1 / 102

Chapter 6 Continuous Random Variables

Chapter 6 Continuous Random Variables. Chapter 6. Continuous Random Variables. Reminder: Continuous random variable takes infinitely many values Those values can be associated with measurements on a continuous scale (without gaps or interruptions). Example: Uniform Distribution.

samr
Download Presentation

Chapter 6 Continuous Random Variables

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Chapter 6Continuous Random Variables

  2. Chapter 6. Continuous Random Variables Reminder: Continuous random variabletakes infinitely many values Those values can be associated with measurements on a continuous scale (without gaps or interruptions)

  3. Example: Uniform Distribution A continuous random variable has a uniform distribution if its values are spread evenly over a certain range. pg 251

  4. Example: Uniform Distribution A continuous random variable has a uniform distribution if its values are spread evenly over a certain range. Example: voltage output of an electric generator is between 123 V and 125 V. The actual voltage level may be anywhere in this range.

  5. Using Area to Find Probability Given the uniform distribution illustrated, find the probability that a randomly selected voltage level is greater than 124.5 volts.

  6. Using Area to Find Probability Given the uniform distribution illustrated, find the probability that a randomly selected voltage level is greater than 124.5 volts. Shaded area represents voltage levels greater than 124.5 volts.

  7. Using Area to Find Probability Given the uniform distribution illustrated, find the probability that a randomly selected voltage level is greater than 124.5 volts. Shaded area represents voltage levels greater than 124.5 volts. The area corresponds to probability: P = 0.25.

  8. Density Curve A density curve is the graph of a continuous probability distribution. pg 252

  9. Density Curve A density curve is the graph of a continuous probability distribution. It must satisfy the following properties: 1. The total area under the curve must equal 1.

  10. Density Curve A density curve is the graph of a continuous probability distribution. It must satisfy the following properties: 1. The total area under the curve must equal 1. 2. Every point on the curve must have a vertical height that is 0 or greater. (That is, the curve cannot fall below the x-axis.)

  11. Density Curve A density curve is the graph of a continuous probability distribution. It must satisfy the following properties: • 1. The total area under the curve must equal 1. • Every point on the curve must have a vertical height that is 0 or greater. (That is, the curve cannot fall below the x-axis.) • Every point on the curve must have a vertical height that is 1 or less

  12. Area and Probability Because the total area under the density curve is equal to 1, there is a correspondence between area and probability.

  13. Standard Normal Distribution pg 253

  14. Standard Normal Distribution Standard normal distributionhas the following properties:

  15. Standard Normal Distribution • Standard normal distributionhas the following properties: • Its graph is bell-shaped

  16. Standard Normal Distribution • Standard normal distributionhas the following properties: • Its graph is bell-shaped • It is symmetric about its center

  17. Standard Normal Distribution • Standard normal distributionhas the following properties: • Its graph is bell-shaped • It is symmetric about its center • Its mean is equal to 0 ( = 0)

  18. Standard Normal Distribution • Standard normal distributionhas the following properties: • Its graph is bell-shaped • It is symmetric about its center • Its mean is equal to 0 ( = 0) • Its standard deviation is 1 ( = 1)

  19. Standard Normal Distribution The standard normal distribution is a bell-shaped probability distribution with  = 0 and  = 1. The total area under its density curve is equal to 1.

  20. Standard Normal Distribution: Areas and Probabilities Probability that the standard normal random variable takes values less than z is given by the area under the curve from the left up to z. (blue area in the figure)

  21. Examples • Thermometers are supposed to give readings of 0ºC at the freezing point of water. • Since these instruments are not perfect, some of them give readings below 0ºC and others above 0ºC. • Assume the following for the readings: • The mean is 0ºC • The standard deviation is 1ºC • They are normally distributed

  22. Example 1 If one thermometer is randomly selected, find the probability that, at the freezing point of water, the reading is less than 1.27º.

  23. Example 1 If one thermometer is randomly selected, find the probability that, at the freezing point of water, the reading is less than 1.27º. µ = 0 σ = 1 P (z < 1.27) = ???

  24. Look at the Normal Distribution Table A-2

  25. Look at Table A-2 pg 255

  26. Example – Thermometers (continued) P (z < 1.27) = 0.8980

  27. Example – Thermometers (continued) P (z < 1.27) = 0.8980 The probability of randomly selecting a thermometer with a reading less than 1.27º is 0.8980.

  28. Example – Thermometers (continued) P (z < 1.27) = 0.8980 Or 89.80% of randomly selected thermometers will have readings below 1.27º.

  29. Using Table A-2 • It is designed only for the standard normal distribution, which has a mean of 0 and a standard deviation of 1. • It is on two pages, with one page for negativez-scores and the other page for positivez-scores. • 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.

  30. Using Table A-2 4. When working with a graph, avoid confusion between z-scores and areas. z Score Distance along horizontal scale of the standard normal distribution; refer to the leftmost column and top rowofTable 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.

  31. Working with Excel As before, click the ∑ button, go to Additional Functions, and specify Statistical. Then scroll down to NORMDIST

  32. Working with Excel Enter the x value, the Mean, the Standard Deviation, and “true” in the cumulative box. Then click OK.

  33. Working with Excel The answer is displayed in the cell.

  34. Example - Thermometers Again If thermometers have an average (mean) reading of 0 degrees and a standard deviation of 1 degree for freezing water, and if one thermometer is randomly selected, find the probability that it reads (at the freezing point of water) above –1.23 degrees. Probability of randomly selecting a thermometer with a reading above –1.23º is 0.8907. P (z > –1.23) = 0.8907

  35. Example - cont 89.07% of the thermometers have readings above –1.23 degrees. P (z > –1.23) = 0.8907

  36. Athermometer is randomly selected. Find the probability that it reads (at the freezing point of water) between–2.00 and 1.50 degrees. Example - Thermometers III The probability that the chosen thermometer has a reading between – 2.00 and 1.50 degrees is 0.9104. P (z < –2.00) = 0.0228 P (z < 1.50) = 0.9332 P (–2.00 < z < 1.50) = 0.9332 –0.0228 = 0.9104

  37. Example - continued Athermometer is randomly selected. Find the probability that it reads (at the freezing point of water) between–2.00 and 1.50 degrees. If many thermometers are selected and tested at the freezing point of water, then 91.04% of them will read between –2.00 and 1.50 degrees. P (z < –2.00) = 0.0228 P (z < 1.50) = 0.9332 P (–2.00 < z < 1.50) = 0.9332 –0.0228 = 0.9104

  38. Methods for Finding Normal Distribution Areas

  39. Normal Distribution by TI-83/84 • Press 2nd VARS to get the DISTR menu • Scroll down to normalcdf( and press ENTER • Type in two values: Lower, Upper (separated by commas) and close the parenthesis • You see a line like normalcdf(-2.00,1.50) • Press ENTER and read the probability.

  40. 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.

  41. P(a < z < b) = P(z < b) – P(z < a) P(a < z < b) P(z < b) P(z < a)

  42. P(a < z < b) = P(z < b) – P(z < a) Example: P(-1.5 < z < 0.7) = P(z < 0.7) – P(z < -1.5) P(-1.5 < z < 0.7) = 0.7580364 – 0.0668072 P(-1.5 < z < 0.7) = 0.6912 P(a < z < b) P(z < b) P(z < a)

  43. Normal Distribution by TI-83/84 (continued) If you do not have an upper value, type 999. Example: for P(z>1.2) enter normalcdf(1.2,999) If you do not have a lower value, type -999. Example: for P(z<0.6) enter normalcdf(-999,0.6)

  44. Special Cases in Table A-2 • If z-score is above 3.49, then the area=0.9999 • If z-score is below -3.49, then the area=0.0001 • Some special values are marked by stars: z-score=1.645 corresponds to the area=0.95 z-score=2.575 corresponds to the area=0.995

  45. Finding z Scores When Given Probabilities pg 253

  46. Finding z Scores When Given Probabilities 5% or 0.05 (z score will be positive) Finding the z-score separating 95% bottom values from 5% top values.

  47. Finding z Scores When Given Probabilities 5% or 0.05 (z score will be positive) 1.645 Finding the z-score separating 95% bottom values from 5% top values.

  48. Finding z Scores When Given Probabilities - cont (One z score will be negative and the other positive) Finding the Bottom 2.5% and Upper 2.5%

  49. Finding z Scores When Given Probabilities - cont (One z score will be negative and the other positive) Finding the Bottom 2.5% and Upper 2.5%

  50. Finding z Scores When Given Probabilities - cont (One z score will be negative and the other positive) Finding the Bottom 2.5% and Upper 2.5%

More Related