Consistency in calibrated backscattered electron images of calcified tissues and minerals analyzed in multiple imaging sessions.

Scanning microscopy Pub Date : 1995-09-01
E G Vajda, J G Skedros, R D Bloebaum
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Abstract

Pure metal standards have been used to calibrate the operating envionment in quatitative backscattered electron (BSE) imaging of mineralized tissue, allowing comparisons to be made between various mineralization states of bone at the microscopic level. It has not previuously been documented that calibration procedures produce consistent, reliable results over multiple imaging sessions. In this study, BSE images were obtained from bones, pure metals, and a naturally occurring mineral in multiple imaging sessions over a six day period. The graylevel histogram profile (GHP) from each specimen was analyzed for changes in the shape and relative placement on the graylevel spectrum. Computer controlled calibration and a restrospective calibration method using pure aluminum and pure magnesium-aluminum-zinc demonstrated consistency between imaging sessions. Calibrated weighted mean graylevels (WMGLs) for biological meterials had an average standard deviation of 5.9 graylevels (2.4% variation) during the course of the study. WMGLs for inorganic materials had an average standard deviation of 0.9 graylevels (0.4% variation). A trend towards increased image brightness, due to specimen and/or embedding media degradation, was observed in the biological tissues. No increase in rightness was observed for the inorgtanic specimens. Kurtosis and skewness tests revealed a slight deviation from normality in all specimens, which remained consistent between multiple imaging sessions. These results demonstrate the BSE image analysis of bones and mineral can be calibrated with negligible precision error allowing comparisons between data within and between multiple imaging sessions.

在多次成像会议中分析钙化组织和矿物质的校准后向散射电子图像的一致性。
纯金属标准已被用于校准矿化组织定量背散射电子(BSE)成像的操作环境,允许在微观水平上比较骨的各种矿化状态。校准程序在多次成像过程中产生一致、可靠的结果,以前没有文献记载。在这项研究中,从骨骼、纯金属和一种天然矿物中获得疯牛病图像,在6天的时间内进行多次成像。分析每个样本的灰度直方图轮廓(GHP)的形状和灰度谱上的相对位置的变化。计算机控制校准和使用纯铝和纯镁铝锌的回顾性校准方法证明了成像期间的一致性。在研究过程中,生物材料的校正加权平均灰度(WMGLs)的平均标准差为5.9个灰度级(变异2.4%)。无机材料的wmgl平均标准偏差为0.9灰度级(0.4%变异)。由于标本和/或嵌入介质的降解,在生物组织中观察到图像亮度增加的趋势。无机样品的正确率没有增加。峰度和偏度测试显示,所有标本都有轻微偏离正态,在多次成像期间保持一致。这些结果表明,骨骼和矿物质的BSE图像分析可以在可忽略不计的精度误差下进行校准,从而允许在多个成像会话内和之间比较数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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