Publication | Open Access
CaMeL-Net: Centroid-aware metric learning for efficient multi-class cancer classification in pathology images
15
Citations
34
References
2023
Year
The experimental results demonstrate that the prediction results by the proposed network are both accurate and reliable. The proposed network not only outperformed other related methods in cancer classification but also achieved superior computational efficiency during training and inference. The future study will entail further development of the proposed method and the application of the method to other problems and domains.
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