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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 computationMon, 20 Dec 2010 22:03:14 +0000
Cite this page as followsStatistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?v=date/2010/Dec/20/t12928825375vqs9jg6q5uaqln.htm/, Retrieved Fri, 03 May 2024 21:27:05 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=113150, Retrieved Fri, 03 May 2024 21:27:05 +0000
QR Codes:

Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact120
Family? (F = Feedback message, R = changed R code, M = changed R Module, P = changed Parameters, D = changed Data)
-     [Univariate Data Series] [data set] [2008-12-01 19:54:57] [b98453cac15ba1066b407e146608df68]
- RMP   [Standard Deviation-Mean Plot] [Unemployment] [2010-11-29 10:34:47] [b98453cac15ba1066b407e146608df68]
- RMP     [ARIMA Backward Selection] [Unemployment] [2010-11-29 17:10:28] [b98453cac15ba1066b407e146608df68]
- R  D      [ARIMA Backward Selection] [] [2010-12-13 21:48:37] [74be16979710d4c4e7c6647856088456]
-   P           [ARIMA Backward Selection] [ARIMA Dollar] [2010-12-20 22:03:14] [109f5cd2d2b7c934778912c55604f6f1] [Current]
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Dataseries X:
1.2998
1.3146
1.3225
1.3321
1.3339
1.3496
1.3647
1.3674
1.3647
1.3481
1.3612
1.3626
1.3711
1.37
1.377
1.3945
1.3917
1.4084
1.4244
1.4014
1.4018
1.3926
1.3857
1.3857
1.3803
1.3912
1.4031
1.3934
1.4016
1.3861
1.3859
1.3896
1.4089
1.4101
1.3958
1.3833
1.3936
1.3874
1.397
1.3856
1.378
1.3705
1.3726
1.3648
1.3611
1.346
1.3477
1.3412
1.3323
1.3364
1.312
1.3074
1.306
1.3078
1.2989
1.285
1.2801
1.2725
1.2715
1.2697
1.2744
1.2874
1.2834
1.2818
1.28
1.268
1.27
1.2713
1.2693
1.2613
1.2611
1.2704
1.2711
1.2836
1.288
1.286
1.282
1.2799
1.279
1.3016
1.3133
1.3253
1.3176
1.3184
1.3206
1.3221
1.3073
1.3028
1.3069
1.2992
1.3033
1.2931
1.2897
1.285
1.2817
1.2844
1.2957
1.3
1.2828
1.2703
1.2569
1.2572
1.2637
1.266
1.2567
1.2579
1.2531
1.2548
1.2328
1.2271
1.2198
1.2339
1.2294
1.2262
1.2271
1.2258
1.2391
1.2372
1.2363
1.2277
1.2258
1.2249
1.2127
1.2045
1.201
1.1942
1.1959
1.206
1.2268
1.2218
1.2155
1.2307
1.2384
1.2255
1.2309
1.2223
1.236
1.2497
1.2334
1.227
1.2428
1.2349
1.2492
1.2587
1.2686
1.2698
1.2969
1.2746
1.2727
1.2924
1.3089
1.3238
1.3315
1.3256
1.3245
1.329
1.3321
1.3311
1.3339
1.3373
1.3486
1.3432
1.3535
1.3544
1.3615
1.3583
1.3585
1.3384
1.3296
1.334
1.3396
1.3468
1.3479
1.3482
1.3471
1.3353
1.3356
1.3338
1.3519
1.3471
1.3548
1.366
1.3756
1.3723
1.3705
1.3765
1.3657
1.361
1.3557
1.3662
1.3582
1.3668
1.3641
1.3548
1.3525
1.357
1.3489
1.3547
1.3577
1.3626
1.3519
1.3567
1.3726
1.3649
1.3607
1.3572
1.3718
1.374
1.376
1.3675
1.3691
1.3847
1.3984
1.3937
1.3913
1.3966
1.3999
1.4072
1.4085
1.4151
1.4135
1.4064
1.4132
1.4279
1.4369
1.4374
1.4486
1.4563
1.4481
1.4528
1.4273
1.4304
1.435
1.4442
1.4389
1.4406
1.4338
1.4433
1.4405
1.4398
1.4276
1.4279
1.4368
1.4337
1.4343
1.456
1.4541
1.4647
1.4757
1.473
1.4768
1.4774
1.4787
1.5068
1.512
1.509
1.5074
1.5023
1.4918
1.5071
1.5083
1.4969
1.4968
1.4815
1.4863
1.4957
1.4875
1.4965
1.4868
1.4922
1.5037
1.4966
1.4984
1.4862
1.4867
1.4761
1.4658
1.4772
1.48
1.4788
1.4785
1.4874
1.5019
1.502
1.5
1.4921
1.4971
1.4918
1.4869
1.4864
1.4881
1.4864
1.4765
1.475
1.4763
1.4694
1.4722
1.4616
1.4537
1.4539
1.4643
1.4549
1.465
1.467
1.4768
1.4783
1.478
1.4658
1.4705
1.4712
1.4671
1.4611
1.4561
1.4594
1.4545
1.4522
1.4473
1.433
1.4262
1.4335
1.422
1.4314
1.4272
1.4364
1.4268
1.427
1.4324
1.4323
1.433
1.4243
1.4112
1.4101
1.4072
1.4294
1.4293
1.417
1.4166
1.4202
1.4357
1.437
1.441
1.4384
1.4303
1.4138
1.4053
1.4104
1.4229
1.4269
1.4227
1.4229
1.4191
1.4223
1.4217
1.409
1.413
1.4089
1.3991
1.3975
1.3901
1.399
1.3901
1.4019
1.3897
1.4009
1.4049
1.4096
1.4134
1.4058
1.4096
1.394
1.4029
1.3978
1.3858
1.3932
1.392
1.384
1.389
1.385
1.4004
1.3969
1.4102
1.3959
1.3866
1.4177
1.4095
1.4207
1.4238
1.422
1.4098
1.3856
1.3901
1.3908
1.401
1.3972
1.3771
1.369
1.3612
1.3494
1.3518
1.3563
1.3623
1.3683
1.3574
1.3425
1.3363
1.3322
1.3403
1.3223
1.3275
1.3266
1.2992
1.3125
1.3232
1.305
1.2947
1.2932
1.2966
1.3058
1.3196
1.3173
1.3276
1.3273
1.3231
1.3255
1.3496
1.3425
1.3392
1.3246
1.3308
1.3193
1.3295
1.3607
1.3494
1.3507
1.3558
1.3549
1.3671
1.313
1.2942
1.3042
1.2905
1.2782
1.2786
1.2783
1.2565
1.2658
1.2555
1.2555
1.2615
1.2596
1.2644
1.2782
1.2795
1.2763
1.2798
1.2591
1.2705
1.2596
1.2634
1.2765
1.2823
1.2833
1.2938
1.2967
1.3008
1.2796
1.2829
1.2818
1.2849
1.276
1.2816
1.3111
1.326
1.3174
1.299
1.2795
1.2984
1.291
1.293
1.3182
1.327
1.3085
1.3173
1.3262
1.3394
1.3684
1.3617
1.3595
1.3332
1.3582
1.3866




Summary of computational transaction
Raw Inputview raw input (R code)
Raw Outputview raw output of R engine
Computing time13 seconds
R Server'Sir Ronald Aylmer Fisher' @ 193.190.124.24

\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 & 13 seconds \tabularnewline
R Server & 'Sir Ronald Aylmer Fisher' @ 193.190.124.24 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=113150&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]13 seconds[/C][/ROW]
[ROW][C]R Server[/C][C]'Sir Ronald Aylmer Fisher' @ 193.190.124.24[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=113150&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=113150&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 time13 seconds
R Server'Sir Ronald Aylmer Fisher' @ 193.190.124.24







ARIMA Parameter Estimation and Backward Selection
Iterationar1ar2ar3sar1sar2sma1
Estimates ( 1 )-0.0097-0.0393-0.03550.04550.05520.0441
(p-val)(0.8337 )(0.3947 )(0.4612 )(0.987 )(0.8222 )(0.9874 )
Estimates ( 2 )-0.0095-0.0394-0.03580.08960.05130
(p-val)(0.8341 )(0.3946 )(0.4376 )(0.052 )(0.2791 )(NA )
Estimates ( 3 )0-0.0392-0.03550.08960.05150
(p-val)(NA )(0.3966 )(0.4408 )(0.0521 )(0.2774 )(NA )
Estimates ( 4 )0-0.038700.08870.05030
(p-val)(NA )(0.3513 )(NA )(0.0352 )(0.2576 )(NA )
Estimates ( 5 )0000.08910.04420
(p-val)(NA )(NA )(NA )(0.0534 )(0.3458 )(NA )
Estimates ( 6 )0000.09200
(p-val)(NA )(NA )(NA )(0.046 )(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 & ar3 & sar1 & sar2 & sma1 \tabularnewline
Estimates ( 1 ) & -0.0097 & -0.0393 & -0.0355 & 0.0455 & 0.0552 & 0.0441 \tabularnewline
(p-val) & (0.8337 ) & (0.3947 ) & (0.4612 ) & (0.987 ) & (0.8222 ) & (0.9874 ) \tabularnewline
Estimates ( 2 ) & -0.0095 & -0.0394 & -0.0358 & 0.0896 & 0.0513 & 0 \tabularnewline
(p-val) & (0.8341 ) & (0.3946 ) & (0.4376 ) & (0.052 ) & (0.2791 ) & (NA ) \tabularnewline
Estimates ( 3 ) & 0 & -0.0392 & -0.0355 & 0.0896 & 0.0515 & 0 \tabularnewline
(p-val) & (NA ) & (0.3966 ) & (0.4408 ) & (0.0521 ) & (0.2774 ) & (NA ) \tabularnewline
Estimates ( 4 ) & 0 & -0.0387 & 0 & 0.0887 & 0.0503 & 0 \tabularnewline
(p-val) & (NA ) & (0.3513 ) & (NA ) & (0.0352 ) & (0.2576 ) & (NA ) \tabularnewline
Estimates ( 5 ) & 0 & 0 & 0 & 0.0891 & 0.0442 & 0 \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (0.0534 ) & (0.3458 ) & (NA ) \tabularnewline
Estimates ( 6 ) & 0 & 0 & 0 & 0.092 & 0 & 0 \tabularnewline
(p-val) & (NA ) & (NA ) & (NA ) & (0.046 ) & (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=113150&T=1

[TABLE]
[ROW][C]ARIMA Parameter Estimation and Backward Selection[/C][/ROW]
[ROW][C]Iteration[/C][C]ar1[/C][C]ar2[/C][C]ar3[/C][C]sar1[/C][C]sar2[/C][C]sma1[/C][/ROW]
[ROW][C]Estimates ( 1 )[/C][C]-0.0097[/C][C]-0.0393[/C][C]-0.0355[/C][C]0.0455[/C][C]0.0552[/C][C]0.0441[/C][/ROW]
[ROW][C](p-val)[/C][C](0.8337 )[/C][C](0.3947 )[/C][C](0.4612 )[/C][C](0.987 )[/C][C](0.8222 )[/C][C](0.9874 )[/C][/ROW]
[ROW][C]Estimates ( 2 )[/C][C]-0.0095[/C][C]-0.0394[/C][C]-0.0358[/C][C]0.0896[/C][C]0.0513[/C][C]0[/C][/ROW]
[ROW][C](p-val)[/C][C](0.8341 )[/C][C](0.3946 )[/C][C](0.4376 )[/C][C](0.052 )[/C][C](0.2791 )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 3 )[/C][C]0[/C][C]-0.0392[/C][C]-0.0355[/C][C]0.0896[/C][C]0.0515[/C][C]0[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](0.3966 )[/C][C](0.4408 )[/C][C](0.0521 )[/C][C](0.2774 )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 4 )[/C][C]0[/C][C]-0.0387[/C][C]0[/C][C]0.0887[/C][C]0.0503[/C][C]0[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](0.3513 )[/C][C](NA )[/C][C](0.0352 )[/C][C](0.2576 )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 5 )[/C][C]0[/C][C]0[/C][C]0[/C][C]0.0891[/C][C]0.0442[/C][C]0[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](0.0534 )[/C][C](0.3458 )[/C][C](NA )[/C][/ROW]
[ROW][C]Estimates ( 6 )[/C][C]0[/C][C]0[/C][C]0[/C][C]0.092[/C][C]0[/C][C]0[/C][/ROW]
[ROW][C](p-val)[/C][C](NA )[/C][C](NA )[/C][C](NA )[/C][C](0.046 )[/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=113150&T=1

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=113150&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
Iterationar1ar2ar3sar1sar2sma1
Estimates ( 1 )-0.0097-0.0393-0.03550.04550.05520.0441
(p-val)(0.8337 )(0.3947 )(0.4612 )(0.987 )(0.8222 )(0.9874 )
Estimates ( 2 )-0.0095-0.0394-0.03580.08960.05130
(p-val)(0.8341 )(0.3946 )(0.4376 )(0.052 )(0.2791 )(NA )
Estimates ( 3 )0-0.0392-0.03550.08960.05150
(p-val)(NA )(0.3966 )(0.4408 )(0.0521 )(0.2774 )(NA )
Estimates ( 4 )0-0.038700.08870.05030
(p-val)(NA )(0.3513 )(NA )(0.0352 )(0.2576 )(NA )
Estimates ( 5 )0000.08910.04420
(p-val)(NA )(NA )(NA )(0.0534 )(0.3458 )(NA )
Estimates ( 6 )0000.09200
(p-val)(NA )(NA )(NA )(0.046 )(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
0.00164575503529101
0.0355959800251472
0.0191489774664029
0.0234085733032598
0.00440606854431308
0.0386574990310776
0.0343940313367198
0.00499213676742217
-0.00897885554677462
-0.0418685958126822
0.0290557142723267
-0.00143610172309305
0.0199389193188173
-0.00321029901084602
0.0212003881371894
0.0399633515336886
-0.0091520857414864
0.0407459509834669
0.0421330702204279
-0.05938936071309
-0.00439170133897959
-0.0231357946592201
-0.0223978067337076
-0.00358452940342824
-0.0092018404217935
0.0257145706311039
0.0329731050374324
-0.0252478482972904
0.0192181995262943
-0.0358470095393595
-0.00303159105246009
0.00776194348110537
0.0526159349507551
0.00122811017113067
-0.0327020713019135
-0.0331161858133084
0.0241025876454601
-0.0191704241898436
0.0233596550853581
-0.0241163992238467
-0.0164489139153225
-0.0217317231038447
0.00452202688396697
-0.0219847365447148
-0.00506132213535704
-0.0345416099624896
0.00475154081967433
-0.0158918215721640
-0.0212913390754317
0.0122159735891676
-0.0554773618204567
-0.0106799731360077
-0.00218142586794201
0.00717794073071176
-0.0219530805233992
-0.0262709334072364
-0.0108404374600033
-0.0169713685521029
-0.00177667738362741
-0.00277562633732398
0.0166926067966300
0.0323954032747169
-0.00777387222601233
-0.00378527947326446
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\begin{tabular}{lllllllll}
\hline
Estimated ARIMA Residuals \tabularnewline
Value \tabularnewline
0.00164575503529101 \tabularnewline
0.0355959800251472 \tabularnewline
0.0191489774664029 \tabularnewline
0.0234085733032598 \tabularnewline
0.00440606854431308 \tabularnewline
0.0386574990310776 \tabularnewline
0.0343940313367198 \tabularnewline
0.00499213676742217 \tabularnewline
-0.00897885554677462 \tabularnewline
-0.0418685958126822 \tabularnewline
0.0290557142723267 \tabularnewline
-0.00143610172309305 \tabularnewline
0.0199389193188173 \tabularnewline
-0.00321029901084602 \tabularnewline
0.0212003881371894 \tabularnewline
0.0399633515336886 \tabularnewline
-0.0091520857414864 \tabularnewline
0.0407459509834669 \tabularnewline
0.0421330702204279 \tabularnewline
-0.05938936071309 \tabularnewline
-0.00439170133897959 \tabularnewline
-0.0231357946592201 \tabularnewline
-0.0223978067337076 \tabularnewline
-0.00358452940342824 \tabularnewline
-0.0092018404217935 \tabularnewline
0.0257145706311039 \tabularnewline
0.0329731050374324 \tabularnewline
-0.0252478482972904 \tabularnewline
0.0192181995262943 \tabularnewline
-0.0358470095393595 \tabularnewline
-0.00303159105246009 \tabularnewline
0.00776194348110537 \tabularnewline
0.0526159349507551 \tabularnewline
0.00122811017113067 \tabularnewline
-0.0327020713019135 \tabularnewline
-0.0331161858133084 \tabularnewline
0.0241025876454601 \tabularnewline
-0.0191704241898436 \tabularnewline
0.0233596550853581 \tabularnewline
-0.0241163992238467 \tabularnewline
-0.0164489139153225 \tabularnewline
-0.0217317231038447 \tabularnewline
0.00452202688396697 \tabularnewline
-0.0219847365447148 \tabularnewline
-0.00506132213535704 \tabularnewline
-0.0345416099624896 \tabularnewline
0.00475154081967433 \tabularnewline
-0.0158918215721640 \tabularnewline
-0.0212913390754317 \tabularnewline
0.0122159735891676 \tabularnewline
-0.0554773618204567 \tabularnewline
-0.0106799731360077 \tabularnewline
-0.00218142586794201 \tabularnewline
0.00717794073071176 \tabularnewline
-0.0219530805233992 \tabularnewline
-0.0262709334072364 \tabularnewline
-0.0108404374600033 \tabularnewline
-0.0169713685521029 \tabularnewline
-0.00177667738362741 \tabularnewline
-0.00277562633732398 \tabularnewline
0.0166926067966300 \tabularnewline
0.0323954032747169 \tabularnewline
-0.00777387222601233 \tabularnewline
-0.00378527947326446 \tabularnewline
-0.00294659738344438 \tabularnewline
-0.0278707310250015 \tabularnewline
0.00247202364692223 \tabularnewline
0.00470852716949888 \tabularnewline
-0.00426968017840879 \tabularnewline
-0.0182167684563066 \tabularnewline
0.00156907667532580 \tabularnewline
0.0200608063185983 \tabularnewline
0.00179802970611731 \tabularnewline
0.0301917208980709 \tabularnewline
0.0123459966317987 \tabularnewline
-0.00347375101643399 \tabularnewline
-0.0116730283139468 \tabularnewline
-0.0052685429399657 \tabularnewline
-0.00456533657561309 \tabularnewline
0.0539070033490621 \tabularnewline
0.0287416144949160 \tabularnewline
0.0291408002264701 \tabularnewline
-0.0184298402340568 \tabularnewline
0.000830534923705217 \tabularnewline
8.64003542688785e-05 \tabularnewline
0.00135066280277263 \tabularnewline
-0.0381591080430783 \tabularnewline
-0.00896853448831858 \tabularnewline
0.00981850089039416 \tabularnewline
-0.0214313077684278 \tabularnewline
0.00829604877539869 \tabularnewline
-0.0225975321279519 \tabularnewline
-0.00633214775596769 \tabularnewline
-0.0121778078012447 \tabularnewline
-0.00643041001977451 \tabularnewline
0.00537795998509671 \tabularnewline
0.0307760069762759 \tabularnewline
0.0115357586985718 \tabularnewline
-0.04057560271691 \tabularnewline
-0.0280664544540812 \tabularnewline
-0.0324360408408988 \tabularnewline
-0.000623279026507495 \tabularnewline
0.0146488864743142 \tabularnewline
0.00956180207907864 \tabularnewline
-0.0187920263075034 \tabularnewline
0.00531962165903122 \tabularnewline
-0.0124485198730278 \tabularnewline
0.00214702818840729 \tabularnewline
-0.049531690412995 \tabularnewline
-0.00979835833179887 \tabularnewline
-0.0154910400794428 \tabularnewline
0.0331689760420297 \tabularnewline
-0.0113387998595167 \tabularnewline
-0.00301723308397817 \tabularnewline
0.00418088858243881 \tabularnewline
-0.00160941123112912 \tabularnewline
0.0281238463596898 \tabularnewline
-0.00363086396353296 \tabularnewline
0.000830137661506747 \tabularnewline
-0.0193216928086259 \tabularnewline
-0.00333926572459786 \tabularnewline
-0.00619559719045704 \tabularnewline
-0.0268523320795073 \tabularnewline
-0.0179687437636009 \tabularnewline
-0.00618527364809229 \tabularnewline
-0.0146784749743045 \tabularnewline
0.00262669418199146 \tabularnewline
0.0252906778974673 \tabularnewline
0.0488781794563016 \tabularnewline
-0.00982638970409022 \tabularnewline
-0.0127551003859534 \tabularnewline
0.0343715811876069 \tabularnewline
0.0168919963124805 \tabularnewline
-0.0329573762386843 \tabularnewline
0.0137081208156327 \tabularnewline
-0.0176907519042722 \tabularnewline
0.0280876157078647 \tabularnewline
0.0290788364882542 \tabularnewline
-0.0370752601853321 \tabularnewline
-0.0152491975753268 \tabularnewline
0.0386804879101867 \tabularnewline
-0.0225253443041125 \tabularnewline
0.0294191219078213 \tabularnewline
0.0267889126766763 \tabularnewline
0.0239800424376073 \tabularnewline
0.000457804711749388 \tabularnewline
0.0646886547818102 \tabularnewline
-0.0574681531391299 \tabularnewline
-0.00479732467112592 \tabularnewline
0.045403651711116 \tabularnewline
0.0378611202717007 \tabularnewline
0.0313143790084380 \tabularnewline
0.0221569949949625 \tabularnewline
-0.0150539058471653 \tabularnewline
-0.0078932640937952 \tabularnewline
0.00736188049220843 \tabularnewline
0.00153527027509059 \tabularnewline
-0.00179349719952082 \tabularnewline
0.00837716893469498 \tabularnewline
0.0065520620554742 \tabularnewline
0.0252566451611989 \tabularnewline
-0.0156863238899876 \tabularnewline
0.0249948010919481 \tabularnewline
0.00227195374813416 \tabularnewline
0.0171385180085974 \tabularnewline
-0.0110010369844824 \tabularnewline
0.00135895341625170 \tabularnewline
-0.0521549059672624 \tabularnewline
-0.0221755959384566 \tabularnewline
0.00886499905216853 \tabularnewline
0.0132939016972156 \tabularnewline
0.0183886324845357 \tabularnewline
0.00605681811503755 \tabularnewline
0.00257838918588171 \tabularnewline
-0.0044836491776008 \tabularnewline
-0.0300770830224819 \tabularnewline
-0.000873076339588108 \tabularnewline
-0.00246914875391546 \tabularnewline
0.045730506073159 \tabularnewline
-0.0121785545747066 \tabularnewline
0.0211710627121551 \tabularnewline
0.0272173411022001 \tabularnewline
0.0245016302757153 \tabularnewline
-0.0123755292071734 \tabularnewline
-0.00335875498935767 \tabularnewline
0.0147497672349299 \tabularnewline
-0.029796070672933 \tabularnewline
-0.0137669003204852 \tabularnewline
-0.0145040593818118 \tabularnewline
0.0272600409204522 \tabularnewline
-0.0222752292297459 \tabularnewline
0.0227745064099949 \tabularnewline
-0.00680862614930389 \tabularnewline
-0.0217435240699844 \tabularnewline
-0.00788511127762681 \tabularnewline
0.0123558580697156 \tabularnewline
-0.0209211394607527 \tabularnewline
0.0155815269125608 \tabularnewline
0.0101614405426393 \tabularnewline
0.0116273054628617 \tabularnewline
-0.0268771121199689 \tabularnewline
0.0128290599045022 \tabularnewline
0.0389756236700101 \tabularnewline
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0.0321555193040863 \tabularnewline
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0.0318672428679871 \tabularnewline
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0.022793501634202 \tabularnewline
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0.0167591166494652 \tabularnewline
5.36837857205708e-05 \tabularnewline
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0.0134826821985634 \tabularnewline
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0.0373032499264374 \tabularnewline
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0.0350947756260309 \tabularnewline
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0.0757491694057542 \tabularnewline
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0.0269317719294999 \tabularnewline
0.0108088105772075 \tabularnewline
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0.0157689282380973 \tabularnewline
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0.0126019751988735 \tabularnewline
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0.0384681673036087 \tabularnewline
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0.064344598517319 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=113150&T=2

[TABLE]
[ROW][C]Estimated ARIMA Residuals[/C][/ROW]
[ROW][C]Value[/C][/ROW]
[ROW][C]0.00164575503529101[/C][/ROW]
[ROW][C]0.0355959800251472[/C][/ROW]
[ROW][C]0.0191489774664029[/C][/ROW]
[ROW][C]0.0234085733032598[/C][/ROW]
[ROW][C]0.00440606854431308[/C][/ROW]
[ROW][C]0.0386574990310776[/C][/ROW]
[ROW][C]0.0343940313367198[/C][/ROW]
[ROW][C]0.00499213676742217[/C][/ROW]
[ROW][C]-0.00897885554677462[/C][/ROW]
[ROW][C]-0.0418685958126822[/C][/ROW]
[ROW][C]0.0290557142723267[/C][/ROW]
[ROW][C]-0.00143610172309305[/C][/ROW]
[ROW][C]0.0199389193188173[/C][/ROW]
[ROW][C]-0.00321029901084602[/C][/ROW]
[ROW][C]0.0212003881371894[/C][/ROW]
[ROW][C]0.0399633515336886[/C][/ROW]
[ROW][C]-0.0091520857414864[/C][/ROW]
[ROW][C]0.0407459509834669[/C][/ROW]
[ROW][C]0.0421330702204279[/C][/ROW]
[ROW][C]-0.05938936071309[/C][/ROW]
[ROW][C]-0.00439170133897959[/C][/ROW]
[ROW][C]-0.0231357946592201[/C][/ROW]
[ROW][C]-0.0223978067337076[/C][/ROW]
[ROW][C]-0.00358452940342824[/C][/ROW]
[ROW][C]-0.0092018404217935[/C][/ROW]
[ROW][C]0.0257145706311039[/C][/ROW]
[ROW][C]0.0329731050374324[/C][/ROW]
[ROW][C]-0.0252478482972904[/C][/ROW]
[ROW][C]0.0192181995262943[/C][/ROW]
[ROW][C]-0.0358470095393595[/C][/ROW]
[ROW][C]-0.00303159105246009[/C][/ROW]
[ROW][C]0.00776194348110537[/C][/ROW]
[ROW][C]0.0526159349507551[/C][/ROW]
[ROW][C]0.00122811017113067[/C][/ROW]
[ROW][C]-0.0327020713019135[/C][/ROW]
[ROW][C]-0.0331161858133084[/C][/ROW]
[ROW][C]0.0241025876454601[/C][/ROW]
[ROW][C]-0.0191704241898436[/C][/ROW]
[ROW][C]0.0233596550853581[/C][/ROW]
[ROW][C]-0.0241163992238467[/C][/ROW]
[ROW][C]-0.0164489139153225[/C][/ROW]
[ROW][C]-0.0217317231038447[/C][/ROW]
[ROW][C]0.00452202688396697[/C][/ROW]
[ROW][C]-0.0219847365447148[/C][/ROW]
[ROW][C]-0.00506132213535704[/C][/ROW]
[ROW][C]-0.0345416099624896[/C][/ROW]
[ROW][C]0.00475154081967433[/C][/ROW]
[ROW][C]-0.0158918215721640[/C][/ROW]
[ROW][C]-0.0212913390754317[/C][/ROW]
[ROW][C]0.0122159735891676[/C][/ROW]
[ROW][C]-0.0554773618204567[/C][/ROW]
[ROW][C]-0.0106799731360077[/C][/ROW]
[ROW][C]-0.00218142586794201[/C][/ROW]
[ROW][C]0.00717794073071176[/C][/ROW]
[ROW][C]-0.0219530805233992[/C][/ROW]
[ROW][C]-0.0262709334072364[/C][/ROW]
[ROW][C]-0.0108404374600033[/C][/ROW]
[ROW][C]-0.0169713685521029[/C][/ROW]
[ROW][C]-0.00177667738362741[/C][/ROW]
[ROW][C]-0.00277562633732398[/C][/ROW]
[ROW][C]0.0166926067966300[/C][/ROW]
[ROW][C]0.0323954032747169[/C][/ROW]
[ROW][C]-0.00777387222601233[/C][/ROW]
[ROW][C]-0.00378527947326446[/C][/ROW]
[ROW][C]-0.00294659738344438[/C][/ROW]
[ROW][C]-0.0278707310250015[/C][/ROW]
[ROW][C]0.00247202364692223[/C][/ROW]
[ROW][C]0.00470852716949888[/C][/ROW]
[ROW][C]-0.00426968017840879[/C][/ROW]
[ROW][C]-0.0182167684563066[/C][/ROW]
[ROW][C]0.00156907667532580[/C][/ROW]
[ROW][C]0.0200608063185983[/C][/ROW]
[ROW][C]0.00179802970611731[/C][/ROW]
[ROW][C]0.0301917208980709[/C][/ROW]
[ROW][C]0.0123459966317987[/C][/ROW]
[ROW][C]-0.00347375101643399[/C][/ROW]
[ROW][C]-0.0116730283139468[/C][/ROW]
[ROW][C]-0.0052685429399657[/C][/ROW]
[ROW][C]-0.00456533657561309[/C][/ROW]
[ROW][C]0.0539070033490621[/C][/ROW]
[ROW][C]0.0287416144949160[/C][/ROW]
[ROW][C]0.0291408002264701[/C][/ROW]
[ROW][C]-0.0184298402340568[/C][/ROW]
[ROW][C]0.000830534923705217[/C][/ROW]
[ROW][C]8.64003542688785e-05[/C][/ROW]
[ROW][C]0.00135066280277263[/C][/ROW]
[ROW][C]-0.0381591080430783[/C][/ROW]
[ROW][C]-0.00896853448831858[/C][/ROW]
[ROW][C]0.00981850089039416[/C][/ROW]
[ROW][C]-0.0214313077684278[/C][/ROW]
[ROW][C]0.00829604877539869[/C][/ROW]
[ROW][C]-0.0225975321279519[/C][/ROW]
[ROW][C]-0.00633214775596769[/C][/ROW]
[ROW][C]-0.0121778078012447[/C][/ROW]
[ROW][C]-0.00643041001977451[/C][/ROW]
[ROW][C]0.00537795998509671[/C][/ROW]
[ROW][C]0.0307760069762759[/C][/ROW]
[ROW][C]0.0115357586985718[/C][/ROW]
[ROW][C]-0.04057560271691[/C][/ROW]
[ROW][C]-0.0280664544540812[/C][/ROW]
[ROW][C]-0.0324360408408988[/C][/ROW]
[ROW][C]-0.000623279026507495[/C][/ROW]
[ROW][C]0.0146488864743142[/C][/ROW]
[ROW][C]0.00956180207907864[/C][/ROW]
[ROW][C]-0.0187920263075034[/C][/ROW]
[ROW][C]0.00531962165903122[/C][/ROW]
[ROW][C]-0.0124485198730278[/C][/ROW]
[ROW][C]0.00214702818840729[/C][/ROW]
[ROW][C]-0.049531690412995[/C][/ROW]
[ROW][C]-0.00979835833179887[/C][/ROW]
[ROW][C]-0.0154910400794428[/C][/ROW]
[ROW][C]0.0331689760420297[/C][/ROW]
[ROW][C]-0.0113387998595167[/C][/ROW]
[ROW][C]-0.00301723308397817[/C][/ROW]
[ROW][C]0.00418088858243881[/C][/ROW]
[ROW][C]-0.00160941123112912[/C][/ROW]
[ROW][C]0.0281238463596898[/C][/ROW]
[ROW][C]-0.00363086396353296[/C][/ROW]
[ROW][C]0.000830137661506747[/C][/ROW]
[ROW][C]-0.0193216928086259[/C][/ROW]
[ROW][C]-0.00333926572459786[/C][/ROW]
[ROW][C]-0.00619559719045704[/C][/ROW]
[ROW][C]-0.0268523320795073[/C][/ROW]
[ROW][C]-0.0179687437636009[/C][/ROW]
[ROW][C]-0.00618527364809229[/C][/ROW]
[ROW][C]-0.0146784749743045[/C][/ROW]
[ROW][C]0.00262669418199146[/C][/ROW]
[ROW][C]0.0252906778974673[/C][/ROW]
[ROW][C]0.0488781794563016[/C][/ROW]
[ROW][C]-0.00982638970409022[/C][/ROW]
[ROW][C]-0.0127551003859534[/C][/ROW]
[ROW][C]0.0343715811876069[/C][/ROW]
[ROW][C]0.0168919963124805[/C][/ROW]
[ROW][C]-0.0329573762386843[/C][/ROW]
[ROW][C]0.0137081208156327[/C][/ROW]
[ROW][C]-0.0176907519042722[/C][/ROW]
[ROW][C]0.0280876157078647[/C][/ROW]
[ROW][C]0.0290788364882542[/C][/ROW]
[ROW][C]-0.0370752601853321[/C][/ROW]
[ROW][C]-0.0152491975753268[/C][/ROW]
[ROW][C]0.0386804879101867[/C][/ROW]
[ROW][C]-0.0225253443041125[/C][/ROW]
[ROW][C]0.0294191219078213[/C][/ROW]
[ROW][C]0.0267889126766763[/C][/ROW]
[ROW][C]0.0239800424376073[/C][/ROW]
[ROW][C]0.000457804711749388[/C][/ROW]
[ROW][C]0.0646886547818102[/C][/ROW]
[ROW][C]-0.0574681531391299[/C][/ROW]
[ROW][C]-0.00479732467112592[/C][/ROW]
[ROW][C]0.045403651711116[/C][/ROW]
[ROW][C]0.0378611202717007[/C][/ROW]
[ROW][C]0.0313143790084380[/C][/ROW]
[ROW][C]0.0221569949949625[/C][/ROW]
[ROW][C]-0.0150539058471653[/C][/ROW]
[ROW][C]-0.0078932640937952[/C][/ROW]
[ROW][C]0.00736188049220843[/C][/ROW]
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[ROW][C]0.0564646671535554[/C][/ROW]
[ROW][C]0.064344598517319[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=113150&T=2

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=113150&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
0.00164575503529101
0.0355959800251472
0.0191489774664029
0.0234085733032598
0.00440606854431308
0.0386574990310776
0.0343940313367198
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0.0290557142723267
-0.00143610172309305
0.0199389193188173
-0.00321029901084602
0.0212003881371894
0.0399633515336886
-0.0091520857414864
0.0407459509834669
0.0421330702204279
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0.0257145706311039
0.0329731050374324
-0.0252478482972904
0.0192181995262943
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0.00776194348110537
0.0526159349507551
0.00122811017113067
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0.0241025876454601
-0.0191704241898436
0.0233596550853581
-0.0241163992238467
-0.0164489139153225
-0.0217317231038447
0.00452202688396697
-0.0219847365447148
-0.00506132213535704
-0.0345416099624896
0.00475154081967433
-0.0158918215721640
-0.0212913390754317
0.0122159735891676
-0.0554773618204567
-0.0106799731360077
-0.00218142586794201
0.00717794073071176
-0.0219530805233992
-0.0262709334072364
-0.0108404374600033
-0.0169713685521029
-0.00177667738362741
-0.00277562633732398
0.0166926067966300
0.0323954032747169
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Parameters (Session):
par1 = FALSE ; par2 = 1.9 ; par3 = 1 ; par4 = 0 ; par5 = 12 ; par6 = 3 ; par7 = 0 ; par8 = 2 ; par9 = 1 ;
Parameters (R input):
par1 = FALSE ; par2 = 1.9 ; par3 = 1 ; par4 = 0 ; par5 = 12 ; par6 = 3 ; par7 = 0 ; 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 <- 5 #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')