Kim Y, Fahy J B, DeSoto L A, Haynor D R, Loop J W
J Digit Imaging. 2003 Mar;16(1):104-13; discussion 103. doi: 10.1007/s10278-002-6020-y.
Low-cost image processing systems which can provide convenient access to image processing and analysis techniques hold great potential as diagnostic and research tools in medical imaging. At the University of Washington, we have developed a PC-based medium performance image processing system for use as an experimental radiological workstation. The workstation uses a standard IBM PC/AT personal computer augmented with a custom designed image processor implemented on two IBM PC/AT prototyping boards. Features of the system include up to 52 512 × 512 × 8 bit frame buffers (4 on the image processor board and up to 48 in the host computer memory) and a 512 × 512 × 4 bit graphics overlay memory, hardware zoom, pan and scroll, pseudo coloring, and a 60 Hz noninterlaced display. Many image processing and analysis functions are provided in this workstation, and all user requests are supported in an interactive fashion. For example, arithmetic and logical point operations between two 512 × 512 frame buffers require approximately 170 ms, while computationally intensive functions such as an 11 × 11 convolution or a full screen geometric transformation (warping) can be completed in less than 10 seconds. A full screen 2-D Fast Fourier Transform (FFT) and Inverse FFT (IFFT) based on the row-column method can be completed in less than 20 seconds. The developed system can easily be configured into a DIN/PACS workstation or a biological imaging system. Hardware and software details of this workstation as well as user interface functions implemented will be discussed in the paper.
能够方便地使用图像处理与分析技术的低成本图像处理系统,作为医学成像中的诊断和研究工具具有巨大潜力。在华盛顿大学,我们开发了一种基于个人计算机的中等性能图像处理系统,用作实验性放射学工作站。该工作站使用一台标准的IBM PC/AT个人计算机,并通过在两块IBM PC/AT原型板上实现的定制设计图像处理器进行增强。该系统的特点包括多达52个512×512×8位帧缓冲器(图像处理器板上有4个,主机内存中最多有48个)以及一个512×512×4位图形覆盖内存、硬件缩放、平移和滚动、伪彩色处理以及60赫兹非隔行显示。此工作站提供了许多图像处理和分析功能,并以交互方式支持所有用户请求。例如,两个512×512帧缓冲器之间的算术和逻辑点运算大约需要170毫秒,而诸如11×11卷积或全屏几何变换(扭曲)等计算密集型功能可以在不到10秒内完成。基于行-列方法的全屏二维快速傅里叶变换(FFT)和逆快速傅里叶变换(IFFT)可以在不到20秒内完成。所开发的系统可以轻松配置成数字成像和通信系统(DIN/PACS)工作站或生物成像系统。本文将讨论该工作站的硬件和软件细节以及所实现的用户界面功能。