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Tumor budding refers to a cluster of one to four tumor cells located at the tumor-invasive front. While tumor budding is a prognostic factor for colorectal cancer, counting and grading tumor budding are time consuming and not highly reproducible. There could be high inter- and intra-reader disagreement on H&E evaluation. This leads to the noisy training (imperfect ground truth) of deep learning algorithms, resulting in high variability and losing their ability to generalize on unseen datasets. Pan-cytokeratin staining is one of the potential solutions to enhance the agreement, but it is not routinely used to identify tumor buds and can lead to false positives. Therefore, we aim to develop a weakly-supervised deep learning method for tumor bud detection from routine H&E-stained images that does not require strict tissue-level annotations. We also propose
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Usama Sajjad
The Ohio State University Wexner Medical Center
Wei Chen
Sun Yat-sen University
Mostafa Rezapour
Forest Institute
The Ohio State University
Wake Forest University
WinnMed
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Sajjad et al. (Tue,) studied this question.
synapsesocial.com/papers/68e70b41b6db643587684fcb — DOI: https://doi.org/10.1117/12.3006796