Question

A human resources director believes that increased physical activity of the employee will results in fewer...

  1. A human resources director believes that increased physical activity of the employee will results in fewer hours lost to illness. To test this hypothesis she randomly sampled 10 individuals from her company. Each employee was asked 2 simple questions: 1) How many hours per week do exercise? ; 2) How many work hours per year do you lose due to illness? The following results were obtained:

Number of hours/week

exercise

Number of work hours/year

lost to illness

3

76

3

71

4

70

5

74

6

63

7

51

7

75

8

67

8

40

9

63

NOTE: The correlation coefficient, r, which is -0.56, the mean (M) and standard deviation (SD) for exercise (6 and 2.16 respectively), and the M and SD for illness (65 and 11.53 respectively).

1. Fill in the table below

Source

SS

df

MS

F

Model

Answer

Answer

Answer

Answer

Residual

Answer

Answer

Answer

Total

Answer

2. Is your model a significant fit of the data (quote the relevant statistics)?

Answer (No or Yes), model is Answer (not a significant or a significant) fit of the data, F(Answer, Answer) = Answer, p Answer (> or <).05.

3. How much of the variance in work hours lost to illness can be explained by exercise?  Answer%  Is it significant? AnswerNoYes

4. What is the power of the study? Answer

5. Write out the regression equation for the model: Y = Answer+AnswerX.  If the individual spends 10 per week exercising what would be the predicted number of works hours lost to illness? Answer

6. If the predictor value decreases by 1.5 standard deviations, how much would your outcome variable change (raw score units)?  Answer

7. What is the standard error of the estimate? Answer

8. What is the standard error for testing significance of the slope? Answer

9. Figure the confidence interval (95%). Lower Answer, Upper Answer

0 0
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Answer #1

This is the dataset and its mean and std dev.

The correlation coefficient is equal to -0.562186367

First, we create the regression output for the data.

2)

Is your model a significant fit of the data (quote the relevant statistics)? The significance level of the linear model is equal to 0.0907 > 0.05. Which means that this model is not significant for the data.

3)

How much of the variance in work hours lost to illness can be explained by exercise? 31% variance in work hours lost to illness can be explained by exercise. This is shown by the R-squared statistic.

4)

The regression model is given by the equation

Y=83-3(x)

Y=Number of work hours/year lost to illness

x=Number of hours/week exercise

If the individual spends 10 hrs per week exercising, what would be the predicted number of works hours lost to illness?

\\Y=83-3(10)\\ Y=53

Note: "As per the HomeworkLib rules i answered only four sub parts .so please re=post the other questions.thank you"

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