Literature DB >> 16779142

Patient-specific models for predicting the outcomes of patients with community acquired pneumonia.

Shyam Visweswaran1, Gregory F Cooper.   

Abstract

We investigated two patient-specific and four population-wide machine learning methods for predicting dire outcomes in community acquired pneumonia (CAP) patients. Predicting dire outcomes in CAP patients can significantly influence the decision about whether to admit the patient to the hospital or to treat the patient at home. Population-wide methods induce models that are trained to perform well on average on all future cases. In contrast, patient-specific methods specifically induce a model for a particular patient case. We trained the models on a set of 1601 patient cases and evaluated them on a separate set of 686 cases. One patient-specific method performed better than the population-wide methods when evaluated within a clinically relevant range of the ROC curve. Our study provides support for patient-specific methods being a promising approach for making clinical predictions.

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Year:  2005        PMID: 16779142      PMCID: PMC1560580     

Source DB:  PubMed          Journal:  AMIA Annu Symp Proc        ISSN: 1559-4076


  4 in total

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2.  Assessing predictive accuracy: how to compare Brier scores.

Authors:  D A Redelmeier; D A Bloch; D H Hickam
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3.  Predicting dire outcomes of patients with community acquired pneumonia.

Authors:  Gregory F Cooper; Vijoy Abraham; Constantin F Aliferis; John M Aronis; Bruce G Buchanan; Richard Caruana; Michael J Fine; Janine E Janosky; Gary Livingston; Tom Mitchell; Stefano Monti; Peter Spirtes
Journal:  J Biomed Inform       Date:  2005-03-17       Impact factor: 6.317

4.  Processes and outcomes of care for patients with community-acquired pneumonia: results from the Pneumonia Patient Outcomes Research Team (PORT) cohort study.

Authors:  M J Fine; R A Stone; D E Singer; C M Coley; T J Marrie; J R Lave; L J Hough; D S Obrosky; R Schulz; E M Ricci; J C Rogers; W N Kapoor
Journal:  Arch Intern Med       Date:  1999-05-10
  4 in total
  9 in total

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4.  Applying an Instance-specific Model to Longitudinal Clinical Data for Prediction.

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6.  Personalized Modeling for Prediction with Decision-Path Models.

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8.  Evaluation of the Need for Intensive Care in Children With Pneumonia: Machine Learning Approach.

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9.  Clinical Predictive Models for COVID-19: Systematic Study.

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  9 in total

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