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一种用于直接切片的 3D 打印技术,可用于隐式表示的医学模型。

A direct slicing technique for the 3D printing of implicitly represented medical models.

机构信息

School of Informatics, Xiamen University, Xiamen, 361005, China.

School of Informatics, Xiamen University, Xiamen, 361005, China.

出版信息

Comput Biol Med. 2021 Aug;135:104534. doi: 10.1016/j.compbiomed.2021.104534. Epub 2021 Jun 24.

Abstract

In conventional medical image printing methods, volumetric medical data needs to be conversed into STereo Lithography (STL) format, the most commonly used format for representing geometric models for 3D printing. However, this STL conversion process is not only time consuming, but more importantly, it often leads to the loss of accuracy. It has become a critical factor hindering the printing efficiency and precision of organ models. By examining the key characteristics of discrete medical volume data, this paper proposes a direct slicing technique for printing implicitly represented 3D medical models. The proposed method mainly consists of three algorithms: (1) A layer-based contour extraction algorithm for discrete volume data; (2) An inner shell construction algorithm based on discrete point differential indentation; (3) An infill generation algorithm based on the constructed virtual contour and scan lines. The proposed method has been applied to the slicing of several organ models for experiments, and the ratios of time cost and memory cost between the conventional method and the proposed method are about 4-100 and 1.1 to 1.4 respectively, which demonstrate that the proposed method has a great improvement in both time and space performance when compared with the conventional STL-based method. Our technique extends the direct input format of geometric models for additive manufacturing. That is, discrete volume data can be used as a direct input for additive manufacturing without conversion to STL format.

摘要

在传统的医学影像打印方法中,需要将容积医学数据转换为 STereo Lithography(STL)格式,这是 3D 打印表示几何模型最常用的格式。然而,这种 STL 转换过程不仅耗时,而且更重要的是,它常常导致精度的损失。它已经成为阻碍器官模型打印效率和精度的关键因素。本文通过研究离散医学体积数据的关键特征,提出了一种用于打印隐式表示的 3D 医学模型的直接切片技术。所提出的方法主要包括三个算法:(1)基于层的离散体积数据轮廓提取算法;(2)基于离散点差分压痕的内壳构造算法;(3)基于构建的虚拟轮廓和扫描线的填充生成算法。该方法已应用于几个器官模型的切片实验,传统方法和所提出方法的时间成本和内存成本之比约为 4-100 和 1.1 到 1.4,这表明与传统的基于 STL 的方法相比,所提出的方法在时间和空间性能方面有了很大的提高。我们的技术扩展了用于增材制造的几何模型的直接输入格式。也就是说,离散体积数据可以直接作为增材制造的输入,而无需转换为 STL 格式。

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