Chapter 2 Simple Comparative Experiments Solutions
[Pages:488]Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
Chapter 2
Simple Comparative Experiments
Solutions
2-1 The breaking strength of a fiber is required to be at least 150 psi. Past experience has indicated that the standard deviation of breaking strength is V = 3 psi. A random sample of four specimens is tested. The results are y1=145, y2=153, y3=150 and y4=147.
(a) State the hypotheses that you think should be tested in this experiment.
H0: P = 150
H1: P > 150
(b) Test these hypotheses using D = 0.05. What are your conclusions?
n = 4, V = 3, y = 1/4 (145 + 153 + 150 + 147) = 148.75
zo
y Po V
148.75 150 3
1.25 3
0.8333
n
4
2
Since z0.05 = 1.645, do not reject. (c) Find the P-value for the test in part (b).
From the z-table: P # 1 >0.7967 2 30.7995 0.7967@ 0.2014
(d) Construct a 95 percent confidence interval on the mean breaking strength. The 95% confidence interval is
y zD 2
V n
d
P
d
y
zD 2
V n
148.75 1.963 2 d P d 148.75 1.963 2
145.81 d P d 151.69
2-2 The viscosity of a liquid detergent is supposed to average 800 centistokes at 25qC. A random sample of 16 batches of detergent is collected, and the average viscosity is 812. Suppose we know that the standard deviation of viscosity is V = 25 centistokes.
(a) State the hypotheses that should be tested.
H0: P = 800
H1: P z 800
(b) Test these hypotheses using D = 0.05. What are your conclusions?
2-1
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
zo
y Po V
812 800 25
12 25
1.92
n
16
4
Since zD/2 = z0.025 = 1.96, do not reject.
(c) What is the P-value for the test? P 2(0.0274) 0.0549
(d) Find a 95 percent confidence interval on the mean.
The 95% confidence interval is
y zD 2
V n
d P d y zD 2
V n
812 1.9625 4 d P d 812 1.9625 4
812 12.25 d P d 812 12.25
799.75 d P d 824.25
2-3 The diameters of steel shafts produced by a certain manufacturing process should have a mean diameter of 0.255 inches. The diameter is known to have a standard deviation of V = 0.0001 inch. A random sample of 10 shafts has an average diameter of 0.2545 inches.
(a) Set up the appropriate hypotheses on the mean P.
H0: P = 0.255 H1: P z 0.255 (b) Test these hypotheses using D = 0.05. What are your conclusions?
n = 10, V = 0.0001, y = 0.2545
Since z0.025 = 1.96, reject H0.
zo
y Po V
0.2545 0.255 0.0001
15.81
n
10
(c) Find the P-value for this test. P=2.6547x10-56
(d) Construct a 95 percent confidence interval on the mean shaft diameter.
The 95% confidence interval is
y zD 2
V n
d P d y zD 2
V n
0.2545
1.96
? ??
0.0001 10
? ??
d
P
d
0.2545
1.96
? ??
0.0001 10
? ??
0.254438 d P d 0.254562
2-4 A normally distributed random variable has an unknown mean P and a known variance V2 = 9. Find the sample size required to construct a 95 percent confidence interval on the mean, that has total width of 1.0.
2-2
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
Since y a N(P,9), a 95% two-sided confidence interval on P is
y zD2
V n
d
P
d
y zD2
V n
y (1.96) 3 d P d y (1.96) 3
n
n
If the total interval is to have width 1.0, then the half-interval is 0.5. Since z /2 = z0.025 = 1.96,
1.96 3 n 0.5
n 1.963 0.5 11.76 n 11.762 138.30 # 139
2-5 The shelf life of a carbonated beverage is of interest. Ten bottles are randomly selected and tested, and the following results are obtained:
Days
108
138
124
163
124
159
106
134
115
139
(a) We would like to demonstrate that the mean shelf life exceeds 120 days. Set up appropriate hypotheses for investigating this claim.
H0: P = 120
H1: P > 120
(b) Test these hypotheses using D = 0.01. What are your conclusions?
y = 131
s2 = [ (108 - 131)2 + (124 - 131)2 + (124 - 131)2 + (106 - 131)2 + (115 - 131)2 + (138 - 131)2 + (163 - 131)2 + (159 - 131)2 + (134 - 131)2 + ( 139 - 131)2 ] / (10 - 1)
s2 = 3438 / 9 = 382 s 382 19.54
to
y Po sn
131 120 1.78 19.54 10
since t0.01,9 = 2.821; do not reject H0
Minitab Output T-Test of the Mean
Test of mu = 120.00 vs mu > 120.00
Variable
N
Shelf Life 10
Mean 131.00
StDev SE Mean
19.54
6.18
T Confidence Intervals
T 1.78
P 0.054
2-3
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
Variable
N
Shelf Life 10
Mean 131.00
StDev SE Mean
99.0 % CI
19.54
6.18 ( 110.91, 151.09)
(c) Find the P-value for the test in part (b). P=0.054
(d) Construct a 99 percent confidence interval on the mean shelf life.
The 95% confidence interval is y tD 2,n1
s n
dP
d
y
tD 2 ,n1
s n
131
3.250
? ??
1954 10
? ??
d
P
d
131
3.250
? ??
1954 10
? ??
110.91 d P d 151.09
2-6 Consider the shelf life data in Problem 2-5. Can shelf life be described or modeled adequately by a normal distribution? What effect would violation of this assumption have on the test procedure you used in solving Problem 2-5?
A normal probability plot, obtained from Minitab, is shown. There is no reason to doubt the adequacy of the normality assumption. If shelf life is not normally distributed, then the impact of this on the t-test in problem 2-5 is not too serious unless the departure from normality is severe.
Normal Probability Plot for Shelf Life ML Estimates
Percent
99
ML Estimates
Mean 131
95
StDev 18.5418
90
80
Goodness of Fit
70
AD*
1.292
60
50
40
30
20
10 5
1
86
96
106
116
126
136
146
156
166
176
Data
2-7 The time to repair an electronic instrument is a normally distributed random variable measured in hours. The repair time for 16 such instruments chosen at random are as follows:
Hours
159
280
101
212
224
379
179
264
222
362
168
250
149
260
485
170
2-4
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
(a) You wish to know if the mean repair time exceeds 225 hours. Set up appropriate hypotheses for investigating this issue. H0: P = 225 H1: P > 225
(b) Test the hypotheses you formulated in part (a). What are your conclusions? Use D = 0.05.
y = 247.50 s2 =146202 / (16 - 1) = 9746.80
s 9746.8 98.73
to
y Po s
241.50 225 98.73
0.67
n
16
since t0.05,15 = 1.753; do not reject H0
Minitab Output T-Test of the Mean
Test of mu = 225.0 vs mu > 225.0
Variable
N
Hours
16
Mean 241.5
StDev SE Mean
98.7
24.7
T Confidence Intervals
Variable
N
Hours
16
Mean 241.5
StDev SE Mean
98.7
24.7 (
T 0.67
P 0.26
95.0 % CI 188.9, 294.1)
(c) Find the P-value for this test. P=0.26
(d) Construct a 95 percent confidence interval on mean repair time.
The 95% confidence interval is y tD 2,n1
s n
dP
d
y tD 2 ,n1
s n
241.50
2.131
? ??
98.73 16
? ??
d
P
d
241.50
2.131
? ??
98.73 16
? ??
188.9 d P d 294.1
2-8 Reconsider the repair time data in Problem 2-7. Can repair time, in your opinion, be adequately modeled by a normal distribution?
The normal probability plot below does not reveal any serious problem with the normality assumption.
2-5
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
Percent
99
95 90 80 70 60 50 40 30 20 10 5
1
50
Normal Probability Plot for Hours ML Estimates
ML Estimates Mean 241.5 StDev 95.5909
Goodness of Fit
AD*
1.185
150
250
350
450
Data
2-9 Two machines are used for filling plastic bottles with a net volume of 16.0 ounces. The filling processes can be assumed to be normal, with standard deviation of V1 = 0.015 and V2 = 0.018. The quality engineering department suspects that both machines fill to the same net volume, whether or not this volume is 16.0 ounces. An experiment is performed by taking a random sample from the output of each machine.
Machine 1 16.03 16.01 16.04 15.96 16.05 15.98 16.05 16.02 16.02 15.99
Machine 2 16.02 16.03 15.97 16.04 15.96 16.02 16.01 16.01 15.99 16.00
(a) State the hypotheses that should be tested in this experiment.
H0: P1 = P2
H1: P1 z P2
(b) Test these hypotheses using D=0.05. What are your conclusions?
y1 16.015 V1 0.015 n1 10
zo
y1 y2
V12 n1
V
2 2
n2
y2 16.005 V2 0.018 n2 10
16.015 16.018 1.35 0.0152 0.0182
10 10
z0.025 = 1.96; do not reject (c) What is the P-value for the test? P=0.1770
(d) Find a 95 percent confidence interval on the difference in the mean fill volume for the two machines.
2-6
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
The 95% confidence interval is
y1 y2 zD 2
V
2 1
n1
V
2 2
n2
d P1 P 2 d y1 y2 zD 2
V
2 1
n1
V
2 2
n2
(16.015 16.005) (19.6)
0.0152 10
0.0182 10
d P1 P2
d (16.015 16.005) (19.6)
0.0152 10
0.0182 10
0.0045 d P1 P 2 d 0.0245
2-10 Two types of plastic are suitable for use by an electronic calculator manufacturer. The breaking
strength of this plastic is important.
and n2 = 12 we obtain y 1 = 162.5
It is and
known
y2 =
1t5h5at.0V. 1
=ThVe2
= 1.0 psi. From random company will not adopt
samples plastic 1
oufnnle1s=s
10 its
breaking strength exceeds that of plastic 2 by at least 10 psi. Based on the sample information, should they
use plastic 1? In answering this questions, set up and test appropriate hypotheses using D = 0.01.
Construct a 99 percent confidence interval on the true mean difference in breaking strength.
H0: P1 - P2 =10
y1 162.5 V1 1 n1 10
H1: P1 - P2 >10
y2 155.0 V2 1 n2 10
zo
y1 y2 10
V12 n1
V
2 2
n2
162.5 155.0 10
12 10
12 12
5. 85
z0.01 = 2.225; do not reject
The 99 percent confidence interval is
y1 y2 zD 2
V
2 1
n1
V
2 2
n2
d P1 P 2 d y1 y2
zD2
V
2 1
V
2 2
n1 n2
(162.5 155.0) (2.575)
12 10
12 12
d
P 1
P2
d
(162.5 155.0) (2.575)
12 12 10 12
6.40 d P1 P 2 d 8.60
2-11 The following are the burning times of chemical flares of two different formulations. The design engineers are interested in both the means and variance of the burning times.
Type 1
65
82
81
67
57
59
66
75
82
70
Type 2
64
56
71
69
83
74
59
82
65
79
(a) Test the hypotheses that the two variances are equal. Use D = 0.05.
2-7
Solutions from Montgomery, D. C. (2001) Design and Analysis of Experiments, Wiley, NY
H0
:
V
2 1
V
2 2
S1 9.264
H1:
V
2 1
z
V
2 2
S2 9.367
F0
S12
S
2 2
85.82 87.73
0.98
F0.025,9,9 4.03
F0.975,9,9
1 F0.025,9,9
1 4.03
0.248 Do not reject.
(b) Using the results of (a), test the hypotheses that the mean burning times are equal. Use D = 0.05. What is the P-value for this test?
S
2 p
(n1
1)S12
(n2
1)
S
2 2
n1 n2 2
1561.95 18
86.775
S p 9.32
t0
y1 y2
Sp
1 n1
1 n2
70.4 70.2
9.32
1 10
1 10
0.048
t0.025,18 2.101 Do not reject.
From the computer output, t=0.05; do not reject. Also from the computer output P=0.96
Minitab Output Two Sample T-Test and Confidence Interval
Two sample T for Type 1 vs Type 2
N Type 1 10 Type 2 10
Mean 70.40 70.20
StDev 9.26 9.37
SE Mean 2.9 3.0
95% CI for mu Type 1 - mu Type 2: ( -8.6, 9.0) T-Test mu Type 1 = mu Type 2 (vs not =): T = 0.05 P = 0.96 DF = 18
Both use Pooled StDev = 9.32
(c) Discuss the role of the normality assumption in this problem. Check the assumption of normality for both types of flares.
The assumption of normality is required in the theoretical development of the t-test. However, moderate departure from normality has little impact on the performance of the t-test. The normality assumption is more important for the test on the equality of the two variances. An indication of nonnormality would be of concern here. The normal probability plots shown below indicate that burning time for both formulations follow the normal distribution.
2-8
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