Centre of Mathematics for Applications, University of Oslo, P.O. Box 1053, Blindern, 0316, Oslo, Norway.
Int J Comput Assist Radiol Surg. 2012 Jul;7(4):611-20. doi: 10.1007/s11548-011-0661-6. Epub 2011 Oct 19.
Ultrasound-guided 3D interventions require calibration to relate real-time 2D images with the position and orientation of the ultrasound probe. Capturing several images of a single fixed point from different viewpoints is a simple and commonly used approach, but it is cumbersome and tedious. A new phantom for calibration was designed, built and tested to simplify this process.
A mechanical phantom that restricts the motion of the ultrasound probe was designed such that the ultrasound image always captures a designated fixed point. Software was implemented which computes calibration parameters. Although the software provides no scientific novelty, it is required to demonstrate the proof of concept and to assess the accuracy and precision of the calibration phantom. The software also illustrates how the phantom enables the fixed point to be located automatically, both in tracker device coordinates and in image pixel coordinates.
The phantom was used to capture several hundred images of a single fixed point in less than 1 min, with different probe positions and orientations around the fixed point and with the single fixed point located in different parts of the ultrasound image. It would not be feasible to capture the same number of images by manual alignment of the probe with the fixed point.
Images for single fixed point calibration can be captured easily and quickly with a new calibration phantom. Since a larger number of images can be used to compute the required parameters, the calibration robustness is increased.
超声引导的 3D 介入需要进行校准,以将实时 2D 图像与超声探头的位置和方向联系起来。从不同角度捕获单个固定点的多个图像是一种简单且常用的方法,但很繁琐。为此,设计、构建并测试了一种新的校准幻影,以简化这一过程。
设计了一种机械幻影,限制了超声探头的运动,使得超声图像始终捕获指定的固定点。实现了计算校准参数的软件。尽管该软件没有提供科学上的新颖性,但它需要演示概念验证,并评估校准幻影的准确性和精度。该软件还说明了如何在跟踪设备坐标和图像像素坐标中自动定位固定点,而无需手动对齐探头和固定点。
使用该幻影,在不到 1 分钟的时间内捕获了单个固定点的数百张图像,探头在固定点周围的位置和方向不同,并且单个固定点位于超声图像的不同部分。如果通过手动对准探头和固定点来捕获相同数量的图像,则不可行。
使用新的校准幻影可以轻松快速地捕获用于单点校准的图像。由于可以使用更多的图像来计算所需的参数,因此校准的鲁棒性得到了提高。