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A hardware reconstruction system for real-time magnetic resonance imaging via 2D FFT or filtered backprojection.

机译:通过2D FFT或滤波反投影进行实时磁共振成像的硬件重建系统。

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摘要

A "real-time" hardware reconstruction system for Magnetic Resonance Imaging (MRI) has been designed, constructed, and demonstrated. Here, "real-time" corresponds to frame rates of 30 or more per second (i.e., video rate). The system is capable of reconstructing images via either the 2D FFT algorithm or the filtered backprojection algorithm. The 2D FFT hardware reconstructs 256 x 256 images from complex-valued data (on a rectilinear grid) at a rate of 30 frames/sec while the filtered backprojection hardware is capable of reconstructing 64 x 64 images from complex-valued data (on a polar grid) at a rate of 37 frames/sec. Real-time MRI may be achieved by interfacing the reconstruction system to MR scanners with ultra-fast acquisition capabilities, such as echo-planar imaging (EPI) for rectilinear data or spiral-scan for polar data.; The reconstruction system consists of a number of circuit boards plugged into the bus of a personal computer (PC). The circuit boards are configured by the PC, and thereafter, communicate with each other through ribbon cables independent of the PC operation. Three of the circuit boards are common in both reconstruction methods. They are an analog-to-digital convertor board (ADC), an interface memory board (IM), and a display processor board (DP). In the 2D FFT method a fourth circuit board referred to as the Fourier processor board (FP) is utilized. In the filtered backprojection method two additional circuit boards, a projection filter board (PF) and a backprojection board (BP) are used. The basic theory of the two reconstruction methods as well as design and implementation of the digital-electronic hardware are described in this dissertation. Real-time reconstructed images by both methods are presented to demonstrate the capabilities of the digital-electronic system.
机译:已经设计,构建和演示了用于磁共振成像(MRI)的“实时”硬件重建系统。这里,“实时”对应于每秒30或更高的帧速率(即,视频速率)。该系统能够通过2D FFT算法或滤波反投影算法重建图像。 2D FFT硬件以30帧/秒的速度从复数值数据(在直线网格上)重建256 x 256图像,而滤波后的反投影硬件能够从复数值数据(在极坐标上)重建64 x 64图像。格)以37帧/秒的速度传输。实时MRI可以通过将重建系统与具有超快速采集功能的MR扫描仪接口来实现,例如用于直线数据的回波平面成像(EPI)或用于极性数据的螺旋扫描。重建系统由许多插入个人计算机(PC)总线中的电路板组成。电路板由PC配置,然后通过独立于PC操作的带状电缆相互通信。两种重构方法中共有三个电路板。它们是模数转换器板(ADC),接口存储板(IM)和显示处理器板(DP)。在2D FFT方法中,使用了第四电路板,称为傅里叶处理器板(FP)。在滤波反投影方法中,使用了两个附加电路板,即投影滤波器板(PF)和反投影板(BP)。本文介绍了两种重构方法的基本原理以及数字电子硬件的设计与实现。提出了通过两种方法实时重建的图像,以演示数字电子系统的功能。

著录项

  • 作者

    Ehsani, Ali Reza.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Biomedical.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;无线电电子学、电信技术;
  • 关键词

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