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ISYE 6414 Final Exam Questions With Verified Answers

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©BRAINBARTER 2024/2025 ISYE 6414 Final Exam Questions With Verified Answers Logistic regression is different from standard linear regression in that: - answerIt does not have an error term; The response variable is not normally distributed; It models probability of a response and not the expe...

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  • September 30, 2024
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  • ISYE 6414
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ISYE 6414 Final Exam Questions With
Verified Answers


Logistic regression is different from standard linear regression in that: - answer✔It does not have
an error term; The response variable is not normally distributed; It models probability of a
response and not the expectation of the response

Logistic regression models - answer✔The probability of a success given a set of predicting
variables

In logistic regression - answer✔The estimation of the regression coefficients is based on
maximum likelihood estimation

Using the R statistical software to fit a logistic regression, - answer✔We can obtain both the
estimates and the standard deviations of the estimates for the regression coefficients

Logistic regression is different from standard linear regression in that - answer✔The sampling
distribution of the regression coefficient is approximate; A large sample data is required for
making accurate statistical inferences; A normal sampling distribution is used instead of a t-
distribution for statistical inference.

In logistic regression, - answer✔The hypothesis test for subsets of coefficients is approximate, it
relies on a large sample size and is Chi-square

In logistic regression: - answer✔The sampling distribution of the residual is approximately
normal distribution if the model is a good fit.
True or False? In applying the deviance test for goodness of fit in logistic regression, we seek
large p-values, that is, not reject the null hypothesis. - answer✔True
Which is correct?
A) Prediction translates into classification of a future binary response in logistic regression.
B) In order to perform classification in logistic regression, we need to first define a classifier for
the classification error rate.
C) One common approach to evaluate the classification error is cross-validation.

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D) All of the above - answer✔D) All of the above

Comparing cross-validation methods, - answer✔In K-fold cross-validation, the larger K is, the
higher the variability in the estimation of the classification error is.

Poisson regression can be used: - answer✔To model count data.


To model rate response data.


To model response data with a Poisson distribution.
Which one is correct?
a)The standard normal regression, the logistic regression and the Poisson regression are all
falling under the generalized linear model framework.
b) If we were to apply a standard normal regression to response data with a Poisson distribution,
the constant variance assumption would not hold.
c) The link function for the Poisson regression is the log function.

d) All of the above - answer✔d) All of the above

In Poisson regression: - answer✔We model the log of the expected response variable not the
expected log response variable.
Which one is correct?
A) The estimated regression coefficients and their standard deviations are approximate not exact
in Poisson regression.
B) We use the glm() R command to fit a Poisson linear regression.
C) The interpretation of the estimated regression coefficients is in terms of the ratio of the
response rates.

D) All of the above - answer✔D) All of the above

In Poission regression - answer✔We make inference using z-intervals for the regression
coefficients; Statistical inference relies on approximate sampling; Statistical inference is not
reliable for small sample data
True or False? We use a chi-square testing procedure to test whether a subset of regression
coefficients are zero in Poisson regression. - answer✔True

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