Meaney Paul M, Mattsson Viktor, Augustine Robin, Brisby Helena
Thayer School of Engineering at Dartmouth College, Hanover, NH 03755 USA.
Uppsala University, Uppsala 75105 Sweden.
IEEE J Electromagn RF Microw Med Biol. 2024 Mar;8(1):78-83. doi: 10.1109/jerm.2024.3363148. Epub 2024 Feb 19.
We have developed a new transmission-based, open-ended coaxial probe for assessing vertebrae strength during spinal fusion surgery. The approach exploits the fact that the probes are within the far field of each other implying that the phase varies linearly with respect to propagation distance. Determining the absolute phase is critical for recovering the associated tissue dielectric properties from which bone strength will be determined. Unfortunately, unwanted multi-path signals corrupt the signals at the lower end of the operating frequency range from which our conventional unwrapping strategy depends. Our new approach requires only three measurements within the prime frequency range and can be determined robustly with a minimum of computations. This will be vital to developing a commercial device since the signal levels will be extremely low power requiring longer than usual data acquisition times, which will be mitigated by measuring the data at only a few frequencies. Fast and efficient operation will be critical for clinical success.
我们开发了一种新型的基于传输的开放式同轴探头,用于在脊柱融合手术中评估椎体强度。该方法利用了探头彼此处于远场这一事实,这意味着相位随传播距离呈线性变化。确定绝对相位对于恢复相关组织的介电特性至关重要,而骨强度将由该介电特性来确定。不幸的是,不需要的多径信号会干扰我们传统解缠策略所依赖的工作频率范围低端的信号。我们的新方法在主要频率范围内仅需进行三次测量,并且可以通过最少的计算稳健地确定。这对于开发商业设备至关重要,因为信号电平将是极低功率,需要比平常更长的数据采集时间,而通过仅在少数几个频率上测量数据可以缓解这一问题。快速高效的操作对于临床成功至关重要。