0 cm判定为真阳性;若术中在该区域内未探查到穿支,而术前探查存在穿支定位点或术前定位点与术中实际穿支入皮点之间的距离>1.0 cm,则判定为假阳性;若术中在该区域内探查到穿支,而术前探查不存在穿支定位点,则判定为假阴性;若术中在该区域内未探查到穿支且术前探查不存在穿支定位点,则判定为真阴性
    下载: 导出CSV
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  • 收稿日期:  2026-05-31
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