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ISYE 6501 Midterm 2 Exam Prep | Intro to Analytics Modeling Questions & Answers 2026/2027

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Prepare for ISYE 6501 Midterm 2 with practice covering probability distributions, regression, variable selection, classification, optimization, simulation, and analytics modeling concepts.

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ISYE 6501 - Midterm 2 Exam


what is backward elimination we start with all factors and find the worst on a supplied threshold (p = 0.15). If it
is worse we remove it and start the process over. We do that until we have the
number of factors that we want and then we move the factors lower than a
second threshold (p = .05) and fit the model with all set of factors




what is stepwise regression it is a combination of forward selection and backward elimination. We can
either start with all factors or no factors and at each step we remove or add a
factor. As we go through the procedure after adding each new factor and at
the end we eliminate right away factors that no longer appear.




what type of algorithms are stepwise selection? Greedy algorithms - at each step they take one thing that looks best


what is LASSO a variable selection method where the coefficients are determined by both
minimizing the squared error and the sum of their absolute value not being
over a certain threshold t




How do you choose t in LASSO use the lasso approach with different values of t and see which gives the best
trade off


why do we have to scale the data for LASSO if we don't the measure of the data will artificially affect how big the
coefficients need to be


What is elastic net? A variable selection method that works by minimizing the squared error and
constraining the combination of absolute values of coefficients and their
squares




what is a key difference between stepwise regresson If the data is not scaled, the coefficients can have artificially different orders of
and lasso regression magnitude, which means they'll have unbalanced effects on the lasso
constraint.

, ISYE 6501 - Midterm 2 Exam
Why doesn't Ridge Regression perform variable The coefficients values are squared so they go closer to zero or regularizes
selection? them




What are the pros and cons of Greedy Algorithms Good for initial analysis but often don't perform as well on other data because
(Forward selection, stepwise elimination, stepwise they fit more to random effects than you'd like and appear to have a better fit
regression)


What are the pros and cons of LASSO and elastic net They are slower but help make models that make better predictions


Which two methods does elastic net look like it Ridge Regression and LASSO.
combines and what are the downsides from it?
Advantages: variable selection from LASSO and Predictive benefits of LASSO.


Disadvantages: Arbitrarily rules out some correlated variables like LASSO
(don't know which one that is left out should be); Underestimates coefficients
of very predictive variables like Ridge Regresison


What are some downsides of surveys? Even if you what appears to be a representative sample in simple ways, maybe
it isn't in more complex ways.


If we're testing to see whether red cars sell for higher Controlling
prices than blue cars, we need to account for the type
and age of the cars in our data set. This is called:


what is a blocking factor a source of variability that is not of primary interest to the experimenter


what is an example of a blocking factor The type of car, sports car or family car, is a blocking factor that it could
account for some of the difference between red cars and blue cars. Because
sports cars are more likely to be red; if we account for the difference, we can
reduce the variability in our estimates


Under what conditions should you run A/B tests When you can collect data quickly. When the data is representative and the
amount of data is small compared to the whole population


Do you have to decide the sample size ahead of time no, and we can run the hypothesis test anytime we want
for A/B tests

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