作者
Weixi Yi, Vasilis Stavrinides, Zachary MC Baum, Qianye Yang, Dean C Barratt, Matthew J Clarkson, Yipeng Hu, Shaheer U Saeed
发表日期
2023/10/8
图书
International Workshop on Machine Learning in Medical Imaging
页码范围
277-288
出版商
Springer Nature Switzerland
简介
We propose Boundary-RL, a novel weakly supervised segmentation method that utilises only patch-level labels for training. We envision segmentation as a boundary detection problem, rather than a pixel-level classification as in previous works. This outlook on segmentation may allow for boundary delineation under challenging scenarios such as where noise artefacts may be present within the region-of-interest (ROI) boundaries, where traditional pixel-level classification-based weakly supervised methods may not be able to effectively segment the ROI. Particularly of interest, ultrasound images, where intensity values represent acoustic impedance differences between boundaries, may also benefit from the boundary delineation approach. Our method uses reinforcement learning to train a controller function to localise boundaries of ROIs using a reward derived from a pre-trained boundary-presence classifier. The …
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