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Real-Time Markerless Respiratory Motion Management Using Thermal Sensor Data

机译:使用热传感器数据进行实时无标记呼吸运动管理

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We present a novel approach to jointly generate multidimensional breathing signals and identify unintentional patient motion based on thermal torso imaging. The system can operate at least 30% faster than the currently fastest optical surface imaging systems. It provides easily obtainable point-to-point correspondences on the patients surface which makes the current use of computationally heavy non-rigid surface registration algorithms obsolete in our setup, as we can show that 2d tracking is sufficient to solve our problem. In a volunteer study consisting of 5 patient subjects we show that we can use the information to automatically separate unintentional movement, due to pain or coughing, from breathing motion to signal the user that it is necessary to re-register the patient. The method is validated on ground-truth annotated thermal videos and a clinical IR respiratory motion tracking system.
机译:我们提出一种新颖的方法,以联合生成多维呼吸信号并基于热躯干成像识别无意的患者运动。该系统的运行速度比目前最快的光学表面成像系统至少快30%。它提供了在患者表面上容易获得的点对点对应关系,这使得在我们的设置中不再使用当前计算量大的非刚性表面配准算法,因为我们可以证明二维跟踪足以解决我们的问题。在一项由5名患者受试者组成的志愿者研究中,我们表明,我们可以使用该信息自动将由于疼痛或咳嗽引起的意外运动与呼吸运动区分开,以向用户发送信号,告知需要重新注册患者。该方法在带有地面注释的热感视频和临床IR呼吸运动跟踪系统上得到了验证。

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