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Planning Active Cannula Configurations Through Tubular Anatomy

机译:通过管状解剖结构规划活性套管配置

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Medical procedures such as lung biopsy and brachytherapy require maneuvering through tubular structures such as the trachea and bronchi to reach clinical targets. We introduce a new method to plan configurations for active cannulas, medical devices composed of thin, pre-curved, telescoping lumens that are capable of following controlled, curved paths through open or liquid-filled cavities. Planning optimal configurations for these devices is challenging due to their complex kinematics, which involve both beam mechanics and space curves. In this paper, we propose an optimization-based planning algorithm that computes active cannula configurations through tubular structures that reach specified targets. Given the target location, the start position and orientation, and a geometric representation of the physical environment extracted from pre-procedure medical images, the planner optimizes insertion length and orientation angle of each lumen of the active cannula. The planner models active cannula kinematics using a physically-based simulation that incorporates beam mechanics and minimizes energy. The algorithm typically computes plans in less than 2 minutes on a standard PC. We apply the method in simulation to anatomy extracted from a human CT scan and demonstrate configurations for a 5-lumen active cannula that maneuver it through the bronchi to targets in the lung.
机译:肺活检和近距离放射治疗等医疗程序需要通过诸如气管和支气管等管状结构进行操纵,以达到临床目标。我们介绍了一种新的方法来规划用于活性套管的配置,由薄,预弯曲,伸缩流孔组成的医疗装置,其能够通过开放或液体填充的腔。规划这些设备的最佳配置是由于其复杂的运动学而挑战,这涉及光束力学和空间曲线。在本文中,我们提出了一种基于优化的规划算法,其通过达到指定目标的管状结构来计算有源套管配置。给定目标位置,开始位置和取向,以及从预过程中提取的物理环境的几何表示,规划器优化了有源套管的每个内腔的插入长度和取向角。该计划者使用基于物理的仿真来模拟有源插管运动学,该模拟包含光束力学,并最大限度地减少能量。该算法通常在标准PC上计算不到2分钟的计划。我们将模拟中的方法应用于从人CT扫描中提取的解剖学,并演示了通过支气管瞄准肺部靶向的5-腔活性套管的配置。

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