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使用带槽可转向针进行机器人辅助针转向以绕过解剖学障碍。

Robotic-Assisted Needle Steering Around Anatomical Obstacles Using Notched Steerable Needles.

出版信息

IEEE J Biomed Health Inform. 2018 Nov;22(6):1917-1928. doi: 10.1109/JBHI.2017.2780192. Epub 2017 Dec 6.

Abstract

Robotic-assisted needle steering can enhance the accuracy of needle-based interventions. Application of current needle steering techniques are restricted by the limited deflection curvature of needles. Here, a novel steerable needle with improved curvature is developed and used with an online motion planner to steer the needle along curved paths inside tissue. The needle is developed by carving series of small notches on the shaft of a standard needle. The notches decrease the needle flexural stiffness, allowing the needle to follow tightly curved paths with small radius of curvature. In this paper, first, a finite element model of the notched needle deflection in tissue is presented. Next, the model is used to estimate the optimal location for the notches on needle's shaft for achieving a desired curvature. Finally, an ultrasound-guided motion planner for needle steering inside tissue is developed and used to demonstrate the capability of the notched needle in achieving high curvature and maneuvering around obstacles in tissue. We simulated a clinical scenario in brachytherapy, where the target is obstructed by the pubic bone and cannot be reached using regular needles. Experimental results show that the target can be reached using the notched needle with a mean accuracy of 1.2 mm. Thus, the proposed needle enables future research on needle steering toward deeper or more difficult-to-reach targets.

摘要

机器人辅助的针导向可以提高基于针的介入的准确性。当前的针导向技术的应用受到针的有限偏转曲率的限制。在这里,开发了一种具有改进曲率的新型可控针,并与在线运动规划器一起用于沿着组织内的弯曲路径引导针。该针是通过在标准针的轴上雕刻一系列小凹口来开发的。凹口降低了针的弯曲刚度,使得针能够紧密跟随具有小曲率半径的弯曲路径。在本文中,首先提出了组织中带槽针的挠度的有限元模型。接下来,使用该模型来估计针轴上的凹口的最佳位置,以实现所需的曲率。最后,开发了一种用于组织内针导向的超声引导运动规划器,并用于演示带槽针在实现高曲率和绕过组织内障碍物方面的能力。我们模拟了近距离放射治疗中的临床情况,其中目标被耻骨阻塞,无法使用常规针到达。实验结果表明,使用带槽针可以以平均精度 1.2 毫米到达目标。因此,所提出的针能够实现针对更深或更难到达的目标的针导向的未来研究。

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