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Chapter 5 ~ Probability Distributions (Discrete Variables) Express Checkout P( x ) 0.3 0.25 0.2 0.15 0.1 0.05 0 0 1 2 3 4 5 6 Number of Items Purchased 7 8 x 1 Chapter Goals • Combine the ideas of frequency distributions and probability to form probability distributions • Investigate discrete probability distributions and study measures of central tendency and dispersion • Study the binomial random variable 2 5.1 ~ Random Variables • Bridge between experimental outcomes and statistical analysis • Each outcome in an experiment is assigned to a number • This suggests the idea of a function 3 Random Variable Random Variable: A variable that assumes a unique numerical value for each of the outcomes in the sample space of a probability experiment Notes: Used to denote the outcomes of a probability experiment Each outcome in a probability experiment is assigned to a unique value Illustration: S Outcomes Random Variable 2 1 0 1 2 4 Examples of Random Variable 1. Let the number of computers sold per day by a local merchant be a random variable. Integer values ranging from zero to about 50 are possible values. 2. Let the number of pages in a mystery novel at a bookstore be a random variable. The smallest number of pages is 125 while the largest number of pages is 547. 3. Let the time it takes an employee to get to work be a random variable. Possible values are 15 minutes to over 2 hours. 4. Let the volume of water used by a household during a month be a random variable. Amounts range up to several thousand gallons. 5. Let the number of defective components in a shipment of 1000 be a random variable. Values range from 0 to 1000. 5 Discrete & Random Variables Discrete Random Variable: A quantitative random variable that can assume a countable number of values • Intuitively, a discrete random variable can assume values corresponding to isolated points along a line interval. That is, there is a gap between any two values. Note: Usually associated with counting Continuous Random Variable: A quantitative random variable that can assume an uncountable number of values • Intuitively, a continuous random variable can assume any value along a line interval, including every possible value between any two values Note: Usually associated with a measurement 6 Example Example: Determine whether the following random variables are discrete or continuous 1. The barometric pressure at 12:00 PM 2. The length of time it takes to complete a statistics exam 3. The number of items in the shopping cart of the person in front of you at the checkout line 4. The weight of a home grown zucchini 5. The number of tickets issued by the PA State Police during a 24 hour period 6. The number of cans of soda pop dispensed by a machine placed in the Mathematics building on campus 7. The number of cavities the dentist discovers during your next visit 7 5.2 ~ Probability Distributions of a Discrete Random Variable • Need a complete description of a discrete random variable • This includes all the values the random variable may assume and all of the associated probabilities • This information may be presented in a variety of ways 8 Probability Distribution & Function Probability Distribution: A distribution of the probabilities associated with each of the values of a random variable. The probability distribution is a theoretical distribution; it is used to represent populations. Notes: The probability distribution tells you everything you need to know about the random variable. The probability distribution may be presented in the form of a table, chart, function, etc. Probability Function: A rule that assigns probabilities to the values of the random variable 9 Example Example: The number of people staying in a randomly selected room at a local hotel is a random variable ranging in value from 0 to 4. The probability distribution is known and is given in various forms below: x P (x ) 0 2/15 1 4/15 2 5/15 3 3/15 4 1/15 Notes: This chart implies the only values x takes on are 0, 1, 2, 3, and 4 5 P ( the random variable x equals 2 ) = = P(2) 15 10 A Line Representation P( x ) 0 . 4 Hotel Room Probability Distribution 0 . 3 0 . 2 0 . 1 0 . 0 0 1 2 3 4x 11 Histogram A histogram may be used to present a probability distribution: P( x ) Hotel Room Probability Distribution 0.4 0.3 0.2 0.1 0.0 0 1 2 3 4 x 12 Notes The histogram of a probability distribution uses the physical area of each bar to represent its assigned probability In the Hotel Room probability distribution: the width of each bar is 1, so the height of each bar is equal to the assigned probability, which is the area of each bar. The idea of area representing probability is important in the study of continuous random variables 13 Reminder! Every probability function must satisfy the two basic properties of probability: 1. The probability assigned to each value of the random variable must be between 0 and 1, inclusive: 0 P( x) 1 2. The sum of the probabilities assigned to all the values of the random variable must equal 1: P( x) = 1 all x 14 5.3 ~ Mean and Variance of a Discrete Probability Distribution • Describe the center and spread of a population • m, s, s2 : population parameters • Population parameters are usually unknown values (we would like to estimate) 15 Important Notes 1. x is the mean of the sample 2. s2 and s are the variance and standard deviation of the sample 3. x , s2, and s are called sample statistics 4. m (lowercase Greek letter “mu”) is the mean of the population 5. s2 (“sigma squared”) is the variance of the population 6. s (lowercase Greek letter “sigma”) is the standard deviation of the population 7. m, s2, and s are called population parameters. (A parameter is a constant. m, s2, and s are typically unknown values.) 16 Mean of a Discrete Random Variable • The mean, m, of a discrete random variable x is found by multiplying each possible value of x by its own probability and then adding all the products together: m = [ xP( x )] Notes: The mean is the average value of the random variable, what happens on average The mean is not necessarily a value of the random variable 17 Discrete Random Variables Variance of a Discrete Random Variable: Variance, s2, of a discrete random variable x is found by multiplying each possible value of the squared deviation from the mean, (x m)2, by its own probability and then adding all the products together: 2 2 s = [( x m ) P( x )] = [ x 2 P( x )] { [ xP( x )]} 2 = [ x 2 P( x )] m 2 Standard Deviation of a Discrete Random Variable: The positive square root of the variance: s = s2 18 Example Example: The number of standby passengers who get seats on a daily commuter flight from Boston to New York is a random variable, x, with probability distribution given below (in an extensions table). Find the mean, variance, and standard deviation: x 0 1 2 3 4 5 Totals P( x ) 0.30 0.25 0.20 0.15 0.05 0.05 1.00 xP( x ) 0.00 0.25 0.40 0.45 0.20 0.25 1.55 P( x) [ xP( x)] x 2 x 2 P( x ) 0 0.00 1 0.25 4 0.80 9 1.35 16 0.80 25 1.25 4.45 [ x 2 P( x)] (check) 19 Solution • Using the formulas for mean, variance, and standard deviation: m = [ xP( x )] = 155 . Note: 1.55 is not a value of the random variable (in this case). It is only what happens on average. s 2 = [ x 2 P( x )] { [ xP( x )]} 2 = 4.45 (155 . ) 2 = 4.45 2.4025 = 2.0475 s = s 2 = 2.0475 143 . 20 Example Example: The probability distribution for a random variable x is given by the probability function: 8 x P( x ) = for x = 3, 4, 5, 6, 7 15 Find the mean, variance, and standard deviation Solutions: Find the probability associated with each value by using the probability function: 83 5 = 15 15 P(4) = 84 4 = 15 15 86 2 P(6) = = 15 15 P(7) = 87 1 = 15 15 P(3) = P(5) = 85 3 = 15 15 21 Finding the Population Parameters • Use an extensions table to find the population parameters: x 3 4 5 6 7 Totals P( x ) 5/15 4/15 3/15 2/15 1/15 15/15 xP ( x ) 15/15 16/15 15/15 12/15 7/15 65/15 x2 9 16 25 36 49 2 [ x P( x)] [ xP( x)] m = [ xP ( x )] = x 2 P( x ) 45/15 64/15 75/15 72/15 49/15 305/15 65 4.33 15 s 2 = [ x 2 P ( x )] { [ xP ( x )]} 2 2 305 65 = 1.56 15 15 s = s 2 = 1.56 1.25 22 5.4 ~ The Binomial Probability Distribution • One of the most important discrete distributions • Based on a series of repeated trials whose outcomes can be classified in one of two categories: success or failure • Distribution based on a binomial probability experiment 23 Binomial Probability Experiment Binomial Probability Experiment: An experiment that is made up of repeated trials that possess the following properties: 1. There are n repeated independent trials 2. Each trial has two possible outcomes (success, failure) 3. P(success) = p, P(failure) = q, and p + q = 1 4. The binomial random variable x is the count of the number of successful trials that occur; x may take on any integer value from zero to n 24 Notes Properties 1 and 2 are the two basic properties of any binomial experiment Property 3 concerns the algebraic notation for each trial Property 4 concerns the algebraic notation for the complete experiment Both x and p must be associated with “success” Independent trials mean that the result of one trial does not affect the probability of success of any other trial in the experiment. The probability of “success” remains constant throughout the entire experiment. 25 Example Example: It is known that 40% of all graduating seniors on the campus of a very large university have taken a statistics class. Five seniors are selected at random and asked if they have taken a statistics class. This approximates a binomial experiment: 1. A trial is asking one student, repeated 5 times. The trials are independent since the probability of taking a statistics class for any one student is not affected by the results from any other student. 2. Two outcomes on each trial: taken a statistics class (success), not taken a statistics class (failure) 3. p = P(taken a statistics class) = 0.40 q = P(not taken a statistics class) = 0.60 4. x = number of students who have taken a statistics class 26 Binomial Probability Function • For a binomial experiment, let p represent the probability of a “success” and q represent the probability of a “failure” on a single trial; then P(x), the probability that there will be exactly x successes on n trials is: n x n x P( x ) = ( p )(q ), for x = 0, 1, 2, ... , or n x Notes: The number of ways that exactly x successes can occur in n trials: n x The probability of exactly x successes: px The probability that failure will occur on the remaining (n - x) trials: qn - x 27 Notes The number of ways that exactly x successes can occur in a set of n trials is represented by the symbol: n x 1. Must always be a positive integer 2. Called the binomial coefficient 3. Found by using the formula: n n! = x x !(n x )! n! is an abbreviation for n factorial: n! = n(n 1)(n 2)(3)(2)(1) 6! = 6 5 4 3 2 1 = 720 28 Factorial Calculations with TI • Example: 6! = 6 x 5 x 4 x 3 x 2 x 1 = 720 • Enter the number 6 and then use MATH > PRB> 4 to enter the !, then press enter. The display reads 720 • Try these values next: • 10! 0! 12! 20! • Answers: 10! = 3,628,800 0! = 1 12! = 479,001,600 20! = 2.43E18 As you can see, the factorials grow very rapidly 29 Example Example: According to a recent study, 65% of all homes in a certain county have high levels of radon gas leaking into their basements. Four homes are selected at random and tested for radon. The random variable x is the number of homes with high levels of radon (out of the four). Properties: 1. There are 4 repeated trials: n = 4. The trials are independent. 2. Each test for radon is a trial, and each test has two outcomes: radon or no radon 3. p = P(radon) = 0.65, q = P(no radon) = 0.35 p+q=1 4. x is the number of homes with high levels of radon, possible values: 0, 1, 2, 3, 4 30 Binomial Probability Function 4 = P ( x ) (0.65 ) x (0.35 ) 4 x , for x = 0, 1, 2, 3, 4 x 4 = P ( 0 ) (0.65 ) 0 (0. 35 ) 4 = (1)( 1)( 0 .0150 ) = 0 .0150 0 4 P (1) = (0. 65 ) 1 (0. 35 ) 3 = ( 4 )( 0 .65 )( 0 .0429 ) = 0 .1115 1 4 = P ( 2 ) (0.65 ) 2 (0. 35 ) 2 = ( 6 )( 0 .4225 )( 0 .1225 ) = 0 .3105 2 4 = P ( 3 ) (0. 65 ) 3 (0. 35 ) 1 = ( 4 )( 0 .2746 )( 0 .35 ) = 0 .3845 3 4 = P ( 4 ) (0. 65 ) 4 (0. 35 ) 0 = ( 1)( 0 .1785 )( 1) = 0 .1785 4 31 Example Example: In a certain automobile dealership, 70% of all customers purchase an extended warranty with their new car. For 15 customers selected at random: 1) Find the probability that exactly 12 will purchase an extended warranty 2) Find the probability at most 13 will purchase an extended warranty Solutions: • Let x be the number of customers who purchase an extended warranty. x is a binomial random variable. • The probability function associated with this experiment: 15 = P( x ) (0.7) x (0.3)15 x , for x = 0, 1, 2, ... ,15 x 32 Solutions Continued 1) Probability exactly 12 purchase an extended warranty: 15 P(12) = (0.7)12 (0.3) 3 =0.1700 12 2) Probability at most 13 purchase an extended warranty: P( x 13) = P (0) + P(1) + ... + P(13) = 1 [P(14) + P (15)] 15 14 1 15 15 0 = 1 (0.7) (0. 3) + (0.7) (0.3) 15 14 = 1 [0.0305 + 0.0047] = 1 0.0352 = 0.9648 33 Notes Many graphing calculators also have built-in functions for computing binomial probabilities and cumulative probabilities TI Calculators: Choose 2nd >DISTR> 0 or A:binompdf( Enter: n, p) where n is the number of independent trials and p is the probability of success 34 5.5 ~ Mean & Standard Deviation of the Binomial Distribution • Population parameters of the binomial distribution help to describe the distribution • Mean and standard deviation indicate where the distribution is centered and the spread of the distribution 35 Mean & Standard Deviation • The mean and standard deviation of a theoretical binomial distribution can be found by using the following two formulas: m = np s = npq Notes: Mean is intuitive: number of trials multiplied by the probability of a success The variance of a binomial probability distribution is: s = ( npq ) = npq 2 2 36 Example Example: Find the mean and standard deviation of the binomial distribution when n = 18 and p = 0.75 Solutions: 1) n = 18, p = 0.75, q = 1 - 0.75 = 0.25 m = np = (18)(0.75) = 13.5 s = npq = (18)(0.75)(0.25) = 3.375 18371 . 2) The probability function is: 18 = P( x ) (0.75) x (0.25)18 x for x = 0, 1, 2, ... , 18 x 37 Table of Values & Probabilities x 0.00 1.00 2.00 3.00 4.00 5.00 6.00 7.00 8.00 9.00 10.00 11.00 12.00 13.00 14.00 15.00 16.00 17.00 18.00 P(x) 0.0000 0.0000 0.0000 0.0000 0.0000 0.0000 0.0002 0.0010 0.0042 0.0139 0.0376 0.0820 0.1436 0.1988 0.2130 0.1704 0.0958 0.0338 0.0056 38 Histogram m s P( x ) 0.22 0.20 0.18 0.16 0.14 0.12 0.10 0.08 0.06 0.04 0.02 0.00 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 x 39