JOURNAL ARTICLE

Ante la crisis del Estado-bienestar

José Ignacio Berroeta Echevarría

Year: 1993 Journal:   Cuenta y razón Vol: 10 (84)Pages: 112-116   Publisher: Fundación de Estudios Sociológicos

Abstract

The gold standard of histopathology for the diagnosis of Barrett's esophagus (BE) is hindered by inter-observer variability among gastrointestinal pathologists. Deep learning-based approaches have shown promising results in the analysis of whole-slide tissue histopathology images (WSIs). We performed a comparative study to elucidate the characteristics and behaviors of different deep learning-based feature representation approaches for the WSI-based diagnosis of diseased esophageal architectures, namely, dysplastic and non-dysplastic BE. The results showed that if appropriate settings are chosen, the unsupervised feature representation approach is capable of extracting more relevant image features from WSIs to classify and locate the precursors of esophageal cancer compared to weakly supervised and fully supervised approaches.

Keywords:
Political science Economics

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Topics

Social Sciences and Policies
Social Sciences →  Social Sciences →  General Social Sciences

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