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  2. Positive and negative predictive values - Wikipedia

    en.wikipedia.org/wiki/Positive_and_negative...

    The positive predictive value (PPV), or precision, is defined as = + = where a "true positive" is the event that the test makes a positive prediction, and the subject has a positive result under the gold standard, and a "false positive" is the event that the test makes a positive prediction, and the subject has a negative result under the gold standard.

  3. Precision and recall - Wikipedia

    en.wikipedia.org/wiki/Precision_and_recall

    In a classification task, the precision for a class is the number of true positives (i.e. the number of items correctly labelled as belonging to the positive class) divided by the total number of elements labelled as belonging to the positive class (i.e. the sum of true positives and false positives, which are items incorrectly labelled as belonging to the class).

  4. Predictive value of tests - Wikipedia

    en.wikipedia.org/wiki/Predictive_value_of_tests

    Predictive value of tests is the probability of a target condition given by the result of a test, [1] often in regard to medical tests.. In cases where binary classification can be applied to the test results, such yes versus no, test target (such as a substance, symptom or sign) being present versus absent, or either a positive or negative test), then each of the two outcomes has a separate ...

  5. Sensitivity and specificity - Wikipedia

    en.wikipedia.org/wiki/Sensitivity_and_specificity

    Positive and negative predictive values, but not sensitivity or specificity, are values influenced by the prevalence of disease in the population that is being tested. These concepts are illustrated graphically in this applet Bayesian clinical diagnostic model which show the positive and negative predictive values as a function of the ...

  6. Pre- and post-test probability - Wikipedia

    en.wikipedia.org/wiki/Pre-_and_post-test_probability

    Also, in this case, the positive post-test probability (the probability of having the target condition if the test falls out positive), is numerically equal to the positive predictive value, and the negative post-test probability (the probability of having the target condition if the test falls out negative) is numerically complementary to the ...

  7. False positives and false negatives - Wikipedia

    en.wikipedia.org/wiki/False_positives_and_false...

    The false positive rate (FPR) is the proportion of all negatives that still yield positive test outcomes, i.e., the conditional probability of a positive test result given an event that was not present. The false positive rate is equal to the significance level. The specificity of the test is equal to 1 minus the false positive rate.

  8. File:Positive and negative predictive values.pdf - Wikipedia

    en.wikipedia.org/wiki/File:Positive_and_negative...

    Positive and negative predictive value: Software used: Graphic App: Conversion program: macOS Versione 10.15.7 (Build 19H114) Quartz PDFContext: Encrypted: no: Page size: 1024 x 768 pts: Version of PDF format: 1.3

  9. Template:Diagnostic testing diagram - Wikipedia

    en.wikipedia.org/wiki/Template:Diagnostic...

    Positive predictive value (PPV), precision = ⁠ TP / PP ⁠ = 1 − FDR: False omission rate (FOR) = ⁠ FN / PN ⁠ = 1 − NPV: Positive likelihood ratio (LR+) = ⁠ TPR / FPR ⁠ Negative likelihood ratio (LR−) = ⁠ FNR / TNR ⁠ Accuracy (ACC) = ⁠ TP + TN / P + N ⁠ False discovery rate (FDR) = ⁠ FP / PP ⁠ = 1 − PPV: Negative ...