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Motion Pyramid Networks for Accurate and Efficient Cardiac Motion Estimation
- Source :
- Medical Image Computing and Computer Assisted Intervention – MICCAI 2020 ISBN: 9783030597245, MICCAI (6)
- Publication Year :
- 2020
- Publisher :
- Springer International Publishing, 2020.
-
Abstract
- Cardiac motion estimation plays a key role in MRI cardiac feature tracking and function assessment such as myocardium strain. In this paper, we propose Motion Pyramid Networks, a novel deep learning-based approach for accurate and efficient cardiac motion estimation. We predict and fuse a pyramid of motion fields from multiple scales of feature representations to generate a more refined motion field. We then use a novel cyclic teacher-student training strategy to make the inference end-to-end and further improve the tracking performance. Our teacher model provides more accurate motion estimation as supervision through progressive motion compensations. Our student model learns from the teacher model to estimate motion in a single step while maintaining accuracy. The teacher-student knowledge distillation is performed in a cyclic way for a further performance boost. Our proposed method outperforms a strong baseline model on two public available clinical datasets significantly, evaluated by a variety of metrics and the inference time. New evaluation metrics are also proposed to represent errors in a clinically meaningful manner.
- Subjects :
- Motion compensation
business.industry
Computer science
Deep learning
ComputingMethodologies_IMAGEPROCESSINGANDCOMPUTERVISION
Physics::Physics Education
Motion (physics)
030218 nuclear medicine & medical imaging
03 medical and health sciences
0302 clinical medicine
Motion field
Feature (computer vision)
Motion estimation
Pyramid
Computer vision
Artificial intelligence
Pyramid (image processing)
business
030217 neurology & neurosurgery
Subjects
Details
- ISBN :
- 978-3-030-59724-5
- ISBNs :
- 9783030597245
- Database :
- OpenAIRE
- Journal :
- Medical Image Computing and Computer Assisted Intervention – MICCAI 2020 ISBN: 9783030597245, MICCAI (6)
- Accession number :
- edsair.doi...........6fd315ccc9d0f39c2f7a316d80a34de8
- Full Text :
- https://doi.org/10.1007/978-3-030-59725-2_42