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首页> 外文期刊>IEEE Transactions on Medical Imaging >Automatic Spatial Calibration of Ultra-Low-Field MRI for High-Accuracy Hybrid MEG–MRI
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Automatic Spatial Calibration of Ultra-Low-Field MRI for High-Accuracy Hybrid MEG–MRI

机译:高精度混合MEG–MRI超低场MRI的自动空间校准

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摘要

With a hybrid magnetoencephalography (MEG)-MRI device that uses the same sensors for both modalities, the co-registration of MRI and MEG data can be replaced by an automatic calibration step. Based on the highly accurate signal model of ultra-low-field (ULF) MRI, we introduce a calibration method that eliminates the error sources of traditional co-registration. The signal model includes complex sensitivity profiles of the superconducting pickup coils. In the ULF MRI, the profiles are independent of the sample and therefore well-defined. In the most basic form, the spatial information of the profiles, captured in parallel ULF-MR acquisitions, is used to find the exact coordinate transformation required. We assessed our calibration method by simulations assuming a helmet-shaped pickup-coil-array geometry. Using a carefully constructed objective function and sufficient approximations, even with low-SNR images, sub-voxel and sub-millimeter calibration accuracy were achieved. After the calibration, distortion-free MRI and high spatial accuracy for MEG source localization can be achieved. For an accurate sensor-array geometry, the co-registration and associated errors are eliminated, and the positional error can be reduced to a negligible level.
机译:对于两种模式都使用相同传感器的混合磁脑电图(MEG)-MRI设备,可以通过自动校准步骤代替MRI和MEG数据的共配准。基于超低场(ULF)MRI的高精度信号模型,我们介绍了一种消除传统共配准误差源的校准方法。信号模型包括超导拾波线圈的复杂灵敏度曲线。在ULF MRI中,轮廓与样品无关,因此轮廓清晰。在最基本的形式中,在并行ULF-MR采集中捕获的轮廓的空间信息用于查找所需的精确坐标变换。我们通过假设头盔形状的拾音线圈阵列几何形状的仿真评估了我们的校准方法。使用精心构造的目标函数和足够的近似值,即使使用低SNR图像,也可以实现亚体素和亚毫米的校准精度。校准后,可以实现无失真的MRI和MEG源定位的高空间精度。为了获得精确的传感器阵列几何形状,可以消除共配准和相关的误差,并且可以将位置误差减小到可以忽略的水平。

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