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MATH 110 Module 9 | Practice Q&A | 2026/2027 | Statistics | Portage Learning | 100%

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This document helps you master the MATH 110 Introduction to Statistics Module 9 exam at Portage Learning via targeted Q&A with detailed rationales. It covers correlation analysis (Pearson's r and critical value testing), linear regression (least-squares line, slope, intercept, predictions, and coefficient of determination r²), confidence intervals for means and proportions, hypothesis testing (null/alternative hypotheses, test statistics, p-values, Type I/II errors, and significance levels), one-way ANOVA (F-statistic and interpretation), and chi-square tests (goodness-of-fit and independence). Engineered to maximize retention and sharpen critical understanding, this test pack simplifies complex content, saving preparation time and helping you secure an A on your Module 9 Exam Assessment.

Voorbeeld van de inhoud

,MATH 110 Module 9 | Practice Q&A | 2026/2027 | Statistics | Portage
Learning | 100% PASS

1. The correlation coefficient r measures:

A) The slope of the regression line

B) The strength and direction of the linear relationship between two variables

C) The proportion of variance explained

D) The predicted value of y



Correct Answer: The strength and direction of the linear relationship between
two variables



Rationale: The correlation coefficient r measures the strength and direction
of the linear relationship between two variables, ranging from -1 to +1.
Values near ±1 indicate strong linear relationships, while values near 0
indicate weak or no linear relationship.



2. A correlation coefficient of r = 0.85 indicates:

A) A strong positive linear relationship

B) A weak positive linear relationship

C) A strong negative linear relationship

D) No linear relationship



Correct Answer: A strong positive linear relationship



Rationale: An r value of 0.85 is close to +1, indicating a strong positive linear
relationship between the two variables. As one variable increases, the other
tends to increase as well.



3. A correlation coefficient of r = -0.75 indicates:

,A) A strong positive linear relationship

B) A weak positive linear relationship

C) A strong negative linear relationship

D) No linear relationship



Correct Answer: A strong negative linear relationship



Rationale: An r value of -0.75 is close to -1, indicating a strong negative
linear relationship. As one variable increases, the other tends to decrease.



4. A correlation coefficient of r = 0.12 indicates:

A) A strong positive linear relationship

B) A weak positive linear relationship

C) A strong negative linear relationship

D) No linear relationship



Correct Answer: A weak positive linear relationship



Rationale: An r value of 0.12 is close to 0, indicating a weak positive linear
relationship. There is little to no linear association between the variables.



5. The coefficient of determination r² measures:

A) The slope of the regression line

B) The strength and direction of the linear relationship

C) The proportion of the variance in y that is explained by the linear
relationship with x

D) The predicted value of y

, Correct Answer: The proportion of the variance in y that is explained by the
linear relationship with x



Rationale: r² represents the proportion of the variance in the response
variable y that is explained by the linear relationship with the predictor
variable x. It is always between 0 and 1.



6. If r² = 0.64, what is the correlation coefficient r?

A) 0.64

B) 0.80

C) 0.32

D) 0.40



Correct Answer: 0.80



Rationale: r² = 0.64, so r = √0.64 = 0.80. The correlation coefficient is the
positive square root of r² (assuming a positive relationship).



7. If r² = 0.36, what is the correlation coefficient r?

A) 0.36

B) 0.60

C) 0.18

D) 0.72



Correct Answer: 0.60



Rationale: r² = 0.36, so r = √0.36 = 0.60. This means 36% of the variance in
y is explained by the linear relationship with x.

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