2)Let D be the difference between two different measurements of pH. What is the
ID: 2930635 • Letter: 2
Question
2)Let D be the difference between two different measurements of pH. What is the standard deviation of D? Remember that D can be both negative and positive!
3)What is the probability that the difference D should be greater than 0.01? That is, what is the probability that two measurements will differ more than 0.01 from each other? Remember that D can be both negative and positive!
4)you have taken four samples from the solution and found these four values: 7.58, 7.49, 7.62 and 7.55.Find a 95% confidence interval
5)How many measurements must we make at least to ensure that the confidence interval does not exceed 0.05?
Explanation / Answer
Solution
Given Xi ~ N(µ, 0.05)
Part (1)
The likelihood that a random observation Xi shall deviate more than 0.01 from the true value
= P(|Xi - µ| > 0.01)
= P(|{(Xi - µ)/0.05}| > (0.01/0.05)
= P(|Z| > 0.2), where Z ~ N(0, 1)
= 0.8414 ANSWER [using Excel Function on N(0, 1)]
Part (2)
Let Xi and Xj be two independent determinations. Then, their difference, D = (Xi – Xj) or (Xj – Xi).
So, variance of D = V(D) = V(Xi) + V(Xj) + V(Xj) + V(Xi) = 4V(X) since Xi and Xj are independent and identically distributed.
So, standard deviation of D = 2SD(Xi) = 2 x 0.05 = 0.1 ANSWER
Part (3)
Since D = (Xi – Xj), Xi ~ N(µ, 0.05) and Xj ~ N(µ, 0.05), D ~ N(0, 0.052)
So, probability that the difference D should be greater than 0.01
= P(|D| > 0.01)
= P(|Z| > (0.01/0.052)
= P[|Z| > {(2)/10}]
= P[|Z| > 0.1414)
= 0.8876 ANSWER
Part (4)
95% confidence interval = {Xbar ± (s/n)(t3, 0.025)} where
Xbar = sample mean, s = sample standard deviation, n = sample size and t3, 0.025 = upper 2.5% point of t-distribution with degrees of freedom = 3
Calculations on the given sample values, 7.58, 7.49, 7.62 and 7.55:
=
0.05
n-1
3
n =
4
sqrtn
2
Xbar =
7.56
s =
0.054772256
tn-1, /2 =
3.182446305
95% CI for
7.56
±
0.087154881
Lower Bound =
7.47284512
Upper Bound =
7.64715488
=
0.05
n-1
3
n =
4
sqrtn
2
Xbar =
7.56
s =
0.054772256
tn-1, /2 =
3.182446305
95% CI for
7.56
±
0.087154881
Lower Bound =
7.47284512
Upper Bound =
7.64715488
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