Universität Stuttgart, Institut für Technische Optik, Pfaffenwaldring 9, D-70569 Stuttgart, Germany.
J Biomed Opt. 2013 Aug;18(8):86009. doi: 10.1117/1.JBO.18.8.086009.
We have developed an imaging system to extract high contrast images from different layers of biological organisms. Utilizing a digital holographic approach, the system works without scanning through layers of the specimen. In dark-field illumination, scattered light has the main contribution in image formation, but in the case of coherent illumination, this creates a strong speckle noise that reduces the image quality. To remove this restriction, the specimen has been illuminated with various speckle-fields and a hologram has been recorded for each speckle-field. Each hologram has been analyzed separately and the corresponding intensity image has been reconstructed. The final image has been derived by averaging over the reconstructed images. A correlation approach has been utilized to determine the number of speckle-fields required to achieve a desired contrast and image quality. The reconstructed intensity images in different object layers are shown for different sea urchin larvae. Two multimedia files are attached to illustrate the process of digital focusing.
我们开发了一种成像系统,可从生物组织的不同层中提取高对比度的图像。该系统利用数字全息方法,无需对标本的各层进行扫描。在暗场照明下,散射光在图像形成中起主要作用,但在相干照明的情况下,会产生强烈的散斑噪声,从而降低图像质量。为了消除这种限制,已用各种散斑场对标本进行照明,并为每个散斑场记录了一张全息图。分别分析每个全息图,并重建相应的强度图像。最终的图像是通过对重建的图像进行平均得出的。利用相关方法确定了获得所需对比度和图像质量所需的散斑场的数量。为不同的海胆幼虫展示了不同物体层中的重建强度图像。附加了两个多媒体文件来说明数字聚焦的过程。