Adaptation and validation of a coding algorithm for the Charlson Comorbidity Index in administrative claims data

Stephen P Fortin1, Jenna Reps2, Patrick Ryan2

  • 1Janssen Research & Development, LLC, Observational Health Data Analytics, 920 U.S. Highway 202, Raritan, NJ, 08869, USA. sfortin1@its.jnj.com.

Insights

This study adapted the Charlson Comorbidity Index (CCI) using SNOMED CT, finding it comparable to the Quan algorithm for predicting mortality. The SNOMED CT adaptation offers a valuable tool for observational research using standardized healthcare data.

Area of Science:

  • Health Informatics
  • Clinical Epidemiology
  • Medical Data Standards

Background:

  • The Charlson Comorbidity Index (CCI) is a widely used risk score for predicting mortality in hospitalized patients.
  • The Quan adaptation of the CCI utilizes International Classification of Diseases (ICD) codes for administrative claims data.
  • Standardized vocabularies are crucial for consistent data collection and analysis in healthcare.

Purpose of the Study:

  • To adapt and validate a coding algorithm for the Charlson Comorbidity Index (CCI) using the SNOMED CT standardized vocabulary.
  • To compare the performance of SNOMED CT-based CCI coding with the existing Quan algorithm.

Main Methods:

  • Adapted SNOMED CT coding algorithm for CCI by translating Quan algorithms and manual curation.
  • Compared SNOMED CT and Quan algorithms in a retrospective cohort study of inpatient visits (2013, 2018).
  • Assessed differences in CCI and comorbidity frequency using standardized mean differences (SMD) and predictive performance for one-year mortality using c-statistics.

Main Results:

  • No significant differences in CCI or comorbidity frequency were observed between SNOMED CT and Quan algorithms (SMD ≤ 0.10).
  • Predictive performance for one-year mortality was comparable between the two coding algorithms (c-statistic range: 0.723-0.789).
  • Identified 13.1% inconsistent ICD code mappings, with some leading to clinically relevant information gain.

Conclusions:

  • The SNOMED CT adaptation of the CCI is a valid and comparable alternative to the Quan algorithm.
  • This validated SNOMED CT algorithm enhances the utility of standardized vocabularies for observational research.
  • Repurposed the CCI for use with SNOMED CT, improving data standardization in healthcare databases.
Abstract

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