Why should I choose AnalystNotes?

AnalystNotes specializes in helping candidates pass. Period.

Find out more

Basic Question 2 of 8

A consumer group wants to prove that the average hospital costs are more than $931 per day. The group randomly samples 60 accounts and finds a sample mean of $950. The hypothesis test is at an a-level of 5% and assumes a s of $50. The p-value is ______% (to the nearest 0.1%).

A. 5.0%
B. 0.2%
C. 99.8%
Check Answer Previous Q Next Q Print

User Contributed Comments 13

User Comment
GeoffT Need z-table
danlan (950-931)/(50/sqrt(60))=2.94, how to get 0.9984?
lockedin From the z-table, half the area under the curve for 2.94 = 0.4984. The total area for 2.94 is 0.4984 x 2 = 0.9968. Therefore, p = 1 - 0.9968 = 0.32%. I think the 0.9984 from the answer is wrong. Anyone else?
charlie The answer is correct. Notice this is a one-tailed test so 0.5 + 0.4984 = 0.9984.
Janey YOu dont need to calculate this question. P is always less than the level of significance so answer has to be 0.2%
xcye Janey, that's not true, p-value is only less than the level of significance if you reject the Ho!
SuperKnight In this case you don't really need to calculate the p-value to know that it is lower than 5%, when you get the z-value of 2.94.. you know that its greater than 2.58 which makes up the 99% confidence interval (meaning alpha is 0.5% in each tail).. so you know that your value has to be even lower than 0.5%, in this case being 0.2%.
bantoo great wisdom and common sense janey
johntan1979 SuperKnight is THE MAN!
gill15 Janey: P is not always less then significance. There can be large p values and that would indicate we would NOT reject the null hypothesis. Thats the point of calculating it.
sgossett86 I get how we found the Z score, and I get that it gets plugged into the equation and that it will come out as a probability using (1-x), but I don't really understand anything else about it. It doesn't seem like we used Alpha at all in the problem.. and what is this answer really saying??
Shaan23 Sgoss - we are NOT using alpha in these questions. First all we're doing is finding the z critical value which is 2.94 here. That percentage when you look up in the Ztable is .2%.

That .2% all it means is that value of significance is REQUIRED for the null hypothesis to be rejected.
jgoff508 Wow, helpful question .
You need to log in first to add your comment.
Your review questions and global ranking system were so helpful.
Lina

Lina

Learning Outcome Statements

construct hypothesis tests and determine their statistical significance, the associated Type I and Type II errors, and power of the test given a significance level

CFA® 2024 Level I Curriculum, Volume 1, Module 8.