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Prototype Development of an Electrical Impedance Based Simultaneous Respiratory and Cardiac Monitoring System for Gated Radiotherapy

机译:基于电阻抗的门控放射治疗同时呼吸和心脏监测系统的原型开发

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摘要

BackgroundIn radiotherapy, temporary translocations of the internal organs and tumor induced by respiratory and cardiac activities can undesirably lead to significantly lower radiation dose on the targeted tumor but more harmful radiation on surrounding healthy tissues. Respiratory and cardiac gated radiotherapy offers a potential solution for the treatment of tumors located in the upper thorax. The present study focuses on the design and development of simultaneous acquisition of respiratory and cardiac signal using electrical impedance technology for use in dual gated radiotherapy.MethodsAn electronic circuitry was developed for monitoring the bio-impedance change due to respiratory and cardiac motions and extracting the cardiogenic ECG signal. The system was analyzed in terms of reliability of signal acquisition, time delay, and functionality in a high energy radiation environment. The resulting signal of the system developed was also compared with the output of the commercially available Real-time Position Management™ (RPM) system in both time and frequency domains.ResultsThe results demonstrate that the bioimpedance-based method can potentially provide reliable tracking of respiratory and cardiac motion in humans, alternative to currently available methods. When compared with the RPM system, the impedance-based system developed in the present study shows similar output pattern but different sensitivities in monitoring different respiratory rates. The tracking of cardiac motion was more susceptible to interference from other sources than respiratory motion but also provided synchronous output compared with the ECG signal extracted. The proposed hardware-based implementation was observed to have a worst-case time delay of approximately 33 ms for respiratory monitoring and 45 ms for cardiac monitoring. No significant effect on the functionality of the system was observed when it was tested in a radiation environment with the electrode lead wires directly exposed to high-energy X-Rays.ConclusionThe developed system capable of rendering quality signals for tracking both respiratory and cardiac motions can potentially provide a solution for simultaneous dual-gated radiotherapy.
机译:背景技术在放射治疗中,由呼吸和心脏活动引起的内部器官和肿瘤的暂时移位可能不希望地导致目标肿瘤的辐射剂量明显降低,但对周围健康组织的有害辐射更大。呼吸和心脏门控放射疗法为治疗位于上胸部的肿瘤提供了潜在的解决方案。本研究着重于设计和开发使用用于双门放射疗法的电阻抗技术同时采集呼吸和心脏信号的方法。方法开发了一种电子电路,用于监测由于呼吸和心脏运动而引起的生物阻抗变化并提取心源性心电图信号。从高能量辐射环境中信号采集的可靠性,时间延迟和功能方面对系统进行了分析。还将开发的系统的结果信号与时域和频域上的商用Real-time Position Management™(RPM)系统的输出进行了比较。结果结果表明,基于生物阻抗的方法可以潜在地提供对呼吸的可靠跟踪和人类的心脏运动,是目前可用方法的替代方法。与RPM系统相比,本研究开发的基于阻抗的系统在监视不同呼吸频率时显示出相似的输出模式,但灵敏度不同。心脏运动的追踪比呼吸运动更容易受到其他来源的干扰,但与提取的ECG信号相比,它还提供了同步输出。据观察,基于硬件的建议实施方案在最坏情况下的延迟时间大约为33 ms(用于呼吸监测)和45 ms(用于心脏监测)。当电极引线直接暴露于高能X射线的辐射环境中进行测试时,对系统的功能没有重大影响。结论该开发的系统能够呈现高质量的信号,以跟踪呼吸和心脏运动可能为同时双门放疗提供解决方案。

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