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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >O-space imaging: Highly efficient parallel imaging using second-order nonlinear fields as encoding gradients with no phase encoding.
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O-space imaging: Highly efficient parallel imaging using second-order nonlinear fields as encoding gradients with no phase encoding.

机译:O空间成像:使用二阶非线性场作为编码梯度的高效并行成像,无需相位编码。

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Recent improvements in parallel imaging have been driven by the use of greater numbers of independent surface coils placed so as to minimize aliasing along the phase-encode direction(s). However, gains from increasing the number of coils diminish as coil coupling problems begin to dominate and the ratio of acceleration gain to expense for multiple receiver chains becomes prohibitive. In this work, we redesign the spatial-encoding strategy in order to gain efficiency, achieving a gradient encoding scheme that is complementary to the spatial encoding provided by the receiver coils. This approach leads to "O-space" imaging, wherein the gradient shapes are tailored to an existing surface coil array, making more efficient use of the spatial information contained in the coil profiles. In its simplest form, for each acquired echo the Z2 spherical harmonic is used to project the object onto sets of concentric rings, while the X and Y gradients are used to offset this projection within the imaging plane. The theory is presented, an algorithm is introduced for image reconstruction, and simulations reveal that O-space encoding achieves high encoding efficiency compared to sensitivity encoding (SENSE) radial k-space trajectories, and parallel imaging technique with localized gradients (PatLoc), suggesting that O-space imaging holds great potential for accelerated scanning.
机译:并行成像的最新改进是通过使用更多数量的独立表面线圈来推动的,以便将沿相位编码方向的混叠降到最低。然而,随着线圈耦合问题开始占主导地位,来自增加线圈数量的收益逐渐减少,并且多个接收器链的加速增益与费用之比变得过高。在这项工作中,我们重新设计了空间编码策略以提高效率,实现了一种与接收器线圈提供的空间编码互补的梯度编码方案。该方法导致“ O空间”成像,其中将梯度形状调整为适合现有的表面线圈阵列,从而更有效地利用线圈轮廓中包含的空间信息。以其最简单的形式,对于每个获取的回波,Z2球谐函数用于将对象投影到多组同心环上,而X和Y梯度用于在成像平面内偏移此投影。提出了理论,并介绍了用于图像重建的算法,并且仿真显示与敏感编码(SENSE)径向k空间轨迹相比,O空间编码实现了较高的编码效率,并提出了具有局部梯度的并行成像技术(PatLoc), O空间成像具有加速扫描的巨大潜力。

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