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Author's title

Author*Unverified author*
R Software Modulerwasp_decompose.wasp
Title produced by softwareClassical Decomposition
Date of computationSun, 29 Nov 2015 14:57:00 +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/2015/Nov/29/t1448809044g8mkq5jqyhra0xp.htm/, Retrieved Wed, 15 May 2024 08:58:58 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=284475, Retrieved Wed, 15 May 2024 08:58:58 +0000
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Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact105
Family? (F = Feedback message, R = changed R code, M = changed R Module, P = changed Parameters, D = changed Data)
-       [Classical Decomposition] [Saghar Najafi Zadeh] [2015-11-29 14:57:00] [c23f68ac64e5ceef3ca8a84a34b0ff7e] [Current]
- R P     [Classical Decomposition] [Saghar Najafi Zadeh] [2016-01-04 14:41:42] [a726dea3093235710caf789b0c5edf8a]
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Dataseries X:
88.83
89.01
88.21
87.78
87.93
88.11
88.2
88.12
88.38
87.65
88.24
87.83
87.75
87.88
87.61
88.05
87.77
87.79
88.34
88.48
88.75
87.95
89.09
88.73
89.24
89.77
89.84
90.97
91.53
92.2
92.27
92.42
92.07
91.73
92.1
91.68
92.63
93.02
92.66
93.23
93.79
93.92
94.04
94.23
94.37
94.29
94.38
94
94.11
93.98
93.42
93.3
93.32
93.75
93.82
94.06
94.09
93.64
93.9
93.18
93.54
93.55
93.8
93.39
93.27
93.58
93.47
93.75
93.3
92.65
92.96
92.84
93.29
93.57
93.54
94.38
93.98
94.48
94.63
95.45
95.59
94.76
95.66
95.03
96.45
97.15
97.5
98.54
99.54
100.33
100.28
101.81
101.91
101.92
102.68
101.9
102.14
102.3
102.06
102.4
102.99
102.99
102.83
103.01
102.6
102.18
102.6
101.44




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

\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' @ jenkins.wessa.net \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=284475&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' @ jenkins.wessa.net[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=284475&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=284475&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' @ jenkins.wessa.net







Classical Decomposition by Moving Averages
tObservationsFitTrendSeasonalRandom
188.83NANA0.997971NA
289.01NANA0.999111NA
388.21NANA0.996449NA
487.78NANA0.999974NA
587.93NANA1.00083NA
688.11NANA1.00306NA
788.288.32988.14581.002080.998539
888.1288.480688.05371.004850.995924
988.3888.295587.98171.003571.00096
1087.6587.680287.96790.9967290.999656
1188.2488.063687.97251.001041.002
1287.8387.454887.95250.9943421.00429
1387.7587.766587.9450.9979710.999812
1487.8887.887687.96580.9991110.999913
1587.6187.683887.99620.9964490.999159
1688.0588.021988.02420.9999741.00032
1787.7788.145488.07211.000830.995741
1887.7988.415188.1451.003060.99293
1988.3488.42888.24461.002080.999005
2088.4888.813988.38541.004850.996241
2188.7588.87388.55711.003570.998616
2287.9588.481388.77170.9967290.993996
2389.0989.142289.051.001040.999414
2488.7388.884689.39040.9943420.998261
2589.2489.555889.73790.9979710.996474
2689.7789.985890.06580.9991110.997602
2789.8490.047490.36830.9964490.997696
2890.9790.661890.66420.9999741.0034
2991.5391.022890.94711.000831.00557
3092.291.474891.19541.003061.00793
3192.2791.649791.45961.002081.00677
3292.4292.18191.73621.004851.00259
3392.0792.317391.98921.003570.997321
3491.7391.899292.20080.9967290.998159
3592.192.484892.38921.001040.995839
3691.6892.031392.5550.9943420.996183
3792.6392.512392.70040.9979711.00127
3893.0292.76792.84960.9991111.00273
3992.6692.690593.02080.9964490.999671
4093.2393.220993.22330.9999741.0001
4193.7993.502893.4251.000831.00307
4293.9293.903593.61671.003061.00018
4394.0493.969993.7751.002081.00075
4494.2394.331893.87671.004850.998921
4594.3794.283593.94831.003571.00092
4694.2993.675593.98290.9967291.00656
4794.3894.063593.96631.001041.00336
489493.40893.93960.9943421.00634
4994.1193.732793.92330.9979711.00403
5093.9893.823693.90710.9991111.00167
5193.4293.554993.88830.9964490.998558
5293.393.847193.84960.9999740.99417
5393.3293.880693.80251.000830.994029
5493.7594.035693.74831.003060.996963
5593.8293.885193.69041.002080.999306
5694.0694.102793.64881.004850.999546
5794.0993.980793.64671.003571.00116
5893.6493.359893.66620.9967291.003
5993.993.764993.66791.001041.00144
6093.1893.128893.65880.9943421.00055
6193.5493.447193.63710.9979711.00099
6293.5593.526493.60960.9991111.00025
6393.893.231593.56380.9964491.0061
6493.3993.487293.48960.9999740.998961
6593.2793.486993.40921.000830.99768
6693.5893.641993.35581.003060.999339
6793.4793.525293.33121.002080.99941
6893.7593.774193.32171.004850.999743
6993.393.644693.31171.003570.996321
7092.6593.036793.34210.9967290.995843
7192.9693.509693.41291.001040.994122
7292.8492.951193.480.9943420.998805
7393.2993.375993.56580.9979710.99908
7493.5793.601793.6850.9991110.999661
7593.5493.51893.85130.9964491.00024
7694.3894.032194.03460.9999741.0037
7793.9894.313494.2351.000830.996465
7894.4894.728194.43881.003060.997381
7994.6394.858494.66171.002080.997592
8095.4595.402894.94251.004851.0005
8195.5995.596595.25671.003570.999932
8294.7695.282395.5950.9967290.994519
8395.6696.0994961.001040.995428
8495.0395.929596.47540.9943420.990623
8596.4596.757896.95460.9979710.996819
8697.1597.368497.4550.9991110.997757
8797.597.635497.98330.9964490.998613
8898.5498.542498.5450.9999740.999975
8999.5499.218499.13581.000831.00324
90100.33100.0299.71461.003061.0031
91100.28100.446100.2381.002080.998345
92101.81101.178100.691.004851.00625
93101.91101.455101.0941.003571.00449
94101.92101.113101.4450.9967291.00798
95102.68101.855101.751.001041.0081
96101.9101.427102.0040.9943421.00466
97102.14102.014102.2210.9979711.00124
98102.3102.286102.3780.9991111.00013
99102.06102.092102.4560.9964490.999682
100102.4102.493102.4960.9999740.999091
101102.99102.589102.5031.000831.00391
102102.99102.795102.4811.003061.0019
103102.83NANA1.00208NA
104103.01NANA1.00485NA
105102.6NANA1.00357NA
106102.18NANA0.996729NA
107102.6NANA1.00104NA
108101.44NANA0.994342NA

\begin{tabular}{lllllllll}
\hline
Classical Decomposition by Moving Averages \tabularnewline
t & Observations & Fit & Trend & Seasonal & Random \tabularnewline
1 & 88.83 & NA & NA & 0.997971 & NA \tabularnewline
2 & 89.01 & NA & NA & 0.999111 & NA \tabularnewline
3 & 88.21 & NA & NA & 0.996449 & NA \tabularnewline
4 & 87.78 & NA & NA & 0.999974 & NA \tabularnewline
5 & 87.93 & NA & NA & 1.00083 & NA \tabularnewline
6 & 88.11 & NA & NA & 1.00306 & NA \tabularnewline
7 & 88.2 & 88.329 & 88.1458 & 1.00208 & 0.998539 \tabularnewline
8 & 88.12 & 88.4806 & 88.0537 & 1.00485 & 0.995924 \tabularnewline
9 & 88.38 & 88.2955 & 87.9817 & 1.00357 & 1.00096 \tabularnewline
10 & 87.65 & 87.6802 & 87.9679 & 0.996729 & 0.999656 \tabularnewline
11 & 88.24 & 88.0636 & 87.9725 & 1.00104 & 1.002 \tabularnewline
12 & 87.83 & 87.4548 & 87.9525 & 0.994342 & 1.00429 \tabularnewline
13 & 87.75 & 87.7665 & 87.945 & 0.997971 & 0.999812 \tabularnewline
14 & 87.88 & 87.8876 & 87.9658 & 0.999111 & 0.999913 \tabularnewline
15 & 87.61 & 87.6838 & 87.9962 & 0.996449 & 0.999159 \tabularnewline
16 & 88.05 & 88.0219 & 88.0242 & 0.999974 & 1.00032 \tabularnewline
17 & 87.77 & 88.1454 & 88.0721 & 1.00083 & 0.995741 \tabularnewline
18 & 87.79 & 88.4151 & 88.145 & 1.00306 & 0.99293 \tabularnewline
19 & 88.34 & 88.428 & 88.2446 & 1.00208 & 0.999005 \tabularnewline
20 & 88.48 & 88.8139 & 88.3854 & 1.00485 & 0.996241 \tabularnewline
21 & 88.75 & 88.873 & 88.5571 & 1.00357 & 0.998616 \tabularnewline
22 & 87.95 & 88.4813 & 88.7717 & 0.996729 & 0.993996 \tabularnewline
23 & 89.09 & 89.1422 & 89.05 & 1.00104 & 0.999414 \tabularnewline
24 & 88.73 & 88.8846 & 89.3904 & 0.994342 & 0.998261 \tabularnewline
25 & 89.24 & 89.5558 & 89.7379 & 0.997971 & 0.996474 \tabularnewline
26 & 89.77 & 89.9858 & 90.0658 & 0.999111 & 0.997602 \tabularnewline
27 & 89.84 & 90.0474 & 90.3683 & 0.996449 & 0.997696 \tabularnewline
28 & 90.97 & 90.6618 & 90.6642 & 0.999974 & 1.0034 \tabularnewline
29 & 91.53 & 91.0228 & 90.9471 & 1.00083 & 1.00557 \tabularnewline
30 & 92.2 & 91.4748 & 91.1954 & 1.00306 & 1.00793 \tabularnewline
31 & 92.27 & 91.6497 & 91.4596 & 1.00208 & 1.00677 \tabularnewline
32 & 92.42 & 92.181 & 91.7362 & 1.00485 & 1.00259 \tabularnewline
33 & 92.07 & 92.3173 & 91.9892 & 1.00357 & 0.997321 \tabularnewline
34 & 91.73 & 91.8992 & 92.2008 & 0.996729 & 0.998159 \tabularnewline
35 & 92.1 & 92.4848 & 92.3892 & 1.00104 & 0.995839 \tabularnewline
36 & 91.68 & 92.0313 & 92.555 & 0.994342 & 0.996183 \tabularnewline
37 & 92.63 & 92.5123 & 92.7004 & 0.997971 & 1.00127 \tabularnewline
38 & 93.02 & 92.767 & 92.8496 & 0.999111 & 1.00273 \tabularnewline
39 & 92.66 & 92.6905 & 93.0208 & 0.996449 & 0.999671 \tabularnewline
40 & 93.23 & 93.2209 & 93.2233 & 0.999974 & 1.0001 \tabularnewline
41 & 93.79 & 93.5028 & 93.425 & 1.00083 & 1.00307 \tabularnewline
42 & 93.92 & 93.9035 & 93.6167 & 1.00306 & 1.00018 \tabularnewline
43 & 94.04 & 93.9699 & 93.775 & 1.00208 & 1.00075 \tabularnewline
44 & 94.23 & 94.3318 & 93.8767 & 1.00485 & 0.998921 \tabularnewline
45 & 94.37 & 94.2835 & 93.9483 & 1.00357 & 1.00092 \tabularnewline
46 & 94.29 & 93.6755 & 93.9829 & 0.996729 & 1.00656 \tabularnewline
47 & 94.38 & 94.0635 & 93.9663 & 1.00104 & 1.00336 \tabularnewline
48 & 94 & 93.408 & 93.9396 & 0.994342 & 1.00634 \tabularnewline
49 & 94.11 & 93.7327 & 93.9233 & 0.997971 & 1.00403 \tabularnewline
50 & 93.98 & 93.8236 & 93.9071 & 0.999111 & 1.00167 \tabularnewline
51 & 93.42 & 93.5549 & 93.8883 & 0.996449 & 0.998558 \tabularnewline
52 & 93.3 & 93.8471 & 93.8496 & 0.999974 & 0.99417 \tabularnewline
53 & 93.32 & 93.8806 & 93.8025 & 1.00083 & 0.994029 \tabularnewline
54 & 93.75 & 94.0356 & 93.7483 & 1.00306 & 0.996963 \tabularnewline
55 & 93.82 & 93.8851 & 93.6904 & 1.00208 & 0.999306 \tabularnewline
56 & 94.06 & 94.1027 & 93.6488 & 1.00485 & 0.999546 \tabularnewline
57 & 94.09 & 93.9807 & 93.6467 & 1.00357 & 1.00116 \tabularnewline
58 & 93.64 & 93.3598 & 93.6662 & 0.996729 & 1.003 \tabularnewline
59 & 93.9 & 93.7649 & 93.6679 & 1.00104 & 1.00144 \tabularnewline
60 & 93.18 & 93.1288 & 93.6588 & 0.994342 & 1.00055 \tabularnewline
61 & 93.54 & 93.4471 & 93.6371 & 0.997971 & 1.00099 \tabularnewline
62 & 93.55 & 93.5264 & 93.6096 & 0.999111 & 1.00025 \tabularnewline
63 & 93.8 & 93.2315 & 93.5638 & 0.996449 & 1.0061 \tabularnewline
64 & 93.39 & 93.4872 & 93.4896 & 0.999974 & 0.998961 \tabularnewline
65 & 93.27 & 93.4869 & 93.4092 & 1.00083 & 0.99768 \tabularnewline
66 & 93.58 & 93.6419 & 93.3558 & 1.00306 & 0.999339 \tabularnewline
67 & 93.47 & 93.5252 & 93.3312 & 1.00208 & 0.99941 \tabularnewline
68 & 93.75 & 93.7741 & 93.3217 & 1.00485 & 0.999743 \tabularnewline
69 & 93.3 & 93.6446 & 93.3117 & 1.00357 & 0.996321 \tabularnewline
70 & 92.65 & 93.0367 & 93.3421 & 0.996729 & 0.995843 \tabularnewline
71 & 92.96 & 93.5096 & 93.4129 & 1.00104 & 0.994122 \tabularnewline
72 & 92.84 & 92.9511 & 93.48 & 0.994342 & 0.998805 \tabularnewline
73 & 93.29 & 93.3759 & 93.5658 & 0.997971 & 0.99908 \tabularnewline
74 & 93.57 & 93.6017 & 93.685 & 0.999111 & 0.999661 \tabularnewline
75 & 93.54 & 93.518 & 93.8513 & 0.996449 & 1.00024 \tabularnewline
76 & 94.38 & 94.0321 & 94.0346 & 0.999974 & 1.0037 \tabularnewline
77 & 93.98 & 94.3134 & 94.235 & 1.00083 & 0.996465 \tabularnewline
78 & 94.48 & 94.7281 & 94.4388 & 1.00306 & 0.997381 \tabularnewline
79 & 94.63 & 94.8584 & 94.6617 & 1.00208 & 0.997592 \tabularnewline
80 & 95.45 & 95.4028 & 94.9425 & 1.00485 & 1.0005 \tabularnewline
81 & 95.59 & 95.5965 & 95.2567 & 1.00357 & 0.999932 \tabularnewline
82 & 94.76 & 95.2823 & 95.595 & 0.996729 & 0.994519 \tabularnewline
83 & 95.66 & 96.0994 & 96 & 1.00104 & 0.995428 \tabularnewline
84 & 95.03 & 95.9295 & 96.4754 & 0.994342 & 0.990623 \tabularnewline
85 & 96.45 & 96.7578 & 96.9546 & 0.997971 & 0.996819 \tabularnewline
86 & 97.15 & 97.3684 & 97.455 & 0.999111 & 0.997757 \tabularnewline
87 & 97.5 & 97.6354 & 97.9833 & 0.996449 & 0.998613 \tabularnewline
88 & 98.54 & 98.5424 & 98.545 & 0.999974 & 0.999975 \tabularnewline
89 & 99.54 & 99.2184 & 99.1358 & 1.00083 & 1.00324 \tabularnewline
90 & 100.33 & 100.02 & 99.7146 & 1.00306 & 1.0031 \tabularnewline
91 & 100.28 & 100.446 & 100.238 & 1.00208 & 0.998345 \tabularnewline
92 & 101.81 & 101.178 & 100.69 & 1.00485 & 1.00625 \tabularnewline
93 & 101.91 & 101.455 & 101.094 & 1.00357 & 1.00449 \tabularnewline
94 & 101.92 & 101.113 & 101.445 & 0.996729 & 1.00798 \tabularnewline
95 & 102.68 & 101.855 & 101.75 & 1.00104 & 1.0081 \tabularnewline
96 & 101.9 & 101.427 & 102.004 & 0.994342 & 1.00466 \tabularnewline
97 & 102.14 & 102.014 & 102.221 & 0.997971 & 1.00124 \tabularnewline
98 & 102.3 & 102.286 & 102.378 & 0.999111 & 1.00013 \tabularnewline
99 & 102.06 & 102.092 & 102.456 & 0.996449 & 0.999682 \tabularnewline
100 & 102.4 & 102.493 & 102.496 & 0.999974 & 0.999091 \tabularnewline
101 & 102.99 & 102.589 & 102.503 & 1.00083 & 1.00391 \tabularnewline
102 & 102.99 & 102.795 & 102.481 & 1.00306 & 1.0019 \tabularnewline
103 & 102.83 & NA & NA & 1.00208 & NA \tabularnewline
104 & 103.01 & NA & NA & 1.00485 & NA \tabularnewline
105 & 102.6 & NA & NA & 1.00357 & NA \tabularnewline
106 & 102.18 & NA & NA & 0.996729 & NA \tabularnewline
107 & 102.6 & NA & NA & 1.00104 & NA \tabularnewline
108 & 101.44 & NA & NA & 0.994342 & NA \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=284475&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]88.83[/C][C]NA[/C][C]NA[/C][C]0.997971[/C][C]NA[/C][/ROW]
[ROW][C]2[/C][C]89.01[/C][C]NA[/C][C]NA[/C][C]0.999111[/C][C]NA[/C][/ROW]
[ROW][C]3[/C][C]88.21[/C][C]NA[/C][C]NA[/C][C]0.996449[/C][C]NA[/C][/ROW]
[ROW][C]4[/C][C]87.78[/C][C]NA[/C][C]NA[/C][C]0.999974[/C][C]NA[/C][/ROW]
[ROW][C]5[/C][C]87.93[/C][C]NA[/C][C]NA[/C][C]1.00083[/C][C]NA[/C][/ROW]
[ROW][C]6[/C][C]88.11[/C][C]NA[/C][C]NA[/C][C]1.00306[/C][C]NA[/C][/ROW]
[ROW][C]7[/C][C]88.2[/C][C]88.329[/C][C]88.1458[/C][C]1.00208[/C][C]0.998539[/C][/ROW]
[ROW][C]8[/C][C]88.12[/C][C]88.4806[/C][C]88.0537[/C][C]1.00485[/C][C]0.995924[/C][/ROW]
[ROW][C]9[/C][C]88.38[/C][C]88.2955[/C][C]87.9817[/C][C]1.00357[/C][C]1.00096[/C][/ROW]
[ROW][C]10[/C][C]87.65[/C][C]87.6802[/C][C]87.9679[/C][C]0.996729[/C][C]0.999656[/C][/ROW]
[ROW][C]11[/C][C]88.24[/C][C]88.0636[/C][C]87.9725[/C][C]1.00104[/C][C]1.002[/C][/ROW]
[ROW][C]12[/C][C]87.83[/C][C]87.4548[/C][C]87.9525[/C][C]0.994342[/C][C]1.00429[/C][/ROW]
[ROW][C]13[/C][C]87.75[/C][C]87.7665[/C][C]87.945[/C][C]0.997971[/C][C]0.999812[/C][/ROW]
[ROW][C]14[/C][C]87.88[/C][C]87.8876[/C][C]87.9658[/C][C]0.999111[/C][C]0.999913[/C][/ROW]
[ROW][C]15[/C][C]87.61[/C][C]87.6838[/C][C]87.9962[/C][C]0.996449[/C][C]0.999159[/C][/ROW]
[ROW][C]16[/C][C]88.05[/C][C]88.0219[/C][C]88.0242[/C][C]0.999974[/C][C]1.00032[/C][/ROW]
[ROW][C]17[/C][C]87.77[/C][C]88.1454[/C][C]88.0721[/C][C]1.00083[/C][C]0.995741[/C][/ROW]
[ROW][C]18[/C][C]87.79[/C][C]88.4151[/C][C]88.145[/C][C]1.00306[/C][C]0.99293[/C][/ROW]
[ROW][C]19[/C][C]88.34[/C][C]88.428[/C][C]88.2446[/C][C]1.00208[/C][C]0.999005[/C][/ROW]
[ROW][C]20[/C][C]88.48[/C][C]88.8139[/C][C]88.3854[/C][C]1.00485[/C][C]0.996241[/C][/ROW]
[ROW][C]21[/C][C]88.75[/C][C]88.873[/C][C]88.5571[/C][C]1.00357[/C][C]0.998616[/C][/ROW]
[ROW][C]22[/C][C]87.95[/C][C]88.4813[/C][C]88.7717[/C][C]0.996729[/C][C]0.993996[/C][/ROW]
[ROW][C]23[/C][C]89.09[/C][C]89.1422[/C][C]89.05[/C][C]1.00104[/C][C]0.999414[/C][/ROW]
[ROW][C]24[/C][C]88.73[/C][C]88.8846[/C][C]89.3904[/C][C]0.994342[/C][C]0.998261[/C][/ROW]
[ROW][C]25[/C][C]89.24[/C][C]89.5558[/C][C]89.7379[/C][C]0.997971[/C][C]0.996474[/C][/ROW]
[ROW][C]26[/C][C]89.77[/C][C]89.9858[/C][C]90.0658[/C][C]0.999111[/C][C]0.997602[/C][/ROW]
[ROW][C]27[/C][C]89.84[/C][C]90.0474[/C][C]90.3683[/C][C]0.996449[/C][C]0.997696[/C][/ROW]
[ROW][C]28[/C][C]90.97[/C][C]90.6618[/C][C]90.6642[/C][C]0.999974[/C][C]1.0034[/C][/ROW]
[ROW][C]29[/C][C]91.53[/C][C]91.0228[/C][C]90.9471[/C][C]1.00083[/C][C]1.00557[/C][/ROW]
[ROW][C]30[/C][C]92.2[/C][C]91.4748[/C][C]91.1954[/C][C]1.00306[/C][C]1.00793[/C][/ROW]
[ROW][C]31[/C][C]92.27[/C][C]91.6497[/C][C]91.4596[/C][C]1.00208[/C][C]1.00677[/C][/ROW]
[ROW][C]32[/C][C]92.42[/C][C]92.181[/C][C]91.7362[/C][C]1.00485[/C][C]1.00259[/C][/ROW]
[ROW][C]33[/C][C]92.07[/C][C]92.3173[/C][C]91.9892[/C][C]1.00357[/C][C]0.997321[/C][/ROW]
[ROW][C]34[/C][C]91.73[/C][C]91.8992[/C][C]92.2008[/C][C]0.996729[/C][C]0.998159[/C][/ROW]
[ROW][C]35[/C][C]92.1[/C][C]92.4848[/C][C]92.3892[/C][C]1.00104[/C][C]0.995839[/C][/ROW]
[ROW][C]36[/C][C]91.68[/C][C]92.0313[/C][C]92.555[/C][C]0.994342[/C][C]0.996183[/C][/ROW]
[ROW][C]37[/C][C]92.63[/C][C]92.5123[/C][C]92.7004[/C][C]0.997971[/C][C]1.00127[/C][/ROW]
[ROW][C]38[/C][C]93.02[/C][C]92.767[/C][C]92.8496[/C][C]0.999111[/C][C]1.00273[/C][/ROW]
[ROW][C]39[/C][C]92.66[/C][C]92.6905[/C][C]93.0208[/C][C]0.996449[/C][C]0.999671[/C][/ROW]
[ROW][C]40[/C][C]93.23[/C][C]93.2209[/C][C]93.2233[/C][C]0.999974[/C][C]1.0001[/C][/ROW]
[ROW][C]41[/C][C]93.79[/C][C]93.5028[/C][C]93.425[/C][C]1.00083[/C][C]1.00307[/C][/ROW]
[ROW][C]42[/C][C]93.92[/C][C]93.9035[/C][C]93.6167[/C][C]1.00306[/C][C]1.00018[/C][/ROW]
[ROW][C]43[/C][C]94.04[/C][C]93.9699[/C][C]93.775[/C][C]1.00208[/C][C]1.00075[/C][/ROW]
[ROW][C]44[/C][C]94.23[/C][C]94.3318[/C][C]93.8767[/C][C]1.00485[/C][C]0.998921[/C][/ROW]
[ROW][C]45[/C][C]94.37[/C][C]94.2835[/C][C]93.9483[/C][C]1.00357[/C][C]1.00092[/C][/ROW]
[ROW][C]46[/C][C]94.29[/C][C]93.6755[/C][C]93.9829[/C][C]0.996729[/C][C]1.00656[/C][/ROW]
[ROW][C]47[/C][C]94.38[/C][C]94.0635[/C][C]93.9663[/C][C]1.00104[/C][C]1.00336[/C][/ROW]
[ROW][C]48[/C][C]94[/C][C]93.408[/C][C]93.9396[/C][C]0.994342[/C][C]1.00634[/C][/ROW]
[ROW][C]49[/C][C]94.11[/C][C]93.7327[/C][C]93.9233[/C][C]0.997971[/C][C]1.00403[/C][/ROW]
[ROW][C]50[/C][C]93.98[/C][C]93.8236[/C][C]93.9071[/C][C]0.999111[/C][C]1.00167[/C][/ROW]
[ROW][C]51[/C][C]93.42[/C][C]93.5549[/C][C]93.8883[/C][C]0.996449[/C][C]0.998558[/C][/ROW]
[ROW][C]52[/C][C]93.3[/C][C]93.8471[/C][C]93.8496[/C][C]0.999974[/C][C]0.99417[/C][/ROW]
[ROW][C]53[/C][C]93.32[/C][C]93.8806[/C][C]93.8025[/C][C]1.00083[/C][C]0.994029[/C][/ROW]
[ROW][C]54[/C][C]93.75[/C][C]94.0356[/C][C]93.7483[/C][C]1.00306[/C][C]0.996963[/C][/ROW]
[ROW][C]55[/C][C]93.82[/C][C]93.8851[/C][C]93.6904[/C][C]1.00208[/C][C]0.999306[/C][/ROW]
[ROW][C]56[/C][C]94.06[/C][C]94.1027[/C][C]93.6488[/C][C]1.00485[/C][C]0.999546[/C][/ROW]
[ROW][C]57[/C][C]94.09[/C][C]93.9807[/C][C]93.6467[/C][C]1.00357[/C][C]1.00116[/C][/ROW]
[ROW][C]58[/C][C]93.64[/C][C]93.3598[/C][C]93.6662[/C][C]0.996729[/C][C]1.003[/C][/ROW]
[ROW][C]59[/C][C]93.9[/C][C]93.7649[/C][C]93.6679[/C][C]1.00104[/C][C]1.00144[/C][/ROW]
[ROW][C]60[/C][C]93.18[/C][C]93.1288[/C][C]93.6588[/C][C]0.994342[/C][C]1.00055[/C][/ROW]
[ROW][C]61[/C][C]93.54[/C][C]93.4471[/C][C]93.6371[/C][C]0.997971[/C][C]1.00099[/C][/ROW]
[ROW][C]62[/C][C]93.55[/C][C]93.5264[/C][C]93.6096[/C][C]0.999111[/C][C]1.00025[/C][/ROW]
[ROW][C]63[/C][C]93.8[/C][C]93.2315[/C][C]93.5638[/C][C]0.996449[/C][C]1.0061[/C][/ROW]
[ROW][C]64[/C][C]93.39[/C][C]93.4872[/C][C]93.4896[/C][C]0.999974[/C][C]0.998961[/C][/ROW]
[ROW][C]65[/C][C]93.27[/C][C]93.4869[/C][C]93.4092[/C][C]1.00083[/C][C]0.99768[/C][/ROW]
[ROW][C]66[/C][C]93.58[/C][C]93.6419[/C][C]93.3558[/C][C]1.00306[/C][C]0.999339[/C][/ROW]
[ROW][C]67[/C][C]93.47[/C][C]93.5252[/C][C]93.3312[/C][C]1.00208[/C][C]0.99941[/C][/ROW]
[ROW][C]68[/C][C]93.75[/C][C]93.7741[/C][C]93.3217[/C][C]1.00485[/C][C]0.999743[/C][/ROW]
[ROW][C]69[/C][C]93.3[/C][C]93.6446[/C][C]93.3117[/C][C]1.00357[/C][C]0.996321[/C][/ROW]
[ROW][C]70[/C][C]92.65[/C][C]93.0367[/C][C]93.3421[/C][C]0.996729[/C][C]0.995843[/C][/ROW]
[ROW][C]71[/C][C]92.96[/C][C]93.5096[/C][C]93.4129[/C][C]1.00104[/C][C]0.994122[/C][/ROW]
[ROW][C]72[/C][C]92.84[/C][C]92.9511[/C][C]93.48[/C][C]0.994342[/C][C]0.998805[/C][/ROW]
[ROW][C]73[/C][C]93.29[/C][C]93.3759[/C][C]93.5658[/C][C]0.997971[/C][C]0.99908[/C][/ROW]
[ROW][C]74[/C][C]93.57[/C][C]93.6017[/C][C]93.685[/C][C]0.999111[/C][C]0.999661[/C][/ROW]
[ROW][C]75[/C][C]93.54[/C][C]93.518[/C][C]93.8513[/C][C]0.996449[/C][C]1.00024[/C][/ROW]
[ROW][C]76[/C][C]94.38[/C][C]94.0321[/C][C]94.0346[/C][C]0.999974[/C][C]1.0037[/C][/ROW]
[ROW][C]77[/C][C]93.98[/C][C]94.3134[/C][C]94.235[/C][C]1.00083[/C][C]0.996465[/C][/ROW]
[ROW][C]78[/C][C]94.48[/C][C]94.7281[/C][C]94.4388[/C][C]1.00306[/C][C]0.997381[/C][/ROW]
[ROW][C]79[/C][C]94.63[/C][C]94.8584[/C][C]94.6617[/C][C]1.00208[/C][C]0.997592[/C][/ROW]
[ROW][C]80[/C][C]95.45[/C][C]95.4028[/C][C]94.9425[/C][C]1.00485[/C][C]1.0005[/C][/ROW]
[ROW][C]81[/C][C]95.59[/C][C]95.5965[/C][C]95.2567[/C][C]1.00357[/C][C]0.999932[/C][/ROW]
[ROW][C]82[/C][C]94.76[/C][C]95.2823[/C][C]95.595[/C][C]0.996729[/C][C]0.994519[/C][/ROW]
[ROW][C]83[/C][C]95.66[/C][C]96.0994[/C][C]96[/C][C]1.00104[/C][C]0.995428[/C][/ROW]
[ROW][C]84[/C][C]95.03[/C][C]95.9295[/C][C]96.4754[/C][C]0.994342[/C][C]0.990623[/C][/ROW]
[ROW][C]85[/C][C]96.45[/C][C]96.7578[/C][C]96.9546[/C][C]0.997971[/C][C]0.996819[/C][/ROW]
[ROW][C]86[/C][C]97.15[/C][C]97.3684[/C][C]97.455[/C][C]0.999111[/C][C]0.997757[/C][/ROW]
[ROW][C]87[/C][C]97.5[/C][C]97.6354[/C][C]97.9833[/C][C]0.996449[/C][C]0.998613[/C][/ROW]
[ROW][C]88[/C][C]98.54[/C][C]98.5424[/C][C]98.545[/C][C]0.999974[/C][C]0.999975[/C][/ROW]
[ROW][C]89[/C][C]99.54[/C][C]99.2184[/C][C]99.1358[/C][C]1.00083[/C][C]1.00324[/C][/ROW]
[ROW][C]90[/C][C]100.33[/C][C]100.02[/C][C]99.7146[/C][C]1.00306[/C][C]1.0031[/C][/ROW]
[ROW][C]91[/C][C]100.28[/C][C]100.446[/C][C]100.238[/C][C]1.00208[/C][C]0.998345[/C][/ROW]
[ROW][C]92[/C][C]101.81[/C][C]101.178[/C][C]100.69[/C][C]1.00485[/C][C]1.00625[/C][/ROW]
[ROW][C]93[/C][C]101.91[/C][C]101.455[/C][C]101.094[/C][C]1.00357[/C][C]1.00449[/C][/ROW]
[ROW][C]94[/C][C]101.92[/C][C]101.113[/C][C]101.445[/C][C]0.996729[/C][C]1.00798[/C][/ROW]
[ROW][C]95[/C][C]102.68[/C][C]101.855[/C][C]101.75[/C][C]1.00104[/C][C]1.0081[/C][/ROW]
[ROW][C]96[/C][C]101.9[/C][C]101.427[/C][C]102.004[/C][C]0.994342[/C][C]1.00466[/C][/ROW]
[ROW][C]97[/C][C]102.14[/C][C]102.014[/C][C]102.221[/C][C]0.997971[/C][C]1.00124[/C][/ROW]
[ROW][C]98[/C][C]102.3[/C][C]102.286[/C][C]102.378[/C][C]0.999111[/C][C]1.00013[/C][/ROW]
[ROW][C]99[/C][C]102.06[/C][C]102.092[/C][C]102.456[/C][C]0.996449[/C][C]0.999682[/C][/ROW]
[ROW][C]100[/C][C]102.4[/C][C]102.493[/C][C]102.496[/C][C]0.999974[/C][C]0.999091[/C][/ROW]
[ROW][C]101[/C][C]102.99[/C][C]102.589[/C][C]102.503[/C][C]1.00083[/C][C]1.00391[/C][/ROW]
[ROW][C]102[/C][C]102.99[/C][C]102.795[/C][C]102.481[/C][C]1.00306[/C][C]1.0019[/C][/ROW]
[ROW][C]103[/C][C]102.83[/C][C]NA[/C][C]NA[/C][C]1.00208[/C][C]NA[/C][/ROW]
[ROW][C]104[/C][C]103.01[/C][C]NA[/C][C]NA[/C][C]1.00485[/C][C]NA[/C][/ROW]
[ROW][C]105[/C][C]102.6[/C][C]NA[/C][C]NA[/C][C]1.00357[/C][C]NA[/C][/ROW]
[ROW][C]106[/C][C]102.18[/C][C]NA[/C][C]NA[/C][C]0.996729[/C][C]NA[/C][/ROW]
[ROW][C]107[/C][C]102.6[/C][C]NA[/C][C]NA[/C][C]1.00104[/C][C]NA[/C][/ROW]
[ROW][C]108[/C][C]101.44[/C][C]NA[/C][C]NA[/C][C]0.994342[/C][C]NA[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=284475&T=1

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=284475&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
188.83NANA0.997971NA
289.01NANA0.999111NA
388.21NANA0.996449NA
487.78NANA0.999974NA
587.93NANA1.00083NA
688.11NANA1.00306NA
788.288.32988.14581.002080.998539
888.1288.480688.05371.004850.995924
988.3888.295587.98171.003571.00096
1087.6587.680287.96790.9967290.999656
1188.2488.063687.97251.001041.002
1287.8387.454887.95250.9943421.00429
1387.7587.766587.9450.9979710.999812
1487.8887.887687.96580.9991110.999913
1587.6187.683887.99620.9964490.999159
1688.0588.021988.02420.9999741.00032
1787.7788.145488.07211.000830.995741
1887.7988.415188.1451.003060.99293
1988.3488.42888.24461.002080.999005
2088.4888.813988.38541.004850.996241
2188.7588.87388.55711.003570.998616
2287.9588.481388.77170.9967290.993996
2389.0989.142289.051.001040.999414
2488.7388.884689.39040.9943420.998261
2589.2489.555889.73790.9979710.996474
2689.7789.985890.06580.9991110.997602
2789.8490.047490.36830.9964490.997696
2890.9790.661890.66420.9999741.0034
2991.5391.022890.94711.000831.00557
3092.291.474891.19541.003061.00793
3192.2791.649791.45961.002081.00677
3292.4292.18191.73621.004851.00259
3392.0792.317391.98921.003570.997321
3491.7391.899292.20080.9967290.998159
3592.192.484892.38921.001040.995839
3691.6892.031392.5550.9943420.996183
3792.6392.512392.70040.9979711.00127
3893.0292.76792.84960.9991111.00273
3992.6692.690593.02080.9964490.999671
4093.2393.220993.22330.9999741.0001
4193.7993.502893.4251.000831.00307
4293.9293.903593.61671.003061.00018
4394.0493.969993.7751.002081.00075
4494.2394.331893.87671.004850.998921
4594.3794.283593.94831.003571.00092
4694.2993.675593.98290.9967291.00656
4794.3894.063593.96631.001041.00336
489493.40893.93960.9943421.00634
4994.1193.732793.92330.9979711.00403
5093.9893.823693.90710.9991111.00167
5193.4293.554993.88830.9964490.998558
5293.393.847193.84960.9999740.99417
5393.3293.880693.80251.000830.994029
5493.7594.035693.74831.003060.996963
5593.8293.885193.69041.002080.999306
5694.0694.102793.64881.004850.999546
5794.0993.980793.64671.003571.00116
5893.6493.359893.66620.9967291.003
5993.993.764993.66791.001041.00144
6093.1893.128893.65880.9943421.00055
6193.5493.447193.63710.9979711.00099
6293.5593.526493.60960.9991111.00025
6393.893.231593.56380.9964491.0061
6493.3993.487293.48960.9999740.998961
6593.2793.486993.40921.000830.99768
6693.5893.641993.35581.003060.999339
6793.4793.525293.33121.002080.99941
6893.7593.774193.32171.004850.999743
6993.393.644693.31171.003570.996321
7092.6593.036793.34210.9967290.995843
7192.9693.509693.41291.001040.994122
7292.8492.951193.480.9943420.998805
7393.2993.375993.56580.9979710.99908
7493.5793.601793.6850.9991110.999661
7593.5493.51893.85130.9964491.00024
7694.3894.032194.03460.9999741.0037
7793.9894.313494.2351.000830.996465
7894.4894.728194.43881.003060.997381
7994.6394.858494.66171.002080.997592
8095.4595.402894.94251.004851.0005
8195.5995.596595.25671.003570.999932
8294.7695.282395.5950.9967290.994519
8395.6696.0994961.001040.995428
8495.0395.929596.47540.9943420.990623
8596.4596.757896.95460.9979710.996819
8697.1597.368497.4550.9991110.997757
8797.597.635497.98330.9964490.998613
8898.5498.542498.5450.9999740.999975
8999.5499.218499.13581.000831.00324
90100.33100.0299.71461.003061.0031
91100.28100.446100.2381.002080.998345
92101.81101.178100.691.004851.00625
93101.91101.455101.0941.003571.00449
94101.92101.113101.4450.9967291.00798
95102.68101.855101.751.001041.0081
96101.9101.427102.0040.9943421.00466
97102.14102.014102.2210.9979711.00124
98102.3102.286102.3780.9991111.00013
99102.06102.092102.4560.9964490.999682
100102.4102.493102.4960.9999740.999091
101102.99102.589102.5031.000831.00391
102102.99102.795102.4811.003061.0019
103102.83NANA1.00208NA
104103.01NANA1.00485NA
105102.6NANA1.00357NA
106102.18NANA0.996729NA
107102.6NANA1.00104NA
108101.44NANA0.994342NA



Parameters (Session):
par1 = multiplicative ; par2 = 12 ;
Parameters (R input):
par1 = multiplicative ; par2 = 12 ;
R code (references can be found in the software module):
par2 <- '12'
par1 <- 'additive'
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$trend)) {
a<-table.row.start(a)
a<-table.element(a,i,header=TRUE)
a<-table.element(a,x[i])
if (par1 == 'additive') a<-table.element(a,signif(m$trend[i]+m$seasonal[i],6)) else a<-table.element(a,signif(m$trend[i]*m$seasonal[i],6))
a<-table.element(a,signif(m$trend[i],6))
a<-table.element(a,signif(m$seasonal[i],6))
a<-table.element(a,signif(m$random[i],6))
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable.tab')