Fluent Essays

What would you want to study? If you could create a poll or survey, what would your topic be?Describe your population (the type of person you want), sample (n = ?), one to three questions you would ask, and how you would graph the results.Please remember to use APA formatting if you use help from the textbook or a website. Try to use your own words! stat13t_ppt_0601.pptx stat13t_ppt_0602.pptx stat13t_ppt_0603.pptx stat13t_ppt_0604.pptx stat13t_ppt_0605.pptx Unformatted Attachment Preview Elementary Statistics Thirteenth Edition Chapter 6 Normal Probability Distributions Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Normal Probability Distributions 6-1 The Standard Normal Distribution 6-2 Real Applications of Normal Distributions 6-3 Sampling Distributions and Estimators 6-4 The Central Limit Theorem 6-5 Assessing Normality 6-6 Normal as Approximation to Binomial Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Key Concept In this section we present the standard normal distribution, which is a specific normal distribution having the following three properties: 1. Bell-shaped: The graph of the standard normal distribution is bell-shaped. 2. µ = 0: The standard normal distribution has a mean equal to 0. 3. σ = 1: The standard normal distribution has a standard deviation equal to 1. In this section we develop the skill to find areas (or probabilities or relative frequencies) corresponding to various regions under the graph of the standard normal distribution. In addition, we find z scores that correspond to areas under the graph. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Normal Distribution (1 of 2) • Normal Distribution – If a continuous random variable has a distribution with a graph that is symmetric and bell-shaped, we say that it has a normal distribution. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Normal Distribution (2 of 2) Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Uniform Distribution (1 of 2) Properties of uniform distribution: 1. The area under the graph of a continuous probability distribution is equal to 1. 2. There is a correspondence between area and probability, so probabilities can be found by identifying the corresponding areas in the graph using this formula for the area of a rectangle: Area = height × width Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Uniform Distribution (2 of 2) • Uniform Distribution – A continuous random variable has a uniform distribution if its values are spread evenly over the range of possibilities. The graph of a uniform distribution results in a rectangular shape. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Density Curve • Density Curve – The graph of any continuous probability distribution is called a density curve, and any density curve must satisfy the requirement that the total area under the curve is exactly 1. Because the total area under any density curve is equal to 1, there is a correspondence between area and probability. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (1 of 7) During certain time periods at JFK airport in New York City, passengers arriving at the security checkpoint have waiting times that are uniformly distributed between 0 minutes and 5 minutes, as illustrated in the figure on the next page. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (2 of 7) Refer to the figure to see these properties: • All of the different possible waiting times are equally likely. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (3 of 7) Refer to the figure to see these properties: • Waiting times can be any value between 0 min and 5 min, so it is possible to have a waiting time of 1.234567 min. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (4 of 7) Refer to the figure to see these properties: • By assigning the probability of 0.2 to the height of the vertical line in the figure, the enclosed area is exactly 1. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (5 of 7) Given the uniform distribution illustrated in the figure, find the probability that a randomly selected passenger has a waiting time of at least 2 minutes. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (6 of 7) Solution The shaded area represents waiting times of at least 2 minutes. Because the total area under the density curve is equal to 1, there is a correspondence between area and probability. We can easily find the desired probability by using areas. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Waiting Times for Airport Security (7 of 7) Solution P(wait time of at least 2 min) = height × width of shaded area in the figure = 0.2 × 3 = 0.6 The probability of randomly selecting a passenger with a waiting time of at least 2 minutes is 0.6. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Standard Normal Distribution • Standard Normal Distribution – The standard normal distribution is a normal distribution with the parameters of µ = 0 and σ = 1. The total area under its density curve is equal to 1. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding Probabilities When Given z Scores (1 of 3) • We can find areas (probabilities) for different regions under a normal model using technology or Table A-2. • Technology is strongly recommended. Because calculators and software generally give more accurate results than Table A-2, we strongly recommend using technology. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding Probabilities When Given z Scores (2 of 3) If using Table A-2, it is essential to understand these points: 1. Table A-2 is designed only for the standard normal distribution, which is a normal distribution with a mean of 0 and a standard deviation of 1. 2. Table A-2 is on two pages, with the left page for negative z scores and the right page for positive z scores. 3. Each value in the body of the table is a cumulative area from the left up to a vertical boundary above a specific z score. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding Probabilities When Given z Scores (3 of 3) 4. When working with a graph, avoid confusion between z scores and areas. z score: Distance along the horizontal scale of the standard normal distribution (corresponding to the number of standard deviations above or below the mean); refer to the leftmost column and top row of Table A-2. Area: Region under the curve; refer to the values in the body of Table A-2. 5. The part of the z score denoting hundredths is found across the top row of Table A-2. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Formats Used for Finding Normal Distribution Areas Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (1 of 7) A bone mineral density test can be helpful in identifying the presence or likelihood of osteoporosis. The result of a bone density test is commonly measured as a z score. The population of z scores is normally distributed with a mean of 0 and a standard deviation of 1, so these test results meet the requirements of a standard normal distribution. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (2 of 7) The graph of the bone density test scores is as shown in the figure. A randomly selected adult undergoes a bone density test. Find the probability that this person has a bone density test score less than 1.27. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (3 of 7) Solution Note that the following are the same (because of the aforementioned correspondence between probability and area): • Probability that the bone density test score is less than 1.27 • Shaded area shown in the figure Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (4 of 7) Solution So we need to find the area in the figure to the left of z = 1.27. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (5 of 7) Solution Using Table A-2, begin with the z score of 1.27 by locating 1.2 in the left column; next find the value in the adjoining row of probabilities that is directly below 0.07, as shown: Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (6 of 7) Solution Table A-2 shows that there is an area of 0.8980 corresponding to z = 1.27. We want the area below 1.27, and Table A-2 gives the cumulative area from the left, so the desired area is 0.8980. Because of the correspondence between area and probability, we know that the probability of a z score below 1.27 is 0.8980. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test (7 of 7) Interpretation The probability that a randomly selected person has a bone density test result below 1.27 is 0.8980, shown as the shaded region. Another way to interpret this result is to conclude that 89.80\% of people have bone density levels below 1.27. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area to the Right of a Value (1 of 4) Using the same bone density test, find the probability that a randomly selected person has a result above −1.00 (which is considered to be in the “normal” range of bone density readings). Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area to the Right of a Value (2 of 4) Solution If we use Table A-2, we should know that it is designed to apply only to cumulative areas from the left. Referring to the page with negative z scores, we find that the cumulative area from the left up to z = −1.00 is 0.1587, as shown in the figure. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area to the Right of a Value (3 of 4) Solution Because the total area under the curve is 1, we can find the shaded area by subtracting 0.1587 from 1. The result is 0.8413. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area to the Right of a Value (4 of 4) Interpretation Because of the correspondence between probability and area, we conclude that the probability of randomly selecting someone with a bone density reading above −1 is 0.8413 (which is the area to the right of z = −1.00). We could also say that 84.13\% of people have bone density levels above −1.00. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area Between Two Values (1 of 3) A bone density reading between −1.00 and −2.50 indicates the subject has osteopenia, which is some bone loss. Find the probability that a randomly selected subject has a reading between −1.00 and −2.50. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area Between Two Values (2 of 3) Solution 1. The area to the left of z = −1.00 is 0.1587. 2. The area to the left of z = −2.50 is 0.0062. 3. The area between z = −1.00 and z = −2.50 is the difference between the areas found above. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Bone Density Test: Finding the Area Between Two Values (3 of 3) Interpretation Using the correspondence between probability and area, we conclude that there is a probability of 0.1525 that a randomly selected subject has a bone density reading between −1.00 and −2.50. Another way to interpret this result is to state that 15.25\% of people have osteopenia, with bone density readings between −1.00 and −2.50. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Generalized Rule The area corresponding to the region between two z scores can be found by finding the difference between the two areas found in Table A-2. Don’t try to memorize a rule or formula for this case. Focus on understanding by using a graph. Draw a graph, shade the desired area, and then get creative to think of a way to find the desired area by working with cumulative areas from the left. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Notation • P(a < z < b) denotes the probability that the z score is between a and b. • P(z > a) denotes the probability that the z score is greater than a. • P(z < a) denotes the probability that the z score is less than a. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding z Scores from Known Areas 1. Draw a bell-shaped curve and identify the region under the curve that corresponds to the given probability. If that region is not a cumulative region from the left, work instead with a known region that is a cumulative region from the left. 2. Use technology or Table A-2 to find the z score. With Table A-2, use the cumulative area from the left, locate the closest probability in the body of the table, and identify the corresponding z score. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Critical Value (1 of 2) • Critical Value – For the standard normal distribution, a critical value is a z score on the borderline separating those z scores that are significantly low or significantly high. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Critical Value (2 of 2) Notation The expression zα denotes the z score with an area of α to its right. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Finding the Critical Value zα (1 of 3) Find the value of z0.025. (Let α = 0.025 in the expression zα.) Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Finding the Critical Value zα (2 of 3) Solution The notation of z0.025 is used to represent the z score with an area of 0.025 to its right. Refer to the figure and note that the value of z = 1.96 has an area of 0.025 to its right, so z0.025 = 1.96. Note that z0.025 corresponds to a cumulative left area of 0.975. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: Finding the Critical Value zα (3 of 3) CAUTION When finding a value of zα for a particular value of α, note that α is the area to the right of zα, but Table A-2 and some technologies give cumulative areas to the left of a given z score. To find the value of zα, resolve that conflict by using the value of 1 − α. For example, to find z0.1, refer to the z score with an area of 0.9 to its left. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Elementary Statistics Thirteenth Edition Chapter 6 Normal Probability Distributions Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Normal Probability Distributions 6-1 The Standard Normal Distribution 6-2 Real Applications of Normal Distributions 6-3 Sampling Distributions and Estimators 6-4 The Central Limit Theorem 6-5 Assessing Normality 6-6 Normal as Approximation to Binomial Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Key Concept This section presents methods for working with normal distributions that are not standard. That is, the mean is not 0 or the standard deviation is not 1, or both. The key is that we can use a simple conversion that allows us to “standardize” any normal distribution so that the same methods of the previous section can be used. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Conversion Formula (round z scores to 2 decimal places) The formula allows us to “standardize” any normal distribution so that x values can be transformed to z scores. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Converting to a Standard Normal Distribution The figures illustrate the conversion from a nonstandard to a standard normal distribution. The area in any normal distribution bounded by some score x (as in Figure a) is the same as the area bounded by the corresponding z score in the standard normal distribution (as in Figure b). Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Procedure for Finding Areas with a Nonstandard Normal Distribution 1. Sketch a normal curve, label the mean and any specific x values, and then shade the region representing the desired probability. 2. For each relevant value x that is a boundary for the shaded region, use the formula to convert that value to the equivalent z score. (With many technologies, this step can be skipped.) 3. Use technology (software or a calculator) or Table A-2 to find the area of the shaded region. This area is the desired probability. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (1 of 6) Heights of men are normally distributed with a mean of 68.6 in. and a standard deviation of 2.8 in. Find the percentage of men who are taller than a showerhead at 72 in. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (2 of 6) Solution Step 1: Men have heights that are normally distributed with a mean of 68.6 in. and a standard deviation of 2.8 in. The shaded region represents the men who are taller than the showerhead height of 72 in. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (3 of 6) Solution Step 2: We can convert the showerhead height of 72 in. to the z score of 1.21 by using the conversion formula as follows: Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (4 of 6) Solution Step 3: Technology: Technology can be used to find that the area to the right of 72 in. in the figure is 0.1123 rounded. (With many technologies, Step 2 can be skipped.) The result of 0.1123 from technology is more accurate than the result of 0.1131 found by using Table A-2. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (5 of 6) Solution Table A-2: Use Table A-2 to find that the cumulative area to the left of z = 1.21 is 0.8869. (Remember, Table A-2 is designed so that all areas are cumulative areas from the left.) Because the total area under the curve is 1, it follows that the shaded area is 1 − 0.8869 = 0.1131. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Example: What Proportion of Men Are Taller Than the 72 in. Height Requirement for Showerheads? (6 of 6) Interpretation The proportion of men taller than 72 in. is 0.1123, or 11.23\%. About 11\% of men may find the design to be unsuitable. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding Values From Known Areas (1 of 3) Here are helpful hints for those cases in which the area (or probability or percentage) is known and we must find the relevant value(s): 1. Graphs are extremely helpful in visualizing, understanding, and successfully working with normal provability distributions, so they should always be used. Copyright © 2018, 2014, 2012 Pearson Education, Inc. All Rights Reserved Finding Values From Known Areas (2 of 3) 2. Don’t confuse z scores and areas. z scores are distan ... Purchase answer to see full attachment