脉冲序列
偏移量(计算机科学)
脉搏(音乐)
自旋回波
快速自旋回波
计算机科学
领域(数学)
核磁共振
Echo(通信协议)
信号(编程语言)
磁共振成像
电磁铁
信噪比(成像)
同种类的
物理
数学
磁铁
放射科
医学
探测器
电信
热力学
程序设计语言
纯数学
量子力学
计算机网络
作者
C. Kegler,H.C. Seton,J.M.S. Hutchison
摘要
Abstract Clinical MRI systems use magnetic fields of at least 0.5T to take advantage of the increase in signal‐to‐noise ratio (SNR) with B 0 . Low‐field MRI apparatus is less expensive and offers the potential benefit of improved T 1 contrast between tissues. The poor inherent SNR at low field can be offset by incorporating prepolarizing field pulses with the MRI pulse sequence. The prepolarizing field does not need to be as homogeneous as the detection field, so it can be generated by a relatively inexpensive electromagnet. Prepolarizing hardware for a 0.01T MRI system was developed together with a prepolarized MRI pulse sequence that incorporates fast imaging techniques to reduce acquisition times by a factor of 5 relative to standard methods. Comparison images of test objects show that most of the enhanced SNR is retained with the fast method. Low‐field images of a human wrist acquired using the fast prepolarized method are also shown. Magn Reson Med 57:1180–1184, 2007. © 2007 Wiley‐Liss, Inc.
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