Explainable AI For Early Detection Of Sepsis

Fuente: arXiv
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Autori principali: Thakur, Atharva, Dhumal, Shruti
Natura: Preprint
Pubblicazione: 2025
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author Thakur, Atharva
Dhumal, Shruti
author_facet Thakur, Atharva
Dhumal, Shruti
contents Sepsis is a life-threatening condition that requires rapid detection and treatment to prevent progression to severe sepsis, septic shock, or multi-organ failure. Despite advances in medical technology, it remains a major challenge for clinicians. While recent machine learning models have shown promise in predicting sepsis onset, their black-box nature limits interpretability and clinical trust. In this study, we present an interpretable AI approach for sepsis analysis that integrates machine learning with clinical knowledge. Our method not only delivers accurate predictions of sepsis onset but also enables clinicians to understand, validate, and align model outputs with established medical expertise.
format Preprint
id arxiv_https___arxiv_org_abs_2511_06492
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Explainable AI For Early Detection Of Sepsis
Thakur, Atharva
Dhumal, Shruti
Machine Learning
Artificial Intelligence
Sepsis is a life-threatening condition that requires rapid detection and treatment to prevent progression to severe sepsis, septic shock, or multi-organ failure. Despite advances in medical technology, it remains a major challenge for clinicians. While recent machine learning models have shown promise in predicting sepsis onset, their black-box nature limits interpretability and clinical trust. In this study, we present an interpretable AI approach for sepsis analysis that integrates machine learning with clinical knowledge. Our method not only delivers accurate predictions of sepsis onset but also enables clinicians to understand, validate, and align model outputs with established medical expertise.
title Explainable AI For Early Detection Of Sepsis
topic Machine Learning
Artificial Intelligence
url https://arxiv.org/abs/2511.06492