Quiz Solution

Quiz Solution

Assessment

Interactive Video

Other

11th Grade - University

Hard

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The video tutorial covers the use of ARIMA and related models like RIMA, Cerimax, and SRIMA for forecasting future and past data in a series. It explains the two main variables in forecasting: time and attributes, and distinguishes between univariate and multivariate forecasting. The tutorial also discusses auto regression, highlighting the importance of the order (P) and the role of exogenous variables (X) in the Cerimax model. Additionally, it explains the seasonal moving average order in Cerima, represented as Q. The module concludes with a brief mention of upcoming content on newer forecasting methodologies.

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5 questions

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1.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

Which of the following models is used to predict future data in a time series?

ARIMA

Linear Regression

Decision Tree

K-Means Clustering

2.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

In a forecasting problem, what are the two main variables involved?

Time and Attribute

Time and Location

Attribute and Cost

Time and Cost

3.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

What is the term used for forecasting with only one attribute?

Trivariate

Bivariate

Univariate

Multivariate

4.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

In auto regression, what is the term for the number of preceding inputs used to predict the next value?

P

R

D

Q

5.

MULTIPLE CHOICE QUESTION

30 sec • 1 pt

In the Cerimax model, what does the 'X' represent?

Extra Variables

Exogenous Variables

External Variables

Endogenous Variables