Right choice of a method for determination of cut-off values: A statistical tool for a diagnostic test
Author(s) -
Balkishan Sharma,
Ravikant Jain
Publication year - 2014
Publication title -
asian journal of medical sciences
Language(s) - English
Resource type - Journals
ISSN - 2091-0576
DOI - 10.3126/ajms.v5i3.9296
Subject(s) - receiver operating characteristic , cutoff , logistic regression , linear discriminant analysis , medicine , statistics , test (biology) , mathematics , paleontology , physics , quantum mechanics , biology
Objective: The clinical diagnostic tests are generally used to identify the presence of a disease. The cutoff value of a diagnostic test should be chosen to maximize the advantage that accrues from testing a population of human and others. When a diagnostic test is to be used in a clinical condition, there may be an opportunity to improve the test by changing the cutoff value. To enhance the accuracy of diagnosis is to develop new tests by using a proper statistical technique with optimum sensitivity and specificity. Method: Mean±2SD method, Logistic Regression Analysis, Receivers Operating Characteristics (ROC) curve analysis and Discriminant Analysis (DA) have been discussed with their respective applications. Results: The study highlighted some important methods to determine the cutoff points for a diagnostic test. The traditional method is to identify the cut-off values is Mean±2SD method. Logistic Regression Analysis, Receivers Operating Characteristics (ROC) curve analysis and Discriminant Analysis (DA) have been proved to be beneficial statistical tools for determination of cut-off points. Conclusion: There may be an opportunity to improve the test by changing the cut-off value with the help of a correctly identified statistical technique in a clinical condition when a diagnostic test is to be used. The traditional method is to identify the cut-off values is Mean±2SD method. It was evidenced in certain conditions that logistic regression is found to be a good predictor and the validity of the same can be confirmed by identifying the area under the ROC curve.
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