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Cardiac MRI Orientation Adjust Tool

In this paper, the problem of orientation correction in cardiac MRI images is investigated and a framework for orientation recognition via deep neural networks is proposed. For multi-modality MRI, we introduce a transfer learning strategy to transfer our proposed model from single modality to multi-modality. We embed the proposed network into the orientation correction command-line tool, which can implement orientation correction on 2D DICOM and 3D NIFTI images.

preprocess

  • truncation and concat:
    • For the maximum pixel value of each 2D slice as $X_{max}$, truncation operations are performed on $X_t$ at the threshold of 60%, 80% and 100% of $X_{max}$ to obtain $X_{1t},X_{2t},X_{3t}$.
    • Concatenated 3-channel image $[X_{1t}, X_{2t}, X_{3t}]$ as $X'$
  • histogram equalization;
  • random small-angle rotations, random crops (in training), and resize;
  • z-score normalization

training

image-20221121191527760

we pre-train the model on the bSSFP cine dataset, and then transfer the model to the late gadolinium enhancement (LGE) CMR or T2-weighted CMR dataset. On the new modality dataset, we first load the pre-trained model parameters. We freeze the network parameters of the backbone and retrain the fully connected layers on the new modality dataset.

result

image-20221121191545900

dataset

MSCMR orient:链接: https://pan.baidu.com/s/1cE5i68YUNhXrzUpldTV6ow 提取码: mj6p

参考

[1] Xiahai Zhuang: Multivariate mixture model for myocardial segmentation combining multi-source images. IEEE Transactions on Pattern Analysis and Machine Intelligence 41(12), 2933–2946, 2019

[2] Xiahai Zhuang: Multivariate mixture model for cardiac segmentation from multi-sequence MRI. MICCAI 2016, 581–588, Springer, 2016

[3] Ke Zhang and Xiahai Zhuang: Recognition and Standardization of Cardiac MRI Orientation via Multi-tasking Learning and Deep Neural Networks. MyoPS 2020, LNCS 12554, 167–176, Springer Nature, 2020, https://github.com/BWGZK/Orientation-Adjust-Tool

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