arXiv:2603.01584eess.IVeess.SP2026-03

用惯性传感器+MRI磁场实现毫秒级头动校正,提升脑部MRI图像质量

MR-Compass: Inertial Navigation-Driven Motion Correction for Brain MRI

  • 利用MRI静态磁场与重力场直接估计头部姿态,避免积分漂移
  • 300次实验中定位精度达0.6°和0.4像素,显著降低运动伪影
  • 支持回溯与实时校正,适合高精度脑成像研究

惯性传感器可追踪物体运动,但因信号噪声导致积分漂移,在毫米级分辨率和分钟级扫描中难以用于MRI运动校正。本文提出MR-Compass,利用MRI系统的静态磁场和重力场,以2kHz采样率直接估算3自由度姿态,无需积分,消除随机游走。剩余3自由度平移通过MRI数据的相位相关性恢复。实验验证采用3D径向科什球序列进行回溯校正,以及在2D EPI fMRI中对志愿者大幅运动进行前瞻校正。所有实验平均精度达0.6°和0.4像素。在所有志愿者扫描中,应用运动校正后图像质量均得到提升。MR-Compass在极高采样率下实现了高精度头动测量,并支持回溯与前瞻重建,有效对齐k-space数据、减少运动伪影。

原文摘要 · Abstract (English)

Inertial sensors can track object kinematics, however, unbounded drift from integrating noisy signals makes them impractical for MRI motion correction at millimeter resolution and minute-long scans. We introduce MR-Compass, which exploits the MRI system's static magnetic and gravitational fields to estimate 3-DOF orientation at 2 kHz directly, without integration, eliminating random-walk. The remaining 3-DOF translation is recovered via phase correlation from the MRI data. We experimentally validate the efficacy of the method retrospectively using a 3D radial koosh-ball sequence and prospectively using 2D EPI fMRI during large volunteer motions. MR-Compass followed by phase-correlation achieved a mean accuracy of 0.6$^o$ and 0.4 pixels across all experiments. Image quality improved when motion correction was applied in all volunteer scans for both retrospective and prospective correction cases. MR-Compass was effective in measuring head motion in the MRI scanner with high accuracy at unprecedented sample rates, and enabled both retrospective and prospective reconstruction to improve image quality by aligning the k-space data appropriately and by reducing the motion related artifacts.

MRI运动校正惯性导航脑成像

Thank you to arXiv for use of its open access interoperability. PaperDance 不是 arXiv 官方产品;中文卡片由大模型生成,请以原文为准。