chapter 7 random variables. warm -up a couple plans to have three children. there are 8 possible...
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Chapter 7Random Variables
Warm -upA couple plans to have three children. There are 8 possible arrangements of girls and boys. For example, GGB means the first two children are girls and the third child is a boy. All 8 arrangements are (approximately) equally likely.1. Write down all 8 arrangements of the sexes
of three children. 2. What is the probability of any one of these
arrangements? Answer : BBB, BBG, BGB, GBB, GGB, GBG,
BGG, GGG. Each has probability 1/8.
2. Let X be the number of girls the couple has. What is the probability that X = 2?
Answer : Three of the eight arrangements have two (and only two) girls, so P(X = 2) = 3/8 = 0.375.3. Starting from your work in (a), find the
distribution of X. That is, what values can X take, and what are the probabilities for each value?
Value of x 0 1 2 3
Probability 1/8 3/8 3/8 1/8
Random Variables Sample spaces are not always numeric (example
tossing 4 coins: HTTH, TTTH, etc.) If we let X = the number of heads, then in those
2 outcomes X = 2, X = 1. We call X a “random variable” because its values
vary when the coin tossing is repeated. Random variables usually denoted by capital
letters such as X or Y As we progress from general probability to
inference, the sample space S just lists the possible values of the random variable
7.1 Discrete and Continuous random variables
Example A University posts the grade
distributions for its courses online. Students in stats received 21% A’s, 43% B’s, 30% C’s, 5% D’s, 1% F’s. Choose a student at random- the student’s grade on a four point scale (A = 4) is a random variable. The value of X changes when we repeatedly choose students at random but it’s always either a 0, 1, 2, 3, or 4.
Here is the distribution:
The probability that the student got a B or better is the sum of the probabilities of an A and a B (they’re independent) P(X ≥ 3) = P(X = 3) + P(X = 4)
= .43 + .21 = .64
Value of X 0 1 2 3 4
Probability .01
.05
.30
.43
.21
Probability Histograms Idealized pictures of the results over
many trials
Continuous Random Variables When we choose a digit between 0 and 9, each
number has .1 probability. What if we wanted to allow any number between 0 and 1 as our outcome? There are infinite possible Outcomes! How can we Assign probabilities? X in this case is a continuousVariable b/c its values are not Isolated numbers but an entire interval of numbers
The random number generator will spread its output uniformly across the entire interval from 0 to 1 creating a density curve of a UNIFORM DISTRIBUTION. Area under curve is 1 and probability of
any event is the area under the curve and above the event in question.
Probability model for a continuous variable assigns probabilities to INTERVALS of outcomes- not individual outcomes! An individual outcome actually gets assigned a probability of 0!
Ex: Random number gen produces a number between .79 and .81 with a probability of .02. An outcome between .799 and .801 has probability .002 (we can ignore the distinction between > and ≥ in continuous but not discrete variables.
Normal Distributions The density curve we are most familiar
with is a Normal Curve. Remember N(μ, σ) is our notation for a
normal distribution.
Z score is a standard Normal random variable having the distribution N (0, 1)
Example: cheating in School True population probability that a student will report
on another cheating student is 12% based on a survey of 400 random students, done many
times, we expect the average probability to get close to this .12 value. (with a standard deviation of .016)
This is a continuous random variable b/c if I draw one sample of 400 I would likely get a different proportion.
What is the probability that if I conduct a survey my result will differ from the true probability by 2%? If the result is less than .10 or greater than .14 P(From table A or calculator, P(-1.25 ≤ Z ≤ 1.25) = .8944 - .1056 = .7888 So probability we seek is 1 - .7888 = .2112 which is 21%
Homework # 2, 3, 6-8, 13-17
7.2 Means and variances of Random Variables (weighted average)
Mean of a sample is X bar, Mean of a probability distribution is μ
Example Lottery: You choose a 3 digit number. If the
lottery shows your same number you win $500. Since there are 1000 possible 3 digit numbers, you have a 1/1000 chance of winning.
What is your average payoff from many tickets? $500(.001) + $0(.999) = $.50 How would this differ if you paid 1$ for your
ticket?
Payoff X $0 $500
Probability .999 .001
Mean of a continuous random variable The point at which the area under the
density curve would balance if it were made out of solid material (center if symmetrical). Mean of skewed density curve requires
math outside this course!
Variance of a random Variable Variance of a random variable X notated
as σ2x (different from variance of a
sample which is notated as s2).
Example- Linda sells carsCars Sold
0 1 2 3
Probability
.3 .4 .2 .1
Xi Pi XiPi (Xi – μx
2)Pi
0 .3 .0 (0-1.1)2(.3)
.363
1 .4 .4 (1-1.1)2(.4)
.004
2 .2 .4 (2-1.1)2(.1)
.162
3 .1 .3 (3-1.1)2(.1)
.361
Μx = 1.1 Σx2
= .890
We can find the mean and variance of X with a table (or with our calculator! enter X in L1, P in L2, do 1-var stat L1, L2!)
Law of Large Numbers If we want to estimate the mean height μ of
all American women between age 18-24. To estimate μ we take a SRS of F18-24 and use the sample mean X bar to estimate the unknown population mean. If we repeat this, and choose another sample,
the mean height will likely differ, but the more times we repeat this- drawing a sample and recording the mean- we expect that the average of the mean heights of all our samples will get very close to the true μ
The behavior of X bar is just like the behavior of expected probabilities!
Example: Suppose the true μ for women’s heights was 64.5 inches with a standard deviation of 2.5 inches.
If I continuously repeat drawing a sample of women from this population and recording their average height. After each recording, I write down the average of my mean sample heights. The more times I do this, the closer my overall average gets to 64.5
Casinos, Insurance companies, and law of large numbers Gamblers may win or lose, but the
casino will win in the long run because the law of large numbers says what the average outcome of many thousands of bets will be
This is the same concept when insurance companies decide what to charge or how many beef patties McD’s should make per day
Law of Small numbers Rules of probability and law of large numbers describe the
regular behavior of chance phenomena in the LONG run, but Psychologists have discovered that our intuitive understanding of randomness is quite different from the true laws of chance. We expect that even short sequences of random events will show
the kind of average behavior that in fact only appears in the long run.
Ex: Write down a sequence of heads and tails that you think imitates 10 tosses of a balanced coin. What was the longest run of consecutive heads or tails in your tosses?
Most people don’t write a run of more than 2 consecutive heads or tails. Longer runs don’t seem “random” to us.
In fact, the probability of a run of 3 or more consecutive heads or tails in 10 tosses is greater than .5078!
Seeing a run of 3 or more may cause us to incorrectly conclude that we have a biased coin. Some gamblers follow “hot-hand” theory…silly!
How large is large? The law doesn’t say how many trials are
needed to guarantee a mean outcome close to μ. That depends on the variability of the
outcomes. The more variable the outcomes, the more trials
are needed to ensure that the mean outcome X bar is close to the distribution mean μ
Casinos understand this: the outcomes of games of chance are variable enough to hold the interest of gamblers. Only the casino plays often enough to rely on the law of large numbers. Gamblers get entertainment, Casino has a business!
Rules for means
Review: How can we tell if something is a legitimate probability distribution?
Example (Linda cars)Cars Sold
0 1 2 3
Probability
.3 .4 .2 .1
Trucks/SUV
0 1 2
Probability .4 .5 .1
Let X be the number of cars Linda sells and Y the number of trucks and SUV’s.
μx = (0)(.3) + (1)(.4) + (2)(.2) + (3)(.1) = 1.1 cars
μy = (0)(.4) + (1)(.5) + (2)(.1) = .7 trucks and SUV’s
At her commission rate of 25% of gross profit on each vehicle she sells, Linda expects to earn $350 on each car and $400 on each truck/SUV sold. her earnings are Z = 350X + 400Y What are her average (expected) earnings?
Combing rules 1 and 2, her mean earnings are μz = 350 μx + 400 μy
= 350x1.1 + 400x .7 = $665
That’s her best estimate of her earnings for the day.
Rules for Variances For this course we only need to deal with variances of
2 variables that are independent. This is an ASSUMPTION when we do these problems (always ask yourself if the assumption of independence seems reasonable).
RULE 1: Multiplying X by a constant multiplies the SD by that constant (and thus the variance by the square of that constant)
RULE 2: If X and Y are independentσ2
x+Y = σx2 + σy
2 and σ2x-y = σx
2 + σy2
(they’re the same b/c variance affected by the square of the change so doesn’t matter if neg or pos) The difference X – Y is more variable than either X or Y
alone because variations in both X and Y contribute to variation in their difference.
Example: Winning lottery (review) The payoff X of a $1 ticket (do on calc)
The standard deviation is σx = √($249.75) = $15.80 (*Usual for games of chance to have large variances, keeps them exciting)
If you buy a ticket your winnings are W = X -1 (b/c you paid $1) By rules for means, the mean amount you win is μw = μx – 1 = -
$.50 (standard deviation and variance of μx – 1 will be the same as μx b/c adding or subtracting a constant is a linear trans!)
Xi Pi XiPi (Xi – μx2)Pi
0 .999 0 (0 - .5)2(.999) .24975
500 .001 .5 (500-.5)2(.001)
249.50025
μx = .5 σ2x =
249.75
Suppose now that you buy a ticket on each of 2 different days. The payoffs X and Y on the two tickets are independent because separate drawings are held each day. Your total payoff X + Y has mean: μx+y = μx + μy = $.5 + $.5 = $1.00 Because X and Y are independent, the variance
of X + Y is σ2
x+Y = σx2 + σy
2 = 249.75 + 249.75 = 499.50 the standard deviation of the total payoff is
σx+Y =√(499.5) = $22.35 **not the same as sum of individual standard dev!**
If you buy a ticket every day (365 tickets a year) your mean payoff is the sum of 365 daily payoffs. That’s 365 x $.50 = $182.50. Of course it cost you $365 to play so you actually lose $182.50!
Combining Normal Random Variables Any linear combination of independent
Normal Random Variables is also Normally Distributed.
Example- golf Tom and George are playing in a tournament. Their
scores vary as they play the course repeatedly. Tom’s score X has the N(110, 10) distribution, and George’s score Y varies from round to round according to the N(100,8) distribution. If they play independently, what is the probability that Tom will score lower than George and thus do better in the tournament? The difference X – Y between their scores is Normally
distributed with mean and variance: μx-y = μx – μy = 110 – 100 = 10 σ2
x-y = σ2x + σ2
y = 102 + 82 = 164 √(164) = 12.8, X – Y has the N(10, 12.8) distribution.
The probability that Tom wins is: P(X<Y) = P(X – Y < 0) P(Z < (0-10)/12.8) P(Z < .78) = .2177
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