8970952642

8970952642



454


Chapter 12 Multiple Linear Regression and Certain Nonlinear Regression Models

2

5


2

3


0

1


x

y


Estimatc thc quadratic regression cquation pY\x = 3o + 0\X+ 02X2.

12.8 The Ibllowing is a set ofeoded cxpcrimcntal data on thc comprcssivc strength of a particular alloy at var-ious valucs of thc conccnlration of somc additivc:

Concentration,    Compressive

X    Strength, >■

10.0

25.2

27.3

28.7

15.0

29.8

31.1

27.8

20.0

31.2

32.6

29.7

25.0

31.7

30.1

32.3

30.0

29.4

30.8

32.8

(a)    Estimatc thc quadratic regression cquation p.y\x00 + 0lX+ 02X2.

(b)    Test for lack of fit of thc model.

12.9 The clcctric power consumcd cach month by a Chemical plant is thought to be related to thc avcragc ambient temperaturę xi, thc number of days in thc month X2.lhc avcragc product purity 13, and the tons of product produccd xą. The past ycar's historical data arc available and arc presented in thc following table.

V

21

X2

®3

240

25

24

91

100

236

31

21

90

95

290

45

24

88

110

274

60

25

87

88

301

65

25

91

94

316

72

26

94

99

300

80

25

87

97

296

84

25

86

96

267

75

24

88

110

276

60

25

91

105

288

50

25

90

100

261

38

23

89

98

(a)    Fil a multiple linear regression model using thc abovc data set.

(b)    Prediet power consumption for a month in which Xi = 75°F, X2 = 24 days, 13 = 90%, and x.i = 98 tons.

12.10 Givcn thc data

4 5    6

2 3    4

(a) Fit the cubic model py\x = &o + /?ix-P#2*2/?3X3.

(b) Prediet Y when x = 2.

scorcs of four tests. The data arc as follows:

_ y

XI

X2

24

11.2

56.5

71.0

38.5

43.0

14.5

59.5

72.5

38.2

44.8

17.2

69.2

76.0

42.5

49.0

17.8

74.5

79.5

43.4

56.3

19.3

81.2

84.0

47.5

60.2

24.5

88.0

86.2

47.4

62.0

21.2

78.2

80.5

44.5

58.1

16.9

69.0

72.0

41.8

48.1

14.8

58.1

68.0

42.1

46.0

20.0

80.5

85.0

48.1

60.3

13.2

58.3

71.0

37.5

47.1

22.5

84.0

87.2

51.0

65.2

Estimatc thc regression cocfficicnts in thc model y = bo + biXi+ 62X2+ 63X3+ 64X4.

12.12 The following data rcflcct information taken from 17 U.S. Naval hospitals at various sites around thc world. The regressors arc workload variables, that is, items that result in thc need for pcrsonncl in a hos-pital installation. A brief dcscription of thc variablcs is as follows:

y = monthly labor-hours,

X\ = avcragc da i 1 y paticnl load.

X2 = monthly X-ray cxposurcs,

X3 = monthly occupicd bed-days,

x,j = cligiblc population in the arca/1000.

X5= avcragc lcnglh of paticnt's stay. in days.

Sitc

*1

X2

x3

®5

V

1

15.57

2463

472.92

18.0

4.45

566.52

2

44.02

2048

1339.75

9.5

6.92

696.82

3

20.42

3940

620.25

12.8

4.28

1033.15

4

18.74

6505

568.33

36.7

3.90

1003.62

5

49.20

5723

1497.60

35.7

5.50

1611.37

6

44.92

11520

1365.83

24.0

4.60

1613.27

7

55.48

5779

1687.00

43.3

5.62

1854.17

8

59.28

5969

1639.92

46.7

5.15

2160.55

9

94.39

8461

2872.33

78.7

6.18

2305.58

10

128.02

20106

3655.08

180.5

6.15

3503.93

11

96.00

13313

2912.00

60.9

5.88

3571.59

12

131.42

10771

3921.00

103.7

4.88

3741.40

13

127.21

15543

3865.67

126.8

5.50

4026.52

14

252.90

36194

7684.10

157.7

7.00

10343.81

15

409.20

34703

12446.33

169.4

10.75

11732.17

16

463.70

39204

14098.40

331.4

7.05

15414.94

17

510.22

86533

15524.00

371.6

6.35

18854.45

12.11 The pcrsonncl deparlmenl of a certain indus- The goal herc is to producc an cmpirical cquation that trial firm uscd 12 subjccts in a study to dcterminc thc will estimatc (or prediet) pcrsonncl nccds for Naval relationship bctwccn job performance rating (y) and hospitals. Estimatc thc multiple linear regression cqua-



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