基于多级记忆的动态导航系统提升韧带重建手术精度
Dynamic Arthroscopic Navigation System for Anterior Cruciate Ligament Reconstruction Based on Multi-level Memory Architecture
- 融合人脑记忆模型,实现动态视频追踪
- 实时运行,1000帧误差仅5.3像素,精度提升45%
- 无需额外设备,适合临床手术场景
本文提出一种基于多级记忆架构的动态关节镜导航系统,用于前交叉韧带(ACL)重建手术。该系统将此前静态图像匹配的无标记导航方法拓展至动态视频序列追踪。通过整合Atkinson-Shiffrin记忆模型的三层结构(感觉记忆、工作记忆、长期记忆),系统可在术中持续追踪股骨髁,即使在视角变化、器械遮挡和组织变形等复杂情况下仍保持稳定导航。与现有方法不同,本系统可直接在标准关节镜设备上实时运行,无需额外追踪硬件,实现25.3 FPS的帧率,延迟仅为39.5毫秒,相比此前静态系统提升3.5倍。在1000帧长序列中,动态系统误差为5.3±1.5像素,较静态系统的12.6±3.7像素降低约45%;中等长度(500帧)和短序列(100帧)分别提升约35%和19%。实验表明,该系统克服了传统静态匹配方法的局限,为提高ACL重建手术精度提供了新的技术支持。
原文摘要 · Abstract (English)
This paper presents a dynamic arthroscopic navigation system based on multi-level memory architecture for anterior cruciate ligament (ACL) reconstruction surgery. The system extends our previously proposed markerless navigation method from static image matching to dynamic video sequence tracking. By integrating the Atkinson-Shiffrin memory model's three-level architecture (sensory memory, working memory, and long-term memory), our system maintains continuous tracking of the femoral condyle throughout the surgical procedure, providing stable navigation support even in complex situations involving viewpoint changes, instrument occlusion, and tissue deformation. Unlike existing methods, our system operates in real-time on standard arthroscopic equipment without requiring additional tracking hardware, achieving 25.3 FPS with a latency of only 39.5 ms, representing a 3.5-fold improvement over our previous static system. For extended sequences (1000 frames), the dynamic system maintained an error of 5.3 plus-minus 1.5 pixels, compared to the static system's 12.6 plus-minus 3.7 pixels - an improvement of approximately 45 percent. For medium-length sequences (500 frames) and short sequences (100 frames), the system achieved approximately 35 percent and 19 percent accuracy improvements, respectively. Experimental results demonstrate the system overcomes limitations of traditional static matching methods, providing new technical support for improving surgical precision in ACL reconstruction.
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