FOAL: Fast Online Adaptive Learning for Cardiac Motion Estimation
Hanchao Yu, Shanhui Sun, Haichao Yu, Xiao Chen, Honghui Shi, Thomas S. Huang, Terrence Chen
摘要
Motion estimation of cardiac MRI videos is crucial for the evaluation of human heart anatomy and function. Recent researches show promising results with deep learningbased methods. In clinical deployment, however, they suffer dramatic performance drops due to mismatched distributions between training and testing datasets, commonly encountered in the clinical environment. On the other hand, it is arguably impossible to collect all representative datasets and to train a universal tracker before deployment. In this context, we proposed a novel fast online adaptive learning (FOAL) framework: an online gradient descent based optimizer that is optimized by a meta-learner. The meta-learner enables the online optimizer to perform a fast and robust adaptation. We evaluated our method through extensive experiments on two public clinical datasets. The results showed the superior performance of FOAL in accuracy compared to the offline-trained tracking method. On average, the FOAL took only 0.4 second per video for online optimization.
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引用它的顶会 Paper5
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- 4D Myocardium Reconstruction with Decoupled Motion and Shape ModelXiaohan Yuan, Cong Liu, Yangang WangICCV 2023 · 被引用 10 次
- Bidirectional Recurrence for Cardiac Motion Tracking with Gaussian Process Latent CodingJiewen Yang, Yiqun Lin, Bin Pu, Xiaomeng LiNeurIPS 2024 · 被引用 9 次
- Agriculture-Vision: A Large Aerial Image Database for Agricultural Pattern AnalysisMang Tik Chiu, Xingqian Xu, Yunchao Wei, Zilong Huang 等CVPR 2020
- DeepTag: An Unsupervised Deep Learning Method for Motion Tracking on Cardiac Tagging Magnetic Resonance ImagesMeng Ye, Mikael Kanski, Dong Yang, Qi Chang 等CVPR 2021
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