论文标题
DeepControl:2D RF脉冲促进$ B_1^+$不均匀性和$ b_0 $ off-resonance补偿在Vivo处于7T
DeepControl: 2D RF pulses facilitating $B_1^+$ inhomogeneity and $B_0$ off-resonance compensation in vivo at 7T
论文作者
论文摘要
目的:快速2D RF脉冲设计具有特定主题的$ b_1^+$不均匀性和$ b_0 $ $ b_0 $ off-resonance补偿,以7 t从卷积神经网络预测。 方法:使用人工2D目标,$ b_1^+$和$ b_0 $地图优化的2D RF脉冲对卷积神经网络进行了培训。从高分辨率GRE序列中测量$ B_1^+$和$ B_0 $地图,在7 t的幻影和体内测试了预测的脉冲。 结果:训练有素的卷积神经网络的脉冲预测是在MR会议期间拍摄的,大约是9毫秒的多次手动ROI和测量的$ B_1^+$和$ B_0 $地图。 $ B_1^+$不均匀性和$ b_0 $ off-sononances的补偿已在幻影和体内实验中得到了证实。重建的图像数据与使用获得的$ B_1^+$和$ B_0 $地图的模拟非常吻合,而卷积神经网络预测的2D RF脉冲与最佳控制获得的常规RF脉冲一样好。 结论:拟议的基于卷积神经网络的2D RF脉冲设计方法预测了2D RF脉冲具有出色的激发模式,并在7 t时进行了$ B_1^+$和$ b_1^+$和$ B_0 $变量。快速2D RF脉冲预测(9 ms)启用特定于主体的高素质2D RF脉冲无需运行延长。
Purpose: Rapid 2D RF pulse design with subject specific $B_1^+$ inhomogeneity and $B_0$ off-resonance compensation at 7 T predicted from convolutional neural networks is presented. Methods: The convolution neural network was trained on half a million single-channel transmit, 2D RF pulses optimized with an optimal control method using artificial 2D targets, $B_1^+$ and $B_0$ maps. Predicted pulses were tested in a phantom and in vivo at 7 T with measured $B_1^+$ and $B_0$ maps from a high-resolution GRE sequence. Results: Pulse prediction by the trained convolutional neural network was done on the fly during the MR session in approximately 9 ms for multiple hand drawn ROIs and the measured $B_1^+$ and $B_0$ maps. Compensation of $B_1^+$ inhomogeneity and $B_0$ off-resonances has been confirmed in the phantom and in vivo experiments. The reconstructed image data agrees well with the simulations using the acquired $B_1^+$ and $B_0$ maps and the 2D RF pulse predicted by the convolutional neural networks is as good as the conventional RF pulse obtained by optimal control. Conclusion: The proposed convolutional neural network based 2D RF pulse design method predicts 2D RF pulses with an excellent excitation pattern and compensated $B_1^+$ and $B_0$ variations at 7 T. The rapid 2D RF pulse prediction (9 ms) enables subject-specific high-quality 2D RF pulses without the need to run lengthy optimizations.