Suppose that the table shows the COVID-19 cases and deaths in some NCR cities during the COVID-19 surge. COVID-19(x) 820 560 470 680 660 1100 COVID-19 (y) 8 6 2 4 5 15 I. What is the degree of linear relationship between COVID-19 cases and deaths? a. 0.437 b. 0.945 c. 0.893 d. 0.641   II. What is the coefficient of determination and its interpreatation? a. 95% of the total variability in COVID-19 cases could be accounted for by the linear relationship with COVID-19 deaths b. 89% of the total variability in COVID-19 deaths could be accounted for by the linear relationship with COVID-19 cases c. 95% of the total variability in COVID-19 deaths could be accounted for by the linear relationship with COVID-19 cases d. 89% of the total variability in COVID-19 cases could be accounted for by the linear relationship with COVID-19 deaths   iii. How do you interpret the slope of the estimated simple linear regression model which describes the linear relationship between COVID-19 cases (x) and COVID-19 deaths (y)? a. There is an expected increase of 0.019 in x for every unit increase in y. b. There is an expected increase of 0.019 in y for every unit increase in x. c. There is an expected increase of 7 in x for every unit increase in y. d. There is an expected increase of 7 in y for every unit increase in x.

Glencoe Algebra 1, Student Edition, 9780079039897, 0079039898, 2018
18th Edition
ISBN:9780079039897
Author:Carter
Publisher:Carter
Chapter4: Equations Of Linear Functions
Section4.6: Regression And Median-fit Lines
Problem 5PPS
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STATISTICS AND PROBABILITY

MULTIPLE CHOICE

Suppose that the table shows the COVID-19 cases and deaths in some NCR cities during the COVID-19 surge.

COVID-19(x) 820 560 470 680 660 1100
COVID-19 (y) 8 6 2 4 5 15

I. What is the degree of linear relationship between COVID-19 cases and deaths?

a. 0.437

b. 0.945

c. 0.893

d. 0.641

 

II. What is the coefficient of determination and its interpreatation?

a. 95% of the total variability in COVID-19 cases could be accounted for by the linear relationship with COVID-19 deaths

b. 89% of the total variability in COVID-19 deaths could be accounted for by the linear relationship with COVID-19 cases

c. 95% of the total variability in COVID-19 deaths could be accounted for by the linear relationship with COVID-19 cases

d. 89% of the total variability in COVID-19 cases could be accounted for by the linear relationship with COVID-19 deaths

 

iii. How do you interpret the slope of the estimated simple linear regression model which describes the linear relationship between COVID-19 cases (x) and COVID-19 deaths (y)?

a. There is an expected increase of 0.019 in x for every unit increase in y.

b. There is an expected increase of 0.019 in y for every unit increase in x.

c. There is an expected increase of 7 in x for every unit increase in y.

d. There is an expected increase of 7 in y for every unit increase in x.

 

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