Free Statistics

of Irreproducible Research!

Author's title

Author*Unverified author*
R Software Modulerwasp_Simple Regression Y ~ X.wasp
Title produced by softwareSimple Linear Regression
Date of computationWed, 08 Jun 2022 13:40:02 +0200
Cite this page as followsStatistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?v=date/2022/Jun/08/t1654688491m9ydrecugoz24d7.htm/, Retrieved Sat, 18 May 2024 14:45:43 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=319706, Retrieved Sat, 18 May 2024 14:45:43 +0000
QR Codes:

Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact38
Family? (F = Feedback message, R = changed R code, M = changed R Module, P = changed Parameters, D = changed Data)
-       [Simple Linear Regression] [] [2022-06-08 11:40:02] [d41d8cd98f00b204e9800998ecf8427e] [Current]
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Dataseries X:
0.616717013	0.616160313
0.617252033	0.616717013
0.615065841	0.617252033
0.615076378	0.615065841
0.615097451	0.615076378
0.614348731	0.615097451
0.614570318	0.614348731
0.612942716	0.614570318
0.612518962	0.612942716
0.612200875	0.612518962
0.612200875	0.612200875
0.612349345	0.612200875
0.612550758	0.612349345
0.613313161	0.612550758
0.613619863	0.613313161
0.614116471	0.613619863
0.614105911	0.614116471
0.614105911	0.614105911
0.614105911	0.614105911
0.615350248	0.614105911
0.616454508	0.615350248
0.616664525	0.616454508
0.617335898	0.616664525
0.615360778	0.617335898
0.615360778	0.615360778
0.615160664	0.615360778
0.613852389	0.615160664
0.61326026	0.613852389
0.613577572	0.61326026
0.612412959	0.613577572
0.612402357	0.612412959
0.612402357	0.612402357
0.612296326	0.612402357
0.611415264	0.612296326
0.612094795	0.611415264
0.611394011	0.612094795
0.609871757	0.611394011
0.60948769	0.609871757
0.60948769	0.60948769
0.60943432	0.60948769
0.609871757	0.60943432
0.609861093	0.609871757
0.609274172	0.609861093
0.610127613	0.609274172
0.6111389	0.610127613
0.6111389	0.6111389
0.611160165	0.6111389
0.610617583	0.611160165
0.610755953	0.610617583
0.609210097	0.610755953
0.610564352	0.609210097
0.610148928	0.610564352
0.610127613	0.610148928
0.610500467	0.610127613
0.609316884	0.610500467
0.609466343	0.609316884
0.609210097	0.609466343
0.609231456	0.609210097
0.610021025	0.609231456
0.610021025	0.610021025
0.610074322	0.610021025
0.610553705	0.610074322
0.610894278	0.610553705
0.61155338	0.610894278
0.611840095	0.61155338
0.611479015	0.611840095
0.611479015	0.611479015
0.611829479	0.611479015
0.611659593	0.611829479
0.610926193	0.611659593
0.611564002	0.610926193
0.611776397	0.611564002
0.611914398	0.611776397
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0.611500263	0.611914398
0.610383319	0.611500263
0.610287447	0.610383319
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0.607422852	0.608632989
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0.609007128	0.609017813
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0.610084981	0.609423646
0.609743772	0.610084981
0.61046852	0.609743772
0.610915555	0.61046852
0.610926193	0.610915555
0.610926193	0.610926193
0.610787878	0.610926193
0.611840095	0.610787878
0.610564352	0.611840095
0.610745311	0.610564352
0.611733926	0.610745311
0.611733926	0.611733926
0.611564002	0.611733926
0.612783857	0.611564002
0.612147838	0.612783857
0.613905218	0.612147838
0.615739689	0.613905218
0.614317067	0.615739689
0.613630435	0.614317067
0.614317067	0.613630435
0.614412053	0.614317067
0.616212862	0.614412053
0.61659103	0.616212862
0.618790472	0.61659103
0.616212862	0.618790472
0.616212862	0.616212862
0.616202353	0.616212862
0.616223371	0.616202353
0.615697604	0.616223371
0.615981597	0.615697604
0.617974836	0.615981597
0.616275913	0.617974836
0.616265405	0.616275913
0.616265405	0.616265405
0.616359967	0.616265405
0.616633029	0.616359967
0.61623388	0.616633029
0.616507021	0.61623388
0.617262517	0.616507021
0.617262517	0.617262517
0.61658053	0.617262517
0.617786395	0.61658053
0.61807949	0.617786395
0.618027166	0.61807949
0.6183201	0.618027166
0.618978478	0.6183201
0.618978478	0.618978478
0.618936706	0.618978478
0.619573295	0.618936706
0.620188126	0.619573295
0.620500418	0.620188126
0.619166403	0.620500418
0.62076049	0.619166403
0.62076049	0.62076049
0.620802087	0.62076049
0.620822884	0.620802087
0.62173697	0.620822884
0.621716217	0.62173697
0.622473071	0.621716217
0.62205852	0.622473071
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0.619979806	0.621373644
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0.616675023	0.617838748
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0.616675023	0.616675023
0.617273001	0.616675023
0.617566443	0.617273001
0.617021321	0.617566443
0.61734638	0.617021321
0.616265405	0.61734638
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0.616254897	0.616265405
0.616296928	0.616254897
0.617157666	0.616296928
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0.617052789	0.616538527
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0.617189124	0.617178638
0.614433159	0.617189124
0.61415871	0.614433159
0.61415871	0.61415871
0.61414815	0.61415871
0.613122686	0.61414815
0.613619863	0.613122686
0.614359285	0.613619863
0.614137591	0.614359285
0.61381012	0.614137591
0.613820688	0.61381012
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0.61452812	0.61409535
0.6144015	0.61452812
0.61436984	0.6144015
0.614791792	0.61436984
0.614791792	0.614791792
0.614844507	0.614791792
0.615002615	0.614844507
0.615413424	0.615002615
0.614949918	0.615413424
0.617566443	0.614949918
0.618790472	0.617566443
0.618790472	0.618790472
0.618780025	0.618790472
0.623352682	0.618780025
0.622400553	0.623352682
0.622182927	0.622400553
0.62170584	0.622182927
0.621591676	0.62170584
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0.621653951	0.621591676
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0.622990705	0.623435377
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0.620521229	0.62076049
0.621228228	0.620521229
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0.621861469	0.620646077
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0.623817637	0.62380731
0.625487368	0.623817637
0.624199562	0.625487368
0.622504147	0.624199562
0.622379832	0.622504147
0.62120745	0.622379832
0.621217839	0.62120745
0.621217839	0.621217839
0.619646286	0.621217839
0.619771386	0.619646286
0.620666882	0.619771386
0.619740115	0.620666882
0.619979806	0.619740115
0.619979806	0.619979806
0.619958968	0.619979806
0.620156884	0.619958968
0.621965191	0.620156884
0.621653951	0.621965191
0.622193292	0.621653951
0.620718889	0.622193292
0.620718889	0.620718889
0.620708488	0.620718889
0.621280168	0.620708488
0.621321715	0.621280168
0.622162195	0.621321715
0.621653951	0.622162195
0.622524862	0.621653951
0.62253522	0.622524862
0.622504147	0.62253522
0.621923705	0.622504147
0.622711259	0.621923705
0.622669845	0.622711259
0.62195482	0.622669845
0.621757722	0.62195482
0.621757722	0.621757722
0.621747346	0.621757722
0.621726593	0.621747346
0.622618071	0.621726593
0.622928621	0.622618071
0.62211036	0.622928621
0.621788849	0.62211036
0.621799224	0.621788849
0.621788849	0.621799224
0.621840722	0.621788849
0.622203658	0.621840722
0.62236947	0.622203658
0.62112433	0.62236947
0.621851096	0.62112433
0.621851096	0.621851096
0.621851096	0.621851096
0.621425566	0.621851096
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0.615687082	0.616212862
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0.61567656	0.615687082
0.613767848	0.61567656
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0.611787014	0.611776397
0.61146839	0.611787014
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0.61304859	0.613027417
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0.6102981	0.611776397
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\begin{tabular}{lllllllll}
\hline
Summary of computational transaction \tabularnewline
Raw Input view raw input (R code)  \tabularnewline
Raw Outputview raw output of R engine  \tabularnewline
Computing time2 seconds \tabularnewline
R ServerBig Analytics Cloud Computing Center \tabularnewline
R Engine error message & 
Error in bca.ci(boot.out, conf, index[1L], L = L, t = t.o, t0 = t0.o,  : 
  estimated adjustment 'a' is NA
Calls: table.element -> paste -> paste -> boot.ci -> bca.ci
Execution halted
\tabularnewline \hline \end{tabular} %Source: https://freestatistics.org/blog/index.php?pk=319706&T=0

[TABLE]
[ROW]
Summary of computational transaction[/C][/ROW] [ROW]Raw Input[/C] view raw input (R code) [/C][/ROW] [ROW]Raw Output[/C]view raw output of R engine [/C][/ROW] [ROW]Computing time[/C]2 seconds[/C][/ROW] [ROW]R Server[/C]Big Analytics Cloud Computing Center[/C][/ROW] [ROW]R Engine error message[/C][C]
Error in bca.ci(boot.out, conf, index[1L], L = L, t = t.o, t0 = t0.o,  : 
  estimated adjustment 'a' is NA
Calls: table.element -> paste -> paste -> boot.ci -> bca.ci
Execution halted
[/C][/ROW] [/TABLE] Source: https://freestatistics.org/blog/index.php?pk=319706&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=319706&T=0

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The GUIDs for individual cells are displayed in the table below:

Summary of computational transaction
Raw Input view raw input (R code)
Raw Outputview raw output of R engine
Computing time2 seconds
R ServerBig Analytics Cloud Computing Center
R Engine error message
Error in bca.ci(boot.out, conf, index[1L], L = L, t = t.o, t0 = t0.o,  : 
  estimated adjustment 'a' is NA
Calls: table.element -> paste -> paste -> boot.ci -> bca.ci
Execution halted



Parameters (Session):
Parameters (R input):
par1 = 1 ; par2 = 2 ; par3 = TRUE ;
R code (references can be found in the software module):
par3 <- 'TRUE'
par2 <- '2'
par1 <- '1'
library(boot)
cat1 <- as.numeric(par1)
cat2<- as.numeric(par2)
intercept<-as.logical(par3)
x <- na.omit(t(x))
rsq <- function(formula, data, indices) {
d <- data[indices,] # allows boot to select sample
fit <- lm(formula, data=d)
return(summary(fit)$r.square)
}
xdf<-data.frame(na.omit(t(y)))
(V1<-dimnames(y)[[1]][cat1])
(V2<-dimnames(y)[[1]][cat2])
xdf <- data.frame(xdf[[cat1]], xdf[[cat2]])
names(xdf)<-c('Y', 'X')
if(intercept == FALSE) (lmxdf<-lm(Y~ X - 1, data = xdf) ) else (lmxdf<-lm(Y~ X, data = xdf) )
(results <- boot(data=xdf, statistic=rsq, R=1000, formula=Y~X))
sumlmxdf<-summary(lmxdf)
(aov.xdf<-aov(lmxdf) )
(anova.xdf<-anova(lmxdf) )
load(file='createtable')
a<-table.start()
nc <- ncol(sumlmxdf$'coefficients')
nr <- nrow(sumlmxdf$'coefficients')
a<-table.row.start(a)
a<-table.element(a,'Linear Regression Model', nc+1,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, lmxdf$call['formula'],nc+1)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'coefficients:',1,TRUE)
a<-table.element(a, ' ',nc,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, ' ',1,TRUE)
for(i in 1 : nc){
a<-table.element(a, dimnames(sumlmxdf$'coefficients')[[2]][i],1,TRUE)
}#end header
a<-table.row.end(a)
for(i in 1: nr){
a<-table.element(a,dimnames(sumlmxdf$'coefficients')[[1]][i] ,1,TRUE)
for(j in 1 : nc){
a<-table.element(a, round(sumlmxdf$coefficients[i, j], digits=3), 1 ,FALSE)
}
a<-table.row.end(a)
}
a<-table.row.start(a)
a<-table.element(a, '- - - ',1,TRUE)
a<-table.element(a, ' ',nc,FALSE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Residual Std. Err. ',1,TRUE)
a<-table.element(a, paste(round(sumlmxdf$'sigma', digits=3), ' on ', sumlmxdf$'df'[2], 'df') ,nc, FALSE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Multiple R-sq. ',1,TRUE)
a<-table.element(a, round(sumlmxdf$'r.squared', digits=3) ,nc, FALSE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, '95% CI Multiple R-sq. ',1,TRUE)
a<-table.element(a, paste('[',round(boot.ci(results,type='bca')$bca[1,4], digits=3),', ', round(boot.ci(results,type='bca')$bca[1,5], digits=3), ']',sep='') ,nc, FALSE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Adjusted R-sq. ',1,TRUE)
a<-table.element(a, round(sumlmxdf$'adj.r.squared', digits=3) ,nc, FALSE)
a<-table.row.end(a)
a<-table.end(a)
table.save(a,file='mytable.tab')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,'ANOVA Statistics', 5+1,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, ' ',1,TRUE)
a<-table.element(a, 'Df',1,TRUE)
a<-table.element(a, 'Sum Sq',1,TRUE)
a<-table.element(a, 'Mean Sq',1,TRUE)
a<-table.element(a, 'F value',1,TRUE)
a<-table.element(a, 'Pr(>F)',1,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, V2,1,TRUE)
a<-table.element(a, anova.xdf$Df[1])
a<-table.element(a, round(anova.xdf$'Sum Sq'[1], digits=3))
a<-table.element(a, round(anova.xdf$'Mean Sq'[1], digits=3))
a<-table.element(a, round(anova.xdf$'F value'[1], digits=3))
a<-table.element(a, round(anova.xdf$'Pr(>F)'[1], digits=3))
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Residuals',1,TRUE)
a<-table.element(a, anova.xdf$Df[2])
a<-table.element(a, round(anova.xdf$'Sum Sq'[2], digits=3))
a<-table.element(a, round(anova.xdf$'Mean Sq'[2], digits=3))
a<-table.element(a, ' ')
a<-table.element(a, ' ')
a<-table.row.end(a)
a<-table.end(a)
table.save(a,file='mytable1.tab')
bitmap(file='regressionplot.png')
plot(Y~ X, data=xdf, xlab=V2, ylab=V1, main='Regression Solution')
if(intercept == TRUE) abline(coef(lmxdf), col='red')
if(intercept == FALSE) abline(0.0, coef(lmxdf), col='red')
dev.off()
library(car)
bitmap(file='residualsQQplot.png')
qqPlot(resid(lmxdf), main='QQplot of Residuals of Fit')
dev.off()
bitmap(file='residualsplot.png')
plot(xdf$X, resid(lmxdf), main='Scatterplot of Residuals of Model Fit')
dev.off()
bitmap(file='cooksDistanceLmplot.png')
plot(lmxdf, which=4)
dev.off()