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A Semi-automated Approach to Improve the Efficiency of Medical Imaging Segmentation for Haptic Rendering

机译:一种半自动化方法可提高针对触觉渲染的医学成像分割的效率

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摘要

The Sensimmer platform represents our ongoing research on simultaneous haptics and graphics rendering of 3D models. For simulation of medical and surgical procedures using Sensimmer, 3D models must be obtained from medical imaging data, such as magnetic resonance imaging (MRI) or computed tomography (CT). Image segmentation techniques are used to determine the anatomies of interest from the images. 3D models are obtained from segmentation and their triangle reduction is required for graphics and haptics rendering. This paper focuses on creating 3D models by automating the segmentation of CT images based on the pixel contrast for integrating the interface between Sensimmer and medical imaging devices, using the volumetric approach, Hough transform method, and manual centering method. Hence, automating the process has reduced the segmentation time by 56.35% while maintaining the same accuracy of the output at ±2 voxels.
机译:Sensimmer平台代表了我们正在进行的有关3D模型的同时触觉和图形渲染的研究。为了使用Sensimmer模拟医学和外科手术过程,必须从医学成像数据(例如磁共振成像(MRI)或计算机断层扫描(CT))获得3D模型。图像分割技术用于从图像确定感兴趣的解剖结构。 3D模型是通过分割获得的,图形和触觉渲染需要将其三角形缩小。本文着重于通过基于像素对比度的CT图像自动分割来创建3D模型,以集成Sensimmer与医学成像设备之间的接口,并使用体积方法,Hough变换方法和手动定心方法。因此,自动化处理将分割时间减少了56.35%,同时将输出精度保持在±2体素。

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