Pálvölgyi Jenö
Petz County Teaching Hospital Department for Oncoradiology, Gyor, Hungary.
J Contemp Brachytherapy. 2014 Mar;6(1):40-4. doi: 10.5114/jcb.2014.40695. Epub 2014 Feb 18.
The traditional brachytherapy catheter reconstruction with biplane images is based on digitizing radio-opaque markers with a pointing device on a film or on a screen. An algorithm to automate digitization of radio-opaque marker coordinates on biplane images is presented.
To obtain the marker coordinates in a proper sequence, instead of usual pair of reconstruction images, series of images were taken with insertion of radio-opaque markers consecutively into the catheters. The images were pre-processed to suppress the shield of anatomic structures. The determination of the marker coordinates is based on the detection of characteristic high gradient variation in pre-processed image profiles. The method was tested with six endometrial insertions performed with Simon-Norman catheters using our version of Heyman packing.
28 catheters of six treatment fractions were digitized, typically 10 markers per catheter. To obtain the marker coordinates, adjustment of two threshold levels on the pre-processed images were needed. The coordinates of the radio-opaque markers on the biplane projection images were obtained without positive or negative artefact.
THE DUMMY SOURCE COORDINATES ON THE BIPLANE IMAGES WERE DIGITIZED IN A PROPER SEQUENCE: from the catheters' tip towards the end of the catheters. After the three-dimensional reconstruction of the catheters from the digitized coordinates, the geometry file was imported by the brachytherapy planning system for dose calculation. The method has the advantage to eliminate manual digitization of the dummy sources.
传统的利用双平面图像进行近距离放射治疗导管重建是基于在胶片或屏幕上用定位设备对不透射线标记进行数字化。本文提出一种用于自动数字化双平面图像上不透射线标记坐标的算法。
为了按正确顺序获取标记坐标,不是使用通常的一对重建图像,而是在将不透射线标记依次插入导管的过程中拍摄一系列图像。对图像进行预处理以抑制解剖结构的遮挡。标记坐标的确定基于对预处理图像轮廓中特征性高梯度变化的检测。使用我们改进版的海曼填塞法,用西蒙 - 诺曼导管对6例子宫内膜植入进行了该方法的测试。
对六个治疗分次中的28根导管进行了数字化处理,每根导管通常有10个标记。为了获取标记坐标,需要在预处理图像上调整两个阈值水平。在双平面投影图像上获得了不透射线标记的坐标,没有正负伪影。
双平面图像上虚拟源坐标按正确顺序数字化:从导管尖端向导管末端。从数字化坐标对导管进行三维重建后,将几何文件导入近距离放射治疗计划系统进行剂量计算。该方法的优点是消除了虚拟源的手动数字化。