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ISYE 6501: Introduction to Analytics Modeling – Midterm Exam 2 (2025/2026) | Comprehensive Questions & Answers

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This document provides a complete and up-to-date compilation of questions and solutions for ISYE 6501 Midterm Exam 2 (2025/2026) at Georgia Tech. Designed for students seeking a thorough understanding of introductory analytics modeling concepts, it includes verified, 100% accurate answers to help reinforce learning and ensure academic success. The resource serves as a reliable study guide for exam preparation, offering clear explanations and structured solutions aligned with course objectives.

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ISYE6501 / ISYE 6501 Midterm Exam 2 (Latest
Update ) Intro to Analytics
Modeling | Questions & Answers | Grade A |
100% Correct. Georgia Tech


1. Backward elimination: Variable selection process that starts with all

variables and then iteratively removes the least-immediately-relevant

variables from the model.

2. Elastic net: Combination of lasso and ridge regression.

3. Forward selection: Variable selection process that starts with no variables

and then iteratively adds the most-immediately-relevant variables to the

model.

4. Lasso/Lasso regression: Method for limiting the number of variables in a

model by limiting the sum of all coefficients' absolute values. Can be very

helpful when number of data points is less than number of factors.

5. Overfitting: Building a model that describes random effects instead of or

in significant addition to the real effects; often caused by having too many


1

, factors or parameters compared to the number of data points.

____________ models will have high prediction errors.

6. Regularization: Addition of term(s) to the model to reduce model

complexity or overfitting. For example, adding a penalty to the objective

function in regression can help reduce overfitting (see ridge regression).

7. Ridge regression: Method of regularization by limiting the sum of the

squares of the coefficients. Will reduce the magnitude of coefficients, not

the number of variables chosen.

8. Simplicity (of a model): Having fewer parameters; opposite of

complexity of a model. Often helpful for avoiding overfitting and

increasing interpretability.

9. Stepwise regression: Variable selection process that can combine forward

selection and backward regression.

10. Variable selection: Process of selecting the best subset of predictors to

explain variance in data; involves eliminating unnecessary or redundant or

less-important variables from a potential set of predictors.

11. A/B testing: Test of two alternatives to see if either one leads to better

outcomes.




, 12. Analysis of Variance/ANOVA: Statistical method for dividing the

variation in observations among different sources.

13. Balanced design: Set of combinations of factor values across multiple

factors, that has the same number of runs for all combinations of levels of one

or more factors.

14. Blocking: Factor introduced to an experimental design that interacts

with the effect of the factors to be studied. The effect of the factors is studied

within the same level (block) of the blocking factor.

15. Control: (1) A variable whose value remains constant for all runs of an

experiment, so changes in this variable don't affect the experiment. (2) Design

an experiment where some factors ("controls" by definition (1)) are held

constant to avoid them affecting the outcome.

16 Design of experiments: Choosing a set of tests to be made to find the

effect of input variables on an outcome.

17. Exploitation: Using known information to get good outcomes.

18. Exploration: Finding new/better/more information to determine how to

optimize output.



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