Ethan Cooper (Lead Tutor)

Ethan Cooper (Lead Tutor)
COURSE: JUST 3900 TIPS FOR APLIA Developed By: Ethan Cooper (Lead Tutor) John Lohman Michael Mattocks Aubrey Urwick Chapter 9: The t Statistic

Key Terms: Don’t Forget Notecards
Hypothesis Test (p. 233) Null Hypothesis (p. 236) Alternative Hypothesis (p. 236) Alpha Level (level of significance) (pp. 238 & 245) Critical Region (p. 238) Estimated Standard Error (p. 286) t statistic (p. 286) Degrees of Freedom (p. 287) t distribution (p. 287) Confidence Interval (p. 300) Directional (one-tailed) Hypothesis Test (p. 304)

Formulas Estimated Standard Error: 𝑠 𝑀 = 𝑠 𝑛 = 𝑠 2 𝑛 = 𝑠 2 𝑛
t-Score Formula: 𝑡= 𝑀−𝜇 𝑠 𝑀 estimated Cohen’s d: 𝑚𝑒𝑎𝑛 𝑑𝑖𝑓𝑓𝑒𝑟𝑒𝑛𝑐𝑒 𝑠𝑡𝑎𝑛𝑑𝑎𝑟𝑑 𝑑𝑒𝑣𝑖𝑎𝑡𝑖𝑜𝑛 = 𝑀 𝑡𝑟𝑒𝑎𝑡𝑚𝑒𝑛𝑡 − 𝜇 𝑛𝑜 𝑡𝑟𝑒𝑎𝑡𝑚𝑒𝑛𝑡 𝑠 r2: 𝑟 2 = 𝑡 2 𝑡 2 +𝑑𝑓 𝑑𝑓=𝑛−1

You May Need These Formulas
Sample Mean: 𝑀= 𝑋 𝑛 Definitional Formula for SS: 𝑆𝑆= 𝑋−𝑀 2 Computational Formula for SS: 𝑆𝑆= 𝑋 2 − 𝑋 2 𝑛 Sample Variance: 𝑠 2 = 𝑆𝑆 𝑛−1 Sample Standard Deviation: 𝑠= 𝑠 2 = 𝑆𝑆 𝑛−1

When to Use the t Statistic
Question 1: Under what circumstances is a t statistic used instead of a z-score for a hypothesis test?

When to Use the t Statistic
Question 1 Answer: A t statistic is used instead of a z-score when the population standard deviation (σ) and variance (σ2) are not known.

Estimated Standard Error
Question 2: A sample of n = 9 scores has a SS = 288. Compute the variance for the sample. Compute the estimated standard error for the sample mean.

Estimated Standard Error
Question 2 Answer: 𝑠 2 = 𝑆𝑆 𝑛−1 = −1 = =36 𝑠 𝑀 = 𝑠 2 𝑛 = = 4 =2

Possible Outcomes of a Hypothesis Test
Question 3: A researcher reports a t statistic with df = 20. How many individuals participated in the study?

Possible Outcomes of a Hypothesis Test
Question 3 Answer: 𝑑𝑓=𝑛−1 20=𝑛−1 𝑛=21

Two-Tailed Hypothesis Test Using the t Statistic
Question 4: A sample of n = 4 is selected from a population with a mean of µ = 40. A treatment is administered to the individuals in the sample and, after treatment, the sample has a mean of M = 44 and a variance of s2 = 16. Is this sample sufficient to conclude that the treatment has an effect? (Use a two-tailed test with α = 0.05) If all other factors are held constant and the sample size is increased to n = 16, is the sample sufficient to conclude that the treatment has a significant effect? (Use a two-tailed test with α = 0.05)

Question 4 Answer: Step 1: State hypotheses H0: Treatment has no effect. (µ = 40) H1: Treatment has an effect. (µ ≠ 40) Step 2: Set Criteria for Decision (α = 0.05) Critical t = ± 3.182

df = 3 t Distribution with α = 0.05 Critical region Critical region t = t =

Question 4 Answer: Step 3: Compute sample statistic 𝑠 𝑀 = 𝑠 2 𝑛 = = 4 =2 𝑡= 𝑀−𝜇 𝑠 𝑀 = 44−40 2 = =2.00

df = 3 t Distribution with α = 0.05 Critical region Critical region t = t = 2.00 t =

Question 4 Answer Step 4: Make a decision For a Two-tailed Test: tsample (2.00) < tcritical (3.182) Thus, we fail to reject the null and cannot conclude that the treatment has an effect. If < tsample < 3.182, fail to reject H0 If tsample ≤ or tsample ≥ 3.182, reject H0

Question 4 Answer: Step 1: State hypotheses H0: Treatment has no effect. (µ = 40) H1: Treatment has an effect. (µ ≠ 40) Step 2: Set Criteria for Decision (α = 0.05) Critical t = ± 2.131

df = 15 t Distribution with α = 0.05 Critical region Critical region t = t =

Question 4 Answer: Step 3: Compute sample statistic 𝑠 𝑀 = = 1 =1 𝑡= 𝑀−𝜇 𝑠 𝑀 = 44−40 1 = =4.00

df = 15 t Distribution with α = 0.05 Critical region Critical region t = t = t = 4.00

Question 4 Answer: Step 4: Make a decision For a Two-tailed Test: tsample (4.00) < tcritical (2.131) Thus, we reject the null and conclude that the treatment has an effect. If < tsample < 2.131, fail to reject H0 If tsample ≤ or tsample ≥ 2.131, reject H0

One-Tailed Hypothesis Test Using the t Statistic
Question 5: Dr. Johnson is conducting research on a new supplement that claims to improve physical performance. The average 40 yard dash time for college football players is µ = 4.65 seconds. A sample of n = 25 players is chosen to test this supplement. Each player is given the supplement, and, 1 hour later, 40 yard dash time is measured for each player. The average time for this sample is M = 4.57 seconds with SS = 3.6. Dr. Anderson would like to use a hypothesis test with α = 0.05 to evaluate the effectiveness of the supplement. Use a one-tailed test to determine whether the supplement produces a significant decrease in 40 yard dash times.

Question 5 Answer: Step 1: State hypotheses H0: Supplement does not decrease 40 yard dash times. (µ ≥ 4.65) H1: Supplement does decrease 40 yard dash times. (µ < 4.65) Step 2: Set Criteria for Decision (α = 0.05) Critical t:

df = 24 t Distribution with α = 0.05 Critical region Because this is a one-tailed test‚ there is only one critical region. t =

Question 5 Answer: Step 3: Compute sample statistic 𝑠 2 = 𝑆𝑆 𝑛−1 = −1 = =0.15 𝑠 𝑀 = = =0.08 𝑡= 𝑀−𝜇 𝑠 𝑀 = 4.57− = − =−1.00

df = 24 t Distribution with α = 0.05 Critical region Because this is a one-tailed test‚ there is only one critical region. t = t = -1.00

One-tailed Hypothesis Test
Question 5 Answer: Step 4: Make a decision For a One-tailed Test: tsample (-1.00) > tcritical (-1.711) Thus, we fail to reject the null and cannot conclude that the supplement decreases 40 yard dash times. If tsample > , fail to reject H0 If tsample ≤ , reject H0

Estimated Cohen’s d and r2
Question 6: A sample of n = 16 is selected from a population with a mean of µ = 80. A treatment is administered to the sample and, after treatment, the sample is found to be M = 86 with a standard deviation of s = 8. Find estimated Cohen’s d. Find r2.

Question 6a Answer: estimated Cohen’s d: 𝑚𝑒𝑎𝑛 𝑑𝑖𝑓𝑓𝑒𝑟𝑒𝑛𝑐𝑒 𝑠𝑡𝑎𝑛𝑑𝑎𝑟𝑑 𝑑𝑒𝑣𝑖𝑎𝑡𝑖𝑜𝑛 = 𝑀 𝑡𝑟𝑒𝑎𝑡𝑚𝑒𝑛𝑡 − 𝜇 𝑛𝑜 𝑡𝑟𝑒𝑎𝑡𝑚𝑒𝑛𝑡 𝑠 d = 86−80 8 = 6 8 =0.75 This is a medium to large effect. Remember: This week in Aplia, if d falls between 0.2 and 0.5, it is a small to medium effect. If d falls between 0.5 and 0.8, it is a medium to large effect.

Question 6b Answer: 𝑟 2 = 𝑡 2 𝑡 2 +𝑑𝑓 Find t and df. 𝑠 𝑀 = 𝑠 𝑛 = = 8 4 =2.00 𝑡= 𝑀−𝜇 𝑠 𝑀 = 86−80 2 = =3.00 𝑟 2 = 𝑡 2 𝑡 2 +𝑑𝑓 = = = 9 24 =0.375=37.5% 𝑑𝑓=𝑛−1=16−1=15 This is a large effect.

Confidence Intervals Question 7: A sample of n = 16 is selected from a population with a mean of µ = 80. A treatment is administered to the sample and, after treatment, the sample is found to be M = 86 with a standard deviation of s = 8. Find the 95% confidence interval for the population mean after treatment.

Confidence Intervals Question 7 Answer:
Step #1: Look up the corresponding t values in the t distribution table for scores that crop the middle 95% of the distribution. This means that you need to have 2.5% in each tail. Calculate the degrees of freedom for t : df = n – 1 = = 15 Now look up the values of t with 15 df for a 1 tail test at or a 2 tail test at 0.05: t = +/

Confidence Intervals df = 15 Middle 95% of t distribution
2.5% in the lower tail 2.5% in the upper tail t = t =

Confidence Intervals Step #2: Calculate the bounded values of the interval. To do this, you must use M and sM as obtained from the sample data and plug these values into the estimation formula: μ = M ± t*sM μ = M ± t*sM = 86 +/- (2.131)*(2.00) μlower = M - t*sM = (2.131)*(2.00) = μupper = M + t*sM = 86 + (2.131)*(2.00) =

Confidence Intervals Step #3: Summarize the findings
After treatment our population mean should fall between μ = and μ = We are 95% confident that the true population mean is located within this interval. Value for lower boundary of 95% confidence interval Value for upper boundary of 95% confidence interval Values that fall in the middle of the 95% CI 81.738 M = 86 90.262

Frequently Asked Questions FAQs
Will we be asked to remember formulas and concepts from past chapters? Like all math classes, statistics is a course that builds on itself as the semester progresses. Therefore, it is entirely possible that either Aplia, the test, or both will expect you to remember formulas and concepts from previous chapters. There is an example on the next slide.

The following sample was obtained from a population with unknown parameters. Scores: 6, 12, 0, 3, 4 Compute the sample mean and standard deviation. Compute the estimated standard error for M.

Sample Mean: 𝑀= 𝑋 𝑛 = = 25 5 =5 Definitional Formula for SS: 𝑆𝑆= 𝑋−𝑀 2 X X - M (X – M)2 6 6 – 5 = 1 (1)2 = 1 12 12 – 5 = 7 (7)2 = 49 0 – 5 = -5 (-5)2 = 25 3 3 – 5 = -2 (-2)2 = 4 4 4 – 5 = -1 (-1)2 = 1 SS = 80

Sample Variance: 𝑠 2 = 𝑆𝑆 𝑛−1 = 80 5−1 = =20 Sample Standard Deviation: 𝑠= 𝑠 2 = 20 =4.47 Estimated Standard Error: 𝑠 𝑀 = 𝑠 𝑛 = =2.00

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