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细胞、分子和神经生物学应用中的先进图像分析系统。

Advanced image analysis systems in cell, molecular and neurobiology applications.

作者信息

Ramm P

机构信息

Department of Psychology and Imaging Research Inc., Brock University, St. Catharines, Ontario, Canada.

出版信息

J Neurosci Methods. 1994 Oct;54(2):131-49. doi: 10.1016/0165-0270(94)90188-0.

Abstract

Many of today's image acquisition devices (scanners and cameras) yield high-resolution (1280 x 1024 pixels is typical) and/or high-precision (> 8 bits) image data. When coupled to a powerful image analyzer these image acquisition devices offer practical advantages in many bioscience applications. The benefits of high resolution include better contrast transfer (sharper images with more accurate density rendition) and an ability to work with large specimens at lower optical magnifications (larger field of view). High precision is useful if images contain subtle features (e.g., fluorescently labeled processes at densities close to background) and/or wide dynamic range. Examples are given, illustrating the use of a number of medium- and high-performance image acquisition devices with an advanced image analyzer. The examples include a comparison of intensified and integrating cameras in fluorescence microscopy, evaluation of the performance of a fast, cooled integrating camera in ratio fluorescence imaging, and a comparison of film and storage phosphor-plate performance in quantitative receptor autoradiography.

摘要

当今许多图像采集设备(扫描仪和相机)可产生高分辨率(典型的为1280×1024像素)和/或高精度(>8位)的图像数据。当与功能强大的图像分析仪结合使用时,这些图像采集设备在许多生物科学应用中具有实际优势。高分辨率的好处包括更好的对比度传递(图像更清晰,密度再现更准确)以及能够在较低光学放大倍数下处理大样本(视野更大)。如果图像包含细微特征(例如,密度接近背景的荧光标记过程)和/或宽动态范围,高精度就很有用。文中给出了一些示例,说明了一些中高性能图像采集设备与先进图像分析仪的使用情况。这些示例包括荧光显微镜中增强型相机和积分相机的比较、快速冷却积分相机在比率荧光成像中的性能评估,以及定量受体放射自显影中胶片和存储磷光板性能的比较。

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