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Fernando López‐Ríos

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#explainable ai Open access Sep 2026

A Boveri perspective on cancer biomarker testing using artificial intelligence

Artificial intelligence (AI) can predict genomic alterations from histology, yet its adoption is slowed by a lack of trust. We argue that deliberate morphology (i.e., a cognitive understanding of histological features supported by standardized annotations) creates a bidirectional feedback loop between clinical practice and model outputs.We translate these observations into an actionable hypothesis for clinical and computational teams: that by enhancing explainability, deliberate morphology could facilitate the responsible deployment of AI biomarkers in oncology.

Esther Conde, Susana Hernandez, Marta Alonso et al. · 0 citations

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