用声音监测+AI模型实现冷切骨水泥精准清除
S4D-Bio Audio Monitoring of Bone Cement Disintegration in Pulsating Fluid Jet Surgery under Laboratory Conditions
- 用脉冲液体喷射+音频信号动态优化清除参数
- 音频模型预测精度达98.93%,有效应对飞溅遮挡
- 首次将状态空间模型用于骨科手术,适合微创外科研究者
本研究探索脉冲液体喷射作为一种新型精确、微创且低温的骨水泥清除技术。采用模拟临床条件的样品,测试长喷嘴在微创操作中的有效性。结合状态空间模型S4D-Bio的音频信号监测,动态优化流体喷射参数,解决因飞溅导致的视野遮挡问题。实验构建了多组过程参数与材料侵蚀对应的音频信号数据集。使用状态空间模型实现了对侵蚀过程的精准预测,准确率达98.93%。结果表明,脉冲液体喷射配合先进音频监测技术,是骨水泥精准清除的高效工具。同时,本研究首次将状态空间模型应用于生物医学手术技术,标志着该领域的重要进展。研究通过机器学习与脉冲液体喷射的融合,为骨科应用提供了新型、微创、冷加工且自适应的骨水泥清除方法。
原文摘要 · Abstract (English)
This study investigates a pulsating fluid jet as a novel precise, minimally invasive and cold technique for bone cement removal. We utilize the pulsating fluid jet device to remove bone cement from samples designed to mimic clinical conditions. The effectiveness of long nozzles was tested to enable minimally invasive procedures. Audio signal monitoring, complemented by the State Space Model (SSM) S4D-Bio, was employed to optimize the fluid jet parameters dynamically, addressing challenges like visibility obstruction from splashing. Within our experiments, we generate a comprehensive dataset correlating various process parameters and their equivalent audio signals to material erosion. The use of SSMs yields precise control over the predictive erosion process, achieving 98.93 \% accuracy. The study demonstrates on the one hand, that the pulsating fluid jet device, coupled with advanced audio monitoring techniques, is a highly effective tool for precise bone cement removal. On the other hand, this study presents the first application of SSMs in biomedical surgery technology, marking a significant advancement in the application. This research significantly advances biomedical engineering by integrating machine learning combined with pulsating fluid jet as surgical technology, offering a novel, minimally invasive, cold and adaptive approach for bone cement removal in orthopedic applications.
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