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ISYE 6501 Final EXAM ALL QUESTIONS AND CORRECT ANSWERS LATEST UPDATE THIR YEAR

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ISYE 6501 Final EXAM ALL QUESTIONS AND
CORRECT ANSWERS LATEST UPDATE THIR
YEAR
QUESTION: Select the type of problem that GARCH is best suited for.




- Classification and/or prediction from feature data


- Clustering


- Experimental design


- Prediction from time-series data


- Prediction from feature data


- Variable selection - ANSWER-- Prediction from Time-series data




Useful when you want to model and forecast the volatility of financial time series data (e.g.,

stock returns) and have data with time-varying variance.




QUESTION: Select the type of problem that exponential smoothing is best suited for.




1

, Page 2 of 50




- Classification and/or prediction from feature data


- Clustering


- Experimental design


- Prediction from time-series data


- Prediction from feature data


- Variable selection - ANSWER-- Prediction from time-series data




Useful when you want to generate short-term forecasts based on weighted averages of past

observations and have time series data with trends or seasonality.




QUESTION: Select the type of analysis that ARIMA is best suited for.




- Using feature data to predict the amount of something two time periods in the future


- Using feature data to predict the probability of something happening two time periods in the

future




2

, Page 3 of 50


- Using feature data to predict whether or not something will happen two time periods in the

future


- Using time-series data to predict the amount of something two time periods in the future


- Using time-series data to predict the variance of something two time periods in the future -

ANSWER-Using time-series data to predict the amount of something two time periods in the

future




Remeber, ARIMA is useful when you want to forecast future values in a time series (e.g., stock

prices, sales) and have historical time-ordered data available.




QUESTION: Select the type of analysis that a random linear regression forrest is best suited for.




- Using feature data to predict the amount of something two time periods in the future


- Using feature data to predict the probability of something happening two time periods in the

future


- Using feature data to predict whether or not something will happen two time periods in the

future


- Using time-series data to predict the amount of something two time periods in the future


3

, Page 4 of 50


- Using time-series data to predict the variance of something two time periods in the future -

ANSWER-Using feature data to predict the amount of something two time periods in the future




QUESTION: Select the type of analysis that a support vector machine is best suited for.




- Using feature data to predict the amount of something two time periods in the future


- Using feature data to predict the probability of something happening two time periods in the

future


- Using feature data to predict whether or not something will happen two time periods in the

future


- Using time-series data to predict the amount of something two time periods in the future


- Using time-series data to predict the variance of something two time periods in the future -

ANSWER-Using feature data to predict whether or not something will happen two time periods

in the future




QUESTION: Select the type of analysis that a k-nearest-neighbor classification tree is best suited

for.




4

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