330P Open the black box: Transparent prognostic prediction and discovery with AI de novo designed spatial biomarkers
Article 2025 en
Authors
JL
Jing Liang
XJ
Xia Jiang
NR
Nic G. Reitsam
Abstract
1 min read
Despite the impressive prognostic performance of end-to-end deep learning (DL) in computational pathology, most DL models remain black boxes. The vast visual complexity of whole-slide images (WSIs) and the high dimensionality of model parameters obscure the underlying predictive features. This lack of transparency limits biological insight, clinical trust, and hypothesis-driven discovery.
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