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Improved tensor based registration: An heterogeneous approach

机译:改进的基于张量的配准:一种异构方法

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A novel algorithm for registering brain images in magnetic resonance imaging is presented. It is based on an improved variant to the classic tensor-based moment-of-inertia rigid body method. Given a reference image and a test to register, binary masks are applied so that only pixels above a given threshold are used for the calculation. Application of a low pass Hanning filter on k-space data is new and adds an important constraint to the procedure in order to reduce the errors associated with finite sampling. Further, this process is applied iteratively and leads to an improved accuracy due to the filtering step. The algorithm is validated with simulation data and with added noise. In analyzing this error, a Euclidean distance measure and MSE (mean square error) are used. The average accuracy was 1.8×10−4 fractional pixel for misplacements along X and Y axes and MSE is 0.01 for the error image. The average value of accuracy was 5.8×10−3, 1.8×10−5 deg, and 1.7×10−4 deg for rotations about X, Y and Z axes. The accuracy was better than 4×10−3 fractional pixel for misplacement for estimated SNR varying between 100:1 and 6:1. The algorithm is found to be superior to that obtained by using a single iteration of the tensor-based registration method.
机译:提出了一种在磁共振成像中配准大脑图像的新算法。它基于经典的基于张量的惯性矩刚体方法的改进变体。给定参考图像和配准测试,将应用二进制掩码,以便仅将给定阈值以上的像素用于计算。低通Hanning滤波器在k空间数据上的应用是新的,并为该过程增加了重要的约束条件,以减少与有限采样相关的误差。此外,该过程被迭代地应用并且由于滤波步骤而导致提高的精度。该算法已通过仿真数据和添加的噪声进行了验证。在分析此误差时,使用了欧几里德距离测度和MSE(均方误差)。沿X轴和Y轴的位置不正确的平均精度为1.8×10 −4 分数像素,错误图像的MSE为0.01。大约旋转的精度平均值为5.8×10 -3 ,1.8×10 -5 度和1.7×10 -4 度X,Y和Z轴。对于估计的SNR在100:1和6:1之间变化的错位,精度优于4×10 -3 分数像素。发现该算法优于通过使用基于张量的配准方法的单次迭代获得的算法。

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