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Validation of the Calypso Surface Beacon Transponder

机译:Calypso表面信标应答器的验证

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Calypso L-shaped Surface Beacon transponder has recently become available for clinical applications. We herein conduct studies to validate the Surface Beacon transponder in terms of stability, reproducibility, orientation sensitivity, cycle rate dependence, and respiratory waveform tracking accuracy. The Surface Beacon was placed on a Quasar respiratory phantom and positioned at the isocenter with its two arms aligned with the lasers. Breathing waveforms were simulated, and the motion of the transponder was tracked. Stability and drift analysis: sinusoidal waveforms (200 cycles) were produced, and the amplitudes of phases 0% (inhale) and 50% (exhale) were recorded at each breathing cycle. The mean and standard deviation (SD) of the amplitudes were calculated. Linear least-squares fitting was performed to access the possible amplitude drift over the breathing cycles. Reproducibility: similar setting to stability and drift analysis, and the phantom generated 100 cycles of the sinusoidal waveform per run. The Calypso system's was re-setup for each run. Recorded amplitude and SD of 0% and 50% phase were compared between runs to assess contribution of Calypso electromagnetic array setup variation. Beacon orientation sensitivity: the Calypso tracks sinusoidal phantom motion with a defined angular offset of the beacon to assess its effect on SD and peak-to-peak amplitude. Rate dependence: sinusoidal motion was generated at cycle rates of 1 Hz, .33 Hz, and .2 Hz. Peak-to-peak displacement and SDs were assessed. Respiratory waveform tracking accuracy: the phantom reproduced recorded breathing cycles (by volunteers and patients) were tracked by the Calypso system. Deviation in tracking position from produced waveform was used to calculate SD throughout entire breathing cycle. Stability and drift analysis: Mean amplitude ± SD of phase 0% or 50% were 20.01 ± 0.04 mm and ‐ 19.65 ± 0.08 mm , respectively. No clinically significant drift was detected with drift measured as 5.1 × 10 ‐ 5 mm / s at phase 0% and ‐ 6.0 × 10 ‐ 5 mm / s at phase 50%. Reproducibility: The SD of the setup was 0.06 mm and 0.02 mm for phases 0% and 50%, respectively. The combined SDs, including both setup and intrarun error of all runs at phases 0% and 50%, were 0.07 mm and 0.11 mm, respectively. Beacon orientation: SD ranged from 0.032 mm to 0.039 mm at phase 0% and from 0.084 mm to 0.096 mm at phase 50%. The SD was found not to vary linearly with Beacon angle in the range of 0° and 15°. A positive systematic error was observed with amplitude 0.07 mm/degree at phase 0% and 0.05 mm/degree at phase 50%. Rate dependence: SD and displacement amplitudes did not vary significantly between 0.2 Hz and 0.33 Hz. At 1 Hz, both 0% and 50% amplitude measurements shifted up appreciably, by 0.72 mm and 0.78 mm, respectively. As compared with the 0.33 Hz data, SD at phase 0% was 1.6 times higher and 5.4 times higher at phase 50%. Respiratory waveform tracking accuracy: SD of 0.233 mm with approximately normal distribution in over 134 min of tracking (201468 data points). The Surface Beacon transponder appears to be stable, accurate, and reproducible. Submillimeter resolution is achieved throughout breathing and sinusoidal waveforms.PACS number(s): 87.50.ct, 87.50.st, 87.50.ux, 87.50.wp, 87.50.yt
机译:Calypso L形表面信标应答器最近已可用于临床。我们在本文中进行研究以验证表面信标应答器的稳定性,可重复性,方向敏感性,循环速率依赖性和呼吸波形跟踪准确性。将表面信标放置在Quasar呼吸体模上,并使其等臂线与激光对准的位置位于等中心点。模拟呼吸波形,并跟踪应答器的运动。稳定性和漂移分析:产生正弦波形(200个周期),并在每个呼吸周期记录0%(吸气)和50%(呼气)的相位振幅。计算振幅的平均值和标准偏差(SD)。进行线性最小二乘拟合以获取整个呼吸周期内可能出现的幅度漂移。重现性:与稳定性和漂移分析的设置相似,幻像每次运行可生成100个正弦波形周期。每次运行都会重新设置Calypso系统。在运行之间比较记录的振幅和0%和50%相的SD,以评估Calypso电磁阵列设置变化的贡献。信标定向灵敏度:Calypso以信标的定义角度偏移跟踪正弦幻影运动,以评估其对SD和峰峰值的影响。速率依赖性:以1 Hz,.33 Hz和.2 Hz的循环速率产生正弦运动。评估峰-峰位移和SD。呼吸波形追踪精度:由Calypso系统追踪记录的幻影复制记录的呼吸周期(志愿者和患者)。跟踪位置与产生波形的偏差用于计算整个呼吸周期的SD。稳定性和漂移分析:相位0%或50%的平均幅度±SD分别为20.01±0.04 mm和-19.65±0.08 mm。未检测到临床上显着的漂移,在0%阶段测得的漂移为5.1×10 ‐ 5 mm / s,在50%阶段测得的漂移为6.0×10 ‐ 5 mm / s。重现性:0%相和50%相的SD设置分别为0.06 mm和0.02 mm。组合的SD(包括相位在0%和50%时的所有运行的设置和运行中误差)分别为0.07 mm和0.11 mm。信标方向:在相位为0%时,SD的范围为0.032毫米至0.039毫米,在相位为50%时,SD的范围为0.084毫米至0.096毫米。发现SD在0°和15°范围内不随信标角线性变化。在相位为0%时振幅为0.07 mm /度,在相位为50%时振幅为0.05 mm /度,观察到正系统误差。速率依赖性:SD和位移幅度在0.2 Hz和0.33 Hz之间没有显着变化。在1 Hz时,0%和50%幅度测量值分别明显上升了0.72 mm和0.78 mm。与0.33 Hz数据相比,0%相的SD分别高1.6倍和50%相的5.4倍。呼吸波形跟踪精度:SD为0.233 mm,在134分钟的跟踪过程中具有近似正态分布(201468个数据点)。表面信标应答器似乎是稳定,准确和可重现的。在整个呼吸和正弦波波形中都达到亚毫米分辨率.PACS编号:87.50.ct,87.50.st,87.50.ux,87.50.wp,87.50.yt

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