Jiřík Miroslav, Bartoš Martin, Tomášek Petr, Malečková Anna, Kural Tomáš, Horáková Jana, Lukáš David, Suchý Tomáš, Kochová Petra, Hubálek Kalbáčová Marie, Králíčková Milena, Tonar Zbyněk
Biomedical Center, Faculty of Medicine in Pilsen, Charles University, Pilsen, 323 00, Czech Republic.
Institute of Dental Medicine, First Faculty of Medicine, Charles University and General University Hospital in Prague, Prague 2, 128 01, Czech Republic.
Microsc Res Tech. 2018 Jun;81(6):551-568. doi: 10.1002/jemt.23011. Epub 2018 Feb 24.
Quantification of the structure and composition of biomaterials using micro-CT requires image segmentation due to the low contrast and overlapping radioopacity of biological materials. The amount of bias introduced by segmentation procedures is generally unknown. We aim to develop software that generates three-dimensional models of fibrous and porous structures with known volumes, surfaces, lengths, and object counts in fibrous materials and to provide a software tool that calibrates quantitative micro-CT assessments. Virtual image stacks were generated using the newly developed software TeIGen, enabling the simulation of micro-CT scans of unconnected tubes, connected tubes, and porosities. A realistic noise generator was incorporated. Forty image stacks were evaluated using micro-CT, and the error between the true known and estimated data was quantified. Starting with geometric primitives, the error of the numerical estimation of surfaces and volumes was eliminated, thereby enabling the quantification of volumes and surfaces of colliding objects. Analysis of the sensitivity of the thresholding upon parameters of generated testing image sets revealed the effects of decreasing resolution and increasing noise on the accuracy of the micro-CT quantification. The size of the error increased with decreasing resolution when the voxel size exceeded 1/10 of the typical object size, which simulated the effect of the smallest details that could still be reliably quantified. Open-source software for calibrating quantitative micro-CT assessments by producing and saving virtually generated image data sets with known morphometric data was made freely available to researchers involved in morphometry of three-dimensional fibrillar and porous structures in micro-CT scans.
由于生物材料的对比度低且射线不透性重叠,使用微型计算机断层扫描(micro-CT)对生物材料的结构和组成进行定量分析需要图像分割。分割程序引入的偏差量通常是未知的。我们旨在开发一款软件,该软件能生成纤维材料中具有已知体积、表面积、长度和物体数量的纤维状和多孔结构的三维模型,并提供一种校准定量微型计算机断层扫描评估的软件工具。使用新开发的软件TeIGen生成虚拟图像堆栈,从而能够模拟未连接管、连接管和孔隙的微型计算机断层扫描。加入了一个逼真的噪声发生器。使用微型计算机断层扫描对40个图像堆栈进行了评估,并对真实已知数据和估计数据之间的误差进行了量化。从几何基元开始,消除了表面和体积数值估计的误差,从而能够对碰撞物体的体积和表面积进行量化。对生成的测试图像集参数的阈值敏感性分析揭示了分辨率降低和噪声增加对微型计算机断层扫描定量准确性的影响。当体素大小超过典型物体大小的1/10时,误差大小随着分辨率降低而增加,这模拟了仍能可靠量化的最小细节的影响。通过生成并保存具有已知形态测量数据的虚拟生成图像数据集来校准定量微型计算机断层扫描评估的开源软件已免费提供给参与微型计算机断层扫描中三维纤维状和多孔结构形态测量的研究人员。