| ... | @@ -113,7 +113,22 @@ When constructing a generalized linear model, three major decisions must be made |
... | @@ -113,7 +113,22 @@ When constructing a generalized linear model, three major decisions must be made |
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href="https://www.codecogs.com/eqnedit.php?latex=\mu" target="_blank"><img
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href="https://www.codecogs.com/eqnedit.php?latex=\mu" target="_blank"><img
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src="https://latex.codecogs.com/svg.latex?\mu" title="\mu" /></a> and <a
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src="https://latex.codecogs.com/svg.latex?\mu" title="\mu" /></a> and <a
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href="https://www.codecogs.com/eqnedit.php?latex=\phi" target="_blank"><img
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href="https://www.codecogs.com/eqnedit.php?latex=\phi" target="_blank"><img
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src="https://latex.codecogs.com/svg.latex?\phi" title="\phi" /></a>.
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src="https://latex.codecogs.com/svg.latex?\phi" title="\phi" /></a>. Some important
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points should be noted for the mentioned distributions:
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- The gamma distribution is suitable for non-negative positively skewed response
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variables such as reaction times.
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- When responses are skewed, using a gamma distribution not only implies
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heteroscedasticity, but also implies a specific relationship between mean and
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variance.
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- For a Poisson distribution, the mean is equal to the variance. In some cases where
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the response variable is count measures, if the distribution is symmetric we tempt to
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choose a normal distribution for the response variable. But we should note that using
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a normal distribution for a response variable that basically has Poisson distribution
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violates the assumption of equal variances. Because, heteroscedasticity is expected
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for counts.
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2. **Specifying the Systematic Component (Linear Predictor):**
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2. **Specifying the Systematic Component (Linear Predictor):**
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A linear combination of predictor variables should be constructed as the linear
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A linear combination of predictor variables should be constructed as the linear
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