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Author*The author of this computation has been verified*
R Software Modulerwasp_decompose.wasp
Title produced by softwareClassical Decomposition
Date of computationFri, 04 Dec 2009 12:47:16 -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/2009/Dec/04/t1259956150rrcigbo6sm58ai9.htm/, Retrieved Sun, 28 Apr 2024 06:09:21 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=64100, Retrieved Sun, 28 Apr 2024 06:09:21 +0000
QR Codes:

Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact107
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   [Classical Decomposition] [] [2009-11-27 14:58:37] [b98453cac15ba1066b407e146608df68]
-   PD      [Classical Decomposition] [] [2009-12-04 19:47:16] [90c9838c596c9c0a7d0d4c412ffe5b98] [Current]
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Dataseries X:
6802.96
7132.68
7073.29
7264.5
7105.33
7218.71
7225.72
7354.25
7745.46
8070.26
8366.33
8667.51
8854.34
9218.1
9332.9
9358.31
9248.66
9401.2
9652.04
9957.38
10110.63
10169.26
10343.78
10750.21
11337.5
11786.96
12083.04
12007.74
11745.93
11051.51
11445.9
11924.88
12247.63
12690.91
12910.7
13202.12
13654.67
13862.82
13523.93
14211.17
14510.35
14289.23
14111.82
13086.59
13351.54
13747.69
12855.61
12926.93
12121.95
11731.65
11639.51
12163.78
12029.53
11234.18
9852.13
9709.04
9332.75
7108.6
6691.49
6143.05




Summary of computational transaction
Raw Inputview raw input (R code)
Raw Outputview raw output of R engine
Computing time2 seconds
R Server'Gwilym Jenkins' @ 72.249.127.135

\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 & 2 seconds \tabularnewline
R Server & 'Gwilym Jenkins' @ 72.249.127.135 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=64100&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]2 seconds[/C][/ROW]
[ROW][C]R Server[/C][C]'Gwilym Jenkins' @ 72.249.127.135[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=64100&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=64100&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 time2 seconds
R Server'Gwilym Jenkins' @ 72.249.127.135







Classical Decomposition by Moving Averages
tObservationsFitTrendSeasonalRandom
16802.96NANA1.00587694394746NA
27132.68NANA1.01565698086674NA
37073.29NANA1.01184043881666NA
47264.5NANA1.03324830456141NA
57105.33NANA1.03034158057347NA
67218.71NANA1.00276944965960NA
77225.727372.143748441527587.724166666670.971588263688840.980138240186584
87354.257473.530483250917760.090833333330.9630725520825730.98403960704807
97745.467781.400735939637941.133750.9798853640942170.995381199714644
108070.268097.317935542158122.526250.9968964933221540.996658407665657
118366.338188.070049033468299.073750.9866245674745881.02177069198224
128667.518497.962782928338479.316251.002199060912291.01995151325118
138854.348722.311037898778671.351.005876943947461.01513692432287
149218.19019.958661139658880.910416666671.015656980866741.02196698968411
159332.99195.527911931969087.922916666671.011840438816661.01493901050420
169358.319582.272449121189273.931.033248304561410.976627417941794
179248.669730.32135833319443.782083333331.030341580573470.950498925924928
189401.29639.577594952519612.9551.002769449659600.975270950142325
199652.049524.673256937559803.199166666670.971588263688841.01337229526164
209957.389643.9196147892610013.70.9630725520825731.03250342160982
2110110.6310029.445164247610235.3250.9798853640942171.00809464874904
2210169.2610427.843450447910460.30708333330.9968964933221540.975202595658762
2310343.7810531.973479304310674.75291666670.9866245674745880.982131223585574
2410750.2110871.423214431510847.568751.002199060912290.988850290156066
2511337.511055.669769928110991.07583333331.005876943947461.02549191825886
2611786.9611322.340044925411147.79916666671.015656980866741.04103568283862
2712083.0411452.839795686811318.821.011840438816661.05502567184696
2812007.7411895.715833554311512.93041666671.033248304561411.00941718581825
2911745.9312080.707808234911724.95416666671.030341580573470.97228822900537
3011051.5111967.122895202211934.07208333331.002769449659600.92348930455379
3111445.911788.070297374712132.783750.971588263688840.970973171287341
3211924.8811861.034618873312315.82666666670.9630725520825731.00538278347364
3312247.6312211.682124645412462.35791666670.9798853640942171.00294372838956
3412690.9112575.056315173212614.20458333330.9968964933221541.00921297542715
3512910.712649.709260130912821.19833333330.9866245674745881.02063215323784
3613202.1213100.032057414613071.28751.002199060912291.00779295364607
3713654.6713395.537364015513317.27251.005876943947461.01934469883087
3813862.8213687.762411132813476.75708333331.015656980866741.01278935034150
3913523.9313731.846381650213571.15791666671.011840438816660.984858818262926
4014211.1714115.397961630213661.18666666671.033248304561411.00678493363277
4114510.3514118.692115052813702.923751.030341580573471.02774038004056
4214289.2313727.073528605213689.16208333331.002769449659601.04095239019615
4314111.8213227.039880825713613.83250.971588263688841.06689177073223
4413086.5912964.083747197613461.17041666670.9630725520825731.00944966533627
4513351.5413026.453130319613293.85416666670.9798853640942171.02495590061455
4613747.6913089.279618094113130.028750.9968964933221541.05030149871623
4712855.6112768.257135035812941.35333333330.9866245674745881.00684140866215
4812926.9312738.643669462012710.69208333331.002199060912291.01478072041448
4912121.9512478.820095033412405.911251.005876943947460.971401936055205
5011731.6512276.949693386012087.69291666671.015656980866740.955583454603571
5111639.5111918.986675446111779.51208333331.011840438816660.976551976853716
5212163.7811712.317703655711335.433751.033248304561411.03854594007499
5312029.5311129.715408635310801.96666666671.030341580573471.08084794249694
5411234.1810290.888051483310262.46666666671.002769449659601.09166283257553
559852.13NANA0.97158826368884NA
569709.04NANA0.963072552082573NA
579332.75NANA0.979885364094217NA
587108.6NANA0.996896493322154NA
596691.49NANA0.986624567474588NA
606143.05NANA1.00219906091229NA

\begin{tabular}{lllllllll}
\hline
Classical Decomposition by Moving Averages \tabularnewline
t & Observations & Fit & Trend & Seasonal & Random \tabularnewline
1 & 6802.96 & NA & NA & 1.00587694394746 & NA \tabularnewline
2 & 7132.68 & NA & NA & 1.01565698086674 & NA \tabularnewline
3 & 7073.29 & NA & NA & 1.01184043881666 & NA \tabularnewline
4 & 7264.5 & NA & NA & 1.03324830456141 & NA \tabularnewline
5 & 7105.33 & NA & NA & 1.03034158057347 & NA \tabularnewline
6 & 7218.71 & NA & NA & 1.00276944965960 & NA \tabularnewline
7 & 7225.72 & 7372.14374844152 & 7587.72416666667 & 0.97158826368884 & 0.980138240186584 \tabularnewline
8 & 7354.25 & 7473.53048325091 & 7760.09083333333 & 0.963072552082573 & 0.98403960704807 \tabularnewline
9 & 7745.46 & 7781.40073593963 & 7941.13375 & 0.979885364094217 & 0.995381199714644 \tabularnewline
10 & 8070.26 & 8097.31793554215 & 8122.52625 & 0.996896493322154 & 0.996658407665657 \tabularnewline
11 & 8366.33 & 8188.07004903346 & 8299.07375 & 0.986624567474588 & 1.02177069198224 \tabularnewline
12 & 8667.51 & 8497.96278292833 & 8479.31625 & 1.00219906091229 & 1.01995151325118 \tabularnewline
13 & 8854.34 & 8722.31103789877 & 8671.35 & 1.00587694394746 & 1.01513692432287 \tabularnewline
14 & 9218.1 & 9019.95866113965 & 8880.91041666667 & 1.01565698086674 & 1.02196698968411 \tabularnewline
15 & 9332.9 & 9195.52791193196 & 9087.92291666667 & 1.01184043881666 & 1.01493901050420 \tabularnewline
16 & 9358.31 & 9582.27244912118 & 9273.93 & 1.03324830456141 & 0.976627417941794 \tabularnewline
17 & 9248.66 & 9730.3213583331 & 9443.78208333333 & 1.03034158057347 & 0.950498925924928 \tabularnewline
18 & 9401.2 & 9639.57759495251 & 9612.955 & 1.00276944965960 & 0.975270950142325 \tabularnewline
19 & 9652.04 & 9524.67325693755 & 9803.19916666667 & 0.97158826368884 & 1.01337229526164 \tabularnewline
20 & 9957.38 & 9643.91961478926 & 10013.7 & 0.963072552082573 & 1.03250342160982 \tabularnewline
21 & 10110.63 & 10029.4451642476 & 10235.325 & 0.979885364094217 & 1.00809464874904 \tabularnewline
22 & 10169.26 & 10427.8434504479 & 10460.3070833333 & 0.996896493322154 & 0.975202595658762 \tabularnewline
23 & 10343.78 & 10531.9734793043 & 10674.7529166667 & 0.986624567474588 & 0.982131223585574 \tabularnewline
24 & 10750.21 & 10871.4232144315 & 10847.56875 & 1.00219906091229 & 0.988850290156066 \tabularnewline
25 & 11337.5 & 11055.6697699281 & 10991.0758333333 & 1.00587694394746 & 1.02549191825886 \tabularnewline
26 & 11786.96 & 11322.3400449254 & 11147.7991666667 & 1.01565698086674 & 1.04103568283862 \tabularnewline
27 & 12083.04 & 11452.8397956868 & 11318.82 & 1.01184043881666 & 1.05502567184696 \tabularnewline
28 & 12007.74 & 11895.7158335543 & 11512.9304166667 & 1.03324830456141 & 1.00941718581825 \tabularnewline
29 & 11745.93 & 12080.7078082349 & 11724.9541666667 & 1.03034158057347 & 0.97228822900537 \tabularnewline
30 & 11051.51 & 11967.1228952022 & 11934.0720833333 & 1.00276944965960 & 0.92348930455379 \tabularnewline
31 & 11445.9 & 11788.0702973747 & 12132.78375 & 0.97158826368884 & 0.970973171287341 \tabularnewline
32 & 11924.88 & 11861.0346188733 & 12315.8266666667 & 0.963072552082573 & 1.00538278347364 \tabularnewline
33 & 12247.63 & 12211.6821246454 & 12462.3579166667 & 0.979885364094217 & 1.00294372838956 \tabularnewline
34 & 12690.91 & 12575.0563151732 & 12614.2045833333 & 0.996896493322154 & 1.00921297542715 \tabularnewline
35 & 12910.7 & 12649.7092601309 & 12821.1983333333 & 0.986624567474588 & 1.02063215323784 \tabularnewline
36 & 13202.12 & 13100.0320574146 & 13071.2875 & 1.00219906091229 & 1.00779295364607 \tabularnewline
37 & 13654.67 & 13395.5373640155 & 13317.2725 & 1.00587694394746 & 1.01934469883087 \tabularnewline
38 & 13862.82 & 13687.7624111328 & 13476.7570833333 & 1.01565698086674 & 1.01278935034150 \tabularnewline
39 & 13523.93 & 13731.8463816502 & 13571.1579166667 & 1.01184043881666 & 0.984858818262926 \tabularnewline
40 & 14211.17 & 14115.3979616302 & 13661.1866666667 & 1.03324830456141 & 1.00678493363277 \tabularnewline
41 & 14510.35 & 14118.6921150528 & 13702.92375 & 1.03034158057347 & 1.02774038004056 \tabularnewline
42 & 14289.23 & 13727.0735286052 & 13689.1620833333 & 1.00276944965960 & 1.04095239019615 \tabularnewline
43 & 14111.82 & 13227.0398808257 & 13613.8325 & 0.97158826368884 & 1.06689177073223 \tabularnewline
44 & 13086.59 & 12964.0837471976 & 13461.1704166667 & 0.963072552082573 & 1.00944966533627 \tabularnewline
45 & 13351.54 & 13026.4531303196 & 13293.8541666667 & 0.979885364094217 & 1.02495590061455 \tabularnewline
46 & 13747.69 & 13089.2796180941 & 13130.02875 & 0.996896493322154 & 1.05030149871623 \tabularnewline
47 & 12855.61 & 12768.2571350358 & 12941.3533333333 & 0.986624567474588 & 1.00684140866215 \tabularnewline
48 & 12926.93 & 12738.6436694620 & 12710.6920833333 & 1.00219906091229 & 1.01478072041448 \tabularnewline
49 & 12121.95 & 12478.8200950334 & 12405.91125 & 1.00587694394746 & 0.971401936055205 \tabularnewline
50 & 11731.65 & 12276.9496933860 & 12087.6929166667 & 1.01565698086674 & 0.955583454603571 \tabularnewline
51 & 11639.51 & 11918.9866754461 & 11779.5120833333 & 1.01184043881666 & 0.976551976853716 \tabularnewline
52 & 12163.78 & 11712.3177036557 & 11335.43375 & 1.03324830456141 & 1.03854594007499 \tabularnewline
53 & 12029.53 & 11129.7154086353 & 10801.9666666667 & 1.03034158057347 & 1.08084794249694 \tabularnewline
54 & 11234.18 & 10290.8880514833 & 10262.4666666667 & 1.00276944965960 & 1.09166283257553 \tabularnewline
55 & 9852.13 & NA & NA & 0.97158826368884 & NA \tabularnewline
56 & 9709.04 & NA & NA & 0.963072552082573 & NA \tabularnewline
57 & 9332.75 & NA & NA & 0.979885364094217 & NA \tabularnewline
58 & 7108.6 & NA & NA & 0.996896493322154 & NA \tabularnewline
59 & 6691.49 & NA & NA & 0.986624567474588 & NA \tabularnewline
60 & 6143.05 & NA & NA & 1.00219906091229 & NA \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=64100&T=1

[TABLE]
[ROW][C]Classical Decomposition by Moving Averages[/C][/ROW]
[ROW][C]t[/C][C]Observations[/C][C]Fit[/C][C]Trend[/C][C]Seasonal[/C][C]Random[/C][/ROW]
[ROW][C]1[/C][C]6802.96[/C][C]NA[/C][C]NA[/C][C]1.00587694394746[/C][C]NA[/C][/ROW]
[ROW][C]2[/C][C]7132.68[/C][C]NA[/C][C]NA[/C][C]1.01565698086674[/C][C]NA[/C][/ROW]
[ROW][C]3[/C][C]7073.29[/C][C]NA[/C][C]NA[/C][C]1.01184043881666[/C][C]NA[/C][/ROW]
[ROW][C]4[/C][C]7264.5[/C][C]NA[/C][C]NA[/C][C]1.03324830456141[/C][C]NA[/C][/ROW]
[ROW][C]5[/C][C]7105.33[/C][C]NA[/C][C]NA[/C][C]1.03034158057347[/C][C]NA[/C][/ROW]
[ROW][C]6[/C][C]7218.71[/C][C]NA[/C][C]NA[/C][C]1.00276944965960[/C][C]NA[/C][/ROW]
[ROW][C]7[/C][C]7225.72[/C][C]7372.14374844152[/C][C]7587.72416666667[/C][C]0.97158826368884[/C][C]0.980138240186584[/C][/ROW]
[ROW][C]8[/C][C]7354.25[/C][C]7473.53048325091[/C][C]7760.09083333333[/C][C]0.963072552082573[/C][C]0.98403960704807[/C][/ROW]
[ROW][C]9[/C][C]7745.46[/C][C]7781.40073593963[/C][C]7941.13375[/C][C]0.979885364094217[/C][C]0.995381199714644[/C][/ROW]
[ROW][C]10[/C][C]8070.26[/C][C]8097.31793554215[/C][C]8122.52625[/C][C]0.996896493322154[/C][C]0.996658407665657[/C][/ROW]
[ROW][C]11[/C][C]8366.33[/C][C]8188.07004903346[/C][C]8299.07375[/C][C]0.986624567474588[/C][C]1.02177069198224[/C][/ROW]
[ROW][C]12[/C][C]8667.51[/C][C]8497.96278292833[/C][C]8479.31625[/C][C]1.00219906091229[/C][C]1.01995151325118[/C][/ROW]
[ROW][C]13[/C][C]8854.34[/C][C]8722.31103789877[/C][C]8671.35[/C][C]1.00587694394746[/C][C]1.01513692432287[/C][/ROW]
[ROW][C]14[/C][C]9218.1[/C][C]9019.95866113965[/C][C]8880.91041666667[/C][C]1.01565698086674[/C][C]1.02196698968411[/C][/ROW]
[ROW][C]15[/C][C]9332.9[/C][C]9195.52791193196[/C][C]9087.92291666667[/C][C]1.01184043881666[/C][C]1.01493901050420[/C][/ROW]
[ROW][C]16[/C][C]9358.31[/C][C]9582.27244912118[/C][C]9273.93[/C][C]1.03324830456141[/C][C]0.976627417941794[/C][/ROW]
[ROW][C]17[/C][C]9248.66[/C][C]9730.3213583331[/C][C]9443.78208333333[/C][C]1.03034158057347[/C][C]0.950498925924928[/C][/ROW]
[ROW][C]18[/C][C]9401.2[/C][C]9639.57759495251[/C][C]9612.955[/C][C]1.00276944965960[/C][C]0.975270950142325[/C][/ROW]
[ROW][C]19[/C][C]9652.04[/C][C]9524.67325693755[/C][C]9803.19916666667[/C][C]0.97158826368884[/C][C]1.01337229526164[/C][/ROW]
[ROW][C]20[/C][C]9957.38[/C][C]9643.91961478926[/C][C]10013.7[/C][C]0.963072552082573[/C][C]1.03250342160982[/C][/ROW]
[ROW][C]21[/C][C]10110.63[/C][C]10029.4451642476[/C][C]10235.325[/C][C]0.979885364094217[/C][C]1.00809464874904[/C][/ROW]
[ROW][C]22[/C][C]10169.26[/C][C]10427.8434504479[/C][C]10460.3070833333[/C][C]0.996896493322154[/C][C]0.975202595658762[/C][/ROW]
[ROW][C]23[/C][C]10343.78[/C][C]10531.9734793043[/C][C]10674.7529166667[/C][C]0.986624567474588[/C][C]0.982131223585574[/C][/ROW]
[ROW][C]24[/C][C]10750.21[/C][C]10871.4232144315[/C][C]10847.56875[/C][C]1.00219906091229[/C][C]0.988850290156066[/C][/ROW]
[ROW][C]25[/C][C]11337.5[/C][C]11055.6697699281[/C][C]10991.0758333333[/C][C]1.00587694394746[/C][C]1.02549191825886[/C][/ROW]
[ROW][C]26[/C][C]11786.96[/C][C]11322.3400449254[/C][C]11147.7991666667[/C][C]1.01565698086674[/C][C]1.04103568283862[/C][/ROW]
[ROW][C]27[/C][C]12083.04[/C][C]11452.8397956868[/C][C]11318.82[/C][C]1.01184043881666[/C][C]1.05502567184696[/C][/ROW]
[ROW][C]28[/C][C]12007.74[/C][C]11895.7158335543[/C][C]11512.9304166667[/C][C]1.03324830456141[/C][C]1.00941718581825[/C][/ROW]
[ROW][C]29[/C][C]11745.93[/C][C]12080.7078082349[/C][C]11724.9541666667[/C][C]1.03034158057347[/C][C]0.97228822900537[/C][/ROW]
[ROW][C]30[/C][C]11051.51[/C][C]11967.1228952022[/C][C]11934.0720833333[/C][C]1.00276944965960[/C][C]0.92348930455379[/C][/ROW]
[ROW][C]31[/C][C]11445.9[/C][C]11788.0702973747[/C][C]12132.78375[/C][C]0.97158826368884[/C][C]0.970973171287341[/C][/ROW]
[ROW][C]32[/C][C]11924.88[/C][C]11861.0346188733[/C][C]12315.8266666667[/C][C]0.963072552082573[/C][C]1.00538278347364[/C][/ROW]
[ROW][C]33[/C][C]12247.63[/C][C]12211.6821246454[/C][C]12462.3579166667[/C][C]0.979885364094217[/C][C]1.00294372838956[/C][/ROW]
[ROW][C]34[/C][C]12690.91[/C][C]12575.0563151732[/C][C]12614.2045833333[/C][C]0.996896493322154[/C][C]1.00921297542715[/C][/ROW]
[ROW][C]35[/C][C]12910.7[/C][C]12649.7092601309[/C][C]12821.1983333333[/C][C]0.986624567474588[/C][C]1.02063215323784[/C][/ROW]
[ROW][C]36[/C][C]13202.12[/C][C]13100.0320574146[/C][C]13071.2875[/C][C]1.00219906091229[/C][C]1.00779295364607[/C][/ROW]
[ROW][C]37[/C][C]13654.67[/C][C]13395.5373640155[/C][C]13317.2725[/C][C]1.00587694394746[/C][C]1.01934469883087[/C][/ROW]
[ROW][C]38[/C][C]13862.82[/C][C]13687.7624111328[/C][C]13476.7570833333[/C][C]1.01565698086674[/C][C]1.01278935034150[/C][/ROW]
[ROW][C]39[/C][C]13523.93[/C][C]13731.8463816502[/C][C]13571.1579166667[/C][C]1.01184043881666[/C][C]0.984858818262926[/C][/ROW]
[ROW][C]40[/C][C]14211.17[/C][C]14115.3979616302[/C][C]13661.1866666667[/C][C]1.03324830456141[/C][C]1.00678493363277[/C][/ROW]
[ROW][C]41[/C][C]14510.35[/C][C]14118.6921150528[/C][C]13702.92375[/C][C]1.03034158057347[/C][C]1.02774038004056[/C][/ROW]
[ROW][C]42[/C][C]14289.23[/C][C]13727.0735286052[/C][C]13689.1620833333[/C][C]1.00276944965960[/C][C]1.04095239019615[/C][/ROW]
[ROW][C]43[/C][C]14111.82[/C][C]13227.0398808257[/C][C]13613.8325[/C][C]0.97158826368884[/C][C]1.06689177073223[/C][/ROW]
[ROW][C]44[/C][C]13086.59[/C][C]12964.0837471976[/C][C]13461.1704166667[/C][C]0.963072552082573[/C][C]1.00944966533627[/C][/ROW]
[ROW][C]45[/C][C]13351.54[/C][C]13026.4531303196[/C][C]13293.8541666667[/C][C]0.979885364094217[/C][C]1.02495590061455[/C][/ROW]
[ROW][C]46[/C][C]13747.69[/C][C]13089.2796180941[/C][C]13130.02875[/C][C]0.996896493322154[/C][C]1.05030149871623[/C][/ROW]
[ROW][C]47[/C][C]12855.61[/C][C]12768.2571350358[/C][C]12941.3533333333[/C][C]0.986624567474588[/C][C]1.00684140866215[/C][/ROW]
[ROW][C]48[/C][C]12926.93[/C][C]12738.6436694620[/C][C]12710.6920833333[/C][C]1.00219906091229[/C][C]1.01478072041448[/C][/ROW]
[ROW][C]49[/C][C]12121.95[/C][C]12478.8200950334[/C][C]12405.91125[/C][C]1.00587694394746[/C][C]0.971401936055205[/C][/ROW]
[ROW][C]50[/C][C]11731.65[/C][C]12276.9496933860[/C][C]12087.6929166667[/C][C]1.01565698086674[/C][C]0.955583454603571[/C][/ROW]
[ROW][C]51[/C][C]11639.51[/C][C]11918.9866754461[/C][C]11779.5120833333[/C][C]1.01184043881666[/C][C]0.976551976853716[/C][/ROW]
[ROW][C]52[/C][C]12163.78[/C][C]11712.3177036557[/C][C]11335.43375[/C][C]1.03324830456141[/C][C]1.03854594007499[/C][/ROW]
[ROW][C]53[/C][C]12029.53[/C][C]11129.7154086353[/C][C]10801.9666666667[/C][C]1.03034158057347[/C][C]1.08084794249694[/C][/ROW]
[ROW][C]54[/C][C]11234.18[/C][C]10290.8880514833[/C][C]10262.4666666667[/C][C]1.00276944965960[/C][C]1.09166283257553[/C][/ROW]
[ROW][C]55[/C][C]9852.13[/C][C]NA[/C][C]NA[/C][C]0.97158826368884[/C][C]NA[/C][/ROW]
[ROW][C]56[/C][C]9709.04[/C][C]NA[/C][C]NA[/C][C]0.963072552082573[/C][C]NA[/C][/ROW]
[ROW][C]57[/C][C]9332.75[/C][C]NA[/C][C]NA[/C][C]0.979885364094217[/C][C]NA[/C][/ROW]
[ROW][C]58[/C][C]7108.6[/C][C]NA[/C][C]NA[/C][C]0.996896493322154[/C][C]NA[/C][/ROW]
[ROW][C]59[/C][C]6691.49[/C][C]NA[/C][C]NA[/C][C]0.986624567474588[/C][C]NA[/C][/ROW]
[ROW][C]60[/C][C]6143.05[/C][C]NA[/C][C]NA[/C][C]1.00219906091229[/C][C]NA[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=64100&T=1

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=64100&T=1

As an alternative you can also use a QR Code:  

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

Classical Decomposition by Moving Averages
tObservationsFitTrendSeasonalRandom
16802.96NANA1.00587694394746NA
27132.68NANA1.01565698086674NA
37073.29NANA1.01184043881666NA
47264.5NANA1.03324830456141NA
57105.33NANA1.03034158057347NA
67218.71NANA1.00276944965960NA
77225.727372.143748441527587.724166666670.971588263688840.980138240186584
87354.257473.530483250917760.090833333330.9630725520825730.98403960704807
97745.467781.400735939637941.133750.9798853640942170.995381199714644
108070.268097.317935542158122.526250.9968964933221540.996658407665657
118366.338188.070049033468299.073750.9866245674745881.02177069198224
128667.518497.962782928338479.316251.002199060912291.01995151325118
138854.348722.311037898778671.351.005876943947461.01513692432287
149218.19019.958661139658880.910416666671.015656980866741.02196698968411
159332.99195.527911931969087.922916666671.011840438816661.01493901050420
169358.319582.272449121189273.931.033248304561410.976627417941794
179248.669730.32135833319443.782083333331.030341580573470.950498925924928
189401.29639.577594952519612.9551.002769449659600.975270950142325
199652.049524.673256937559803.199166666670.971588263688841.01337229526164
209957.389643.9196147892610013.70.9630725520825731.03250342160982
2110110.6310029.445164247610235.3250.9798853640942171.00809464874904
2210169.2610427.843450447910460.30708333330.9968964933221540.975202595658762
2310343.7810531.973479304310674.75291666670.9866245674745880.982131223585574
2410750.2110871.423214431510847.568751.002199060912290.988850290156066
2511337.511055.669769928110991.07583333331.005876943947461.02549191825886
2611786.9611322.340044925411147.79916666671.015656980866741.04103568283862
2712083.0411452.839795686811318.821.011840438816661.05502567184696
2812007.7411895.715833554311512.93041666671.033248304561411.00941718581825
2911745.9312080.707808234911724.95416666671.030341580573470.97228822900537
3011051.5111967.122895202211934.07208333331.002769449659600.92348930455379
3111445.911788.070297374712132.783750.971588263688840.970973171287341
3211924.8811861.034618873312315.82666666670.9630725520825731.00538278347364
3312247.6312211.682124645412462.35791666670.9798853640942171.00294372838956
3412690.9112575.056315173212614.20458333330.9968964933221541.00921297542715
3512910.712649.709260130912821.19833333330.9866245674745881.02063215323784
3613202.1213100.032057414613071.28751.002199060912291.00779295364607
3713654.6713395.537364015513317.27251.005876943947461.01934469883087
3813862.8213687.762411132813476.75708333331.015656980866741.01278935034150
3913523.9313731.846381650213571.15791666671.011840438816660.984858818262926
4014211.1714115.397961630213661.18666666671.033248304561411.00678493363277
4114510.3514118.692115052813702.923751.030341580573471.02774038004056
4214289.2313727.073528605213689.16208333331.002769449659601.04095239019615
4314111.8213227.039880825713613.83250.971588263688841.06689177073223
4413086.5912964.083747197613461.17041666670.9630725520825731.00944966533627
4513351.5413026.453130319613293.85416666670.9798853640942171.02495590061455
4613747.6913089.279618094113130.028750.9968964933221541.05030149871623
4712855.6112768.257135035812941.35333333330.9866245674745881.00684140866215
4812926.9312738.643669462012710.69208333331.002199060912291.01478072041448
4912121.9512478.820095033412405.911251.005876943947460.971401936055205
5011731.6512276.949693386012087.69291666671.015656980866740.955583454603571
5111639.5111918.986675446111779.51208333331.011840438816660.976551976853716
5212163.7811712.317703655711335.433751.033248304561411.03854594007499
5312029.5311129.715408635310801.96666666671.030341580573471.08084794249694
5411234.1810290.888051483310262.46666666671.002769449659601.09166283257553
559852.13NANA0.97158826368884NA
569709.04NANA0.963072552082573NA
579332.75NANA0.979885364094217NA
587108.6NANA0.996896493322154NA
596691.49NANA0.986624567474588NA
606143.05NANA1.00219906091229NA



Parameters (Session):
par1 = Aandelenkoers ; par2 = belgostat ; par3 = euronext brussel ;
Parameters (R input):
par1 = multiplicative ; par2 = 12 ;
R code (references can be found in the software module):
par2 <- as.numeric(par2)
x <- ts(x,freq=par2)
m <- decompose(x,type=par1)
m$figure
bitmap(file='test1.png')
plot(m)
dev.off()
mylagmax <- length(x)/2
bitmap(file='test2.png')
op <- par(mfrow = c(2,2))
acf(as.numeric(x),lag.max = mylagmax,main='Observed')
acf(as.numeric(m$trend),na.action=na.pass,lag.max = mylagmax,main='Trend')
acf(as.numeric(m$seasonal),na.action=na.pass,lag.max = mylagmax,main='Seasonal')
acf(as.numeric(m$random),na.action=na.pass,lag.max = mylagmax,main='Random')
par(op)
dev.off()
bitmap(file='test3.png')
op <- par(mfrow = c(2,2))
spectrum(as.numeric(x),main='Observed')
spectrum(as.numeric(m$trend[!is.na(m$trend)]),main='Trend')
spectrum(as.numeric(m$seasonal[!is.na(m$seasonal)]),main='Seasonal')
spectrum(as.numeric(m$random[!is.na(m$random)]),main='Random')
par(op)
dev.off()
bitmap(file='test4.png')
op <- par(mfrow = c(2,2))
cpgram(as.numeric(x),main='Observed')
cpgram(as.numeric(m$trend[!is.na(m$trend)]),main='Trend')
cpgram(as.numeric(m$seasonal[!is.na(m$seasonal)]),main='Seasonal')
cpgram(as.numeric(m$random[!is.na(m$random)]),main='Random')
par(op)
dev.off()
load(file='createtable')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,'Classical Decomposition by Moving Averages',6,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'t',header=TRUE)
a<-table.element(a,'Observations',header=TRUE)
a<-table.element(a,'Fit',header=TRUE)
a<-table.element(a,'Trend',header=TRUE)
a<-table.element(a,'Seasonal',header=TRUE)
a<-table.element(a,'Random',header=TRUE)
a<-table.row.end(a)
for (i in 1:length(m$trend)) {
a<-table.row.start(a)
a<-table.element(a,i,header=TRUE)
a<-table.element(a,x[i])
if (par1 == 'additive') a<-table.element(a,m$trend[i]+m$seasonal[i]) else a<-table.element(a,m$trend[i]*m$seasonal[i])
a<-table.element(a,m$trend[i])
a<-table.element(a,m$seasonal[i])
a<-table.element(a,m$random[i])
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable.tab')