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Does the likelihood ratio change if further tests are carried out?
A small likelihood ratio, for example a value less than 0.1, helps rule out disease.
A likelihood ratio of greater than 1 indicates the test result is associated with the disease.
The test is based on the likelihood ratio, which expresses how many times more likely the data are under one model than the other.
However, only the candidate conditions with known likelihood ratio need this conversion.
Power of the likelihood ratio test in covariance structure analysis.
Data not available to calculate confidence intervals for likelihood ratios.
It is also related to the likelihood ratios, and :
Select your test and look up its likelihood ratio.
The likelihood ratio hence is between 0 and 1.
Effective degrees of freedom and the likelihood ratio test.
From this, the likelihood ratios of the test can be established:
A likelihood ratio remains a good criterion for selecting among hypotheses.
Likelihood ratios are not given but can be calculated from the sensitivity and specificity.
However, other performance measures such as the likelihood ratios may also be affected by spectrum bias.
There are some drawbacks to the likelihood ratio test.
A small sample calibration method for the empirical likelihood ratio.
A significance level of p<-10.05 according to the likelihood ratio statistics was chosen for entry in the model.
The likelihood ratio test statistic shown above is a formalization of this.
Are likelihood ratios for the test results presented or data necessary for their calculation provided?
This was confirmed by the likelihood ratio test for the difference in locus effects between the sexes.
Stratum-specific likelihood ratios and predictive values are presented in Table 3.
In practice, the likelihood ratio is often used directly to construct tests - see Likelihood-ratio test.
Models were compared using likelihood ratio tests and estimated standard deviations for the ages in the data.
It was decided to make approximate adjustments to the likelihood ratio to adjust for bias.