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STATS 330 Revision
- The selling prices (in British pounds) at auction of 32 antique grandfather clocks were
recorded. The age of each clock (in years) and the number of people who participated in
the bidding were also recorded.
Age Bidders Price Age Bidders Price Age Bidders Price - 13 1235 115 12 1080 127 7 845
- 9 1522 156 6 1047 182 11 1979
- 12 1822 132 10 1253 137 9 1297
- 9 946 137 15 1713 117 11 1024
- 8 1147 153 6 1092 117 13 1152
- 10 1336 170 14 2131 182 8 1550
- 11 1884 184 10 2041 143 6 854
- 9 1483 108 14 1055 175 8 1545
- 6 729 179 9 1792 111 15 1175
- 8 1593 111 7 785 115 7 744
5 1356 168 7 1262
(a) A conditional plot of Price versus Age given the level of Bidders was created using coplot.
This plot suggests that Age and Bidders interact.
i. What is meant by the statement“Age and Bidders interact”.
ii. Explain what feature of the conditional plot indicates that there is an interaction
between Age and Bidders (your explanation should clearly identify how the plot would
be different if the two variables did not interact).
[5 marks]
(b) The output for the regression model containing the Age:Bidders interaction is:
Estimate Std. Error t value Pr(>|t|)
(Intercept) 320.4580 295.1413 1.086 0.28684
Age 0.8781 2.0322 0.432 0.66896
Bidders -93.2648 29.8916 -3.120 0.00416 **Age:Bidders 1.2978 0.2123 6.112 1.35e-06 *
Signif. codes: 0 0.001 0.01 0.05 . 0.1 1
Residual standard error: 88.91 on 28 degrees of freedom
Multiple R-squared: 0.9539,Adjusted R-squared: 0.9489
F-statistic: 193 on 3 and 28 DF, p-value: < 2.2e-16
i. Consider the following line of this output.
F-statistic: 193 on 3 and 28 DF, p-value: < 2.2e-16
What does indicate about the fitted model?
ii. Consider the following statement: As the fitted coefficient for Bidders is negative,
this model indicates that E(Price) decreases as the number of bidders increases. Do
you agree with this statement? Explain your answer.
[5 marks]
(c) Suppose that a seller has a clock that is 150 years old.
i. Based on our fitted model, write down the relationship between E(Price) and Bidders
for this clock.
ii. How does this relationship change as the value of Age is increased?
[5 marks]The Stat2Data package in R contains a data set that records the prices of horses advertised for
sale on the internet. The data was collected by a group of students from California Polytechnic
State University. The information they collected for each horse included:
Price – Price in US dollars.
Age – Age of the horse in years.
Height – Height of the horse in hands.
Sex – f=female and m=male.
This data was used to create a data frame horse.df in R.head(horse.df)
Price Age Height Sex- 38000 3 16.75 m
- 40000 5 17.00 m
- 12000 8 16.00 f
- 25000 4 16.25 m
- 35000 8 16.25 f
35000 5 16.50 m
summary(horse.df)
Price Age Height Sex
Min. : 1100 Min. : 0.500 Min. :14.25 f:18
1st Qu.:15750 1st Qu.: 5.000 1st Qu.:16.00 m:29
Median :25000 Median : 7.000 Median :16.50
Mean :27957 Mean : 7.489 Mean :16.33
3rd Qu.:40000 3rd Qu.: 8.500 3rd Qu.:16.75
Max. :60000 Max. :20.000 Max. :17.25
The following regression model was fitted using this data:
horse.lm=lm(log(Price)~Age*Sex+Height,data=horse.df)
summary(horse.lm)
Coefficients:
Estimate Std. Error t value Pr(>|t|)
(Intercept) 4.19038 2.14289 1.955 0.057201 .
Age -0.14882 0.02116 -7.035 1.3e-08 *
Sexm -0.53174 0.29584 -1.797 0.079464 .
Height 0.41017 0.13818 2.968 0.004926 **
Age:Sexm 0.13585 0.03253 4.176 0.000146 *
Residual standard error: 0.4666 on 42 degrees of freedom
Multiple R-squared: 0.6884, Adjusted R-squared: 0.6587
F-statistic: 23.2 on 4 and 42 DF, p-value: 3.582e-10
(a) The fitted model uses log(Price) as the response. The assumptions for the ordinary
regression model are linearity, independence, constant variance and Normality. Which of
these assumptions are affected by using log(Price) rather than Price as the response?marks
(b) For the fitted model, Sex is a factor and its indicator variable is set up using f as the
baseline level. An explanatory variable Age:Sexm which represents the interaction be-
tween Age and Sex has also been set up. For the first six observations of horse.df (given
on the previous page) write down the values of Sexm and Age:Sexm. 2 marks
(c) The output for the anova command is:anova(horse.lm)
Response: log(Price)
Df Sum Sq Mean Sq F value Pr(>F)
Age 1 7.1303 7.1303 32.745 9.955e-07 *
Sex 1 6.9854 6.9854 32.080 1.207e-06 *
Height 1 2.2938 2.2938 10.534 0.0023039 **
Age:Sex 1 3.7970 3.7970 17.437 0.0001465 *
Residuals 42 9.1456 0.2178
The p-value for Sex in this table is much smaller than the p-value for Sexm in the summary
output on the previous page. However the p-value for Age:Sex in this table and that for
Age:Sexm in the summary output are the same. Explain why this occurs. 3 marks
(d) Use the fitted model to compare the impact Age, Sex and Height have on Price.- marks
An advertisement for diamonds was included in the February 18, 2000 edition of The Business
Times. This advertisement gave the following characteristics for 308 diamonds:
price Price in Singapore dollars.
carats Size measured in carats.
colour Colour rating on the GIA colour scale which goes from D (colourless) through Z (light
colour). The diamonds listed all had ratings of D, E, F, G, H or I.
clarity Clarity rating on the GIA clarity scale. The diamonds listed all had ratings of IF
(internally flawless), VVS1, VVS2, VS1 or VS2. VS1 and VS2 indicate very slightly
flawed diamonds whereas VVS1 and VVS2 indicate very very slightly flawed diamonds.
For VS1 and VVS1 the flaw is only visible from the pavilion (bottom) and for VS2 and
VVS2 the flaw is only visible from the crown (top).
cert The certification agency: Gemmological Institute of America (GIA), International Gem-
mological Institute (IGI) or Hoge Raad Voor Diamant (HRD).
This data was read into a data frame named diamond.df in R and the following output
obtained:summary(diamond.df)
carats colour clarity cert price
Min. :0.1800 D:16 IF :44 GIA:151 Min. : 638
1st Qu.:0.3500 E:44 VS1 :81 HRD: 79 1st Qu.: 1625
Median :0.6200 F:82 VS2 :53 IGI: 78 Median : 4215
Mean :0.6309 G:65 VVS1:52 Mean : 5019
3rd Qu.:0.8500 H:61 VVS2:78 3rd Qu.: 7446
Max. :1.1000 I:40 Max. :16008
(a) The diamond data was used to construct a regression model that relates the price of
a diamond to the remaining characteristics. The following set of diagnostic plots was
obtained for the linear model:
diamond1.lm<-lm(price~carats+colour+clarity+cert,data=diamond.df)
plot(diamond1.lm)2000 6000 10000
Based on these plots discuss how well this model fits the data. Give reasons for any
conclusions you reach. (5 marks)
(b) It was decided to modify the regression model by using
√
price as the response. Consider
the following output:diamond2.lm<-lm(price^.5~carats+colour+clarity+cert,data=diamond.df)
new.df=data.frame(carats=1, colour = “F”, clarity=”VS2″, cert=”HRD”)
predict(diamond2.lm,new.df,interval = “confidence”)
fit lwr upr98.00119 97.06094 98.94144
predict(diamond2.lm,new.df,interval = “prediction”)
fit lwr upr98.00119 93.27767 102.7247
i. Use this output to find a 95% confidence interval and a 95% prediction interval for
the price of a 1 carat diamond certified by HRD that has colour“F”and clarity
“VS2”.
ii. In the context of this example, clearly explain why the prediction interval is wider
than the confidence interval. (5 marks)
(c) The factor cert was included in the model since it was thought that the reputation of
the certification agency (GIA, IGI or HRD) may have an impact on price. Consider using
the anova function to evaluate the relevance of cert in the model using an F-test:diamond2.lm<-lm(price^.5~carats+colour+clarity+cert,
data=diamond.df)
anova(diamond2.lm)
Analysis of Variance Table
Df Sum Sq Mean Sq F value Pr(>F)
carats 1 177237 177237 32036.7488 < 2.2e-16 *
colour 5 5227 1045 188.9561 < 2.2e-16 *
clarity 4 2950 737 133.3014 < 2.2e-16 *
cert 2 107 54 9.6783 8.49e-05 *
Residuals 295 1632 6
If the regressors are ordered differently in the model, the value of the F-statistic for cert
changes from 9.6783 to 5617.27 in the ANOVA table.
diamond2A.lm<-lm(price^.5~cert+carats+colour+clarity,
data=diamond.df)
anova(diamond2A.lm)
Analysis of Variance Table
Df Sum Sq Mean Sq F value Pr(>F)
cert 2 62153 31076 5617.27 < 2.2e-16 *
carats 1 115217 115217 20826.30 < 2.2e-16 *
colour 5 5356 1071 193.62 < 2.2e-16 *
clarity 4 2795 699 126.28 < 2.2e-16 *
Residuals 295 1632 6
Both tests result in very small p-values but they are testing different hypotheses.
i. Carefully explain the difference between the tests for cert in these two tables.
ii. Which test is more relevant in investigating whether the reputation of the certifica-
tion agency has an impact on price? Explain your answer. (5 marks)
(d) The output from summary for the
√
price model used in parts (b) and (c) is:
summary(diamond2A.lm)
Call:
lm(formula = price^0.5 ~ cert + carats + colour + clarity,
data = diamond.df)
Coefficients:
Estimate Std. Error t value Pr(>|t|)
(Intercept) 25.62462 0.84435 30.348 < 2e-16 *
certHRD 0.03969 0.35509 0.112 0.911
certIGI -1.80848 0.42466 -4.259 2.77e-05 *
carats 91.47532 0.62917 145.391 < 2e-16 *
colourE -5.52416 0.68862 -8.022 2.47e-14 *
colourF -8.17357 0.64641 -12.645 < 2e-16 *
colourG -10.71430 0.66350 -16.148 < 2e-16 *
colourH -14.12727 0.67184 -21.028 < 2e-16 *
colourI -18.23773 0.70429 -25.895 < 2e-16 *
clarityVS1 -8.45895 0.52868 -16.000 < 2e-16 *
clarityVS2 -10.96488 0.56679 -19.346 < 2e-16 *
clarityVVS1 -2.69994 0.52951 -5.099 6.12e-07 *
clarityVVS2 -5.95314 0.49254 -12.087 < 2e-16 *
Consider the coefficients for the four indicator (dummy) variables used for the factor
clarity.
i. What does the estimated coefficient for clarityVS1 (-8.45895) represent in terms of
the levels of clarity?
ii. What is the estimated difference in the expected
√
price for very very slightly flawed
diamonds where the flaw is only visible from the pavilion (VVS1) and where the flaw
is only visible from the crown (VVS2)?
iii. Suppose we want to formally test (i.e. find a p-value) the hypothesis that there is
no difference in the average price of VVS1 and VVS2 diamonds (given that all other
characteristics are the same). Suggest a simple method of adjusting the regression
model so that the required p-value is calculated for us. (5 marks)Sahoo and H.S. Pandalai (Natural Resources Research, vol. 8, 1999) used logistic regression
to predict the probability of a gold deposit being present based the concentrations of Arsenic
(As) and Antimony (Sb) in ground water samples. Ground water samples were taken from a
total of 64 sites – of these, 28 had a gold deposit present. The concentrations of As and Sb
in the samples were measured as parts per million (ppm).
(a) The fitted model logistic for this data is:gold.glm<-glm(gold~As+Sb,family=binomial,data=gold.df)
summary(gold.glm)
Coefficients:
Estimate Std. Error z value Pr(>|z|)
(Intercept) -4.9664 1.3675 -3.632 0.000281 *
As 1.2490 0.3777 3.307 0.000943 *
Sb 0.9235 0.4486 2.059 0.039518 *Null deviance: 87.720 on 63 degrees of freedom
Residual deviance: 18.306 on 61 degrees of freedom
AIC: 24.306
i. Let pi represent the probability that a gold deposit is present. Write down the logistic
form of the fitted model (i.e. pi = . . .).
ii. Find a 95% confidence interval for the coefficient for As.
iii. Interpret the coefficient for As in terms of the impact of the concentration of As on
the odds of a gold deposit being present.
(5 marks)
(b) The following output was obtained using the anova function.anova(gold.glm,test=”Chisq”)
Terms added sequentially (first to last)
Df Deviance Resid. Df Resid. Dev Pr(>Chi)
NULL 63 87.720
As 1 65.117 62 22.603 7.057e-16 *
Sb 1 4.297 61 18.306 0.03818 *
i. What hypothesis is being tested by the line
As 1 65.117 62 22.603 7.057e-16 *
in this table? What do you conclude from this test?
ii. The output for summary(gold.glm) also provides a test for As.
Estimate Std. Error z value Pr(>|z|)
As 1.2490 0.3777 3.307 0.000943 *
How does this test differ from the test in (i)?
(5 marks)
i. Which points are identified as being usual by these plots? For each of these points
describe what makes it unusual. Note that using HMD and deviance changes as
diagnostics were not covered this semester so you can ignore those two plots and
just look at the Cook’s distance plot.
ii. Briefly describe how you would further investigate the unusual points you identified.
(5 marks)
(d) Suppose the fitted model is to be used to predict the presence of gold deposits for other
sites (it is not known whether gold is present at these sites). A gold deposit is predicted to
be present if the estimated probability is more than one half and is otherwise predicted to
be absent. The following table summarizes the performance of this prediction procedure
when it is applied to the 64 observations in the data set.
Prediction
Actual gold present gold absent
gold present 26 2
gold absent 1 35
i. Based on this table, estimate the sensitivity and the specificity for this prediction
model. Explain why these estimates are too optimistic.
ii. Suggest a different method for estimating the sensitivity and specificity that still
uses the original data but should give more realistic estimates.
(5 marks)The data for this question come from an ecological study conducted by Dr Rick Linhurst
(1979, PhD thesis, North Carolina State). The study focussed on the relationship between
the biomass (weight per unit area) of spartina (a type of grass found in coastal salt marshes)
and the properties of the soil at different sites in the Cape Fear estuary of North Carolina.
Data was collected from three different locations: Oak Island (OI), Smith Island (SI) and
Snow’s Marsh (SM). At each location, there were areas where the spartina vegetation was
short (SHRT), other areas where it was tall (TALL) and still other areas where it had died
and re-vegetated (DVEG). For each combination of location and vegetation type, five sites
were selected and the biomass of spartina was measured.
Consider the following conditional plot for this data.
(a) Consider creating a regression model that relates biomass (BIO) to location (Loc) and
vegetation type (Type). The plot on the previous page indicates that it may be appro-
priate to
i. use log(BIO) as the response and
ii. include the Loc:Type interaction in the model.
Explain how the plot indicates that each of these actions may be appropriate. [4 marks]
(b) Consider a regression model that uses the logged biomass (BIO) as the response and
vegetation type (Type) and location (Loc) as regressors.model1.lm<-lm(log(BIO) ~ Loc*Type,data=spartina.df)
summary(model1.lm)
Coefficients:
Estimate Std. Error t value Pr(>|t|)
(Intercept) 6.6805 0.1466 45.575 < 2e-16 *
LocSI -0.8659 0.2073 -4.177 0.000179 *
LocSM 0.6189 0.2073 2.985 0.005066 **
TypeSHRT -0.3688 0.2073 -1.779 0.083668 .
TypeTALL 0.4512 0.2073 2.176 0.036171 *
LocSI:TypeSHRT 0.2311 0.2932 0.788 0.435751
LocSM:TypeSHRT -0.7450 0.2932 -2.541 0.015496 *
LocSI:TypeTALL 1.0486 0.2932 3.577 0.001015 **
LocSM:TypeTALL -0.4358 0.2932 -1.486 0.145882Residual standard error: 0.3278 on 36 degrees of freedom
Multiple R-squared: 0.8195,Adjusted R-squared: 0.7794
F-statistic: 20.43 on 8 and 36 DF, p-value: 3.142e-11
Use this model to estimate each of the following:
i. the biomass of spartina for short vegetation at Smith Island.
ii. the difference in the biomass of spartina between re-vegetated sites (DVEG) at Snow’s
Marsh and at Oak Island.
iii. the difference in the biomass of spartina short vegetation and tall vegetation at Smith
Island. [6 marks]
(c) Recall that for each combination of location and vegetation type, five sites were selected
and the biomass of spartina was measured. Characteristics of the soil were also measured
at each site. One of these characteristics was the pH which indicates the acidity or
alkalinity of the soil. The following search procedure was used to see whether it would
be useful to include pH (or interactions involving pH) in the model.
model2.lm<-lm(log(BIO) ~ Loc+Type+pH,data=spartina.df)
model3.lm<-lm(log(BIO) ~ LocTypepH,data=spartina.df)
spartstepln.lm<-step(object=model2.lm,scope=formula(model3.lm),
direction=”both”)
Briefly, describe the following aspects of this search procedure.
i. The starting model.
ii. The set of regressors being considered.
iii. The procedure used at each step to select the next model. [4 marks]
(d) Consider the model selected by this search procedure.
Call:
lm(formula = log(BIO) ~ Loc + Type + pH + Loc:Type + Loc:pH,
data = spartina.df)
Estimate Std. Error t value Pr(>|t|)
(Intercept) 6.92216 0.92315 7.498 1.27e-08 *
LocSI -12.65295 2.75000 -4.601 5.95e-05 *
LocSM -0.62059 1.74134 -0.356 0.723821
TypeSHRT -0.37689 0.17288 -2.180 0.036491 *
TypeTALL 0.39757 0.26485 1.501 0.142840
pH -0.05055 0.19148 -0.264 0.793424
LocSI:TypeSHRT 0.37952 0.24460 1.552 0.130294
LocSM:TypeSHRT -0.55440 0.36236 -1.530 0.135559
LocSI:TypeTALL -13.14536 3.20872 -4.097 0.000255 *
LocSM:TypeTALL -0.49372 0.35519 -1.390 0.173828
LocSI:pH 3.55980 0.80948 4.398 0.000107 *LocSM:pH 0.25336 0.35515 0.713 0.480610
Residual standard error: 0.269 on 33 degrees of freedom
Multiple R-squared: 0.8885,Adjusted R-squared: 0.8514
F-statistic: 23.91 on 11 and 33 DF, p-value: 1.315e-12
Use this model to describe the impact that pH has on the biomass of spartina. [6 marks]The number of different mussel species was recorded in 41 rivers along the east coast of the
USA. Nine possible explanatory variables were recorded and described as follows:
area – the area of drainage basin.
sAC, sAP, sSL, sSV – the number of intermediate rivers to 4 major species-source river
systems: Alabama-Coosa (sAC), Apalachicola (sAP) St. Lawrence (sSL), and Savannah
(sSV).
nitrate – nitrate concentration.
hy – hydronium ion concentration.
solres the amount of solid residue present in the water.
logarea – it was thought that taking the log of the area might improve the model fit so this
was also included as a potential regressor.
Reference: J.J. Sepkoski, Jr., M.A. Rex (1974).“Distribution of Freshwater Mussels: Coastal Rivers as
Biogeographic Islands,”Systematic Zoology, Vol. 23(2), pp. 165-188.
The first six rows of the data frame for the mussels data:head(mussels.df)
species area sAC sAP sSV sSL nitrate solres hy logarea
Penobscot 9 8440 33 28 21 4 0.8 57 4.0 9.0407
Kennebec 8 5960 32 27 20 5 0.4 31 3.2 8.6928
Androscoggin 7 3510 31 26 19 6 0.6 65 2.5 8.1634
Saco 6 1730 30 25 18 7 0.8 33 2.5 7.4559
Merrimac 11 5020 29 24 17 8 2.6 78 6.3 8.5212
Blackstone 8 425 26 21 14 11 8.4 120 20.0 6.0521
The step function was used to conduct two searches for a suitable model using the following
R code:
null.glm<- glm(species~1,family = poisson, data=mussels.df)
full.glm<-glm(species~.,family = poisson, data=mussels.df)
formula(full.glm)
species ~ area + sAC + sAP + sSV + sSL + nitrate + solres + hy + logarea
step1.glm=step(null.glm,scope=formula(full.glm),trace=0,direction=”both”)
summary(step1.glm)
Estimate Std. Error z value Pr(>|z|)
(Intercept) 0.9483756 0.4701266 2.017 0.043667 *
logarea 0.2495191 0.0513711 4.857 1.19e-06 *
sAC -0.0258976 0.0056666 -4.570 4.87e-06 *
solres -0.0022974 0.0006491 -3.540 0.000401 *
hy -0.0329310 0.0112529 -2.926 0.003429 **
nitrate 0.0514423 0.0285902 1.799 0.071971 .
Null deviance: 127.527 on 43 degrees of freedom
Residual deviance: 46.426 on 38 degrees of freedom
AIC: 240.45
step2.glm=step(full.glm,scope=formula(full.glm),trace=0,direction=”both”)
summary(step2.glm)
Estimate Std. Error z value Pr(>|z|)
(Intercept) 0.765412 0.487918 1.569 0.116711
sAP -0.034419 0.007187 -4.789 1.67e-06 *
sSV 0.016718 0.011265 1.484 0.137800
nitrate 0.049525 0.028270 1.752 0.079799 .
solres -0.002328 0.000655 -3.554 0.000379 *
hy -0.031616 0.011363 -2.782 0.005394 **
logarea 0.257352 0.051853 4.963 6.94e-07 *
Null deviance: 127.527 on 43 degrees of freedom
Residual deviance: 44.303 on 37 degrees of freedom
AIC: 240.33
(a) Consider the two searches that were performed.
i. Briefly describe the procedure used for the first search (step1.glm).
ii. How does the second search differ from the first search?
iii. Consider the models step1.glm and step2.glm found by the two searches. Is either
model clearly better than the other one? Explain your answer. (5 marks)
(b) Consider the impact of hydronium concentration (hy) on the mean number of mussel
species found in a river.
i. Based on the output for model step1.glm, explain the impact on the mean number
of mussel species if the hydronium concentration is increased by 1 unit (and all
remaining explanatory variables are fixed).
ii. Use the following output to produce a 95% confidence interval for your estimate of
this impact.
confint(step1.glm)
2.5 % 97.5 %
(Intercept) 0.020585439 1.864031858
logarea 0.149254036 0.350694327
sAC -0.037083119 -0.014862806
solres -0.003625416 -0.001075839
hy -0.056618776 -0.012315184
nitrate -0.006685696 0.105584270
iii. Estimate the impact of increasing hydronium concentration by 3 units on the mean
number of mussel species found in a river. (6 marks)
(c) If a goodness of fit test is performed for model step1.glm, the p-value is equal to 0.19.
Explain how the p-value is calculated. What do you conclude about model step1.glm
from this test? (4 marks)
(d) Consider the following set of diagnostic plots for model step1.glm
Based on these plots describe any concerns or issues you have with the fitted model.
ii. Briefly explain how you would address each of the concerns/issues you have identi-
fied. (5 marks)WX:codehelp