How well do principal diagnosis classifications predict disability 12 months postinjury? 2015

Belinda J Gabbe, and Pam M Simpson, and Ronan A Lyons, and Suzanne Polinder, and Frederick P Rivara, and Shanthi Ameratunga, and Sarah Derrett, and Juanita Haagsma, and James E Harrison
Department of Epidemiology and Preventive Medicine, Monash University, Melbourne, Victoria, Australia Centre for Improvement of Population Health through E-records Research, Swansea University, Swansea, UK.

BACKGROUND The application of disability weights by nature of injury is central to the calculation of disability-adjusted life years (DALYs). Such weights should represent injury diagnosis groups that demonstrate homogeneity in disability outcomes. Existing classifications have not used empirical data in their development to inform groups that are homogeneous for disability outcomes, limiting the capacity to make informed recommendations for best practice in measuring injury burden. METHODS The Validating and Improving injury Burden Estimates (Injury-VIBES) Study includes pooled data from over 30 000 injured participants recruited to six cohort studies. The International Classification of Disease 10th Revision (ICD-10) diagnosis codes were mapped to existing injury burden study groupings and prediction models were developed to measure the capacity of the injury groupings and ICD-10 diagnoses to predict disability outcomes at 12 months. Models were adjusted for age, gender and data source and investigated for discrimination using area under the receiver operating characteristic curve (AUC) and calibration using Hosmer-Lemeshow statistics and calibration curves. RESULTS Discrimination and calibration of models varied depending on the outcome measured. Models using full four-character ICD-10 diagnosis codes, rather than groupings of codes, demonstrated the highest discrimination ranging from an AUC (95% CI) of 0.627 (0.618 to 0.635) for the pain or discomfort item of the EQ-5D to 0.847 (0.841 to 0.853) for the extended Glasgow Outcome Scale independent living outcome. However, gain over other groupings was marginal. CONCLUSIONS Prediction performance was best for measures of function such as independent living, mobility and self-care. The classifications were poorer predictors of anxiety/depression and pain/discomfort. There was no clearly superior classification.

UI MeSH Term Description Entries
D008297 Male Males
D004185 Disability Evaluation Determination of the degree of a physical, mental, or emotional handicap. The diagnosis is applied to legal qualification for benefits and income under disability insurance and to eligibility for Social Security and workmen's compensation benefits. Disability Evaluations,Evaluation, Disability,Evaluations, Disability
D005260 Female Females
D006233 Disabled Persons Persons with physical or mental disabilities that affect or limit their activities of daily living and that may require special accommodations. Handicapped,People with Disabilities,Persons with Disabilities,Physically Challenged,Physically Handicapped,Physically Disabled,Disabilities, People with,Disabilities, Persons with,Disability, Persons with,Disabled Person,Disabled, Physically,Handicapped, Physically,People with Disability,Person, Disabled,Persons with Disability,Persons, Disabled
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000328 Adult A person having attained full growth or maturity. Adults are of 19 through 44 years of age. For a person between 19 and 24 years of age, YOUNG ADULT is available. Adults
D012680 Sensitivity and Specificity Binary classification measures to assess test results. Sensitivity or recall rate is the proportion of true positives. Specificity is the probability of correctly determining the absence of a condition. (From Last, Dictionary of Epidemiology, 2d ed) Specificity,Sensitivity,Specificity and Sensitivity
D014947 Wounds and Injuries Damage inflicted on the body as the direct or indirect result of an external force, with or without disruption of structural continuity. Injuries,Physical Trauma,Trauma,Injuries and Wounds,Injuries, Wounds,Research-Related Injuries,Wounds,Wounds and Injury,Wounds, Injury,Injury,Injury and Wounds,Injury, Research-Related,Physical Traumas,Research Related Injuries,Research-Related Injury,Trauma, Physical,Traumas,Wound
D015599 Trauma Severity Indices Systems for assessing, classifying, and coding injuries. These systems are used in medical records, surveillance systems, and state and national registries to aid in the collection and reporting of trauma. Trauma Severity Index,Trauma Severity Indexes,Index, Trauma Severity,Indexes, Trauma Severity,Indices, Trauma Severity,Severity Index, Trauma,Severity Indexes, Trauma,Severity Indices, Trauma
D016015 Logistic Models Statistical models which describe the relationship between a qualitative dependent variable (that is, one which can take only certain discrete values, such as the presence or absence of a disease) and an independent variable. A common application is in epidemiology for estimating an individual's risk (probability of a disease) as a function of a given risk factor. Logistic Regression,Logit Models,Models, Logistic,Logistic Model,Logistic Regressions,Logit Model,Model, Logistic,Model, Logit,Models, Logit,Regression, Logistic,Regressions, Logistic

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