independence hypothesizes that two categorical variables are independent within a given population.
A test for homogeneity of proportions hypothesizes that the proportions of the values of a single
categorical variable are the same for more than one population. (c) is incorrect. It is a reversal of the
actual difference between the two designs. (d) is incorrect. You always use count data when
computing chi-square.
The expected value of the cell with the frog is .
- Based on the design of the study this is a test of homogeneity of proportions.
I. H 0 : The proportions of patrons who rate the restaurant Excellent, Good, Fair, and Poor are the
same for the Eastern and Western sides of town.H (^) A : Not all the proportions are the same.
II . We will use the chi-square test for homogeneity of proportions.
Calculation of expected values (using the TI-83/84). yields the following results:
Since all expected values are at least 5, the conditions necessary for
this test are present.
III . , df = (2 – 1)(4 – 1) = 3 ≠ P -value > 0.25
(from Table C). χ 2 cdf(2.86,1000,3)=0.414.
IV . The P- value is larger than any commonly accepted significance level. Thus, we cannot reject H 0 .
We do not have evidence that location influences customer satisfaction.
If n = 15, then df = 15 – 1 = 14. In the table we find the entry in the column for tail probability of
0.02 and the row with 14 degrees of freedom. That value is 26.87. Any value of X 2 larger than 26.87
will yield a P -value less than 0.02.
I. Let p 1 be the true proportion of defects produced on Monday.Let p 2 be the true proportion of defects produced on Tuesday.Let p 3 be the true proportion of defects produced on Wednesday.Let p 4 be the true proportion of defects produced on Thursday.Let p 5 be the true proportion of defects produced on Friday.H 0 : p 1 = p 2 = p 3 = p 4 = p 5 (the proportion of defects is the same each day of the week.)H (^) A : At least one proportion does not equal the others (the proportion of defects is not the same
each day of the week).
II . We will use a chi-square goodness-of-fit test. The number of expected defects is the same for each
day of the week. Because there was a total of 150 defects during the week, we would expect, if the
null is true, to have 30 defects each day. Because the number of expected defects is greater than 5