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Midterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia Tech

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Midterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia TechMidterm Exam1: ISYE6501 / ISYE 6501 (Latest Update 2025 / 2026) Intro to Analytics Modeling | Questions & Answers | Grade A | 100% Correct. Georgia Tech

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Midterm Exam1: ISYE6501 / ISYE 6501 (Latest
Update ) Intro to Analytics
Modeling | Questions & Answers | Grade A |
100% Correct. Georgia Tech


1. What does SVM stand for?: Support Vector Machine

2. Is written text structured or unstructured?: Unstructured

3. When we increase the sum of the square of the coefficients we...:

Decrease the distance between the lines

4. In SVM soft classifier we tradeoff between maximizing ___ and

minimizing ___: margin and errors

5. If lambda gets small what gets emphasized, large margin or

minimizing training error?,: Minimizing errors.

6. What is a support vector?: A point that holds up a shape.

7. Does ...[(Ta-1)+1/3(a+1)] move an SVM classifier up or down?: Up

8. How do you make errors more costly in a soft SVM classifier?:

include a multiplier for the point-error term.


1

,9. If an SVM coefficient is very close to zero...: that term is not very

important to the classification.

10. What is the difference between standardization and scaling?: Scaling

is bounded in range. Standardization is scaling to a normal distribution.

Standardization is the (value - factor mean) / (factor standard deviation)

11. What is the 2-norm?: Euclidean distance

12. What is the 1-norm?: The rectilinear (Manhattan) distance

13. What is the infinity norm?: The value of the largest dimension

14. Measuring the quality of a model is called?: Validation

15. What does a confusion matrix show?: The performance of a

classification model.

16. A time series outlier that seems "off the curve" is called a...:

contextual outlier.

17. A data element that is different from all other data in a set is called

a...: point outlier.

18. When something is missing in a range of points: it is called a...,

collective outlier.






,19. The whiskers on a box plot extend to...: the 10th and 90th percentiles

(or 5th and 95th)

20. Why are hypothesis tests generally not sufficient for change

detection?: They are slow to detect changes.

21. In CUSUM, T is _____ and C is _____.,: Threshold and a "bring down

factor"

22. In a CUSUM model, you adjust T and C to manage the tradeoff

between...,-

: early detection and false-alarms

23. In exponential smoothing, if the data is less random, then you want

to pick an alpha that is...,: Close to 1.

24 What is the initial condition for T in exponential smoothing with

trending?: T_i=0

25. In cyclic exponential smoothing, L represents...,: The length of the

cycle or season

26. In cyclic exponential smoothing, C_1 ... C_L = ___?,: 1. In other

words, initialize it to no initial cycle.






, 27. Exponential, trending and cyclic smoothing are also referred to as:

single double and triple.

28. Triple smoothing is also known as?: Winter's or Holt-Winter's 29.

What is the optimization formula for Exponential Smoothing?: min(F_t-

Xt)^2 where alpha and beta are between 0 and 1.

30. ARIMA stands for?: Autoregressive Integrated Moving Average

31. Exponential smoothing is an order ___ autoregressive model.:

Infinity. It uses data going all the way back.

32. For ARIMA, the D parameter is used to specify ___.: , The order, or

the differences of the differences of the differences (d-times.)

33. For ARIMA, the P parameters is used to specify ____.,: The order of

periods (autoregression).

34. For ARIMA, the Q parameter is used to specify ______.,: The order

of the moving average.

35. ARIMA(0,1,1) is ?,: Exponential smoothing.

36. What is the order of the ARIMA parameters?: p d q

37. GARCH estimates what?: Variance.

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