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Evaluation of a miniature electromagnetic position tracker.

机译:微型电磁位置跟踪器的评估。

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摘要

The advent of miniaturized electromagnetic digitizers opens a variety of potential clinical applications for computer aided interventions using flexible instruments; endoscopes or catheters can easily be tracked within the body. With respect to the new applications, the systematic distortions induced by various materials such as closed metallic loops, wire guides, catheters, and ultrasound scan heads were systematically evaluated in this paper for a new commercial tracking system. We employed the electromagnetic tracking system Aurora (Mednetix/CH, NDI/Can); data were acquired using the serial port of a PC running SuSE Linux 7.1 (SuSE, Gmbh, Nurnberg). Objects introduced into the digitizer volume included wire loops of different diameters, wire guides, optical tracking tools, an ultrasonic (US) scan head, an endoscope with radial ultrasound scan head and various other objects used in operating rooms and interventional suites. Beyond this, we determined the influence of a C-arm fluoroscopy unit. To quantify the reliability of the system, the miniaturized sensor was mounted on a nonmetallic measurement rack while the transmitter was fixed at three different distances within the digitizer range. The tracker was shown to be more sensitive to distortions caused by materials close to the emitter (average distortion error 13.6 mm +/- 16.6 mm for wire loops positioned at a distance between 100 mm and 200 mm from the emitter). Distortions caused by materials near the sensor (distances smaller than 100 mm) are small (typical error 2.2 mm +/- 1.9 mm). The C-arm fluoroscopy unit caused considerable distortions and limits the reliability of the tracker (distortion error 18.6 mm +/- 24.9 mm). Distortions resulting from the US scan head are high at distances smaller than about 100 mm from the emitter. The distortions also increase when the scan head is positioned horizontally and close to the sensor (average error 4.1 mm +/- 1.5 mm when the scan head is positioned within a distance of 100 mm from the sensor). The distortions are slightly higher when the ultrasound machine is switched on. We also evaluated the influence of common medical instruments on distance measurements. For these measurements the average deviation from the known distance of 200 mm amounted to 3.0 mm +/- 1.5 mm (undistorted distance measurement 1.5 mm +/- 0.3 mm). The deviations also depend on the relative orientation between emitter and sensor. The results demonstrate that the miniature tracking system opens up new perspectives with regard to surgery applications where a flexible instrument is to be tracked within the body. Significant distortions caused by metallic objects only occur in the worst cases, for example, in the presence of a closed, unisiolated wire loop or a C-arm fluorescence unit close to the emitter and which can be avoided by suitable usage.
机译:小型化的电磁数字化仪的出现为使用柔性仪器的计算机辅助干预打开了各种潜在的临床应用。内窥镜或导管很容易在体内追踪。对于新的应用,本文针对新型商业跟踪系统,系统地评估了由各种材料(如闭合的金属环,导线,导管和超声扫描头)引起的系统失真。我们采用了电磁跟踪系统Aurora(Mednetix / CH,NDI / Can);使用运行SuSE Linux 7.1的PC(SuSE,Gmbh和Nurnberg)的串行端口获取数据。引入数字化仪体积的对象包括不同直径的线环,线导向器,光学跟踪工具,超声波(US)扫描头,带有放射状超声波扫描头的内窥镜以及手术室和介入套件中使用的各种其他对象。除此之外,我们还确定了C臂荧光透视仪的影响。为了量化系统的可靠性,将微型传感器安装在非金属测量架上,同时将变送器固定在数字转换器范围内的三个不同距离处。跟踪器对由靠近发射器的材料引起的变形更敏感(对于距离发射器100 mm和200 mm之间的线环,平均变形误差为13.6 mm +/- 16.6 mm)。由传感器附近的材料引起的失真(距离小于100毫米)很小(典型误差为2.2毫米+/- 1.9毫米)。 C型臂荧光透视仪导致严重的变形,并限制了跟踪器的可靠性(变形误差18.6毫米+/- 24.9毫米)。 US扫描头造成的失真在距发射器的距离小于约100毫米的地方很高。当扫描头水平放置并靠近传感器时,变形也会增加(当扫描头位于距传感器100毫米以内时,平均误差为4.1毫米+/- 1.5毫米)。打开超声仪时,失真会稍高一些。我们还评估了普通医疗仪器对距离测量的影响。对于这些测量,与已知距离200 mm的平均偏差为3.0 mm +/- 1.5 mm(无失真距离测量值为1.5 mm +/- 0.3 mm)。偏差还取决于发射器和传感器之间的相对方向。结果表明,微型跟踪系统为要在体内跟踪柔性器械的手术应用开辟了新的前景。仅在最坏的情况下才会发生由金属物体引起的严重变形,例如,在靠近发射器的封闭,未等距的线环或C型臂荧光单元的存在下,可以通过适当使用避免这种情况。

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