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WGU Applied-Probability-and-Statistics Exam Syllabus Topics:

SectionObjectives
Topic 1: Regression and Modeling- Linear Relationships
  • 1. Simple linear regression
    • 2. Slope and intercept interpretation
      Topic 2: Descriptive Statistics- Single Variable Data Analysis
      • 1. Measures of central tendency (mean, median, mode)
        • 2. Data visualization (histograms, box plots)
          • 3. Measures of dispersion (variance, standard deviation, range)
            - Two Variable Data Analysis
            • 1. Outliers and relationships
              • 2. Correlation
                • 3. Scatter plots interpretation
                  Topic 3: Probability Theory- Probability Distributions
                  • 1. Binomial distribution basics
                    • 2. Normal distribution
                      - Fundamental Probability Concepts
                      • 1. Independent vs dependent events
                        • 2. Conditional probability
                          • 3. Basic probability rules
                            Topic 4: Statistical Inference- Estimation and Confidence Intervals
                            • 1. Point estimates
                              • 2. Confidence interval interpretation
                                - Hypothesis Testing (Introductory Level)
                                • 1. Null vs alternative hypothesis
                                  • 2. p-values interpretation

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                                    WGU Applied Probability and Statistics (FZO1 C955) Sample Questions (Q147-Q152):

                                    NEW QUESTION # 147
                                    Conditional probability P(A|B) = P(A and B)/P(B) #

                                    Answer: A

                                    Explanation:
                                    The formula for conditional probability is P(A|B) = P(A and B)/P(B), provided P(B) > 0. The notation P(A|B) is read as "the probability of A given B." The denominator P(B) restricts the sample space to cases in which B occurs, and the numerator P(A and B) counts the portion of that restricted group in which A also occurs.
                                    Therefore, the statement is true. Option B is incorrect because the formula is the standard definition of conditional probability. Option C is incorrect because if A and B are mutually exclusive, then P(A and B) = 0, which creates a special case rather than the general definition. Option D is invalid because conditional probability is undefined when P(B) = 0. The condition must have positive probability. Study Guide references
                                    /topics: conditional probability, joint probability, event intersection, probability rules.


                                    NEW QUESTION # 148
                                    The average commute time for workers in a city in 2021 was 35 minutes, with a standard deviation of 5 minutes.
                                    Assuming a normal distribution, which two values encompass 95% of the data?

                                    Answer: C

                                    Explanation:
                                    For a normally distributed variable, the empirical rule states that approximately 95% of observations fall within two standard deviations of the mean. The mean commute time is 35 minutes, and the standard deviation is 5 minutes. Two standard deviations equal 2 × 5 = 10 minutes. Therefore, the interval covering approximately 95% of the data is 35 # 10 to 35 + 10, which gives 25 minutes to 45 minutes. Option B, 30 to
                                    40 minutes, represents only one standard deviation from the mean and would cover approximately 68% of the data, not 95%. Option A extends three standard deviations from the mean and would correspond to roughly
                                    99.7% under the empirical rule. Option D is not centered properly around the mean and does not represent a standard normal interval. The correct interval is symmetric about the mean and uses the standard deviation as the spread measure. References/topics from the Study Guide: normal distribution, empirical rule, mean, standard deviation.


                                    NEW QUESTION # 149
                                    Standard error decreases when:

                                    Answer: B

                                    Explanation:
                                    The standard error of the mean is calculated as SE = s/#n, where s is the sample standard deviation and n is the sample size. Because n appears in the denominator under a square root, increasing the sample size decreases the standard error when the standard deviation is held constant. This reflects a central idea in sampling: larger samples tend to produce more stable and precise estimates of the population mean. Option C is incorrect because increasing the standard deviation increases the standard error, not decreases it. Option B is incomplete and does not identify what is decreasing. Option D is not the direct driver of standard error; confidence level affects the critical value and margin of error, but the standard error itself is determined by variability and sample size. The correct relationship is inverse: as sample size increases, standard error decreases. Study Guide references/topics: standard error, sample size, sampling variability, precision of estimates.


                                    NEW QUESTION # 150
                                    Type II error occurs when:

                                    Answer: A

                                    Explanation:
                                    A Type II error occurs when the null hypothesis is false but the statistical test fails to reject it. In many answer choices, this is expressed as "accepting the null when false," though the more precise language is "failing to reject the null." This error is a false negative: the test misses a real effect, difference, or relationship. For example, if a medication truly improves recovery but a study fails to detect sufficient evidence of improvement, that is a Type II error. Option B describes a Type I error, which occurs when a true null hypothesis is rejected. Option C is not an error. Option D is too vague; statistical decision errors refer specifically to incorrect conclusions about hypotheses, not ordinary data-entry mistakes. The probability of a Type II error is denoted #, and statistical power is 1 # #. Study Guide references/topics: hypothesis testing, Type II error, null hypothesis, statistical power.


                                    NEW QUESTION # 151
                                    Mean = 50, SD = 5, n = 25. Standard error = ?

                                    Answer: D

                                    Explanation:
                                    The standard error of the mean measures the expected sampling variability of the sample mean. It is calculated by dividing the sample standard deviation by the square root of the sample size: SE = s / #n. In this question, the standard deviation is 5 and the sample size is 25. Therefore, SE = 5 / #25 = 5 / 5 = 1. The mean of 50 identifies the center of the sample distribution but is not directly used in the standard error calculation.
                                    Option B, 5, is the standard deviation, not the standard error. Option C, 25, is the sample size. Option D, 0.2, would result from incorrectly dividing 5 by 25 rather than by the square root of 25. The distinction between standard deviation and standard error is important: standard deviation describes spread among individual observations, while standard error describes spread among sample means. Study Guide references/topics:
                                    standard error, standard deviation, sample size, sampling distributions.


                                    NEW QUESTION # 152
                                    ......

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