Liu Bin, Zhang Xiaohui, Yang Liang, Zhang Jianxin
International School of Information Science & Engineering (DUT-RUISE), Dalian University of Technology, Dalian 116024, China.
Key Lab of Ubiquitous Network and Service Software of Liaoning Province, Dalian University of Technology, Dalian 116024, China.
Quant Imaging Med Surg. 2020 Apr;10(4):862-870. doi: 10.21037/qims.2020.03.21.
With the rapid development of computer technology, surgical training, and the digitalized teaching of human body morphology are gaining prominence in medical education. Accurate, true organ models are essential digital material for these computer-assisted systems. However, no direct three-dimensional (3D) true organ model acquisition method currently exists. Thus, the direct extraction of the interested organ models based on the existing Virtual Human Project (VHP) image set is urgently needed. In this paper, a closed-form solution-based volume matting method is proposed. Using a small quantity of graffiti in the foreground and background, target 3D regions can be extracted by closed-form solution computing. The upper triangular storage strategy and the preconditioned conjugate-gradient (PCG) method also promote robustness. Four image data sets (2 virtual human male and 2 virtual human female) from the United States National Library of Medicine (including brain slices, eye slices, lung slices, heart slices, liver slices, kidney slices, spine slices, arm slices, vastus slices, and foot slices) were selected to extract the 3D volume organ models. The experimental results show that the extracted 3D organs were acceptable and satisfactory. This method may provide technical support for medical and other scientific research fields.
随着计算机技术的飞速发展,外科手术训练以及人体形态学的数字化教学在医学教育中日益突出。精确、真实的器官模型是这些计算机辅助系统必不可少的数字素材。然而,目前尚无直接的三维(3D)真实器官模型获取方法。因此,迫切需要基于现有的虚拟人体项目(VHP)图像集直接提取感兴趣的器官模型。本文提出了一种基于闭式解的体抠图方法。利用前景和背景中的少量涂鸦,通过闭式解计算可以提取目标3D区域。上三角存储策略和预处理共轭梯度(PCG)方法也提高了鲁棒性。从美国国立医学图书馆选取了四个图像数据集(2个虚拟男性和2个虚拟女性,包括脑切片、眼切片、肺切片、心脏切片、肝脏切片、肾脏切片、脊柱切片、手臂切片、股四头肌切片和足部切片)来提取3D体积器官模型。实验结果表明,提取的3D器官是可接受的且令人满意的。该方法可为医学及其他科研领域提供技术支持。