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Author's title

Author*The author of this computation has been verified*
R Software Modulerwasp_arimabackwardselection.wasp
Title produced by softwareARIMA Backward Selection
Date of computationSun, 07 Dec 2008 09:01:12 -0700
Cite this page as followsStatistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?v=date/2008/Dec/07/t1228665910m6sanvi3yv3n68k.htm/, Retrieved Sun, 19 May 2024 10:04:38 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=30127, Retrieved Sun, 19 May 2024 10:04:38 +0000
QR Codes:

Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact187
Family? (F = Feedback message, R = changed R code, M = changed R Module, P = changed Parameters, D = changed Data)
-       [ARIMA Backward Selection] [Identification an...] [2008-12-07 16:01:12] [4b953869c7238aca4b6e0cfb0c5cddd6] [Current]
-   PD    [ARIMA Backward Selection] [Identification an...] [2008-12-07 16:21:59] [b82ef11dce0545f3fd4676ec3ebed828]
-   P     [ARIMA Backward Selection] [Identification an...] [2008-12-08 11:58:07] [b82ef11dce0545f3fd4676ec3ebed828]
-   P     [ARIMA Backward Selection] [Identification an...] [2008-12-08 12:15:55] [b82ef11dce0545f3fd4676ec3ebed828]
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Dataseries X:
235.1
280.7
264.6
240.7
201.4
240.8
241.1
223.8
206.1
174.7
203.3
220.5
299.5
347.4
338.3
327.7
351.6
396.6
438.8
395.6
363.5
378.8
357
369
464.8
479.1
431.3
366.5
326.3
355.1
331.6
261.3
249
205.5
235.6
240.9
264.9
253.8
232.3
193.8
177
213.2
207.2
180.6
188.6
175.4
199
179.6
225.8
234
200.2
183.6
178.2
203.2
208.5
191.8
172.8
148
159.4
154.5
213.2
196.4
182.8
176.4
153.6
173.2
171
151.2
161.9
157.2
201.7
236.4
356.1
398.3
403.7
384.6
365.8
368.1
367.9
347
343.3
292.9
311.5
300.9
366.9
356.9
329.7
316.2
269
289.3
266.2
253.6
233.8
228.4
253.6
260.1
306.6
309.2
309.5
271
279.9
317.9
298.4
246.7
227.3
209.1
259.9
266
320.6
308.5
282.2
262.7
263.5
313.1
284.3
252.6
250.3
246.5
312.7
333.2
446.4
511.6
515.5
506.4
483.2
522.3
509.8
460.7
405.8
375
378.5
406.8
467.8
469.8
429.8
355.8
332.7
378
360.5
334.7
319.5
323.1
363.6
352.1
411.9
388.6
416.4
360.7
338
417.2
388.4
371.1
331.5
353.7
396.7
447
533.5
565.4
542.3
488.7
467.1
531.3
496.1
444
403.4
386.3
394.1
404.1
462.1
448.1
432.3
386.3
395.2
421.9
382.9
384.2
345.5
323.4
372.6
376
462.7
487
444.2
399.3
394.9
455.4
414
375.5
347
339.4
385.8
378.8
451.8
446.1
422.5
383.1
352.8
445.3
367.5
355.1
326.2
319.8
331.8
340.9
394.1
417.2
369.9
349.2
321.4
405.7
342.9
316.5
284.2
270.9
288.8
278.8
324.4
310.9
299
273
279.3
359.2
305
282.1
250.3
246.5
257.9
266.5
315.9
318.4
295.4
266.4
245.8
362.8
324.9
294.2
289.5
295.2
290.3
272
307.4
328.7
292.9
249.1
230.4
361.5
321.7
277.2
260.7
251
257.6
241.8
287.5
292.3
274.7
254.2
230
339
318.2
287
295.8
284
271
262.7
340.6
379.4
373.3
355.2
338.4
466.9
451
422
429.2
425.9
460.7
463.6
541.4
544.2
517.5
469.4
439.4
549
533
506.1
484
457
481.5
469.5
544.7
541.2
521.5
469.7
434.4
542.6
517.3
485.7
465.8
447
426.6
411.6
467.5
484.5
451.2
417.4
379.9
484.7
455
420.8
416.5
376.3
405.6
405.8
500.8
514
475.5
430.1
414.4
538
526
488.5
520.2
504.4
568.5
610.6
818
830.9
835.9
782
762.3
856.9
820.9
769.6
752.2
724.4
723.1
719.5
817.4
803.3
752.5
689
630.4
765.5
757.7
732.2
702.6
683.3
709.5
702.2
784.8
810.9
755.6
656.8
615.1
745.3
694.1
675.7
643.7
622.1
634.6
588
689.7
673.9
647.9
568.8
545.7
632.6
643.8
593.1
579.7
546
562.9
572.5




Summary of computational transaction
Raw Inputview raw input (R code)
Raw Outputview raw output of R engine
Computing time15 seconds
R Server'George Udny Yule' @ 72.249.76.132

\begin{tabular}{lllllllll}
\hline
Summary of computational transaction \tabularnewline
Raw Input & view raw input (R code)  \tabularnewline
Raw Output & view raw output of R engine  \tabularnewline
Computing time & 15 seconds \tabularnewline
R Server & 'George Udny Yule' @ 72.249.76.132 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=30127&T=0

[TABLE]
[ROW][C]Summary of computational transaction[/C][/ROW]
[ROW][C]Raw Input[/C][C]view raw input (R code) [/C][/ROW]
[ROW][C]Raw Output[/C][C]view raw output of R engine [/C][/ROW]
[ROW][C]Computing time[/C][C]15 seconds[/C][/ROW]
[ROW][C]R Server[/C][C]'George Udny Yule' @ 72.249.76.132[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=30127&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=30127&T=0

As an alternative you can also use a QR Code:  

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

Summary of computational transaction
Raw Inputview raw input (R code)
Raw Outputview raw output of R engine
Computing time15 seconds
R Server'George Udny Yule' @ 72.249.76.132







ARIMA Parameter Estimation and Backward Selection
Iterationar1ar2ma1sar1sar2sma1
Estimates ( 1 )0.48670.1754-0.3974-0.1005-0.0616-0.6417
(p-val)(0.0053 )(0.0103 )(0.0223 )(0.3733 )(0.4942 )(0 )
Estimates ( 2 )0.47060.1836-0.3842-0.04620-0.6958
(p-val)(0.0074 )(0.0062 )(0.0293 )(0.5533 )(NA )(0 )
Estimates ( 3 )0.46170.1882-0.376700-0.7209
(p-val)(0.0078 )(0.0044 )(0.0307 )(NA )(NA )(0 )
Estimates ( 4 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 5 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 6 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 7 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 8 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 9 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 10 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 11 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )

\begin{tabular}{lllllllll}
\hline
ARIMA Parameter Estimation and Backward Selection \tabularnewline
Iteration & ar1 & ar2 & ma1 & sar1 & sar2 & sma1 \tabularnewline
Estimates ( 1 ) & 0.4867 & 0.1754 & -0.3974 & -0.1005 & -0.0616 & -0.6417 \tabularnewline
(p-val) & (0.0053 ) & (0.0103 ) & (0.0223 ) & (0.3733 ) & (0.4942 ) & (0 ) \tabularnewline
Estimates ( 2 ) & 0.4706 & 0.1836 & -0.3842 & -0.0462 & 0 & -0.6958 \tabularnewline
(p-val) & (0.0074 ) & (0.0062 ) & (0.0293 ) & (0.5533 ) & (NA ) & (0 ) \tabularnewline
Estimates ( 3 ) & 0.4617 & 0.1882 & -0.3767 & 0 & 0 & -0.7209 \tabularnewline
(p-val) & (0.0078 ) & (0.0044 ) & (0.0307 ) & (NA ) & (NA ) & (0 ) \tabularnewline
Estimates ( 4 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 5 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 6 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 7 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 8 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 9 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 10 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
Estimates ( 11 ) & NA & NA & NA & NA & NA & NA \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) & (NA ) \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=30127&T=1

[TABLE]
[ROW][C]ARIMA Parameter Estimation and Backward Selection[/C][/ROW]
[ROW][C]Iteration[/C][C]ar1[/C][C]ar2[/C][C]ma1[/C][C]sar1[/C][C]sar2[/C][C]sma1[/C][/ROW]
[ROW][C]Estimates ( 1 )[/C][C]0.4867[/C][C]0.1754[/C][C]-0.3974[/C][C]-0.1005[/C][C]-0.0616[/C][C]-0.6417[/C][/ROW]
[ROW][C](p-val)[/C][C](0.0053 )[/C][C](0.0103 )[/C][C](0.0223 )[/C][C](0.3733 )[/C][C](0.4942 )[/C][C](0 )[/C][/ROW]
[ROW][C]Estimates ( 2 )[/C][C]0.4706[/C][C]0.1836[/C][C]-0.3842[/C][C]-0.0462[/C][C]0[/C][C]-0.6958[/C][/ROW]
[ROW][C](p-val)[/C][C](0.0074 )[/C][C](0.0062 )[/C][C](0.0293 )[/C][C](0.5533 )[/C][C](NA )[/C][C](0 )[/C][/ROW]
[ROW][C]Estimates ( 3 )[/C][C]0.4617[/C][C]0.1882[/C][C]-0.3767[/C][C]0[/C][C]0[/C][C]-0.7209[/C][/ROW]
[ROW][C](p-val)[/C][C](0.0078 )[/C][C](0.0044 )[/C][C](0.0307 )[/C][C](NA )[/C][C](NA )[/C][C](0 )[/C][/ROW]
[ROW][C]Estimates ( 4 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 5 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 6 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 7 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 8 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 9 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 10 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 11 )[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][C]NA[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=30127&T=1

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=30127&T=1

As an alternative you can also use a QR Code:  

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

ARIMA Parameter Estimation and Backward Selection
Iterationar1ar2ma1sar1sar2sma1
Estimates ( 1 )0.48670.1754-0.3974-0.1005-0.0616-0.6417
(p-val)(0.0053 )(0.0103 )(0.0223 )(0.3733 )(0.4942 )(0 )
Estimates ( 2 )0.47060.1836-0.3842-0.04620-0.6958
(p-val)(0.0074 )(0.0062 )(0.0293 )(0.5533 )(NA )(0 )
Estimates ( 3 )0.46170.1882-0.376700-0.7209
(p-val)(0.0078 )(0.0044 )(0.0307 )(NA )(NA )(0 )
Estimates ( 4 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 5 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 6 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 7 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 8 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 9 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 10 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )
Estimates ( 11 )NANANANANANA
(p-val)(NA )(NA )(NA )(NA )(NA )(NA )







Estimated ARIMA Residuals
Value
-0.0447135253936662
-0.0681917330485485
0.197918288437233
0.364977436191414
1.51337969756545
-0.359462506259395
0.457274583577161
-0.576200894723871
-0.358061627784444
1.26000923741515
-1.34266174358548
-0.353289515860269
0.161396132653764
-0.85782278222735
-0.555144373035783
-0.727027163681218
-0.369041352606847
-0.0578963459466837
-0.769036188282659
-0.85370285053178
0.700855514885718
-0.676058252930841
0.868578399570611
-0.108845837976042
-1.57887214441251
-1.12268880479374
0.396925039930834
0.0148502755899691
0.140259702802604
0.36986533098136
-0.279776182509283
0.30454612504066
0.892466301124823
0.0893795236331602
0.135268951063926
-1.20736800641857
-0.230372886543578
-0.0877967257368283
-0.333232595978612
0.601966655463977
0.489790376512093
-0.300400640064019
0.101350896741744
0.596346912085554
-0.4768391629512
-0.418379520102998
-0.117112823660205
-0.147180655092018
0.532294166747191
-0.976528379632462
0.331179960778829
0.86961963087848
-0.452578779404088
-0.421389656563963
-0.0683598599224077
0.326102872973695
0.848949398094248
0.455827382847828
0.823472673793597
0.933735319437159
1.23343807854996
0.408338492494316
0.287974782311901
-0.211204355481535
-0.267469587133708
-1.11645463626251
-0.0317244774544914
0.547972583695067
0.120802506378617
-0.868321717561297
-0.311155376477140
-0.380688600889637
-0.305618104546241
-0.409940375685315
-0.00967735633767763
0.49542676735826
-0.704347315245055
-0.063469670268531
-0.513898453007416
0.589511926173372
-0.349423056535086
0.641305367921078
0.0343656811104246
-0.0527524159144365
-0.880138208690427
-0.110617509308506
0.725017975753975
-0.505210314938011
1.01506157034288
0.432165231921199
-0.605967083872456
-0.99965769863016
-0.273898096705778
0.276039213117121
1.00336922414165
0.0129975118289295
-0.560227536123265
-0.549704172971386
-0.264710235791583
0.279629223932735
0.678639101993017
0.661068951546732
-0.704450954527178
-0.201260669256093
0.350125513429402
0.512073981895068
0.855206646264652
0.194068890659390
0.723928361271321
1.18130990824501
0.142880379881995
0.0179248282478725
-0.497957292223244
-0.299719908686467
0.135788240247062
-0.170331308780066
-1.03309845458661
-0.173818770191771
-0.963023491824904
0.698380507554235
-0.367088670288311
-0.26384812644373
-0.418818603756449
-1.12067637056015
0.050059340180613
0.608904289001769
0.134690502429459
0.330041335727497
0.127838493927462
0.581318925428876
-0.0387083952292673
-0.870097483075796
-0.462113651927802
-0.775456092983773
1.39587009634601
-0.373271833383602
-0.268080296568037
1.08656253959127
-0.325880271857822
0.306618302967330
-0.552774377178632
0.928735567153005
0.0930551346259532
0.793725003944859
-0.0655202116226001
0.319389179763134
-0.46622524898353
-0.26287298959455
0.0101377940267785
0.166709669583749
-0.279488759169425
-0.416437672353349
-0.221155418672589
-0.180257548093881
-0.698511947814323
-0.0309655572143734
-0.218026813981105
-0.373584012395172
0.0529518634818152
0.162727245968174
0.827781298760774
-0.724326128023731
-0.470004763117423
1.04570525368969
-0.192863552947704
-0.571180479461111
0.531291279074363
-0.305718262527496
0.338050034732821
0.476242038619817
-0.813898793158197
-0.0347525389045346
0.307275542561574
0.298265370815307
-0.356205759869567
-0.356604185993483
0.161914580197158
0.157622177592071
0.301928830816724
-0.561982123081436
-0.0543443252880328
-0.242625229289488
-0.0291186638089431
0.228470813223924
-0.510675347406408
1.12387584358861
-1.12598825296729
0.290323826826087
0.1901863317218
0.0853118804158528
-0.708039046061695
0.082121885649139
-0.30706061635482
0.525053577536851
-0.601608762750295
0.538181991350257
-0.306512095686341
0.654542129696527
-0.537375104554624
-0.186945160982228
-0.0415284460495952
-0.0882628987413684
-0.256492222843193
-0.41305900133781
-0.270151345014523
-0.435615246020834
0.546649814207282
0.323884743252364
0.661931858474385
0.40277400953948
-0.428180193925725
-0.185363957832398
-0.146275796509525
0.177901367802283
-0.370503408810354
0.205238762831306
-0.0894107254197294
-0.020780275268438
-0.00240145870979891
0.0272373115949327
-0.304012056055657
1.50787098591564
0.259049315624437
-0.546358366018208
0.581469047248436
0.330213500932244
-0.983367080619612
-0.736262902977274
-0.338743889949178
0.760537757382775
-0.261709482585967
-0.476048019827624
-0.110367459162618
1.69081035564076
0.149871499864597
-0.894444669269067
0.0854708103395021
-0.117915910819819
-0.215892883243708
-0.394091925068911
0.0924265940589494
0.0585919397088834
0.253245945628266
0.370567952125144
-0.386524174525219
0.447110944662665
0.623154171268926
-0.184203631599228
0.705477911309667
-0.317031186933482
-0.927475559620922
-0.0393756382109983
1.00274790016463
0.812619047974102
0.298292769783404
0.152550402225117
-0.150639851415529
0.110741609057624
0.552786342728442
0.0434948813242868
0.363209403818519
-0.0227974441200623
0.504138281700106
0.138778866218696
-0.0853039065690372
-0.4964851278647
-0.0852251375929051
-0.247830834606970
-0.120849042840748
-0.451770023590996
0.612150837558335
0.350625359249319
-0.359290708426175
-0.484436554947225
0.339431155744484
-0.0417943783446911
-0.0100069079008156
-0.403912581282383
0.151831389950445
-0.229700888292982
-0.217361505668393
-0.332188738367346
0.264418355973322
0.176869564383899
-0.176677852359661
-0.135670346570261
-0.827944045328021
-0.072272990794671
-0.117607378516121
0.314635368235615
-0.154386040866812
0.163002851479874
-0.244739178794255
-0.204481488544181
0.0360261489242360
0.00417183947545713
0.266111940888721
-0.651003166232771
0.58999467845433
0.312322963075823
0.55266966127318
-0.0962291438899612
-0.467083953869904
-0.198196758230032
0.395575485108295
0.175735164761910
0.315653434396475
-0.161149344007322
0.88204077632948
0.0637843955326567
0.858633412869381
0.822760962078214
1.77266795468394
-0.566982594759806
0.153260600764269
-0.279233554589657
0.0495716909989929
-1.16973352830615
-0.0821090950518082
0.0681025478549859
-0.201544710437656
0.0764372407099762
-0.526359929672685
-0.0804136300110259
-0.390603279764842
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-0.236325126355051
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0.273305649055940
0.571671064377976
0.355106893070044
-0.598053581053117
0.0680124511615258
0.0825158185426656
-0.236688942365226
-0.720992997108843
0.44585590838734
-0.278184222978093
-0.813695563222296
0.0382228552346155
0.287981943855118
-0.397401111101464
0.453442060194953
-0.336993620534553
0.0350017810849680
-0.129073927696671
-0.929487152239686
0.112538760656413
-0.266214363988079
0.318919687361155
-0.235823627186571
0.312056193629841
-0.607348843159228
0.821439734308232
-0.330769465146088
-0.0368471911445081
-0.223411441830638
-0.0162392456069848
0.494328820040046

\begin{tabular}{lllllllll}
\hline
Estimated ARIMA Residuals \tabularnewline
Value \tabularnewline
-0.0447135253936662 \tabularnewline
-0.0681917330485485 \tabularnewline
0.197918288437233 \tabularnewline
0.364977436191414 \tabularnewline
1.51337969756545 \tabularnewline
-0.359462506259395 \tabularnewline
0.457274583577161 \tabularnewline
-0.576200894723871 \tabularnewline
-0.358061627784444 \tabularnewline
1.26000923741515 \tabularnewline
-1.34266174358548 \tabularnewline
-0.353289515860269 \tabularnewline
0.161396132653764 \tabularnewline
-0.85782278222735 \tabularnewline
-0.555144373035783 \tabularnewline
-0.727027163681218 \tabularnewline
-0.369041352606847 \tabularnewline
-0.0578963459466837 \tabularnewline
-0.769036188282659 \tabularnewline
-0.85370285053178 \tabularnewline
0.700855514885718 \tabularnewline
-0.676058252930841 \tabularnewline
0.868578399570611 \tabularnewline
-0.108845837976042 \tabularnewline
-1.57887214441251 \tabularnewline
-1.12268880479374 \tabularnewline
0.396925039930834 \tabularnewline
0.0148502755899691 \tabularnewline
0.140259702802604 \tabularnewline
0.36986533098136 \tabularnewline
-0.279776182509283 \tabularnewline
0.30454612504066 \tabularnewline
0.892466301124823 \tabularnewline
0.0893795236331602 \tabularnewline
0.135268951063926 \tabularnewline
-1.20736800641857 \tabularnewline
-0.230372886543578 \tabularnewline
-0.0877967257368283 \tabularnewline
-0.333232595978612 \tabularnewline
0.601966655463977 \tabularnewline
0.489790376512093 \tabularnewline
-0.300400640064019 \tabularnewline
0.101350896741744 \tabularnewline
0.596346912085554 \tabularnewline
-0.4768391629512 \tabularnewline
-0.418379520102998 \tabularnewline
-0.117112823660205 \tabularnewline
-0.147180655092018 \tabularnewline
0.532294166747191 \tabularnewline
-0.976528379632462 \tabularnewline
0.331179960778829 \tabularnewline
0.86961963087848 \tabularnewline
-0.452578779404088 \tabularnewline
-0.421389656563963 \tabularnewline
-0.0683598599224077 \tabularnewline
0.326102872973695 \tabularnewline
0.848949398094248 \tabularnewline
0.455827382847828 \tabularnewline
0.823472673793597 \tabularnewline
0.933735319437159 \tabularnewline
1.23343807854996 \tabularnewline
0.408338492494316 \tabularnewline
0.287974782311901 \tabularnewline
-0.211204355481535 \tabularnewline
-0.267469587133708 \tabularnewline
-1.11645463626251 \tabularnewline
-0.0317244774544914 \tabularnewline
0.547972583695067 \tabularnewline
0.120802506378617 \tabularnewline
-0.868321717561297 \tabularnewline
-0.311155376477140 \tabularnewline
-0.380688600889637 \tabularnewline
-0.305618104546241 \tabularnewline
-0.409940375685315 \tabularnewline
-0.00967735633767763 \tabularnewline
0.49542676735826 \tabularnewline
-0.704347315245055 \tabularnewline
-0.063469670268531 \tabularnewline
-0.513898453007416 \tabularnewline
0.589511926173372 \tabularnewline
-0.349423056535086 \tabularnewline
0.641305367921078 \tabularnewline
0.0343656811104246 \tabularnewline
-0.0527524159144365 \tabularnewline
-0.880138208690427 \tabularnewline
-0.110617509308506 \tabularnewline
0.725017975753975 \tabularnewline
-0.505210314938011 \tabularnewline
1.01506157034288 \tabularnewline
0.432165231921199 \tabularnewline
-0.605967083872456 \tabularnewline
-0.99965769863016 \tabularnewline
-0.273898096705778 \tabularnewline
0.276039213117121 \tabularnewline
1.00336922414165 \tabularnewline
0.0129975118289295 \tabularnewline
-0.560227536123265 \tabularnewline
-0.549704172971386 \tabularnewline
-0.264710235791583 \tabularnewline
0.279629223932735 \tabularnewline
0.678639101993017 \tabularnewline
0.661068951546732 \tabularnewline
-0.704450954527178 \tabularnewline
-0.201260669256093 \tabularnewline
0.350125513429402 \tabularnewline
0.512073981895068 \tabularnewline
0.855206646264652 \tabularnewline
0.194068890659390 \tabularnewline
0.723928361271321 \tabularnewline
1.18130990824501 \tabularnewline
0.142880379881995 \tabularnewline
0.0179248282478725 \tabularnewline
-0.497957292223244 \tabularnewline
-0.299719908686467 \tabularnewline
0.135788240247062 \tabularnewline
-0.170331308780066 \tabularnewline
-1.03309845458661 \tabularnewline
-0.173818770191771 \tabularnewline
-0.963023491824904 \tabularnewline
0.698380507554235 \tabularnewline
-0.367088670288311 \tabularnewline
-0.26384812644373 \tabularnewline
-0.418818603756449 \tabularnewline
-1.12067637056015 \tabularnewline
0.050059340180613 \tabularnewline
0.608904289001769 \tabularnewline
0.134690502429459 \tabularnewline
0.330041335727497 \tabularnewline
0.127838493927462 \tabularnewline
0.581318925428876 \tabularnewline
-0.0387083952292673 \tabularnewline
-0.870097483075796 \tabularnewline
-0.462113651927802 \tabularnewline
-0.775456092983773 \tabularnewline
1.39587009634601 \tabularnewline
-0.373271833383602 \tabularnewline
-0.268080296568037 \tabularnewline
1.08656253959127 \tabularnewline
-0.325880271857822 \tabularnewline
0.306618302967330 \tabularnewline
-0.552774377178632 \tabularnewline
0.928735567153005 \tabularnewline
0.0930551346259532 \tabularnewline
0.793725003944859 \tabularnewline
-0.0655202116226001 \tabularnewline
0.319389179763134 \tabularnewline
-0.46622524898353 \tabularnewline
-0.26287298959455 \tabularnewline
0.0101377940267785 \tabularnewline
0.166709669583749 \tabularnewline
-0.279488759169425 \tabularnewline
-0.416437672353349 \tabularnewline
-0.221155418672589 \tabularnewline
-0.180257548093881 \tabularnewline
-0.698511947814323 \tabularnewline
-0.0309655572143734 \tabularnewline
-0.218026813981105 \tabularnewline
-0.373584012395172 \tabularnewline
0.0529518634818152 \tabularnewline
0.162727245968174 \tabularnewline
0.827781298760774 \tabularnewline
-0.724326128023731 \tabularnewline
-0.470004763117423 \tabularnewline
1.04570525368969 \tabularnewline
-0.192863552947704 \tabularnewline
-0.571180479461111 \tabularnewline
0.531291279074363 \tabularnewline
-0.305718262527496 \tabularnewline
0.338050034732821 \tabularnewline
0.476242038619817 \tabularnewline
-0.813898793158197 \tabularnewline
-0.0347525389045346 \tabularnewline
0.307275542561574 \tabularnewline
0.298265370815307 \tabularnewline
-0.356205759869567 \tabularnewline
-0.356604185993483 \tabularnewline
0.161914580197158 \tabularnewline
0.157622177592071 \tabularnewline
0.301928830816724 \tabularnewline
-0.561982123081436 \tabularnewline
-0.0543443252880328 \tabularnewline
-0.242625229289488 \tabularnewline
-0.0291186638089431 \tabularnewline
0.228470813223924 \tabularnewline
-0.510675347406408 \tabularnewline
1.12387584358861 \tabularnewline
-1.12598825296729 \tabularnewline
0.290323826826087 \tabularnewline
0.1901863317218 \tabularnewline
0.0853118804158528 \tabularnewline
-0.708039046061695 \tabularnewline
0.082121885649139 \tabularnewline
-0.30706061635482 \tabularnewline
0.525053577536851 \tabularnewline
-0.601608762750295 \tabularnewline
0.538181991350257 \tabularnewline
-0.306512095686341 \tabularnewline
0.654542129696527 \tabularnewline
-0.537375104554624 \tabularnewline
-0.186945160982228 \tabularnewline
-0.0415284460495952 \tabularnewline
-0.0882628987413684 \tabularnewline
-0.256492222843193 \tabularnewline
-0.41305900133781 \tabularnewline
-0.270151345014523 \tabularnewline
-0.435615246020834 \tabularnewline
0.546649814207282 \tabularnewline
0.323884743252364 \tabularnewline
0.661931858474385 \tabularnewline
0.40277400953948 \tabularnewline
-0.428180193925725 \tabularnewline
-0.185363957832398 \tabularnewline
-0.146275796509525 \tabularnewline
0.177901367802283 \tabularnewline
-0.370503408810354 \tabularnewline
0.205238762831306 \tabularnewline
-0.0894107254197294 \tabularnewline
-0.020780275268438 \tabularnewline
-0.00240145870979891 \tabularnewline
0.0272373115949327 \tabularnewline
-0.304012056055657 \tabularnewline
1.50787098591564 \tabularnewline
0.259049315624437 \tabularnewline
-0.546358366018208 \tabularnewline
0.581469047248436 \tabularnewline
0.330213500932244 \tabularnewline
-0.983367080619612 \tabularnewline
-0.736262902977274 \tabularnewline
-0.338743889949178 \tabularnewline
0.760537757382775 \tabularnewline
-0.261709482585967 \tabularnewline
-0.476048019827624 \tabularnewline
-0.110367459162618 \tabularnewline
1.69081035564076 \tabularnewline
0.149871499864597 \tabularnewline
-0.894444669269067 \tabularnewline
0.0854708103395021 \tabularnewline
-0.117915910819819 \tabularnewline
-0.215892883243708 \tabularnewline
-0.394091925068911 \tabularnewline
0.0924265940589494 \tabularnewline
0.0585919397088834 \tabularnewline
0.253245945628266 \tabularnewline
0.370567952125144 \tabularnewline
-0.386524174525219 \tabularnewline
0.447110944662665 \tabularnewline
0.623154171268926 \tabularnewline
-0.184203631599228 \tabularnewline
0.705477911309667 \tabularnewline
-0.317031186933482 \tabularnewline
-0.927475559620922 \tabularnewline
-0.0393756382109983 \tabularnewline
1.00274790016463 \tabularnewline
0.812619047974102 \tabularnewline
0.298292769783404 \tabularnewline
0.152550402225117 \tabularnewline
-0.150639851415529 \tabularnewline
0.110741609057624 \tabularnewline
0.552786342728442 \tabularnewline
0.0434948813242868 \tabularnewline
0.363209403818519 \tabularnewline
-0.0227974441200623 \tabularnewline
0.504138281700106 \tabularnewline
0.138778866218696 \tabularnewline
-0.0853039065690372 \tabularnewline
-0.4964851278647 \tabularnewline
-0.0852251375929051 \tabularnewline
-0.247830834606970 \tabularnewline
-0.120849042840748 \tabularnewline
-0.451770023590996 \tabularnewline
0.612150837558335 \tabularnewline
0.350625359249319 \tabularnewline
-0.359290708426175 \tabularnewline
-0.484436554947225 \tabularnewline
0.339431155744484 \tabularnewline
-0.0417943783446911 \tabularnewline
-0.0100069079008156 \tabularnewline
-0.403912581282383 \tabularnewline
0.151831389950445 \tabularnewline
-0.229700888292982 \tabularnewline
-0.217361505668393 \tabularnewline
-0.332188738367346 \tabularnewline
0.264418355973322 \tabularnewline
0.176869564383899 \tabularnewline
-0.176677852359661 \tabularnewline
-0.135670346570261 \tabularnewline
-0.827944045328021 \tabularnewline
-0.072272990794671 \tabularnewline
-0.117607378516121 \tabularnewline
0.314635368235615 \tabularnewline
-0.154386040866812 \tabularnewline
0.163002851479874 \tabularnewline
-0.244739178794255 \tabularnewline
-0.204481488544181 \tabularnewline
0.0360261489242360 \tabularnewline
0.00417183947545713 \tabularnewline
0.266111940888721 \tabularnewline
-0.651003166232771 \tabularnewline
0.58999467845433 \tabularnewline
0.312322963075823 \tabularnewline
0.55266966127318 \tabularnewline
-0.0962291438899612 \tabularnewline
-0.467083953869904 \tabularnewline
-0.198196758230032 \tabularnewline
0.395575485108295 \tabularnewline
0.175735164761910 \tabularnewline
0.315653434396475 \tabularnewline
-0.161149344007322 \tabularnewline
0.88204077632948 \tabularnewline
0.0637843955326567 \tabularnewline
0.858633412869381 \tabularnewline
0.822760962078214 \tabularnewline
1.77266795468394 \tabularnewline
-0.566982594759806 \tabularnewline
0.153260600764269 \tabularnewline
-0.279233554589657 \tabularnewline
0.0495716909989929 \tabularnewline
-1.16973352830615 \tabularnewline
-0.0821090950518082 \tabularnewline
0.0681025478549859 \tabularnewline
-0.201544710437656 \tabularnewline
0.0764372407099762 \tabularnewline
-0.526359929672685 \tabularnewline
-0.0804136300110259 \tabularnewline
-0.390603279764842 \tabularnewline
-0.366201184481107 \tabularnewline
-0.236325126355051 \tabularnewline
-0.0197744328026474 \tabularnewline
-0.400592866450831 \tabularnewline
0.273305649055940 \tabularnewline
0.571671064377976 \tabularnewline
0.355106893070044 \tabularnewline
-0.598053581053117 \tabularnewline
0.0680124511615258 \tabularnewline
0.0825158185426656 \tabularnewline
-0.236688942365226 \tabularnewline
-0.720992997108843 \tabularnewline
0.44585590838734 \tabularnewline
-0.278184222978093 \tabularnewline
-0.813695563222296 \tabularnewline
0.0382228552346155 \tabularnewline
0.287981943855118 \tabularnewline
-0.397401111101464 \tabularnewline
0.453442060194953 \tabularnewline
-0.336993620534553 \tabularnewline
0.0350017810849680 \tabularnewline
-0.129073927696671 \tabularnewline
-0.929487152239686 \tabularnewline
0.112538760656413 \tabularnewline
-0.266214363988079 \tabularnewline
0.318919687361155 \tabularnewline
-0.235823627186571 \tabularnewline
0.312056193629841 \tabularnewline
-0.607348843159228 \tabularnewline
0.821439734308232 \tabularnewline
-0.330769465146088 \tabularnewline
-0.0368471911445081 \tabularnewline
-0.223411441830638 \tabularnewline
-0.0162392456069848 \tabularnewline
0.494328820040046 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=30127&T=2

[TABLE]
[ROW][C]Estimated ARIMA Residuals[/C][/ROW]
[ROW][C]Value[/C][/ROW]
[ROW][C]-0.0447135253936662[/C][/ROW]
[ROW][C]-0.0681917330485485[/C][/ROW]
[ROW][C]0.197918288437233[/C][/ROW]
[ROW][C]0.364977436191414[/C][/ROW]
[ROW][C]1.51337969756545[/C][/ROW]
[ROW][C]-0.359462506259395[/C][/ROW]
[ROW][C]0.457274583577161[/C][/ROW]
[ROW][C]-0.576200894723871[/C][/ROW]
[ROW][C]-0.358061627784444[/C][/ROW]
[ROW][C]1.26000923741515[/C][/ROW]
[ROW][C]-1.34266174358548[/C][/ROW]
[ROW][C]-0.353289515860269[/C][/ROW]
[ROW][C]0.161396132653764[/C][/ROW]
[ROW][C]-0.85782278222735[/C][/ROW]
[ROW][C]-0.555144373035783[/C][/ROW]
[ROW][C]-0.727027163681218[/C][/ROW]
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[ROW][C]0.318919687361155[/C][/ROW]
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[ROW][C]0.312056193629841[/C][/ROW]
[ROW][C]-0.607348843159228[/C][/ROW]
[ROW][C]0.821439734308232[/C][/ROW]
[ROW][C]-0.330769465146088[/C][/ROW]
[ROW][C]-0.0368471911445081[/C][/ROW]
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[ROW][C]-0.0162392456069848[/C][/ROW]
[ROW][C]0.494328820040046[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=30127&T=2

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=30127&T=2

As an alternative you can also use a QR Code:  

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

Estimated ARIMA Residuals
Value
-0.0447135253936662
-0.0681917330485485
0.197918288437233
0.364977436191414
1.51337969756545
-0.359462506259395
0.457274583577161
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1.26000923741515
-1.34266174358548
-0.353289515860269
0.161396132653764
-0.85782278222735
-0.555144373035783
-0.727027163681218
-0.369041352606847
-0.0578963459466837
-0.769036188282659
-0.85370285053178
0.700855514885718
-0.676058252930841
0.868578399570611
-0.108845837976042
-1.57887214441251
-1.12268880479374
0.396925039930834
0.0148502755899691
0.140259702802604
0.36986533098136
-0.279776182509283
0.30454612504066
0.892466301124823
0.0893795236331602
0.135268951063926
-1.20736800641857
-0.230372886543578
-0.0877967257368283
-0.333232595978612
0.601966655463977
0.489790376512093
-0.300400640064019
0.101350896741744
0.596346912085554
-0.4768391629512
-0.418379520102998
-0.117112823660205
-0.147180655092018
0.532294166747191
-0.976528379632462
0.331179960778829
0.86961963087848
-0.452578779404088
-0.421389656563963
-0.0683598599224077
0.326102872973695
0.848949398094248
0.455827382847828
0.823472673793597
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Parameters (Session):
par1 = FALSE ; par2 = 0.5 ; par3 = 1 ; par4 = 1 ; par5 = 12 ; par6 = 2 ; par7 = 1 ; par8 = 2 ; par9 = 1 ;
Parameters (R input):
par1 = FALSE ; par2 = 0.5 ; par3 = 1 ; par4 = 1 ; par5 = 12 ; par6 = 2 ; par7 = 1 ; par8 = 2 ; par9 = 1 ;
R code (references can be found in the software module):
library(lattice)
if (par1 == 'TRUE') par1 <- TRUE
if (par1 == 'FALSE') par1 <- FALSE
par2 <- as.numeric(par2) #Box-Cox lambda transformation parameter
par3 <- as.numeric(par3) #degree of non-seasonal differencing
par4 <- as.numeric(par4) #degree of seasonal differencing
par5 <- as.numeric(par5) #seasonal period
par6 <- as.numeric(par6) #degree (p) of the non-seasonal AR(p) polynomial
par7 <- as.numeric(par7) #degree (q) of the non-seasonal MA(q) polynomial
par8 <- as.numeric(par8) #degree (P) of the seasonal AR(P) polynomial
par9 <- as.numeric(par9) #degree (Q) of the seasonal MA(Q) polynomial
armaGR <- function(arima.out, names, n){
try1 <- arima.out$coef
try2 <- sqrt(diag(arima.out$var.coef))
try.data.frame <- data.frame(matrix(NA,ncol=4,nrow=length(names)))
dimnames(try.data.frame) <- list(names,c('coef','std','tstat','pv'))
try.data.frame[,1] <- try1
for(i in 1:length(try2)) try.data.frame[which(rownames(try.data.frame)==names(try2)[i]),2] <- try2[i]
try.data.frame[,3] <- try.data.frame[,1] / try.data.frame[,2]
try.data.frame[,4] <- round((1-pt(abs(try.data.frame[,3]),df=n-(length(try2)+1)))*2,5)
vector <- rep(NA,length(names))
vector[is.na(try.data.frame[,4])] <- 0
maxi <- which.max(try.data.frame[,4])
continue <- max(try.data.frame[,4],na.rm=TRUE) > .05
vector[maxi] <- 0
list(summary=try.data.frame,next.vector=vector,continue=continue)
}
arimaSelect <- function(series, order=c(13,0,0), seasonal=list(order=c(2,0,0),period=12), include.mean=F){
nrc <- order[1]+order[3]+seasonal$order[1]+seasonal$order[3]
coeff <- matrix(NA, nrow=nrc*2, ncol=nrc)
pval <- matrix(NA, nrow=nrc*2, ncol=nrc)
mylist <- rep(list(NULL), nrc)
names <- NULL
if(order[1] > 0) names <- paste('ar',1:order[1],sep='')
if(order[3] > 0) names <- c( names , paste('ma',1:order[3],sep='') )
if(seasonal$order[1] > 0) names <- c(names, paste('sar',1:seasonal$order[1],sep=''))
if(seasonal$order[3] > 0) names <- c(names, paste('sma',1:seasonal$order[3],sep=''))
arima.out <- arima(series, order=order, seasonal=seasonal, include.mean=include.mean, method='ML')
mylist[[1]] <- arima.out
last.arma <- armaGR(arima.out, names, length(series))
mystop <- FALSE
i <- 1
coeff[i,] <- last.arma[[1]][,1]
pval [i,] <- last.arma[[1]][,4]
i <- 2
aic <- arima.out$aic
while(!mystop){
mylist[[i]] <- arima.out
arima.out <- arima(series, order=order, seasonal=seasonal, include.mean=include.mean, method='ML', fixed=last.arma$next.vector)
aic <- c(aic, arima.out$aic)
last.arma <- armaGR(arima.out, names, length(series))
mystop <- !last.arma$continue
coeff[i,] <- last.arma[[1]][,1]
pval [i,] <- last.arma[[1]][,4]
i <- i+1
}
list(coeff, pval, mylist, aic=aic)
}
arimaSelectplot <- function(arimaSelect.out,noms,choix){
noms <- names(arimaSelect.out[[3]][[1]]$coef)
coeff <- arimaSelect.out[[1]]
k <- min(which(is.na(coeff[,1])))-1
coeff <- coeff[1:k,]
pval <- arimaSelect.out[[2]][1:k,]
aic <- arimaSelect.out$aic[1:k]
coeff[coeff==0] <- NA
n <- ncol(coeff)
if(missing(choix)) choix <- k
layout(matrix(c(1,1,1,2,
3,3,3,2,
3,3,3,4,
5,6,7,7),nr=4),
widths=c(10,35,45,15),
heights=c(30,30,15,15))
couleurs <- rainbow(75)[1:50]#(50)
ticks <- pretty(coeff)
par(mar=c(1,1,3,1))
plot(aic,k:1-.5,type='o',pch=21,bg='blue',cex=2,axes=F,lty=2,xpd=NA)
points(aic[choix],k-choix+.5,pch=21,cex=4,bg=2,xpd=NA)
title('aic',line=2)
par(mar=c(3,0,0,0))
plot(0,axes=F,xlab='',ylab='',xlim=range(ticks),ylim=c(.1,1))
rect(xleft = min(ticks) + (0:49)/50*(max(ticks)-min(ticks)),
xright = min(ticks) + (1:50)/50*(max(ticks)-min(ticks)),
ytop = rep(1,50),
ybottom= rep(0,50),col=couleurs,border=NA)
axis(1,ticks)
rect(xleft=min(ticks),xright=max(ticks),ytop=1,ybottom=0)
text(mean(coeff,na.rm=T),.5,'coefficients',cex=2,font=2)
par(mar=c(1,1,3,1))
image(1:n,1:k,t(coeff[k:1,]),axes=F,col=couleurs,zlim=range(ticks))
for(i in 1:n) for(j in 1:k) if(!is.na(coeff[j,i])) {
if(pval[j,i]<.01) symb = 'green'
else if( (pval[j,i]<.05) & (pval[j,i]>=.01)) symb = 'orange'
else if( (pval[j,i]<.1) & (pval[j,i]>=.05)) symb = 'red'
else symb = 'black'
polygon(c(i+.5 ,i+.2 ,i+.5 ,i+.5),
c(k-j+0.5,k-j+0.5,k-j+0.8,k-j+0.5),
col=symb)
if(j==choix) {
rect(xleft=i-.5,
xright=i+.5,
ybottom=k-j+1.5,
ytop=k-j+.5,
lwd=4)
text(i,
k-j+1,
round(coeff[j,i],2),
cex=1.2,
font=2)
}
else{
rect(xleft=i-.5,xright=i+.5,ybottom=k-j+1.5,ytop=k-j+.5)
text(i,k-j+1,round(coeff[j,i],2),cex=1.2,font=1)
}
}
axis(3,1:n,noms)
par(mar=c(0.5,0,0,0.5))
plot(0,axes=F,xlab='',ylab='',type='n',xlim=c(0,8),ylim=c(-.2,.8))
cols <- c('green','orange','red','black')
niv <- c('0','0.01','0.05','0.1')
for(i in 0:3){
polygon(c(1+2*i ,1+2*i ,1+2*i-.5 ,1+2*i),
c(.4 ,.7 , .4 , .4),
col=cols[i+1])
text(2*i,0.5,niv[i+1],cex=1.5)
}
text(8,.5,1,cex=1.5)
text(4,0,'p-value',cex=2)
box()
residus <- arimaSelect.out[[3]][[choix]]$res
par(mar=c(1,2,4,1))
acf(residus,main='')
title('acf',line=.5)
par(mar=c(1,2,4,1))
pacf(residus,main='')
title('pacf',line=.5)
par(mar=c(2,2,4,1))
qqnorm(residus,main='')
title('qq-norm',line=.5)
qqline(residus)
residus
}
if (par2 == 0) x <- log(x)
if (par2 != 0) x <- x^par2
(selection <- arimaSelect(x, order=c(par6,par3,par7), seasonal=list(order=c(par8,par4,par9), period=par5)))
bitmap(file='test1.png')
resid <- arimaSelectplot(selection)
dev.off()
resid
bitmap(file='test2.png')
acf(resid,length(resid)/2, main='Residual Autocorrelation Function')
dev.off()
bitmap(file='test3.png')
pacf(resid,length(resid)/2, main='Residual Partial Autocorrelation Function')
dev.off()
bitmap(file='test4.png')
cpgram(resid, main='Residual Cumulative Periodogram')
dev.off()
bitmap(file='test5.png')
hist(resid, main='Residual Histogram', xlab='values of Residuals')
dev.off()
bitmap(file='test6.png')
densityplot(~resid,col='black',main='Residual Density Plot', xlab='values of Residuals')
dev.off()
bitmap(file='test7.png')
qqnorm(resid, main='Residual Normal Q-Q Plot')
qqline(resid)
dev.off()
ncols <- length(selection[[1]][1,])
nrows <- length(selection[[2]][,1])-1
load(file='createtable')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,'ARIMA Parameter Estimation and Backward Selection', ncols+1,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'Iteration', header=TRUE)
for (i in 1:ncols) {
a<-table.element(a,names(selection[[3]][[1]]$coef)[i],header=TRUE)
}
a<-table.row.end(a)
for (j in 1:nrows) {
a<-table.row.start(a)
mydum <- 'Estimates ('
mydum <- paste(mydum,j)
mydum <- paste(mydum,')')
a<-table.element(a,mydum, header=TRUE)
for (i in 1:ncols) {
a<-table.element(a,round(selection[[1]][j,i],4))
}
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'(p-val)', header=TRUE)
for (i in 1:ncols) {
mydum <- '('
mydum <- paste(mydum,round(selection[[2]][j,i],4),sep='')
mydum <- paste(mydum,')')
a<-table.element(a,mydum)
}
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,'Estimated ARIMA Residuals', 1,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'Value', 1,TRUE)
a<-table.row.end(a)
for (i in (par4*par5+par3):length(resid)) {
a<-table.row.start(a)
a<-table.element(a,resid[i])
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable1.tab')