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Author's title

Author*The author of this computation has been verified*
R Software Modulerwasp_multipleregression.wasp
Title produced by softwareMultiple Regression
Date of computationThu, 24 Nov 2011 08:53:28 -0500
Cite this page as followsStatistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?v=date/2011/Nov/24/t1322142922lku0qvjzfdkzbp5.htm/, Retrieved Fri, 19 Apr 2024 12:27:38 +0000
Statistical Computations at FreeStatistics.org, Office for Research Development and Education, URL https://freestatistics.org/blog/index.php?pk=146813, Retrieved Fri, 19 Apr 2024 12:27:38 +0000
QR Codes:

Original text written by user:
IsPrivate?No (this computation is public)
User-defined keywords
Estimated Impact97
Family? (F = Feedback message, R = changed R code, M = changed R Module, P = changed Parameters, D = changed Data)
-       [Multiple Regression] [MLS 1] [2011-11-24 13:53:28] [e5e604418bec6ffe5109fb01f8a59ccb] [Current]
-   PD    [Multiple Regression] [MLS 2] [2011-11-24 17:30:31] [9c3137400ced3280b419f1e434c29e1d]
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Dataseries X:
61	80	41	568	10173
81	111	50	1110	10083
87	122	46	338	10258
87	131	36	555	10154
136	192	67	281	10207
147	188	104	571	10133
168	216	115	322	10197
185	238	125	503	10184
137	173	97	1078	10163
125	160	88	582	10104
64	93	27	926	10127
45	67	19	491	10164
35	60	9	504	10219
-4	32	-47	314	10177
88	126	46	269	10138
85	131	36	252	10164
95	134	51	342	10223
128	162	90	1464	10122
186	230	142	921	10161
182	232	119	115	10199
151	200	92	789	10160
106	143	70	495	10157
60	85	30	1279	10113
44	66	19	391	10276
30	54	2	352	10303
54	81	21	340	10232
72	100	41	715	10140
88	126	46	425	10121
153	204	94	413	10188
168	218	114	935	10164
181	227	130	680	10165
180	220	141	1472	10121
149	220	109	767	10166
84	120	46	1215	10091
85	110	58	1113	10121
42	67	17	711	10180
54	81	22	742	10197
30	52	5	225	10289
96	106	17	107	10220
110	156	57	457	10106
141	187	91	448	10141
159	204	106	385	10165
164	204	125	1518	10152
155	196	111	495	10188
135	204	99	1283	10110
93	124	63	751	10144
28	53	3	674	10206
56	77	30	1705	10045
56	77	30	894	10100
22	50	-9	309	10147
76	105	42	745	10149
83	125	38	806	10116
121	165	73	423	10138
151	194	102	506	10183
208	263	149	148	10174
179	225	132	494	10143
139	263	108	1794	10120
99	140	58	1329	10143
103	127	66	289	10181
57	86	24	1213	10161
44	71	15	1263	10121
70	95	43	910	10095
58	95	17	934	10114
91	133	47	228	10173
126	178	63	366	10164
146	160	101	45	10174
199	250	142	459	10155
194	251	131	253	10182
145	250	107	999	10109
131	173	85	182	10198
74	103	38	483	10167
-3	21	-36	401	10178
7	29	-15	47	10143
10	39	-21	665	10127
34	71	-3	102	10183
94	148	35	22	10178
105	144	62	445	10142
151	199	91	378	10207
162	206	110	419	10176
175	224	127	1046	10145
128	206	79	531	10172
115	152	76	809	10157
62	88	32	1416	10086
11	35	-18	369	10151
-7	23	-39	20	10236
64	92	30	882	10160
80	117	43	262	10233
77	120	26	186	10212
127	173	74	763	10150
158	202	111	1038	10100
173	217	123	558	10178
206	256	151	335	10161
147	217	95	242	10217
103	143	59	898	10173
73	95	47	498	10067
52	77	21	757	10117
52	76	23	843	10149
68	100	33	133	10238
77	108	39	1035	10211
94	132	61	1117	10030
147	195	91	341	10165
160	198	123	1304	10142
166	204	124	566	10126
167	212	112	756	10176
155	204	122	1761	10095
104	129	70	1469	10105
44	73	11	1370	10172
53	77	29	795	10180
56	80	26	920	10126
36	64	2	754	10154
76	109	38	1034	10107
99	138	58	617	10133
142	185	92	706	10158
150	198	97	832	10173
190	237	138	393	10171
176	223	127	1551	10130
175	237	136	675	10105
112	146	80	1225	10154
73	102	38	737	10206
52	77	23	1444	10078
48	70	22	452	10233
61	86	30	1157	10179
68	98	32	718	10197
97	141	55	419	10075
146	195	96	898	10147
160	205	110	417	10195
155	191	117	1207	10129
175	226	125	163	10175
163	191	127	643	10128
117	147	86	1333	10099
82	100	62	1625	10015
55	74	33	970	10079
32	56	6	787	10112
48	77	17	995	10170
53	80	24	669	10048
82	120	44	861	10119
139	186	85	247	10180
150	196	95	349	10168
184	229	140	994	10141
185	229	139	1213	10149
138	229	104	2540	10117
147	176	117	388	10140
77	104	42	907	10216
32	61	-4	778	10227
48	72	23	729	10209
72	99	42	1428	10097
76	113	34	462	10176
94	140	44	528	10158
133	174	89	325	10132
164	209	116	777	10154
174	205	133	686	10145
187	229	141	1464	10153
149	215	104	438	10199
102	136	63	792	10111
86	113	52	1089	10071
35	57	13	920	10151
31	55	2	680	10148
28	66	-10	206	10206
75	125	23	177	10235
102	149	45	438	10170
133	176	83	800	10164
178	230	114	278	10161
190	238	137	396	10155
190	245	132	101	10181
147	238	87	785	10200
83	124	39	724	10133
83	111	52	556	10139
46	72	18	905	10169
40	63	12	1199	10080
50	78	19	688	10191
61	100	18	443	10202
102	149	49	710	10128
117	166	61	273	10160
158	201	105	752	10170
170	214	123	852	10158
190	231	150	1838	10110
155	214	113	765	10181
117	151	84	453	10093
68	97	33	792	10206
40	68	7	490	10180
56	81	30	562	10202
28	55	-2	731	10193
66	99	28	315	10158
103	146	57	623	10139
122	170	68	423	10167
166	218	111	726	10188
176	218	132	1137	10147
164	207	115	773	10173
160	218	114	971	10180
139	178	102	547	10166
75	105	40	1004	10149
44	67	16	538	10167
22	47	-7	149	10243
32	55	11	504	10148
42	73	7	619	10105
86	124	47	176	10144
140	185	93	908	10136
163	213	104	290	10208
222	278	159	155	10192
166	205	129	2681	10111
183	278	140	179	10139
140	171	100	1243	10112
98	125	67	973	10147
69	92	44	860	10205
75	96	49	1029	10154
63	92	32	772	10087
81	118	40	805	10151
126	185	63	3	10217
139	183	92	1237	10106
171	215	133	939	10117
170	207	134	1799	10115
173	214	126	534	10148
144	207	102	1042	10191
105	142	64	270	10238
75	102	43	724	10183
41	66	16	783	10206
68	87	43	648	10138
53	90	11	465	10238
61	90	26	1292	10052
87	133	40	318	10110
155	205	94	747	10156
159	201	113	298	10160
180	220	137	1145	10141
175	210	140	1456	10116
138	220	93	612	10176
105	136	67	1136	10146
73	95	44	903	1125
26	52	-3	609	10180
12	40	-14	532	10133
35	60	4	672	10141
64	100	25	568	10141
115	169	57	234	10140
138	184	87	778	10187
138	202	107	436	10169
182	226	140	795	10128
191	239	136	298	10164
155	226	112	284	10208
113	149	70	852	10165
98	121	72	1307	10036
29	50	3	1166	10064




Summary of computational transaction
Raw Inputview raw input (R code)
Raw Outputview raw output of R engine
Computing time8 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 & 8 seconds \tabularnewline
R Server & 'Gwilym Jenkins' @ jenkins.wessa.net \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&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]8 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=146813&T=0

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&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 time8 seconds
R Server'Gwilym Jenkins' @ jenkins.wessa.net







Multiple Linear Regression - Estimated Regression Equation
Temp[t] = + 15.6573390895579 + 0.338889766628572Max[t] + 0.690572412192343Min[t] -0.00598952836620577Neerslag[t] + 2.39766006260503e-05Luchtdruk[t] + e[t]

\begin{tabular}{lllllllll}
\hline
Multiple Linear Regression - Estimated Regression Equation \tabularnewline
Temp[t] =  +  15.6573390895579 +  0.338889766628572Max[t] +  0.690572412192343Min[t] -0.00598952836620577Neerslag[t] +  2.39766006260503e-05Luchtdruk[t]  + e[t] \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=1

[TABLE]
[ROW][C]Multiple Linear Regression - Estimated Regression Equation[/C][/ROW]
[ROW][C]Temp[t] =  +  15.6573390895579 +  0.338889766628572Max[t] +  0.690572412192343Min[t] -0.00598952836620577Neerslag[t] +  2.39766006260503e-05Luchtdruk[t]  + e[t][/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=1

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=1

As an alternative you can also use a QR Code:  

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

Multiple Linear Regression - Estimated Regression Equation
Temp[t] = + 15.6573390895579 + 0.338889766628572Max[t] + 0.690572412192343Min[t] -0.00598952836620577Neerslag[t] + 2.39766006260503e-05Luchtdruk[t] + e[t]







Multiple Linear Regression - Ordinary Least Squares
VariableParameterS.D.T-STATH0: parameter = 02-tail p-value1-tail p-value
(Intercept)15.65733908955796.3534992.46440.0144430.007221
Max0.3388897666285720.02111716.047900
Min0.6905724121923430.02923423.622100
Neerslag-0.005989528366205770.000905-6.615900
Luchtdruk2.39766006260503e-050.0006140.0390.9689060.484453

\begin{tabular}{lllllllll}
\hline
Multiple Linear Regression - Ordinary Least Squares \tabularnewline
Variable & Parameter & S.D. & T-STATH0: parameter = 0 & 2-tail p-value & 1-tail p-value \tabularnewline
(Intercept) & 15.6573390895579 & 6.353499 & 2.4644 & 0.014443 & 0.007221 \tabularnewline
Max & 0.338889766628572 & 0.021117 & 16.0479 & 0 & 0 \tabularnewline
Min & 0.690572412192343 & 0.029234 & 23.6221 & 0 & 0 \tabularnewline
Neerslag & -0.00598952836620577 & 0.000905 & -6.6159 & 0 & 0 \tabularnewline
Luchtdruk & 2.39766006260503e-05 & 0.000614 & 0.039 & 0.968906 & 0.484453 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=2

[TABLE]
[ROW][C]Multiple Linear Regression - Ordinary Least Squares[/C][/ROW]
[ROW][C]Variable[/C][C]Parameter[/C][C]S.D.[/C][C]T-STATH0: parameter = 0[/C][C]2-tail p-value[/C][C]1-tail p-value[/C][/ROW]
[ROW][C](Intercept)[/C][C]15.6573390895579[/C][C]6.353499[/C][C]2.4644[/C][C]0.014443[/C][C]0.007221[/C][/ROW]
[ROW][C]Max[/C][C]0.338889766628572[/C][C]0.021117[/C][C]16.0479[/C][C]0[/C][C]0[/C][/ROW]
[ROW][C]Min[/C][C]0.690572412192343[/C][C]0.029234[/C][C]23.6221[/C][C]0[/C][C]0[/C][/ROW]
[ROW][C]Neerslag[/C][C]-0.00598952836620577[/C][C]0.000905[/C][C]-6.6159[/C][C]0[/C][C]0[/C][/ROW]
[ROW][C]Luchtdruk[/C][C]2.39766006260503e-05[/C][C]0.000614[/C][C]0.039[/C][C]0.968906[/C][C]0.484453[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=2

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=2

As an alternative you can also use a QR Code:  

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

Multiple Linear Regression - Ordinary Least Squares
VariableParameterS.D.T-STATH0: parameter = 02-tail p-value1-tail p-value
(Intercept)15.65733908955796.3534992.46440.0144430.007221
Max0.3388897666285720.02111716.047900
Min0.6905724121923430.02923423.622100
Neerslag-0.005989528366205770.000905-6.615900
Luchtdruk2.39766006260503e-050.0006140.0390.9689060.484453







Multiple Linear Regression - Regression Statistics
Multiple R0.994671322830967
R-squared0.989371040462307
Adjusted R-squared0.98919012200209
F-TEST (value)5468.60192862997
F-TEST (DF numerator)4
F-TEST (DF denominator)235
p-value0
Multiple Linear Regression - Residual Statistics
Residual Standard Deviation5.52127602826185
Sum Squared Residuals7163.85491036085

\begin{tabular}{lllllllll}
\hline
Multiple Linear Regression - Regression Statistics \tabularnewline
Multiple R & 0.994671322830967 \tabularnewline
R-squared & 0.989371040462307 \tabularnewline
Adjusted R-squared & 0.98919012200209 \tabularnewline
F-TEST (value) & 5468.60192862997 \tabularnewline
F-TEST (DF numerator) & 4 \tabularnewline
F-TEST (DF denominator) & 235 \tabularnewline
p-value & 0 \tabularnewline
Multiple Linear Regression - Residual Statistics \tabularnewline
Residual Standard Deviation & 5.52127602826185 \tabularnewline
Sum Squared Residuals & 7163.85491036085 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=3

[TABLE]
[ROW][C]Multiple Linear Regression - Regression Statistics[/C][/ROW]
[ROW][C]Multiple R[/C][C]0.994671322830967[/C][/ROW]
[ROW][C]R-squared[/C][C]0.989371040462307[/C][/ROW]
[ROW][C]Adjusted R-squared[/C][C]0.98919012200209[/C][/ROW]
[ROW][C]F-TEST (value)[/C][C]5468.60192862997[/C][/ROW]
[ROW][C]F-TEST (DF numerator)[/C][C]4[/C][/ROW]
[ROW][C]F-TEST (DF denominator)[/C][C]235[/C][/ROW]
[ROW][C]p-value[/C][C]0[/C][/ROW]
[ROW][C]Multiple Linear Regression - Residual Statistics[/C][/ROW]
[ROW][C]Residual Standard Deviation[/C][C]5.52127602826185[/C][/ROW]
[ROW][C]Sum Squared Residuals[/C][C]7163.85491036085[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=3

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=3

As an alternative you can also use a QR Code:  

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

Multiple Linear Regression - Regression Statistics
Multiple R0.994671322830967
R-squared0.989371040462307
Adjusted R-squared0.98919012200209
F-TEST (value)5468.60192862997
F-TEST (DF numerator)4
F-TEST (DF denominator)235
p-value0
Multiple Linear Regression - Residual Statistics
Residual Standard Deviation5.52127602826185
Sum Squared Residuals7163.85491036085







Multiple Linear Regression - Actuals, Interpolation, and Residuals
Time or IndexActualsInterpolationForecastResidualsPrediction Error
16167.9238511658936-6.92385116589362
28181.3961033725705-0.396103372570479
38786.98971296053590.0102870394640635
48781.83177551633795.1682244836621
5136125.55419759081710.445802409183
6147148.011080280773-1.01108028077337
7168166.5892173461141.41078265388553
8185179.8661000037755.1338999962249
9137135.0577553123511.94224468764916
10125127.406428086649-2.40642808664945
116460.51605028264183.48394971735818
124548.7866690262829-3.78666902628287
133539.4321713822332-4.4321713822332
14-4-7.59179379378523.5917937937852
158888.7556722922433-0.755672292243292
168583.64684237730451.3531576226955
179594.48445492655380.515545073446223
18128124.1830200041093.81697999589094
19186186.390538559128-0.390538559127943
20182176.0136235859475.98637641405316
21151142.4858187183928.51418128160783
22106109.737358362195-3.73735836219463
236057.76201020051092.23798979948913
244449.049417475545-5.049417475545
253033.4772482432312-3.47724824323123
265455.8183197756072-1.81831977560721
277273.8203946008122-1.82039460081218
288887.82089826490450.179101735095451
29153147.4752566198025.52474338019795
30168162.9040523508745.09594764912552
31181178.5305725555922.46942744440779
32180179.0098792868450.990120713154545
33149161.135258541894-12.1352585418937
348481.05511295781182.94488704218822
358586.5647354292059-1.56473542920594
364246.0882115869429-4.08821158694293
375454.1002626035629-0.100262603562921
383035.6315203766505-5.63152037665048
399662.923546682670633.0764533173294
40110105.391863241154.60813675885049
41141139.4316529574931.56834704250734
42159155.929280898553.07071910145048
43164162.2637093954851.73629060451524
44155156.012728168014-1.01272816801442
45135145.715358827316-10.7153588273159
469396.9308149533485-3.93081495334855
472831.897977024616-3.89797702461602
485652.49772257463613.50227742536394
495657.3565487926634-1.35654879266337
502224.7792020126504-2.77920201265036
517676.0259457845668-0.0259457845668432
528379.67529901020973.32470098979029
53121119.6954409515551.30455904844483
54151149.0537922299951.9462077700052
55208207.0381248661020.961875133897579
56179180.34746263762-1.34746263762025
57139168.864597539008-29.8645975390079
589995.43821778617643.56178221382357
59103102.7872507292220.212749270778479
605754.3539252429852.64607475701498
614442.754991551491.24500844850998
627072.3380536136157-2.33805361361571
635854.23987777123783.76012222876225
649192.064882914872-1.06488291487199
65126117.5373103042938.46268969570681
66146139.6019245398466.39807546015378
67199195.9353521372833.06464786271731
68194189.9124355814514.08756441854921
69145168.529869469171-23.5298694691708
70131132.138342963185-1.13834296318501
717474.1555646132975-0.155564613297509
72-3-4.244349683843011.24434968384301
73715.0882429658397-8.0882429658397
741010.6317940030462-0.631794003046183
753437.2800171144316-3.28001711443157
769490.0953231944343.90467680556602
77105104.8507856005850.149214399414636
78151143.9191795983117.08082040168875
79162159.1659698587322.83403014126807
80175173.2495391050861.75046089491437
81128137.087301997352-9.08730199735176
82115115.050088828017-0.0500888280172297
836259.33861157039422.66138842960583
841113.1214280079209-2.12142800792085
85-7-3.35488643680218-3.64511356319782
866462.5132082285241.48679177147601
878083.678151631632-3.67815163163203
887773.40979057146643.59020942853359
89127121.0609795714745.93902042852635
90158154.7916429240813.20835707591897
91173171.0387021604451.96129783955468
92206204.9266878237981.07331217620152
93147153.596300670205-6.59630067020517
9410399.7276655221083.27233447789204
957377.5673576044443-4.56735760444432
965251.96237007131310.03762992868688
975252.4902929407956-0.490292940795572
986871.7840705192665-3.78407051926655
997773.23542117091473.76457882908533
1009496.0658875474898-2.06588754748976
101147142.784226064124.21577393587972
102160160.13074527569-0.130745275690408
103166167.274544596304-1.27454459630403
104167160.5619822234776.4380177765233
105155158.735170099684-3.73517009968404
10610499.15785421747764.84214578252235
1074440.03082470742573.9691752925743
1085357.2608578167755-4.26085781677548
1095655.45582409787460.544175902125355
1103634.4547829928091.54521700719105
1117672.8872344872523.112765512748
1129999.0247426836515-0.0247426836515339
113142137.8995551201574.10044487984258
114150145.0036632221584.99633677784197
115190189.1631880201210.836811979878517
116176169.8855778645146.11442213548625
117175186.091413740825-11.0914137408255
118112113.287324146872-1.28732414687169
1197372.29626972907710.703730270922913
1205249.227773820692.77222617930997
1214852.1103015544708-4.11030155447084
1226158.83320488345792.16679511654214
1236866.9108614389611.08913856103898
1249799.1542307206327-2.15423072063265
125146142.9004892462943.09951075370588
126160158.8395147042481.16048529575234
127155154.195754991850.804245008149833
128175177.835646659337-2.83564665933656
129163164.479549135713-1.47954913571302
130117117.12146061007-0.121460610069661
1318282.8689473685259-0.868947368525867
1325557.9558890649099-2.9558890649099
1333234.3072930552387-2.30729305523866
1344847.775843431220.224156568780042
1355355.5761807185588-2.57618071855878
1368281.79493251988150.205067480118537
137139136.1541590067422.84584099325819
138150145.837561182394.16243881760954
139184184.232788865369-0.23278886536914
140185182.2307015537832.76929844621726
141138150.111795733876-12.1117957338757
142147154.018095966951-7.01809596695099
1437774.71835885485492.28164114514512
1443229.1526808308262.84731916917405
1454851.8189787040663-3.8189787040663
1467269.90051252744432.09948747255568
1477674.90816851590981.09183148409018
1489490.56817588582383.43182411417616
149133134.381437366574-1.38143736657421
150164162.1812949914561.81870500854374
151174173.1102982241310.889701775869114
152187182.1085706646524.89142933534771
153149157.959293708092-8.95929370809151
154102100.7511302620561.24886973794368
1558683.58052010669522.41947989330477
1563538.6845175219327-3.68451752193268
1573131.8478563326473-0.847856332647273
1582830.1292019076713-2.12920190767131
1597573.08697938514251.91302061485751
16010294.84810146983947.15189853016063
161133128.071523703954.9284762960504
162178170.9057777572137.09422224278734
163190188.7931531638491.20684683615092
164190189.4800537289340.519946271065647
165147151.935684966806-4.93568496680607
1668380.5185305840132.48146941598701
1678386.0967896014683-3.09678960146833
1684647.3110005866273-1.31100058662733
1694038.35450295669591.64549704330409
1705051.3351667392715-1.33516673927153
1716159.56786738523511.43213261476492
17210295.98023238577456.01976761422552
173117112.646418512024.35358148797973
174158152.0240021590775.97599784092293
175170168.2606319888831.73936801111741
176190186.7603873048533.23961269514736
177155161.876548296633-6.87654829663346
178117122.366515954857-5.36651595485659
1796866.81953477483121.1804652251688
1804040.8450630005796-0.845063000579554
1815660.7030768900218-4.70307689002183
1822828.7811796842296-0.781179684229586
1836666.9003064009767-0.900306400976725
184103101.0094950938941.99050490610571
185122117.9377230451544.06227695484552
186166162.0847219812493.91527801875052
187176174.1240634381521.87593656184756
188164160.8373567148833.16264328511651
189160162.688812955301-2.68881295530109
190139143.385577698713-4.38557769871256
1917573.09351311333491.90648688666514
1924446.433515886296-2.43351588629605
1932226.1043038294024-4.10430382940236
1943239.1171650348306-7.11716503483057
1954241.76506442943490.23493557056508
1968689.3256351688394-3.32563516883938
197140137.3797153171622.62028468283758
198163158.1681801624384.83181983756155
199222218.9857003677023.01429963229774
200166158.398084280367.60191571964028
201183205.719805095426-22.7198050954256
202140135.4621980286154.53780197138515
2039898.7023910012507-0.702391001250689
2046972.3140705703015-3.31407057030148
2057576.1090385972568-1.10903859725678
2066364.5514508813456-1.55145088134561
2078178.69104417758252.3089558224175
208126122.0850082274593.91499177254093
209139134.0400892412124.95991075878755
210171174.983173868949-3.98317386894902
211170167.8115857999752.18841420002543
212173172.2367794799070.763220520093211
213144150.249163804685-6.24916380468495
214105106.604620109459-1.60462010945901
2157575.8264441969851-0.826444196985075
2164144.6281267573715-3.62812675737148
2176871.19722290636-3.19722290635996
2185351.2140563671691.78594363283103
2196156.61484294348554.38515705651451
2208786.69030795072760.309692049272369
221155145.8128766608989.18712333910214
222159160.267587568867-1.26758756886697
223180178.2066449458381.79335505416211
224175175.026121779224-0.0261217792235521
225138151.014716609584-13.0147166095844
226105101.4538613338733.54613866612718
2277372.85548261675580.144517383244182
2282627.8043487370205-1.80434873702049
2291216.6014417873303-4.60144178733027
2303534.97119838090010.0288016190999152
2316463.65172065216760.348279347832432
232115111.1339102374063.86608976259388
233138133.6772525716184.32274742838153
234138155.636703737211-17.6367037372107
235182184.40772401455-2.40772401455023
236191189.0286600875791.97133991242089
237155168.134263596346-13.1342635963459
238113109.6326271480363.36737285196438
2399898.7965301187159-0.796530118715896
2402927.93105509126821.06894490873183

\begin{tabular}{lllllllll}
\hline
Multiple Linear Regression - Actuals, Interpolation, and Residuals \tabularnewline
Time or Index & Actuals & InterpolationForecast & ResidualsPrediction Error \tabularnewline
1 & 61 & 67.9238511658936 & -6.92385116589362 \tabularnewline
2 & 81 & 81.3961033725705 & -0.396103372570479 \tabularnewline
3 & 87 & 86.9897129605359 & 0.0102870394640635 \tabularnewline
4 & 87 & 81.8317755163379 & 5.1682244836621 \tabularnewline
5 & 136 & 125.554197590817 & 10.445802409183 \tabularnewline
6 & 147 & 148.011080280773 & -1.01108028077337 \tabularnewline
7 & 168 & 166.589217346114 & 1.41078265388553 \tabularnewline
8 & 185 & 179.866100003775 & 5.1338999962249 \tabularnewline
9 & 137 & 135.057755312351 & 1.94224468764916 \tabularnewline
10 & 125 & 127.406428086649 & -2.40642808664945 \tabularnewline
11 & 64 & 60.5160502826418 & 3.48394971735818 \tabularnewline
12 & 45 & 48.7866690262829 & -3.78666902628287 \tabularnewline
13 & 35 & 39.4321713822332 & -4.4321713822332 \tabularnewline
14 & -4 & -7.5917937937852 & 3.5917937937852 \tabularnewline
15 & 88 & 88.7556722922433 & -0.755672292243292 \tabularnewline
16 & 85 & 83.6468423773045 & 1.3531576226955 \tabularnewline
17 & 95 & 94.4844549265538 & 0.515545073446223 \tabularnewline
18 & 128 & 124.183020004109 & 3.81697999589094 \tabularnewline
19 & 186 & 186.390538559128 & -0.390538559127943 \tabularnewline
20 & 182 & 176.013623585947 & 5.98637641405316 \tabularnewline
21 & 151 & 142.485818718392 & 8.51418128160783 \tabularnewline
22 & 106 & 109.737358362195 & -3.73735836219463 \tabularnewline
23 & 60 & 57.7620102005109 & 2.23798979948913 \tabularnewline
24 & 44 & 49.049417475545 & -5.049417475545 \tabularnewline
25 & 30 & 33.4772482432312 & -3.47724824323123 \tabularnewline
26 & 54 & 55.8183197756072 & -1.81831977560721 \tabularnewline
27 & 72 & 73.8203946008122 & -1.82039460081218 \tabularnewline
28 & 88 & 87.8208982649045 & 0.179101735095451 \tabularnewline
29 & 153 & 147.475256619802 & 5.52474338019795 \tabularnewline
30 & 168 & 162.904052350874 & 5.09594764912552 \tabularnewline
31 & 181 & 178.530572555592 & 2.46942744440779 \tabularnewline
32 & 180 & 179.009879286845 & 0.990120713154545 \tabularnewline
33 & 149 & 161.135258541894 & -12.1352585418937 \tabularnewline
34 & 84 & 81.0551129578118 & 2.94488704218822 \tabularnewline
35 & 85 & 86.5647354292059 & -1.56473542920594 \tabularnewline
36 & 42 & 46.0882115869429 & -4.08821158694293 \tabularnewline
37 & 54 & 54.1002626035629 & -0.100262603562921 \tabularnewline
38 & 30 & 35.6315203766505 & -5.63152037665048 \tabularnewline
39 & 96 & 62.9235466826706 & 33.0764533173294 \tabularnewline
40 & 110 & 105.39186324115 & 4.60813675885049 \tabularnewline
41 & 141 & 139.431652957493 & 1.56834704250734 \tabularnewline
42 & 159 & 155.92928089855 & 3.07071910145048 \tabularnewline
43 & 164 & 162.263709395485 & 1.73629060451524 \tabularnewline
44 & 155 & 156.012728168014 & -1.01272816801442 \tabularnewline
45 & 135 & 145.715358827316 & -10.7153588273159 \tabularnewline
46 & 93 & 96.9308149533485 & -3.93081495334855 \tabularnewline
47 & 28 & 31.897977024616 & -3.89797702461602 \tabularnewline
48 & 56 & 52.4977225746361 & 3.50227742536394 \tabularnewline
49 & 56 & 57.3565487926634 & -1.35654879266337 \tabularnewline
50 & 22 & 24.7792020126504 & -2.77920201265036 \tabularnewline
51 & 76 & 76.0259457845668 & -0.0259457845668432 \tabularnewline
52 & 83 & 79.6752990102097 & 3.32470098979029 \tabularnewline
53 & 121 & 119.695440951555 & 1.30455904844483 \tabularnewline
54 & 151 & 149.053792229995 & 1.9462077700052 \tabularnewline
55 & 208 & 207.038124866102 & 0.961875133897579 \tabularnewline
56 & 179 & 180.34746263762 & -1.34746263762025 \tabularnewline
57 & 139 & 168.864597539008 & -29.8645975390079 \tabularnewline
58 & 99 & 95.4382177861764 & 3.56178221382357 \tabularnewline
59 & 103 & 102.787250729222 & 0.212749270778479 \tabularnewline
60 & 57 & 54.353925242985 & 2.64607475701498 \tabularnewline
61 & 44 & 42.75499155149 & 1.24500844850998 \tabularnewline
62 & 70 & 72.3380536136157 & -2.33805361361571 \tabularnewline
63 & 58 & 54.2398777712378 & 3.76012222876225 \tabularnewline
64 & 91 & 92.064882914872 & -1.06488291487199 \tabularnewline
65 & 126 & 117.537310304293 & 8.46268969570681 \tabularnewline
66 & 146 & 139.601924539846 & 6.39807546015378 \tabularnewline
67 & 199 & 195.935352137283 & 3.06464786271731 \tabularnewline
68 & 194 & 189.912435581451 & 4.08756441854921 \tabularnewline
69 & 145 & 168.529869469171 & -23.5298694691708 \tabularnewline
70 & 131 & 132.138342963185 & -1.13834296318501 \tabularnewline
71 & 74 & 74.1555646132975 & -0.155564613297509 \tabularnewline
72 & -3 & -4.24434968384301 & 1.24434968384301 \tabularnewline
73 & 7 & 15.0882429658397 & -8.0882429658397 \tabularnewline
74 & 10 & 10.6317940030462 & -0.631794003046183 \tabularnewline
75 & 34 & 37.2800171144316 & -3.28001711443157 \tabularnewline
76 & 94 & 90.095323194434 & 3.90467680556602 \tabularnewline
77 & 105 & 104.850785600585 & 0.149214399414636 \tabularnewline
78 & 151 & 143.919179598311 & 7.08082040168875 \tabularnewline
79 & 162 & 159.165969858732 & 2.83403014126807 \tabularnewline
80 & 175 & 173.249539105086 & 1.75046089491437 \tabularnewline
81 & 128 & 137.087301997352 & -9.08730199735176 \tabularnewline
82 & 115 & 115.050088828017 & -0.0500888280172297 \tabularnewline
83 & 62 & 59.3386115703942 & 2.66138842960583 \tabularnewline
84 & 11 & 13.1214280079209 & -2.12142800792085 \tabularnewline
85 & -7 & -3.35488643680218 & -3.64511356319782 \tabularnewline
86 & 64 & 62.513208228524 & 1.48679177147601 \tabularnewline
87 & 80 & 83.678151631632 & -3.67815163163203 \tabularnewline
88 & 77 & 73.4097905714664 & 3.59020942853359 \tabularnewline
89 & 127 & 121.060979571474 & 5.93902042852635 \tabularnewline
90 & 158 & 154.791642924081 & 3.20835707591897 \tabularnewline
91 & 173 & 171.038702160445 & 1.96129783955468 \tabularnewline
92 & 206 & 204.926687823798 & 1.07331217620152 \tabularnewline
93 & 147 & 153.596300670205 & -6.59630067020517 \tabularnewline
94 & 103 & 99.727665522108 & 3.27233447789204 \tabularnewline
95 & 73 & 77.5673576044443 & -4.56735760444432 \tabularnewline
96 & 52 & 51.9623700713131 & 0.03762992868688 \tabularnewline
97 & 52 & 52.4902929407956 & -0.490292940795572 \tabularnewline
98 & 68 & 71.7840705192665 & -3.78407051926655 \tabularnewline
99 & 77 & 73.2354211709147 & 3.76457882908533 \tabularnewline
100 & 94 & 96.0658875474898 & -2.06588754748976 \tabularnewline
101 & 147 & 142.78422606412 & 4.21577393587972 \tabularnewline
102 & 160 & 160.13074527569 & -0.130745275690408 \tabularnewline
103 & 166 & 167.274544596304 & -1.27454459630403 \tabularnewline
104 & 167 & 160.561982223477 & 6.4380177765233 \tabularnewline
105 & 155 & 158.735170099684 & -3.73517009968404 \tabularnewline
106 & 104 & 99.1578542174776 & 4.84214578252235 \tabularnewline
107 & 44 & 40.0308247074257 & 3.9691752925743 \tabularnewline
108 & 53 & 57.2608578167755 & -4.26085781677548 \tabularnewline
109 & 56 & 55.4558240978746 & 0.544175902125355 \tabularnewline
110 & 36 & 34.454782992809 & 1.54521700719105 \tabularnewline
111 & 76 & 72.887234487252 & 3.112765512748 \tabularnewline
112 & 99 & 99.0247426836515 & -0.0247426836515339 \tabularnewline
113 & 142 & 137.899555120157 & 4.10044487984258 \tabularnewline
114 & 150 & 145.003663222158 & 4.99633677784197 \tabularnewline
115 & 190 & 189.163188020121 & 0.836811979878517 \tabularnewline
116 & 176 & 169.885577864514 & 6.11442213548625 \tabularnewline
117 & 175 & 186.091413740825 & -11.0914137408255 \tabularnewline
118 & 112 & 113.287324146872 & -1.28732414687169 \tabularnewline
119 & 73 & 72.2962697290771 & 0.703730270922913 \tabularnewline
120 & 52 & 49.22777382069 & 2.77222617930997 \tabularnewline
121 & 48 & 52.1103015544708 & -4.11030155447084 \tabularnewline
122 & 61 & 58.8332048834579 & 2.16679511654214 \tabularnewline
123 & 68 & 66.910861438961 & 1.08913856103898 \tabularnewline
124 & 97 & 99.1542307206327 & -2.15423072063265 \tabularnewline
125 & 146 & 142.900489246294 & 3.09951075370588 \tabularnewline
126 & 160 & 158.839514704248 & 1.16048529575234 \tabularnewline
127 & 155 & 154.19575499185 & 0.804245008149833 \tabularnewline
128 & 175 & 177.835646659337 & -2.83564665933656 \tabularnewline
129 & 163 & 164.479549135713 & -1.47954913571302 \tabularnewline
130 & 117 & 117.12146061007 & -0.121460610069661 \tabularnewline
131 & 82 & 82.8689473685259 & -0.868947368525867 \tabularnewline
132 & 55 & 57.9558890649099 & -2.9558890649099 \tabularnewline
133 & 32 & 34.3072930552387 & -2.30729305523866 \tabularnewline
134 & 48 & 47.77584343122 & 0.224156568780042 \tabularnewline
135 & 53 & 55.5761807185588 & -2.57618071855878 \tabularnewline
136 & 82 & 81.7949325198815 & 0.205067480118537 \tabularnewline
137 & 139 & 136.154159006742 & 2.84584099325819 \tabularnewline
138 & 150 & 145.83756118239 & 4.16243881760954 \tabularnewline
139 & 184 & 184.232788865369 & -0.23278886536914 \tabularnewline
140 & 185 & 182.230701553783 & 2.76929844621726 \tabularnewline
141 & 138 & 150.111795733876 & -12.1117957338757 \tabularnewline
142 & 147 & 154.018095966951 & -7.01809596695099 \tabularnewline
143 & 77 & 74.7183588548549 & 2.28164114514512 \tabularnewline
144 & 32 & 29.152680830826 & 2.84731916917405 \tabularnewline
145 & 48 & 51.8189787040663 & -3.8189787040663 \tabularnewline
146 & 72 & 69.9005125274443 & 2.09948747255568 \tabularnewline
147 & 76 & 74.9081685159098 & 1.09183148409018 \tabularnewline
148 & 94 & 90.5681758858238 & 3.43182411417616 \tabularnewline
149 & 133 & 134.381437366574 & -1.38143736657421 \tabularnewline
150 & 164 & 162.181294991456 & 1.81870500854374 \tabularnewline
151 & 174 & 173.110298224131 & 0.889701775869114 \tabularnewline
152 & 187 & 182.108570664652 & 4.89142933534771 \tabularnewline
153 & 149 & 157.959293708092 & -8.95929370809151 \tabularnewline
154 & 102 & 100.751130262056 & 1.24886973794368 \tabularnewline
155 & 86 & 83.5805201066952 & 2.41947989330477 \tabularnewline
156 & 35 & 38.6845175219327 & -3.68451752193268 \tabularnewline
157 & 31 & 31.8478563326473 & -0.847856332647273 \tabularnewline
158 & 28 & 30.1292019076713 & -2.12920190767131 \tabularnewline
159 & 75 & 73.0869793851425 & 1.91302061485751 \tabularnewline
160 & 102 & 94.8481014698394 & 7.15189853016063 \tabularnewline
161 & 133 & 128.07152370395 & 4.9284762960504 \tabularnewline
162 & 178 & 170.905777757213 & 7.09422224278734 \tabularnewline
163 & 190 & 188.793153163849 & 1.20684683615092 \tabularnewline
164 & 190 & 189.480053728934 & 0.519946271065647 \tabularnewline
165 & 147 & 151.935684966806 & -4.93568496680607 \tabularnewline
166 & 83 & 80.518530584013 & 2.48146941598701 \tabularnewline
167 & 83 & 86.0967896014683 & -3.09678960146833 \tabularnewline
168 & 46 & 47.3110005866273 & -1.31100058662733 \tabularnewline
169 & 40 & 38.3545029566959 & 1.64549704330409 \tabularnewline
170 & 50 & 51.3351667392715 & -1.33516673927153 \tabularnewline
171 & 61 & 59.5678673852351 & 1.43213261476492 \tabularnewline
172 & 102 & 95.9802323857745 & 6.01976761422552 \tabularnewline
173 & 117 & 112.64641851202 & 4.35358148797973 \tabularnewline
174 & 158 & 152.024002159077 & 5.97599784092293 \tabularnewline
175 & 170 & 168.260631988883 & 1.73936801111741 \tabularnewline
176 & 190 & 186.760387304853 & 3.23961269514736 \tabularnewline
177 & 155 & 161.876548296633 & -6.87654829663346 \tabularnewline
178 & 117 & 122.366515954857 & -5.36651595485659 \tabularnewline
179 & 68 & 66.8195347748312 & 1.1804652251688 \tabularnewline
180 & 40 & 40.8450630005796 & -0.845063000579554 \tabularnewline
181 & 56 & 60.7030768900218 & -4.70307689002183 \tabularnewline
182 & 28 & 28.7811796842296 & -0.781179684229586 \tabularnewline
183 & 66 & 66.9003064009767 & -0.900306400976725 \tabularnewline
184 & 103 & 101.009495093894 & 1.99050490610571 \tabularnewline
185 & 122 & 117.937723045154 & 4.06227695484552 \tabularnewline
186 & 166 & 162.084721981249 & 3.91527801875052 \tabularnewline
187 & 176 & 174.124063438152 & 1.87593656184756 \tabularnewline
188 & 164 & 160.837356714883 & 3.16264328511651 \tabularnewline
189 & 160 & 162.688812955301 & -2.68881295530109 \tabularnewline
190 & 139 & 143.385577698713 & -4.38557769871256 \tabularnewline
191 & 75 & 73.0935131133349 & 1.90648688666514 \tabularnewline
192 & 44 & 46.433515886296 & -2.43351588629605 \tabularnewline
193 & 22 & 26.1043038294024 & -4.10430382940236 \tabularnewline
194 & 32 & 39.1171650348306 & -7.11716503483057 \tabularnewline
195 & 42 & 41.7650644294349 & 0.23493557056508 \tabularnewline
196 & 86 & 89.3256351688394 & -3.32563516883938 \tabularnewline
197 & 140 & 137.379715317162 & 2.62028468283758 \tabularnewline
198 & 163 & 158.168180162438 & 4.83181983756155 \tabularnewline
199 & 222 & 218.985700367702 & 3.01429963229774 \tabularnewline
200 & 166 & 158.39808428036 & 7.60191571964028 \tabularnewline
201 & 183 & 205.719805095426 & -22.7198050954256 \tabularnewline
202 & 140 & 135.462198028615 & 4.53780197138515 \tabularnewline
203 & 98 & 98.7023910012507 & -0.702391001250689 \tabularnewline
204 & 69 & 72.3140705703015 & -3.31407057030148 \tabularnewline
205 & 75 & 76.1090385972568 & -1.10903859725678 \tabularnewline
206 & 63 & 64.5514508813456 & -1.55145088134561 \tabularnewline
207 & 81 & 78.6910441775825 & 2.3089558224175 \tabularnewline
208 & 126 & 122.085008227459 & 3.91499177254093 \tabularnewline
209 & 139 & 134.040089241212 & 4.95991075878755 \tabularnewline
210 & 171 & 174.983173868949 & -3.98317386894902 \tabularnewline
211 & 170 & 167.811585799975 & 2.18841420002543 \tabularnewline
212 & 173 & 172.236779479907 & 0.763220520093211 \tabularnewline
213 & 144 & 150.249163804685 & -6.24916380468495 \tabularnewline
214 & 105 & 106.604620109459 & -1.60462010945901 \tabularnewline
215 & 75 & 75.8264441969851 & -0.826444196985075 \tabularnewline
216 & 41 & 44.6281267573715 & -3.62812675737148 \tabularnewline
217 & 68 & 71.19722290636 & -3.19722290635996 \tabularnewline
218 & 53 & 51.214056367169 & 1.78594363283103 \tabularnewline
219 & 61 & 56.6148429434855 & 4.38515705651451 \tabularnewline
220 & 87 & 86.6903079507276 & 0.309692049272369 \tabularnewline
221 & 155 & 145.812876660898 & 9.18712333910214 \tabularnewline
222 & 159 & 160.267587568867 & -1.26758756886697 \tabularnewline
223 & 180 & 178.206644945838 & 1.79335505416211 \tabularnewline
224 & 175 & 175.026121779224 & -0.0261217792235521 \tabularnewline
225 & 138 & 151.014716609584 & -13.0147166095844 \tabularnewline
226 & 105 & 101.453861333873 & 3.54613866612718 \tabularnewline
227 & 73 & 72.8554826167558 & 0.144517383244182 \tabularnewline
228 & 26 & 27.8043487370205 & -1.80434873702049 \tabularnewline
229 & 12 & 16.6014417873303 & -4.60144178733027 \tabularnewline
230 & 35 & 34.9711983809001 & 0.0288016190999152 \tabularnewline
231 & 64 & 63.6517206521676 & 0.348279347832432 \tabularnewline
232 & 115 & 111.133910237406 & 3.86608976259388 \tabularnewline
233 & 138 & 133.677252571618 & 4.32274742838153 \tabularnewline
234 & 138 & 155.636703737211 & -17.6367037372107 \tabularnewline
235 & 182 & 184.40772401455 & -2.40772401455023 \tabularnewline
236 & 191 & 189.028660087579 & 1.97133991242089 \tabularnewline
237 & 155 & 168.134263596346 & -13.1342635963459 \tabularnewline
238 & 113 & 109.632627148036 & 3.36737285196438 \tabularnewline
239 & 98 & 98.7965301187159 & -0.796530118715896 \tabularnewline
240 & 29 & 27.9310550912682 & 1.06894490873183 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=4

[TABLE]
[ROW][C]Multiple Linear Regression - Actuals, Interpolation, and Residuals[/C][/ROW]
[ROW][C]Time or Index[/C][C]Actuals[/C][C]InterpolationForecast[/C][C]ResidualsPrediction Error[/C][/ROW]
[ROW][C]1[/C][C]61[/C][C]67.9238511658936[/C][C]-6.92385116589362[/C][/ROW]
[ROW][C]2[/C][C]81[/C][C]81.3961033725705[/C][C]-0.396103372570479[/C][/ROW]
[ROW][C]3[/C][C]87[/C][C]86.9897129605359[/C][C]0.0102870394640635[/C][/ROW]
[ROW][C]4[/C][C]87[/C][C]81.8317755163379[/C][C]5.1682244836621[/C][/ROW]
[ROW][C]5[/C][C]136[/C][C]125.554197590817[/C][C]10.445802409183[/C][/ROW]
[ROW][C]6[/C][C]147[/C][C]148.011080280773[/C][C]-1.01108028077337[/C][/ROW]
[ROW][C]7[/C][C]168[/C][C]166.589217346114[/C][C]1.41078265388553[/C][/ROW]
[ROW][C]8[/C][C]185[/C][C]179.866100003775[/C][C]5.1338999962249[/C][/ROW]
[ROW][C]9[/C][C]137[/C][C]135.057755312351[/C][C]1.94224468764916[/C][/ROW]
[ROW][C]10[/C][C]125[/C][C]127.406428086649[/C][C]-2.40642808664945[/C][/ROW]
[ROW][C]11[/C][C]64[/C][C]60.5160502826418[/C][C]3.48394971735818[/C][/ROW]
[ROW][C]12[/C][C]45[/C][C]48.7866690262829[/C][C]-3.78666902628287[/C][/ROW]
[ROW][C]13[/C][C]35[/C][C]39.4321713822332[/C][C]-4.4321713822332[/C][/ROW]
[ROW][C]14[/C][C]-4[/C][C]-7.5917937937852[/C][C]3.5917937937852[/C][/ROW]
[ROW][C]15[/C][C]88[/C][C]88.7556722922433[/C][C]-0.755672292243292[/C][/ROW]
[ROW][C]16[/C][C]85[/C][C]83.6468423773045[/C][C]1.3531576226955[/C][/ROW]
[ROW][C]17[/C][C]95[/C][C]94.4844549265538[/C][C]0.515545073446223[/C][/ROW]
[ROW][C]18[/C][C]128[/C][C]124.183020004109[/C][C]3.81697999589094[/C][/ROW]
[ROW][C]19[/C][C]186[/C][C]186.390538559128[/C][C]-0.390538559127943[/C][/ROW]
[ROW][C]20[/C][C]182[/C][C]176.013623585947[/C][C]5.98637641405316[/C][/ROW]
[ROW][C]21[/C][C]151[/C][C]142.485818718392[/C][C]8.51418128160783[/C][/ROW]
[ROW][C]22[/C][C]106[/C][C]109.737358362195[/C][C]-3.73735836219463[/C][/ROW]
[ROW][C]23[/C][C]60[/C][C]57.7620102005109[/C][C]2.23798979948913[/C][/ROW]
[ROW][C]24[/C][C]44[/C][C]49.049417475545[/C][C]-5.049417475545[/C][/ROW]
[ROW][C]25[/C][C]30[/C][C]33.4772482432312[/C][C]-3.47724824323123[/C][/ROW]
[ROW][C]26[/C][C]54[/C][C]55.8183197756072[/C][C]-1.81831977560721[/C][/ROW]
[ROW][C]27[/C][C]72[/C][C]73.8203946008122[/C][C]-1.82039460081218[/C][/ROW]
[ROW][C]28[/C][C]88[/C][C]87.8208982649045[/C][C]0.179101735095451[/C][/ROW]
[ROW][C]29[/C][C]153[/C][C]147.475256619802[/C][C]5.52474338019795[/C][/ROW]
[ROW][C]30[/C][C]168[/C][C]162.904052350874[/C][C]5.09594764912552[/C][/ROW]
[ROW][C]31[/C][C]181[/C][C]178.530572555592[/C][C]2.46942744440779[/C][/ROW]
[ROW][C]32[/C][C]180[/C][C]179.009879286845[/C][C]0.990120713154545[/C][/ROW]
[ROW][C]33[/C][C]149[/C][C]161.135258541894[/C][C]-12.1352585418937[/C][/ROW]
[ROW][C]34[/C][C]84[/C][C]81.0551129578118[/C][C]2.94488704218822[/C][/ROW]
[ROW][C]35[/C][C]85[/C][C]86.5647354292059[/C][C]-1.56473542920594[/C][/ROW]
[ROW][C]36[/C][C]42[/C][C]46.0882115869429[/C][C]-4.08821158694293[/C][/ROW]
[ROW][C]37[/C][C]54[/C][C]54.1002626035629[/C][C]-0.100262603562921[/C][/ROW]
[ROW][C]38[/C][C]30[/C][C]35.6315203766505[/C][C]-5.63152037665048[/C][/ROW]
[ROW][C]39[/C][C]96[/C][C]62.9235466826706[/C][C]33.0764533173294[/C][/ROW]
[ROW][C]40[/C][C]110[/C][C]105.39186324115[/C][C]4.60813675885049[/C][/ROW]
[ROW][C]41[/C][C]141[/C][C]139.431652957493[/C][C]1.56834704250734[/C][/ROW]
[ROW][C]42[/C][C]159[/C][C]155.92928089855[/C][C]3.07071910145048[/C][/ROW]
[ROW][C]43[/C][C]164[/C][C]162.263709395485[/C][C]1.73629060451524[/C][/ROW]
[ROW][C]44[/C][C]155[/C][C]156.012728168014[/C][C]-1.01272816801442[/C][/ROW]
[ROW][C]45[/C][C]135[/C][C]145.715358827316[/C][C]-10.7153588273159[/C][/ROW]
[ROW][C]46[/C][C]93[/C][C]96.9308149533485[/C][C]-3.93081495334855[/C][/ROW]
[ROW][C]47[/C][C]28[/C][C]31.897977024616[/C][C]-3.89797702461602[/C][/ROW]
[ROW][C]48[/C][C]56[/C][C]52.4977225746361[/C][C]3.50227742536394[/C][/ROW]
[ROW][C]49[/C][C]56[/C][C]57.3565487926634[/C][C]-1.35654879266337[/C][/ROW]
[ROW][C]50[/C][C]22[/C][C]24.7792020126504[/C][C]-2.77920201265036[/C][/ROW]
[ROW][C]51[/C][C]76[/C][C]76.0259457845668[/C][C]-0.0259457845668432[/C][/ROW]
[ROW][C]52[/C][C]83[/C][C]79.6752990102097[/C][C]3.32470098979029[/C][/ROW]
[ROW][C]53[/C][C]121[/C][C]119.695440951555[/C][C]1.30455904844483[/C][/ROW]
[ROW][C]54[/C][C]151[/C][C]149.053792229995[/C][C]1.9462077700052[/C][/ROW]
[ROW][C]55[/C][C]208[/C][C]207.038124866102[/C][C]0.961875133897579[/C][/ROW]
[ROW][C]56[/C][C]179[/C][C]180.34746263762[/C][C]-1.34746263762025[/C][/ROW]
[ROW][C]57[/C][C]139[/C][C]168.864597539008[/C][C]-29.8645975390079[/C][/ROW]
[ROW][C]58[/C][C]99[/C][C]95.4382177861764[/C][C]3.56178221382357[/C][/ROW]
[ROW][C]59[/C][C]103[/C][C]102.787250729222[/C][C]0.212749270778479[/C][/ROW]
[ROW][C]60[/C][C]57[/C][C]54.353925242985[/C][C]2.64607475701498[/C][/ROW]
[ROW][C]61[/C][C]44[/C][C]42.75499155149[/C][C]1.24500844850998[/C][/ROW]
[ROW][C]62[/C][C]70[/C][C]72.3380536136157[/C][C]-2.33805361361571[/C][/ROW]
[ROW][C]63[/C][C]58[/C][C]54.2398777712378[/C][C]3.76012222876225[/C][/ROW]
[ROW][C]64[/C][C]91[/C][C]92.064882914872[/C][C]-1.06488291487199[/C][/ROW]
[ROW][C]65[/C][C]126[/C][C]117.537310304293[/C][C]8.46268969570681[/C][/ROW]
[ROW][C]66[/C][C]146[/C][C]139.601924539846[/C][C]6.39807546015378[/C][/ROW]
[ROW][C]67[/C][C]199[/C][C]195.935352137283[/C][C]3.06464786271731[/C][/ROW]
[ROW][C]68[/C][C]194[/C][C]189.912435581451[/C][C]4.08756441854921[/C][/ROW]
[ROW][C]69[/C][C]145[/C][C]168.529869469171[/C][C]-23.5298694691708[/C][/ROW]
[ROW][C]70[/C][C]131[/C][C]132.138342963185[/C][C]-1.13834296318501[/C][/ROW]
[ROW][C]71[/C][C]74[/C][C]74.1555646132975[/C][C]-0.155564613297509[/C][/ROW]
[ROW][C]72[/C][C]-3[/C][C]-4.24434968384301[/C][C]1.24434968384301[/C][/ROW]
[ROW][C]73[/C][C]7[/C][C]15.0882429658397[/C][C]-8.0882429658397[/C][/ROW]
[ROW][C]74[/C][C]10[/C][C]10.6317940030462[/C][C]-0.631794003046183[/C][/ROW]
[ROW][C]75[/C][C]34[/C][C]37.2800171144316[/C][C]-3.28001711443157[/C][/ROW]
[ROW][C]76[/C][C]94[/C][C]90.095323194434[/C][C]3.90467680556602[/C][/ROW]
[ROW][C]77[/C][C]105[/C][C]104.850785600585[/C][C]0.149214399414636[/C][/ROW]
[ROW][C]78[/C][C]151[/C][C]143.919179598311[/C][C]7.08082040168875[/C][/ROW]
[ROW][C]79[/C][C]162[/C][C]159.165969858732[/C][C]2.83403014126807[/C][/ROW]
[ROW][C]80[/C][C]175[/C][C]173.249539105086[/C][C]1.75046089491437[/C][/ROW]
[ROW][C]81[/C][C]128[/C][C]137.087301997352[/C][C]-9.08730199735176[/C][/ROW]
[ROW][C]82[/C][C]115[/C][C]115.050088828017[/C][C]-0.0500888280172297[/C][/ROW]
[ROW][C]83[/C][C]62[/C][C]59.3386115703942[/C][C]2.66138842960583[/C][/ROW]
[ROW][C]84[/C][C]11[/C][C]13.1214280079209[/C][C]-2.12142800792085[/C][/ROW]
[ROW][C]85[/C][C]-7[/C][C]-3.35488643680218[/C][C]-3.64511356319782[/C][/ROW]
[ROW][C]86[/C][C]64[/C][C]62.513208228524[/C][C]1.48679177147601[/C][/ROW]
[ROW][C]87[/C][C]80[/C][C]83.678151631632[/C][C]-3.67815163163203[/C][/ROW]
[ROW][C]88[/C][C]77[/C][C]73.4097905714664[/C][C]3.59020942853359[/C][/ROW]
[ROW][C]89[/C][C]127[/C][C]121.060979571474[/C][C]5.93902042852635[/C][/ROW]
[ROW][C]90[/C][C]158[/C][C]154.791642924081[/C][C]3.20835707591897[/C][/ROW]
[ROW][C]91[/C][C]173[/C][C]171.038702160445[/C][C]1.96129783955468[/C][/ROW]
[ROW][C]92[/C][C]206[/C][C]204.926687823798[/C][C]1.07331217620152[/C][/ROW]
[ROW][C]93[/C][C]147[/C][C]153.596300670205[/C][C]-6.59630067020517[/C][/ROW]
[ROW][C]94[/C][C]103[/C][C]99.727665522108[/C][C]3.27233447789204[/C][/ROW]
[ROW][C]95[/C][C]73[/C][C]77.5673576044443[/C][C]-4.56735760444432[/C][/ROW]
[ROW][C]96[/C][C]52[/C][C]51.9623700713131[/C][C]0.03762992868688[/C][/ROW]
[ROW][C]97[/C][C]52[/C][C]52.4902929407956[/C][C]-0.490292940795572[/C][/ROW]
[ROW][C]98[/C][C]68[/C][C]71.7840705192665[/C][C]-3.78407051926655[/C][/ROW]
[ROW][C]99[/C][C]77[/C][C]73.2354211709147[/C][C]3.76457882908533[/C][/ROW]
[ROW][C]100[/C][C]94[/C][C]96.0658875474898[/C][C]-2.06588754748976[/C][/ROW]
[ROW][C]101[/C][C]147[/C][C]142.78422606412[/C][C]4.21577393587972[/C][/ROW]
[ROW][C]102[/C][C]160[/C][C]160.13074527569[/C][C]-0.130745275690408[/C][/ROW]
[ROW][C]103[/C][C]166[/C][C]167.274544596304[/C][C]-1.27454459630403[/C][/ROW]
[ROW][C]104[/C][C]167[/C][C]160.561982223477[/C][C]6.4380177765233[/C][/ROW]
[ROW][C]105[/C][C]155[/C][C]158.735170099684[/C][C]-3.73517009968404[/C][/ROW]
[ROW][C]106[/C][C]104[/C][C]99.1578542174776[/C][C]4.84214578252235[/C][/ROW]
[ROW][C]107[/C][C]44[/C][C]40.0308247074257[/C][C]3.9691752925743[/C][/ROW]
[ROW][C]108[/C][C]53[/C][C]57.2608578167755[/C][C]-4.26085781677548[/C][/ROW]
[ROW][C]109[/C][C]56[/C][C]55.4558240978746[/C][C]0.544175902125355[/C][/ROW]
[ROW][C]110[/C][C]36[/C][C]34.454782992809[/C][C]1.54521700719105[/C][/ROW]
[ROW][C]111[/C][C]76[/C][C]72.887234487252[/C][C]3.112765512748[/C][/ROW]
[ROW][C]112[/C][C]99[/C][C]99.0247426836515[/C][C]-0.0247426836515339[/C][/ROW]
[ROW][C]113[/C][C]142[/C][C]137.899555120157[/C][C]4.10044487984258[/C][/ROW]
[ROW][C]114[/C][C]150[/C][C]145.003663222158[/C][C]4.99633677784197[/C][/ROW]
[ROW][C]115[/C][C]190[/C][C]189.163188020121[/C][C]0.836811979878517[/C][/ROW]
[ROW][C]116[/C][C]176[/C][C]169.885577864514[/C][C]6.11442213548625[/C][/ROW]
[ROW][C]117[/C][C]175[/C][C]186.091413740825[/C][C]-11.0914137408255[/C][/ROW]
[ROW][C]118[/C][C]112[/C][C]113.287324146872[/C][C]-1.28732414687169[/C][/ROW]
[ROW][C]119[/C][C]73[/C][C]72.2962697290771[/C][C]0.703730270922913[/C][/ROW]
[ROW][C]120[/C][C]52[/C][C]49.22777382069[/C][C]2.77222617930997[/C][/ROW]
[ROW][C]121[/C][C]48[/C][C]52.1103015544708[/C][C]-4.11030155447084[/C][/ROW]
[ROW][C]122[/C][C]61[/C][C]58.8332048834579[/C][C]2.16679511654214[/C][/ROW]
[ROW][C]123[/C][C]68[/C][C]66.910861438961[/C][C]1.08913856103898[/C][/ROW]
[ROW][C]124[/C][C]97[/C][C]99.1542307206327[/C][C]-2.15423072063265[/C][/ROW]
[ROW][C]125[/C][C]146[/C][C]142.900489246294[/C][C]3.09951075370588[/C][/ROW]
[ROW][C]126[/C][C]160[/C][C]158.839514704248[/C][C]1.16048529575234[/C][/ROW]
[ROW][C]127[/C][C]155[/C][C]154.19575499185[/C][C]0.804245008149833[/C][/ROW]
[ROW][C]128[/C][C]175[/C][C]177.835646659337[/C][C]-2.83564665933656[/C][/ROW]
[ROW][C]129[/C][C]163[/C][C]164.479549135713[/C][C]-1.47954913571302[/C][/ROW]
[ROW][C]130[/C][C]117[/C][C]117.12146061007[/C][C]-0.121460610069661[/C][/ROW]
[ROW][C]131[/C][C]82[/C][C]82.8689473685259[/C][C]-0.868947368525867[/C][/ROW]
[ROW][C]132[/C][C]55[/C][C]57.9558890649099[/C][C]-2.9558890649099[/C][/ROW]
[ROW][C]133[/C][C]32[/C][C]34.3072930552387[/C][C]-2.30729305523866[/C][/ROW]
[ROW][C]134[/C][C]48[/C][C]47.77584343122[/C][C]0.224156568780042[/C][/ROW]
[ROW][C]135[/C][C]53[/C][C]55.5761807185588[/C][C]-2.57618071855878[/C][/ROW]
[ROW][C]136[/C][C]82[/C][C]81.7949325198815[/C][C]0.205067480118537[/C][/ROW]
[ROW][C]137[/C][C]139[/C][C]136.154159006742[/C][C]2.84584099325819[/C][/ROW]
[ROW][C]138[/C][C]150[/C][C]145.83756118239[/C][C]4.16243881760954[/C][/ROW]
[ROW][C]139[/C][C]184[/C][C]184.232788865369[/C][C]-0.23278886536914[/C][/ROW]
[ROW][C]140[/C][C]185[/C][C]182.230701553783[/C][C]2.76929844621726[/C][/ROW]
[ROW][C]141[/C][C]138[/C][C]150.111795733876[/C][C]-12.1117957338757[/C][/ROW]
[ROW][C]142[/C][C]147[/C][C]154.018095966951[/C][C]-7.01809596695099[/C][/ROW]
[ROW][C]143[/C][C]77[/C][C]74.7183588548549[/C][C]2.28164114514512[/C][/ROW]
[ROW][C]144[/C][C]32[/C][C]29.152680830826[/C][C]2.84731916917405[/C][/ROW]
[ROW][C]145[/C][C]48[/C][C]51.8189787040663[/C][C]-3.8189787040663[/C][/ROW]
[ROW][C]146[/C][C]72[/C][C]69.9005125274443[/C][C]2.09948747255568[/C][/ROW]
[ROW][C]147[/C][C]76[/C][C]74.9081685159098[/C][C]1.09183148409018[/C][/ROW]
[ROW][C]148[/C][C]94[/C][C]90.5681758858238[/C][C]3.43182411417616[/C][/ROW]
[ROW][C]149[/C][C]133[/C][C]134.381437366574[/C][C]-1.38143736657421[/C][/ROW]
[ROW][C]150[/C][C]164[/C][C]162.181294991456[/C][C]1.81870500854374[/C][/ROW]
[ROW][C]151[/C][C]174[/C][C]173.110298224131[/C][C]0.889701775869114[/C][/ROW]
[ROW][C]152[/C][C]187[/C][C]182.108570664652[/C][C]4.89142933534771[/C][/ROW]
[ROW][C]153[/C][C]149[/C][C]157.959293708092[/C][C]-8.95929370809151[/C][/ROW]
[ROW][C]154[/C][C]102[/C][C]100.751130262056[/C][C]1.24886973794368[/C][/ROW]
[ROW][C]155[/C][C]86[/C][C]83.5805201066952[/C][C]2.41947989330477[/C][/ROW]
[ROW][C]156[/C][C]35[/C][C]38.6845175219327[/C][C]-3.68451752193268[/C][/ROW]
[ROW][C]157[/C][C]31[/C][C]31.8478563326473[/C][C]-0.847856332647273[/C][/ROW]
[ROW][C]158[/C][C]28[/C][C]30.1292019076713[/C][C]-2.12920190767131[/C][/ROW]
[ROW][C]159[/C][C]75[/C][C]73.0869793851425[/C][C]1.91302061485751[/C][/ROW]
[ROW][C]160[/C][C]102[/C][C]94.8481014698394[/C][C]7.15189853016063[/C][/ROW]
[ROW][C]161[/C][C]133[/C][C]128.07152370395[/C][C]4.9284762960504[/C][/ROW]
[ROW][C]162[/C][C]178[/C][C]170.905777757213[/C][C]7.09422224278734[/C][/ROW]
[ROW][C]163[/C][C]190[/C][C]188.793153163849[/C][C]1.20684683615092[/C][/ROW]
[ROW][C]164[/C][C]190[/C][C]189.480053728934[/C][C]0.519946271065647[/C][/ROW]
[ROW][C]165[/C][C]147[/C][C]151.935684966806[/C][C]-4.93568496680607[/C][/ROW]
[ROW][C]166[/C][C]83[/C][C]80.518530584013[/C][C]2.48146941598701[/C][/ROW]
[ROW][C]167[/C][C]83[/C][C]86.0967896014683[/C][C]-3.09678960146833[/C][/ROW]
[ROW][C]168[/C][C]46[/C][C]47.3110005866273[/C][C]-1.31100058662733[/C][/ROW]
[ROW][C]169[/C][C]40[/C][C]38.3545029566959[/C][C]1.64549704330409[/C][/ROW]
[ROW][C]170[/C][C]50[/C][C]51.3351667392715[/C][C]-1.33516673927153[/C][/ROW]
[ROW][C]171[/C][C]61[/C][C]59.5678673852351[/C][C]1.43213261476492[/C][/ROW]
[ROW][C]172[/C][C]102[/C][C]95.9802323857745[/C][C]6.01976761422552[/C][/ROW]
[ROW][C]173[/C][C]117[/C][C]112.64641851202[/C][C]4.35358148797973[/C][/ROW]
[ROW][C]174[/C][C]158[/C][C]152.024002159077[/C][C]5.97599784092293[/C][/ROW]
[ROW][C]175[/C][C]170[/C][C]168.260631988883[/C][C]1.73936801111741[/C][/ROW]
[ROW][C]176[/C][C]190[/C][C]186.760387304853[/C][C]3.23961269514736[/C][/ROW]
[ROW][C]177[/C][C]155[/C][C]161.876548296633[/C][C]-6.87654829663346[/C][/ROW]
[ROW][C]178[/C][C]117[/C][C]122.366515954857[/C][C]-5.36651595485659[/C][/ROW]
[ROW][C]179[/C][C]68[/C][C]66.8195347748312[/C][C]1.1804652251688[/C][/ROW]
[ROW][C]180[/C][C]40[/C][C]40.8450630005796[/C][C]-0.845063000579554[/C][/ROW]
[ROW][C]181[/C][C]56[/C][C]60.7030768900218[/C][C]-4.70307689002183[/C][/ROW]
[ROW][C]182[/C][C]28[/C][C]28.7811796842296[/C][C]-0.781179684229586[/C][/ROW]
[ROW][C]183[/C][C]66[/C][C]66.9003064009767[/C][C]-0.900306400976725[/C][/ROW]
[ROW][C]184[/C][C]103[/C][C]101.009495093894[/C][C]1.99050490610571[/C][/ROW]
[ROW][C]185[/C][C]122[/C][C]117.937723045154[/C][C]4.06227695484552[/C][/ROW]
[ROW][C]186[/C][C]166[/C][C]162.084721981249[/C][C]3.91527801875052[/C][/ROW]
[ROW][C]187[/C][C]176[/C][C]174.124063438152[/C][C]1.87593656184756[/C][/ROW]
[ROW][C]188[/C][C]164[/C][C]160.837356714883[/C][C]3.16264328511651[/C][/ROW]
[ROW][C]189[/C][C]160[/C][C]162.688812955301[/C][C]-2.68881295530109[/C][/ROW]
[ROW][C]190[/C][C]139[/C][C]143.385577698713[/C][C]-4.38557769871256[/C][/ROW]
[ROW][C]191[/C][C]75[/C][C]73.0935131133349[/C][C]1.90648688666514[/C][/ROW]
[ROW][C]192[/C][C]44[/C][C]46.433515886296[/C][C]-2.43351588629605[/C][/ROW]
[ROW][C]193[/C][C]22[/C][C]26.1043038294024[/C][C]-4.10430382940236[/C][/ROW]
[ROW][C]194[/C][C]32[/C][C]39.1171650348306[/C][C]-7.11716503483057[/C][/ROW]
[ROW][C]195[/C][C]42[/C][C]41.7650644294349[/C][C]0.23493557056508[/C][/ROW]
[ROW][C]196[/C][C]86[/C][C]89.3256351688394[/C][C]-3.32563516883938[/C][/ROW]
[ROW][C]197[/C][C]140[/C][C]137.379715317162[/C][C]2.62028468283758[/C][/ROW]
[ROW][C]198[/C][C]163[/C][C]158.168180162438[/C][C]4.83181983756155[/C][/ROW]
[ROW][C]199[/C][C]222[/C][C]218.985700367702[/C][C]3.01429963229774[/C][/ROW]
[ROW][C]200[/C][C]166[/C][C]158.39808428036[/C][C]7.60191571964028[/C][/ROW]
[ROW][C]201[/C][C]183[/C][C]205.719805095426[/C][C]-22.7198050954256[/C][/ROW]
[ROW][C]202[/C][C]140[/C][C]135.462198028615[/C][C]4.53780197138515[/C][/ROW]
[ROW][C]203[/C][C]98[/C][C]98.7023910012507[/C][C]-0.702391001250689[/C][/ROW]
[ROW][C]204[/C][C]69[/C][C]72.3140705703015[/C][C]-3.31407057030148[/C][/ROW]
[ROW][C]205[/C][C]75[/C][C]76.1090385972568[/C][C]-1.10903859725678[/C][/ROW]
[ROW][C]206[/C][C]63[/C][C]64.5514508813456[/C][C]-1.55145088134561[/C][/ROW]
[ROW][C]207[/C][C]81[/C][C]78.6910441775825[/C][C]2.3089558224175[/C][/ROW]
[ROW][C]208[/C][C]126[/C][C]122.085008227459[/C][C]3.91499177254093[/C][/ROW]
[ROW][C]209[/C][C]139[/C][C]134.040089241212[/C][C]4.95991075878755[/C][/ROW]
[ROW][C]210[/C][C]171[/C][C]174.983173868949[/C][C]-3.98317386894902[/C][/ROW]
[ROW][C]211[/C][C]170[/C][C]167.811585799975[/C][C]2.18841420002543[/C][/ROW]
[ROW][C]212[/C][C]173[/C][C]172.236779479907[/C][C]0.763220520093211[/C][/ROW]
[ROW][C]213[/C][C]144[/C][C]150.249163804685[/C][C]-6.24916380468495[/C][/ROW]
[ROW][C]214[/C][C]105[/C][C]106.604620109459[/C][C]-1.60462010945901[/C][/ROW]
[ROW][C]215[/C][C]75[/C][C]75.8264441969851[/C][C]-0.826444196985075[/C][/ROW]
[ROW][C]216[/C][C]41[/C][C]44.6281267573715[/C][C]-3.62812675737148[/C][/ROW]
[ROW][C]217[/C][C]68[/C][C]71.19722290636[/C][C]-3.19722290635996[/C][/ROW]
[ROW][C]218[/C][C]53[/C][C]51.214056367169[/C][C]1.78594363283103[/C][/ROW]
[ROW][C]219[/C][C]61[/C][C]56.6148429434855[/C][C]4.38515705651451[/C][/ROW]
[ROW][C]220[/C][C]87[/C][C]86.6903079507276[/C][C]0.309692049272369[/C][/ROW]
[ROW][C]221[/C][C]155[/C][C]145.812876660898[/C][C]9.18712333910214[/C][/ROW]
[ROW][C]222[/C][C]159[/C][C]160.267587568867[/C][C]-1.26758756886697[/C][/ROW]
[ROW][C]223[/C][C]180[/C][C]178.206644945838[/C][C]1.79335505416211[/C][/ROW]
[ROW][C]224[/C][C]175[/C][C]175.026121779224[/C][C]-0.0261217792235521[/C][/ROW]
[ROW][C]225[/C][C]138[/C][C]151.014716609584[/C][C]-13.0147166095844[/C][/ROW]
[ROW][C]226[/C][C]105[/C][C]101.453861333873[/C][C]3.54613866612718[/C][/ROW]
[ROW][C]227[/C][C]73[/C][C]72.8554826167558[/C][C]0.144517383244182[/C][/ROW]
[ROW][C]228[/C][C]26[/C][C]27.8043487370205[/C][C]-1.80434873702049[/C][/ROW]
[ROW][C]229[/C][C]12[/C][C]16.6014417873303[/C][C]-4.60144178733027[/C][/ROW]
[ROW][C]230[/C][C]35[/C][C]34.9711983809001[/C][C]0.0288016190999152[/C][/ROW]
[ROW][C]231[/C][C]64[/C][C]63.6517206521676[/C][C]0.348279347832432[/C][/ROW]
[ROW][C]232[/C][C]115[/C][C]111.133910237406[/C][C]3.86608976259388[/C][/ROW]
[ROW][C]233[/C][C]138[/C][C]133.677252571618[/C][C]4.32274742838153[/C][/ROW]
[ROW][C]234[/C][C]138[/C][C]155.636703737211[/C][C]-17.6367037372107[/C][/ROW]
[ROW][C]235[/C][C]182[/C][C]184.40772401455[/C][C]-2.40772401455023[/C][/ROW]
[ROW][C]236[/C][C]191[/C][C]189.028660087579[/C][C]1.97133991242089[/C][/ROW]
[ROW][C]237[/C][C]155[/C][C]168.134263596346[/C][C]-13.1342635963459[/C][/ROW]
[ROW][C]238[/C][C]113[/C][C]109.632627148036[/C][C]3.36737285196438[/C][/ROW]
[ROW][C]239[/C][C]98[/C][C]98.7965301187159[/C][C]-0.796530118715896[/C][/ROW]
[ROW][C]240[/C][C]29[/C][C]27.9310550912682[/C][C]1.06894490873183[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=4

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=4

As an alternative you can also use a QR Code:  

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

Multiple Linear Regression - Actuals, Interpolation, and Residuals
Time or IndexActualsInterpolationForecastResidualsPrediction Error
16167.9238511658936-6.92385116589362
28181.3961033725705-0.396103372570479
38786.98971296053590.0102870394640635
48781.83177551633795.1682244836621
5136125.55419759081710.445802409183
6147148.011080280773-1.01108028077337
7168166.5892173461141.41078265388553
8185179.8661000037755.1338999962249
9137135.0577553123511.94224468764916
10125127.406428086649-2.40642808664945
116460.51605028264183.48394971735818
124548.7866690262829-3.78666902628287
133539.4321713822332-4.4321713822332
14-4-7.59179379378523.5917937937852
158888.7556722922433-0.755672292243292
168583.64684237730451.3531576226955
179594.48445492655380.515545073446223
18128124.1830200041093.81697999589094
19186186.390538559128-0.390538559127943
20182176.0136235859475.98637641405316
21151142.4858187183928.51418128160783
22106109.737358362195-3.73735836219463
236057.76201020051092.23798979948913
244449.049417475545-5.049417475545
253033.4772482432312-3.47724824323123
265455.8183197756072-1.81831977560721
277273.8203946008122-1.82039460081218
288887.82089826490450.179101735095451
29153147.4752566198025.52474338019795
30168162.9040523508745.09594764912552
31181178.5305725555922.46942744440779
32180179.0098792868450.990120713154545
33149161.135258541894-12.1352585418937
348481.05511295781182.94488704218822
358586.5647354292059-1.56473542920594
364246.0882115869429-4.08821158694293
375454.1002626035629-0.100262603562921
383035.6315203766505-5.63152037665048
399662.923546682670633.0764533173294
40110105.391863241154.60813675885049
41141139.4316529574931.56834704250734
42159155.929280898553.07071910145048
43164162.2637093954851.73629060451524
44155156.012728168014-1.01272816801442
45135145.715358827316-10.7153588273159
469396.9308149533485-3.93081495334855
472831.897977024616-3.89797702461602
485652.49772257463613.50227742536394
495657.3565487926634-1.35654879266337
502224.7792020126504-2.77920201265036
517676.0259457845668-0.0259457845668432
528379.67529901020973.32470098979029
53121119.6954409515551.30455904844483
54151149.0537922299951.9462077700052
55208207.0381248661020.961875133897579
56179180.34746263762-1.34746263762025
57139168.864597539008-29.8645975390079
589995.43821778617643.56178221382357
59103102.7872507292220.212749270778479
605754.3539252429852.64607475701498
614442.754991551491.24500844850998
627072.3380536136157-2.33805361361571
635854.23987777123783.76012222876225
649192.064882914872-1.06488291487199
65126117.5373103042938.46268969570681
66146139.6019245398466.39807546015378
67199195.9353521372833.06464786271731
68194189.9124355814514.08756441854921
69145168.529869469171-23.5298694691708
70131132.138342963185-1.13834296318501
717474.1555646132975-0.155564613297509
72-3-4.244349683843011.24434968384301
73715.0882429658397-8.0882429658397
741010.6317940030462-0.631794003046183
753437.2800171144316-3.28001711443157
769490.0953231944343.90467680556602
77105104.8507856005850.149214399414636
78151143.9191795983117.08082040168875
79162159.1659698587322.83403014126807
80175173.2495391050861.75046089491437
81128137.087301997352-9.08730199735176
82115115.050088828017-0.0500888280172297
836259.33861157039422.66138842960583
841113.1214280079209-2.12142800792085
85-7-3.35488643680218-3.64511356319782
866462.5132082285241.48679177147601
878083.678151631632-3.67815163163203
887773.40979057146643.59020942853359
89127121.0609795714745.93902042852635
90158154.7916429240813.20835707591897
91173171.0387021604451.96129783955468
92206204.9266878237981.07331217620152
93147153.596300670205-6.59630067020517
9410399.7276655221083.27233447789204
957377.5673576044443-4.56735760444432
965251.96237007131310.03762992868688
975252.4902929407956-0.490292940795572
986871.7840705192665-3.78407051926655
997773.23542117091473.76457882908533
1009496.0658875474898-2.06588754748976
101147142.784226064124.21577393587972
102160160.13074527569-0.130745275690408
103166167.274544596304-1.27454459630403
104167160.5619822234776.4380177765233
105155158.735170099684-3.73517009968404
10610499.15785421747764.84214578252235
1074440.03082470742573.9691752925743
1085357.2608578167755-4.26085781677548
1095655.45582409787460.544175902125355
1103634.4547829928091.54521700719105
1117672.8872344872523.112765512748
1129999.0247426836515-0.0247426836515339
113142137.8995551201574.10044487984258
114150145.0036632221584.99633677784197
115190189.1631880201210.836811979878517
116176169.8855778645146.11442213548625
117175186.091413740825-11.0914137408255
118112113.287324146872-1.28732414687169
1197372.29626972907710.703730270922913
1205249.227773820692.77222617930997
1214852.1103015544708-4.11030155447084
1226158.83320488345792.16679511654214
1236866.9108614389611.08913856103898
1249799.1542307206327-2.15423072063265
125146142.9004892462943.09951075370588
126160158.8395147042481.16048529575234
127155154.195754991850.804245008149833
128175177.835646659337-2.83564665933656
129163164.479549135713-1.47954913571302
130117117.12146061007-0.121460610069661
1318282.8689473685259-0.868947368525867
1325557.9558890649099-2.9558890649099
1333234.3072930552387-2.30729305523866
1344847.775843431220.224156568780042
1355355.5761807185588-2.57618071855878
1368281.79493251988150.205067480118537
137139136.1541590067422.84584099325819
138150145.837561182394.16243881760954
139184184.232788865369-0.23278886536914
140185182.2307015537832.76929844621726
141138150.111795733876-12.1117957338757
142147154.018095966951-7.01809596695099
1437774.71835885485492.28164114514512
1443229.1526808308262.84731916917405
1454851.8189787040663-3.8189787040663
1467269.90051252744432.09948747255568
1477674.90816851590981.09183148409018
1489490.56817588582383.43182411417616
149133134.381437366574-1.38143736657421
150164162.1812949914561.81870500854374
151174173.1102982241310.889701775869114
152187182.1085706646524.89142933534771
153149157.959293708092-8.95929370809151
154102100.7511302620561.24886973794368
1558683.58052010669522.41947989330477
1563538.6845175219327-3.68451752193268
1573131.8478563326473-0.847856332647273
1582830.1292019076713-2.12920190767131
1597573.08697938514251.91302061485751
16010294.84810146983947.15189853016063
161133128.071523703954.9284762960504
162178170.9057777572137.09422224278734
163190188.7931531638491.20684683615092
164190189.4800537289340.519946271065647
165147151.935684966806-4.93568496680607
1668380.5185305840132.48146941598701
1678386.0967896014683-3.09678960146833
1684647.3110005866273-1.31100058662733
1694038.35450295669591.64549704330409
1705051.3351667392715-1.33516673927153
1716159.56786738523511.43213261476492
17210295.98023238577456.01976761422552
173117112.646418512024.35358148797973
174158152.0240021590775.97599784092293
175170168.2606319888831.73936801111741
176190186.7603873048533.23961269514736
177155161.876548296633-6.87654829663346
178117122.366515954857-5.36651595485659
1796866.81953477483121.1804652251688
1804040.8450630005796-0.845063000579554
1815660.7030768900218-4.70307689002183
1822828.7811796842296-0.781179684229586
1836666.9003064009767-0.900306400976725
184103101.0094950938941.99050490610571
185122117.9377230451544.06227695484552
186166162.0847219812493.91527801875052
187176174.1240634381521.87593656184756
188164160.8373567148833.16264328511651
189160162.688812955301-2.68881295530109
190139143.385577698713-4.38557769871256
1917573.09351311333491.90648688666514
1924446.433515886296-2.43351588629605
1932226.1043038294024-4.10430382940236
1943239.1171650348306-7.11716503483057
1954241.76506442943490.23493557056508
1968689.3256351688394-3.32563516883938
197140137.3797153171622.62028468283758
198163158.1681801624384.83181983756155
199222218.9857003677023.01429963229774
200166158.398084280367.60191571964028
201183205.719805095426-22.7198050954256
202140135.4621980286154.53780197138515
2039898.7023910012507-0.702391001250689
2046972.3140705703015-3.31407057030148
2057576.1090385972568-1.10903859725678
2066364.5514508813456-1.55145088134561
2078178.69104417758252.3089558224175
208126122.0850082274593.91499177254093
209139134.0400892412124.95991075878755
210171174.983173868949-3.98317386894902
211170167.8115857999752.18841420002543
212173172.2367794799070.763220520093211
213144150.249163804685-6.24916380468495
214105106.604620109459-1.60462010945901
2157575.8264441969851-0.826444196985075
2164144.6281267573715-3.62812675737148
2176871.19722290636-3.19722290635996
2185351.2140563671691.78594363283103
2196156.61484294348554.38515705651451
2208786.69030795072760.309692049272369
221155145.8128766608989.18712333910214
222159160.267587568867-1.26758756886697
223180178.2066449458381.79335505416211
224175175.026121779224-0.0261217792235521
225138151.014716609584-13.0147166095844
226105101.4538613338733.54613866612718
2277372.85548261675580.144517383244182
2282627.8043487370205-1.80434873702049
2291216.6014417873303-4.60144178733027
2303534.97119838090010.0288016190999152
2316463.65172065216760.348279347832432
232115111.1339102374063.86608976259388
233138133.6772525716184.32274742838153
234138155.636703737211-17.6367037372107
235182184.40772401455-2.40772401455023
236191189.0286600875791.97133991242089
237155168.134263596346-13.1342635963459
238113109.6326271480363.36737285196438
2399898.7965301187159-0.796530118715896
2402927.93105509126821.06894490873183







Goldfeld-Quandt test for Heteroskedasticity
p-valuesAlternative Hypothesis
breakpoint indexgreater2-sidedless
80.002082859071362440.004165718142724890.997917140928638
90.0002585245072603280.0005170490145206570.99974147549274
103.96051958955247e-057.92103917910493e-050.999960394804104
115.34801617218323e-050.0001069603234436650.999946519838278
128.70660545707763e-061.74132109141553e-050.999991293394543
139.56334676985574e-061.91266935397115e-050.99999043665323
143.14719774683551e-066.29439549367102e-060.999996852802253
155.25978275658092e-071.05195655131618e-060.999999474021724
164.54760537476681e-079.09521074953361e-070.999999545239463
178.59684143222506e-081.71936828644501e-070.999999914031586
181.64788562887808e-083.29577125775617e-080.999999983521144
191.06447338592479e-082.12894677184959e-080.999999989355266
207.37040404554883e-081.47408080910977e-070.99999992629596
212.37780738553565e-084.75561477107131e-080.999999976221926
221.69566702749148e-083.39133405498297e-080.99999998304333
235.42121864684227e-091.08424372936845e-080.999999994578781
241.28882182269629e-092.57764364539258e-090.999999998711178
252.97359595243954e-105.94719190487907e-100.99999999970264
269.38837742550862e-111.87767548510172e-100.999999999906116
272.11476965232179e-114.22953930464358e-110.999999999978852
284.46681927451422e-128.93363854902843e-120.999999999995533
299.81612547575019e-131.96322509515004e-120.999999999999018
304.69993284745347e-139.39986569490695e-130.99999999999953
319.84292299205565e-141.96858459841113e-130.999999999999902
324.4514476695047e-148.90289533900939e-140.999999999999955
330.003427664237258550.006855328474517090.996572335762741
340.002122559591828620.004245119183657230.997877440408171
350.001289302220773510.002578604441547020.998710697779226
360.0008428381795125430.001685676359025090.999157161820487
370.0005000714631762880.001000142926352580.999499928536824
380.0003137257975583140.0006274515951166290.999686274202442
390.8986690065618830.2026619868762340.101330993438117
400.8801942717671170.2396114564657670.119805728232884
410.8545253975398910.2909492049202180.145474602460109
420.8282218903287170.3435562193425670.171778109671283
430.798359643533610.403280712932780.20164035646639
440.7621770277949050.475645944410190.237822972205095
450.9324607470196820.1350785059606360.067539252980318
460.9189634291807980.1620731416384040.0810365708192019
470.9058506184068740.1882987631862530.0941493815931265
480.9023856422457560.1952287155084890.0976143577542444
490.8822968936319640.2354062127360720.117703106368036
500.8678261572042210.2643476855915590.132173842795779
510.8419475014663450.3161049970673090.158052498533655
520.8173371509997820.3653256980004360.182662849000218
530.7876340760428660.4247318479142670.212365923957134
540.7557525278935250.4884949442129510.244247472106475
550.7204243934422730.5591512131154540.279575606557727
560.6824249205987520.6351501588024970.317575079401248
570.9998833405236380.0002333189527239930.000116659476361997
580.9998879098563990.0002241802872011950.000112090143600598
590.9998376397497490.0003247205005021880.000162360250251094
600.9998126360812740.0003747278374516120.000187363918725806
610.9997443943141380.0005112113717249030.000255605685862451
620.9996541772626950.0006916454746093330.000345822737304666
630.999559567206040.0008808655879205630.000440432793960282
640.9994335594345390.00113288113092240.000566440565461201
650.9995442062774230.0009115874451535140.000455793722576757
660.9995311733121630.0009376533756733970.000468826687836699
670.9993784964313660.001243007137267160.000621503568633578
680.9992294418102570.001541116379486820.000770558189743411
690.9999992854448291.42911034176532e-067.14555170882659e-07
700.9999989599620932.08007581409335e-061.04003790704667e-06
710.9999983700429993.25991400182323e-061.62995700091162e-06
720.9999974718178815.0563642384367e-062.52818211921835e-06
730.9999991138703531.77225929320225e-068.86129646601126e-07
740.9999985810487312.83790253744153e-061.41895126872077e-06
750.9999982705810013.45883799797422e-061.72941899898711e-06
760.9999976829169684.63416606493348e-062.31708303246674e-06
770.9999963853746187.22925076345182e-063.61462538172591e-06
780.9999972348460855.53030783063948e-062.76515391531974e-06
790.9999961624376637.6751246741658e-063.8375623370829e-06
800.9999944634964571.10730070862617e-055.53650354313083e-06
810.9999975871591274.82568174607156e-062.41284087303578e-06
820.9999962033782147.59324357099863e-063.79662178549931e-06
830.999995205470019.58905997939403e-064.79452998969701e-06
840.9999932238029221.35523941556599e-056.77619707782994e-06
850.999991570699631.68586007392053e-058.42930036960265e-06
860.9999877316487062.45367025887676e-051.22683512943838e-05
870.9999845281593763.09436812478334e-051.54718406239167e-05
880.9999804338948973.91322102058654e-051.95661051029327e-05
890.9999820423178373.5915364325702e-051.7957682162851e-05
900.999976465390844.70692183206641e-052.3534609160332e-05
910.9999670117816436.59764367138511e-053.29882183569255e-05
920.9999539780620939.20438758139579e-054.6021937906979e-05
930.9999616640117097.66719765824285e-053.83359882912142e-05
940.9999525434779749.49130440518509e-054.74565220259255e-05
950.999950734579239.85308415391361e-054.9265420769568e-05
960.9999276303776580.0001447392446836057.23696223418025e-05
970.9998946698747370.000210660250526450.000105330125263225
980.999872750255980.0002544994880392430.000127249744019622
990.999854373967070.0002912520658602250.000145626032930113
1000.9998030866412560.0003938267174870310.000196913358743515
1010.9997743419327150.0004513161345700880.000225658067285044
1020.9996819880375920.0006360239248163060.000318011962408153
1030.9995683566238330.0008632867523335190.000431643376166759
1040.9996300758747490.0007398482505015820.000369924125250791
1050.9995777673663740.0008444652672509470.000422232633625473
1060.9995616126820840.0008767746358328760.000438387317916438
1070.9995045837703410.0009908324593177330.000495416229658867
1080.9994266057556670.00114678848866630.000573394244333151
1090.9992095797631090.001580840473782650.000790420236891326
1100.9989440424998450.002111915000309910.00105595750015495
1110.9986997522196250.002600495560749530.00130024778037477
1120.998239317995440.003521364009119260.00176068200455963
1130.9980120579289360.003975884142128380.00198794207106419
1140.997923564280670.004152871438659730.00207643571932987
1150.9973133838665440.00537323226691260.0026866161334563
1160.9974878723139120.005024255372176180.00251212768608809
1170.9990127964830480.001974407033903220.000987203516951609
1180.998678419689840.00264316062032060.0013215803101603
1190.9982198113516610.00356037729667860.0017801886483393
1200.9977887072284330.004422585543134360.00221129277156718
1210.9974561005488780.005087798902243560.00254389945112178
1220.9967516457028050.006496708594390420.00324835429719521
1230.9957568882947950.008486223410409020.00424311170520451
1240.9946054588781790.01078908224364110.00539454112182056
1250.9935253029559290.01294939408814130.00647469704407066
1260.9918143330460790.01637133390784280.0081856669539214
1270.9895046113179760.02099077736404710.0104953886820236
1280.987349075032520.02530184993495940.0126509249674797
1290.9841381434240710.03172371315185790.0158618565759289
1300.9800023521972880.03999529560542290.0199976478027115
1310.9752683326783850.04946333464322930.0247316673216147
1320.9709091754148840.05818164917023140.0290908245851157
1330.965208185781780.06958362843643920.0347918142182196
1340.9572637944738130.0854724110523740.042736205526187
1350.949524439418870.1009511211622590.0504755605811296
1360.9388632584754960.1222734830490080.0611367415245041
1370.9315020150629490.1369959698741020.0684979849370511
1380.9282296220916070.1435407558167860.071770377908393
1390.9142255140350860.1715489719298270.0857744859649135
1400.9023544071810570.1952911856378850.0976455928189427
1410.9810295043876010.03794099122479740.0189704956123987
1420.9810621181105830.03787576377883480.0189378818894174
1430.9769001223623370.04619975527532590.0230998776376629
1440.9721569780387950.05568604392240940.0278430219612047
1450.9684269558402790.06314608831944110.0315730441597206
1460.9619367908436510.07612641831269830.0380632091563491
1470.9539361346000880.09212773079982450.0460638653999123
1480.9477343068936270.1045313862127460.0522656931063731
1490.9372407568129690.1255184863740630.0627592431870315
1500.9262632600005010.1474734799989980.0737367399994991
1510.9154737439832540.1690525120334920.0845262560167461
1520.90857179691070.1828564061786010.0914282030893004
1530.9321397004719240.1357205990561530.0678602995280763
1540.9192236503666920.1615526992666150.0807763496333077
1550.9060921418907910.1878157162184180.093907858109209
1560.8967958241798910.2064083516402180.103204175820109
1570.877990836675390.2440183266492210.12200916332461
1580.8591194761626440.2817610476747130.140880523837356
1590.8392051144303460.3215897711393090.160794885569655
1600.8562962239545490.2874075520909030.143703776045451
1610.8512998669730250.297400266053950.148700133026975
1620.8834699629643480.2330600740713030.116530037035652
1630.8715214440330660.2569571119338680.128478555966934
1640.8613646616821520.2772706766356950.138635338317848
1650.8813129448896180.2373741102207640.118687055110382
1660.8624053485436320.2751893029127360.137594651456368
1670.8415529066150420.3168941867699160.158447093384958
1680.8178302233998260.3643395532003470.182169776600174
1690.7909102688716580.4181794622566840.209089731128342
1700.7609714478822780.4780571042354440.239028552117722
1710.7298361560893550.540327687821290.270163843910645
1720.7267061086244810.5465877827510370.273293891375519
1730.7284888919420040.5430222161159920.271511108057996
1740.7467212695617390.5065574608765230.253278730438261
1750.7202461577582540.5595076844834930.279753842241746
1760.6889484607629950.6221030784740090.311051539237005
1770.7039489184928120.5921021630143750.296051081507188
1780.6807617625690930.6384764748618140.319238237430907
1790.6427616233257780.7144767533484440.357238376674222
1800.6016131860087030.7967736279825940.398386813991297
1810.5763638635747010.8472722728505980.423636136425299
1820.5338470440284650.9323059119430710.466152955971535
1830.4921029773045970.9842059546091930.507897022695403
1840.4561350905446690.9122701810893380.543864909455331
1850.4527720249607950.9055440499215910.547227975039205
1860.4407522468445470.8815044936890930.559247753155453
1870.4017570667648410.8035141335296810.598242933235159
1880.3860370213512350.7720740427024710.613962978648765
1890.3521239869334680.7042479738669350.647876013066532
1900.3191397123120520.6382794246241040.680860287687948
1910.2810772845293080.5621545690586160.718922715470692
1920.245143309145890.4902866182917790.75485669085411
1930.2160313928159550.432062785631910.783968607184045
1940.221421622159480.442843244318960.77857837784052
1950.1873106466798650.374621293359730.812689353320135
1960.1594134458012160.3188268916024320.840586554198784
1970.1385586054819210.2771172109638420.861441394518079
1980.1645996539534530.3291993079069070.835400346046547
1990.2158550795006630.4317101590013260.784144920499337
2000.1966337709791670.3932675419583340.803366229020833
2010.7022917436283050.5954165127433890.297708256371694
2020.6845056342113060.6309887315773880.315494365788694
2030.634466251930270.731067496139460.36553374806973
2040.5928162541774970.8143674916450070.407183745822504
2050.5392657219077940.9214685561844110.460734278092206
2060.4857341542686030.9714683085372050.514265845731398
2070.4361557928380130.8723115856760260.563844207161987
2080.4609080748642130.9218161497284260.539091925135787
2090.4349633128067630.8699266256135270.565036687193237
2100.3898669776367780.7797339552735560.610133022363222
2110.3342509604941290.6685019209882590.665749039505871
2120.305354504404780.6107090088095610.69464549559522
2130.3273750728972920.6547501457945840.672624927102708
2140.2830013689752070.5660027379504130.716998631024793
2150.2315119426308320.4630238852616640.768488057369168
2160.1995496051414460.3990992102828930.800450394858554
2170.1584183435211550.3168366870423090.841581656478845
2180.1279953848789070.2559907697578140.872004615121093
2190.09781757716135220.1956351543227040.902182422838648
2200.07664442382783220.1532888476556640.923355576172168
2210.1639030333002660.3278060666005310.836096966699734
2220.1329661650364060.2659323300728130.867033834963594
2230.102783291970420.205566583940840.89721670802958
2240.07113516509780120.1422703301956020.928864834902199
2250.2223285071551690.4446570143103380.777671492844831
2260.1621101726475490.3242203452950980.837889827352451
2270.1162324411859650.232464882371930.883767558814035
2280.07911061325328010.158221226506560.92088938674672
2290.0486300156004230.0972600312008460.951369984399577
2300.0326548995714060.0653097991428120.967345100428594
2310.02347674920608250.0469534984121650.976523250793918
2320.01591208702284440.03182417404568880.984087912977156

\begin{tabular}{lllllllll}
\hline
Goldfeld-Quandt test for Heteroskedasticity \tabularnewline
p-values & Alternative Hypothesis \tabularnewline
breakpoint index & greater & 2-sided & less \tabularnewline
8 & 0.00208285907136244 & 0.00416571814272489 & 0.997917140928638 \tabularnewline
9 & 0.000258524507260328 & 0.000517049014520657 & 0.99974147549274 \tabularnewline
10 & 3.96051958955247e-05 & 7.92103917910493e-05 & 0.999960394804104 \tabularnewline
11 & 5.34801617218323e-05 & 0.000106960323443665 & 0.999946519838278 \tabularnewline
12 & 8.70660545707763e-06 & 1.74132109141553e-05 & 0.999991293394543 \tabularnewline
13 & 9.56334676985574e-06 & 1.91266935397115e-05 & 0.99999043665323 \tabularnewline
14 & 3.14719774683551e-06 & 6.29439549367102e-06 & 0.999996852802253 \tabularnewline
15 & 5.25978275658092e-07 & 1.05195655131618e-06 & 0.999999474021724 \tabularnewline
16 & 4.54760537476681e-07 & 9.09521074953361e-07 & 0.999999545239463 \tabularnewline
17 & 8.59684143222506e-08 & 1.71936828644501e-07 & 0.999999914031586 \tabularnewline
18 & 1.64788562887808e-08 & 3.29577125775617e-08 & 0.999999983521144 \tabularnewline
19 & 1.06447338592479e-08 & 2.12894677184959e-08 & 0.999999989355266 \tabularnewline
20 & 7.37040404554883e-08 & 1.47408080910977e-07 & 0.99999992629596 \tabularnewline
21 & 2.37780738553565e-08 & 4.75561477107131e-08 & 0.999999976221926 \tabularnewline
22 & 1.69566702749148e-08 & 3.39133405498297e-08 & 0.99999998304333 \tabularnewline
23 & 5.42121864684227e-09 & 1.08424372936845e-08 & 0.999999994578781 \tabularnewline
24 & 1.28882182269629e-09 & 2.57764364539258e-09 & 0.999999998711178 \tabularnewline
25 & 2.97359595243954e-10 & 5.94719190487907e-10 & 0.99999999970264 \tabularnewline
26 & 9.38837742550862e-11 & 1.87767548510172e-10 & 0.999999999906116 \tabularnewline
27 & 2.11476965232179e-11 & 4.22953930464358e-11 & 0.999999999978852 \tabularnewline
28 & 4.46681927451422e-12 & 8.93363854902843e-12 & 0.999999999995533 \tabularnewline
29 & 9.81612547575019e-13 & 1.96322509515004e-12 & 0.999999999999018 \tabularnewline
30 & 4.69993284745347e-13 & 9.39986569490695e-13 & 0.99999999999953 \tabularnewline
31 & 9.84292299205565e-14 & 1.96858459841113e-13 & 0.999999999999902 \tabularnewline
32 & 4.4514476695047e-14 & 8.90289533900939e-14 & 0.999999999999955 \tabularnewline
33 & 0.00342766423725855 & 0.00685532847451709 & 0.996572335762741 \tabularnewline
34 & 0.00212255959182862 & 0.00424511918365723 & 0.997877440408171 \tabularnewline
35 & 0.00128930222077351 & 0.00257860444154702 & 0.998710697779226 \tabularnewline
36 & 0.000842838179512543 & 0.00168567635902509 & 0.999157161820487 \tabularnewline
37 & 0.000500071463176288 & 0.00100014292635258 & 0.999499928536824 \tabularnewline
38 & 0.000313725797558314 & 0.000627451595116629 & 0.999686274202442 \tabularnewline
39 & 0.898669006561883 & 0.202661986876234 & 0.101330993438117 \tabularnewline
40 & 0.880194271767117 & 0.239611456465767 & 0.119805728232884 \tabularnewline
41 & 0.854525397539891 & 0.290949204920218 & 0.145474602460109 \tabularnewline
42 & 0.828221890328717 & 0.343556219342567 & 0.171778109671283 \tabularnewline
43 & 0.79835964353361 & 0.40328071293278 & 0.20164035646639 \tabularnewline
44 & 0.762177027794905 & 0.47564594441019 & 0.237822972205095 \tabularnewline
45 & 0.932460747019682 & 0.135078505960636 & 0.067539252980318 \tabularnewline
46 & 0.918963429180798 & 0.162073141638404 & 0.0810365708192019 \tabularnewline
47 & 0.905850618406874 & 0.188298763186253 & 0.0941493815931265 \tabularnewline
48 & 0.902385642245756 & 0.195228715508489 & 0.0976143577542444 \tabularnewline
49 & 0.882296893631964 & 0.235406212736072 & 0.117703106368036 \tabularnewline
50 & 0.867826157204221 & 0.264347685591559 & 0.132173842795779 \tabularnewline
51 & 0.841947501466345 & 0.316104997067309 & 0.158052498533655 \tabularnewline
52 & 0.817337150999782 & 0.365325698000436 & 0.182662849000218 \tabularnewline
53 & 0.787634076042866 & 0.424731847914267 & 0.212365923957134 \tabularnewline
54 & 0.755752527893525 & 0.488494944212951 & 0.244247472106475 \tabularnewline
55 & 0.720424393442273 & 0.559151213115454 & 0.279575606557727 \tabularnewline
56 & 0.682424920598752 & 0.635150158802497 & 0.317575079401248 \tabularnewline
57 & 0.999883340523638 & 0.000233318952723993 & 0.000116659476361997 \tabularnewline
58 & 0.999887909856399 & 0.000224180287201195 & 0.000112090143600598 \tabularnewline
59 & 0.999837639749749 & 0.000324720500502188 & 0.000162360250251094 \tabularnewline
60 & 0.999812636081274 & 0.000374727837451612 & 0.000187363918725806 \tabularnewline
61 & 0.999744394314138 & 0.000511211371724903 & 0.000255605685862451 \tabularnewline
62 & 0.999654177262695 & 0.000691645474609333 & 0.000345822737304666 \tabularnewline
63 & 0.99955956720604 & 0.000880865587920563 & 0.000440432793960282 \tabularnewline
64 & 0.999433559434539 & 0.0011328811309224 & 0.000566440565461201 \tabularnewline
65 & 0.999544206277423 & 0.000911587445153514 & 0.000455793722576757 \tabularnewline
66 & 0.999531173312163 & 0.000937653375673397 & 0.000468826687836699 \tabularnewline
67 & 0.999378496431366 & 0.00124300713726716 & 0.000621503568633578 \tabularnewline
68 & 0.999229441810257 & 0.00154111637948682 & 0.000770558189743411 \tabularnewline
69 & 0.999999285444829 & 1.42911034176532e-06 & 7.14555170882659e-07 \tabularnewline
70 & 0.999998959962093 & 2.08007581409335e-06 & 1.04003790704667e-06 \tabularnewline
71 & 0.999998370042999 & 3.25991400182323e-06 & 1.62995700091162e-06 \tabularnewline
72 & 0.999997471817881 & 5.0563642384367e-06 & 2.52818211921835e-06 \tabularnewline
73 & 0.999999113870353 & 1.77225929320225e-06 & 8.86129646601126e-07 \tabularnewline
74 & 0.999998581048731 & 2.83790253744153e-06 & 1.41895126872077e-06 \tabularnewline
75 & 0.999998270581001 & 3.45883799797422e-06 & 1.72941899898711e-06 \tabularnewline
76 & 0.999997682916968 & 4.63416606493348e-06 & 2.31708303246674e-06 \tabularnewline
77 & 0.999996385374618 & 7.22925076345182e-06 & 3.61462538172591e-06 \tabularnewline
78 & 0.999997234846085 & 5.53030783063948e-06 & 2.76515391531974e-06 \tabularnewline
79 & 0.999996162437663 & 7.6751246741658e-06 & 3.8375623370829e-06 \tabularnewline
80 & 0.999994463496457 & 1.10730070862617e-05 & 5.53650354313083e-06 \tabularnewline
81 & 0.999997587159127 & 4.82568174607156e-06 & 2.41284087303578e-06 \tabularnewline
82 & 0.999996203378214 & 7.59324357099863e-06 & 3.79662178549931e-06 \tabularnewline
83 & 0.99999520547001 & 9.58905997939403e-06 & 4.79452998969701e-06 \tabularnewline
84 & 0.999993223802922 & 1.35523941556599e-05 & 6.77619707782994e-06 \tabularnewline
85 & 0.99999157069963 & 1.68586007392053e-05 & 8.42930036960265e-06 \tabularnewline
86 & 0.999987731648706 & 2.45367025887676e-05 & 1.22683512943838e-05 \tabularnewline
87 & 0.999984528159376 & 3.09436812478334e-05 & 1.54718406239167e-05 \tabularnewline
88 & 0.999980433894897 & 3.91322102058654e-05 & 1.95661051029327e-05 \tabularnewline
89 & 0.999982042317837 & 3.5915364325702e-05 & 1.7957682162851e-05 \tabularnewline
90 & 0.99997646539084 & 4.70692183206641e-05 & 2.3534609160332e-05 \tabularnewline
91 & 0.999967011781643 & 6.59764367138511e-05 & 3.29882183569255e-05 \tabularnewline
92 & 0.999953978062093 & 9.20438758139579e-05 & 4.6021937906979e-05 \tabularnewline
93 & 0.999961664011709 & 7.66719765824285e-05 & 3.83359882912142e-05 \tabularnewline
94 & 0.999952543477974 & 9.49130440518509e-05 & 4.74565220259255e-05 \tabularnewline
95 & 0.99995073457923 & 9.85308415391361e-05 & 4.9265420769568e-05 \tabularnewline
96 & 0.999927630377658 & 0.000144739244683605 & 7.23696223418025e-05 \tabularnewline
97 & 0.999894669874737 & 0.00021066025052645 & 0.000105330125263225 \tabularnewline
98 & 0.99987275025598 & 0.000254499488039243 & 0.000127249744019622 \tabularnewline
99 & 0.99985437396707 & 0.000291252065860225 & 0.000145626032930113 \tabularnewline
100 & 0.999803086641256 & 0.000393826717487031 & 0.000196913358743515 \tabularnewline
101 & 0.999774341932715 & 0.000451316134570088 & 0.000225658067285044 \tabularnewline
102 & 0.999681988037592 & 0.000636023924816306 & 0.000318011962408153 \tabularnewline
103 & 0.999568356623833 & 0.000863286752333519 & 0.000431643376166759 \tabularnewline
104 & 0.999630075874749 & 0.000739848250501582 & 0.000369924125250791 \tabularnewline
105 & 0.999577767366374 & 0.000844465267250947 & 0.000422232633625473 \tabularnewline
106 & 0.999561612682084 & 0.000876774635832876 & 0.000438387317916438 \tabularnewline
107 & 0.999504583770341 & 0.000990832459317733 & 0.000495416229658867 \tabularnewline
108 & 0.999426605755667 & 0.0011467884886663 & 0.000573394244333151 \tabularnewline
109 & 0.999209579763109 & 0.00158084047378265 & 0.000790420236891326 \tabularnewline
110 & 0.998944042499845 & 0.00211191500030991 & 0.00105595750015495 \tabularnewline
111 & 0.998699752219625 & 0.00260049556074953 & 0.00130024778037477 \tabularnewline
112 & 0.99823931799544 & 0.00352136400911926 & 0.00176068200455963 \tabularnewline
113 & 0.998012057928936 & 0.00397588414212838 & 0.00198794207106419 \tabularnewline
114 & 0.99792356428067 & 0.00415287143865973 & 0.00207643571932987 \tabularnewline
115 & 0.997313383866544 & 0.0053732322669126 & 0.0026866161334563 \tabularnewline
116 & 0.997487872313912 & 0.00502425537217618 & 0.00251212768608809 \tabularnewline
117 & 0.999012796483048 & 0.00197440703390322 & 0.000987203516951609 \tabularnewline
118 & 0.99867841968984 & 0.0026431606203206 & 0.0013215803101603 \tabularnewline
119 & 0.998219811351661 & 0.0035603772966786 & 0.0017801886483393 \tabularnewline
120 & 0.997788707228433 & 0.00442258554313436 & 0.00221129277156718 \tabularnewline
121 & 0.997456100548878 & 0.00508779890224356 & 0.00254389945112178 \tabularnewline
122 & 0.996751645702805 & 0.00649670859439042 & 0.00324835429719521 \tabularnewline
123 & 0.995756888294795 & 0.00848622341040902 & 0.00424311170520451 \tabularnewline
124 & 0.994605458878179 & 0.0107890822436411 & 0.00539454112182056 \tabularnewline
125 & 0.993525302955929 & 0.0129493940881413 & 0.00647469704407066 \tabularnewline
126 & 0.991814333046079 & 0.0163713339078428 & 0.0081856669539214 \tabularnewline
127 & 0.989504611317976 & 0.0209907773640471 & 0.0104953886820236 \tabularnewline
128 & 0.98734907503252 & 0.0253018499349594 & 0.0126509249674797 \tabularnewline
129 & 0.984138143424071 & 0.0317237131518579 & 0.0158618565759289 \tabularnewline
130 & 0.980002352197288 & 0.0399952956054229 & 0.0199976478027115 \tabularnewline
131 & 0.975268332678385 & 0.0494633346432293 & 0.0247316673216147 \tabularnewline
132 & 0.970909175414884 & 0.0581816491702314 & 0.0290908245851157 \tabularnewline
133 & 0.96520818578178 & 0.0695836284364392 & 0.0347918142182196 \tabularnewline
134 & 0.957263794473813 & 0.085472411052374 & 0.042736205526187 \tabularnewline
135 & 0.94952443941887 & 0.100951121162259 & 0.0504755605811296 \tabularnewline
136 & 0.938863258475496 & 0.122273483049008 & 0.0611367415245041 \tabularnewline
137 & 0.931502015062949 & 0.136995969874102 & 0.0684979849370511 \tabularnewline
138 & 0.928229622091607 & 0.143540755816786 & 0.071770377908393 \tabularnewline
139 & 0.914225514035086 & 0.171548971929827 & 0.0857744859649135 \tabularnewline
140 & 0.902354407181057 & 0.195291185637885 & 0.0976455928189427 \tabularnewline
141 & 0.981029504387601 & 0.0379409912247974 & 0.0189704956123987 \tabularnewline
142 & 0.981062118110583 & 0.0378757637788348 & 0.0189378818894174 \tabularnewline
143 & 0.976900122362337 & 0.0461997552753259 & 0.0230998776376629 \tabularnewline
144 & 0.972156978038795 & 0.0556860439224094 & 0.0278430219612047 \tabularnewline
145 & 0.968426955840279 & 0.0631460883194411 & 0.0315730441597206 \tabularnewline
146 & 0.961936790843651 & 0.0761264183126983 & 0.0380632091563491 \tabularnewline
147 & 0.953936134600088 & 0.0921277307998245 & 0.0460638653999123 \tabularnewline
148 & 0.947734306893627 & 0.104531386212746 & 0.0522656931063731 \tabularnewline
149 & 0.937240756812969 & 0.125518486374063 & 0.0627592431870315 \tabularnewline
150 & 0.926263260000501 & 0.147473479998998 & 0.0737367399994991 \tabularnewline
151 & 0.915473743983254 & 0.169052512033492 & 0.0845262560167461 \tabularnewline
152 & 0.9085717969107 & 0.182856406178601 & 0.0914282030893004 \tabularnewline
153 & 0.932139700471924 & 0.135720599056153 & 0.0678602995280763 \tabularnewline
154 & 0.919223650366692 & 0.161552699266615 & 0.0807763496333077 \tabularnewline
155 & 0.906092141890791 & 0.187815716218418 & 0.093907858109209 \tabularnewline
156 & 0.896795824179891 & 0.206408351640218 & 0.103204175820109 \tabularnewline
157 & 0.87799083667539 & 0.244018326649221 & 0.12200916332461 \tabularnewline
158 & 0.859119476162644 & 0.281761047674713 & 0.140880523837356 \tabularnewline
159 & 0.839205114430346 & 0.321589771139309 & 0.160794885569655 \tabularnewline
160 & 0.856296223954549 & 0.287407552090903 & 0.143703776045451 \tabularnewline
161 & 0.851299866973025 & 0.29740026605395 & 0.148700133026975 \tabularnewline
162 & 0.883469962964348 & 0.233060074071303 & 0.116530037035652 \tabularnewline
163 & 0.871521444033066 & 0.256957111933868 & 0.128478555966934 \tabularnewline
164 & 0.861364661682152 & 0.277270676635695 & 0.138635338317848 \tabularnewline
165 & 0.881312944889618 & 0.237374110220764 & 0.118687055110382 \tabularnewline
166 & 0.862405348543632 & 0.275189302912736 & 0.137594651456368 \tabularnewline
167 & 0.841552906615042 & 0.316894186769916 & 0.158447093384958 \tabularnewline
168 & 0.817830223399826 & 0.364339553200347 & 0.182169776600174 \tabularnewline
169 & 0.790910268871658 & 0.418179462256684 & 0.209089731128342 \tabularnewline
170 & 0.760971447882278 & 0.478057104235444 & 0.239028552117722 \tabularnewline
171 & 0.729836156089355 & 0.54032768782129 & 0.270163843910645 \tabularnewline
172 & 0.726706108624481 & 0.546587782751037 & 0.273293891375519 \tabularnewline
173 & 0.728488891942004 & 0.543022216115992 & 0.271511108057996 \tabularnewline
174 & 0.746721269561739 & 0.506557460876523 & 0.253278730438261 \tabularnewline
175 & 0.720246157758254 & 0.559507684483493 & 0.279753842241746 \tabularnewline
176 & 0.688948460762995 & 0.622103078474009 & 0.311051539237005 \tabularnewline
177 & 0.703948918492812 & 0.592102163014375 & 0.296051081507188 \tabularnewline
178 & 0.680761762569093 & 0.638476474861814 & 0.319238237430907 \tabularnewline
179 & 0.642761623325778 & 0.714476753348444 & 0.357238376674222 \tabularnewline
180 & 0.601613186008703 & 0.796773627982594 & 0.398386813991297 \tabularnewline
181 & 0.576363863574701 & 0.847272272850598 & 0.423636136425299 \tabularnewline
182 & 0.533847044028465 & 0.932305911943071 & 0.466152955971535 \tabularnewline
183 & 0.492102977304597 & 0.984205954609193 & 0.507897022695403 \tabularnewline
184 & 0.456135090544669 & 0.912270181089338 & 0.543864909455331 \tabularnewline
185 & 0.452772024960795 & 0.905544049921591 & 0.547227975039205 \tabularnewline
186 & 0.440752246844547 & 0.881504493689093 & 0.559247753155453 \tabularnewline
187 & 0.401757066764841 & 0.803514133529681 & 0.598242933235159 \tabularnewline
188 & 0.386037021351235 & 0.772074042702471 & 0.613962978648765 \tabularnewline
189 & 0.352123986933468 & 0.704247973866935 & 0.647876013066532 \tabularnewline
190 & 0.319139712312052 & 0.638279424624104 & 0.680860287687948 \tabularnewline
191 & 0.281077284529308 & 0.562154569058616 & 0.718922715470692 \tabularnewline
192 & 0.24514330914589 & 0.490286618291779 & 0.75485669085411 \tabularnewline
193 & 0.216031392815955 & 0.43206278563191 & 0.783968607184045 \tabularnewline
194 & 0.22142162215948 & 0.44284324431896 & 0.77857837784052 \tabularnewline
195 & 0.187310646679865 & 0.37462129335973 & 0.812689353320135 \tabularnewline
196 & 0.159413445801216 & 0.318826891602432 & 0.840586554198784 \tabularnewline
197 & 0.138558605481921 & 0.277117210963842 & 0.861441394518079 \tabularnewline
198 & 0.164599653953453 & 0.329199307906907 & 0.835400346046547 \tabularnewline
199 & 0.215855079500663 & 0.431710159001326 & 0.784144920499337 \tabularnewline
200 & 0.196633770979167 & 0.393267541958334 & 0.803366229020833 \tabularnewline
201 & 0.702291743628305 & 0.595416512743389 & 0.297708256371694 \tabularnewline
202 & 0.684505634211306 & 0.630988731577388 & 0.315494365788694 \tabularnewline
203 & 0.63446625193027 & 0.73106749613946 & 0.36553374806973 \tabularnewline
204 & 0.592816254177497 & 0.814367491645007 & 0.407183745822504 \tabularnewline
205 & 0.539265721907794 & 0.921468556184411 & 0.460734278092206 \tabularnewline
206 & 0.485734154268603 & 0.971468308537205 & 0.514265845731398 \tabularnewline
207 & 0.436155792838013 & 0.872311585676026 & 0.563844207161987 \tabularnewline
208 & 0.460908074864213 & 0.921816149728426 & 0.539091925135787 \tabularnewline
209 & 0.434963312806763 & 0.869926625613527 & 0.565036687193237 \tabularnewline
210 & 0.389866977636778 & 0.779733955273556 & 0.610133022363222 \tabularnewline
211 & 0.334250960494129 & 0.668501920988259 & 0.665749039505871 \tabularnewline
212 & 0.30535450440478 & 0.610709008809561 & 0.69464549559522 \tabularnewline
213 & 0.327375072897292 & 0.654750145794584 & 0.672624927102708 \tabularnewline
214 & 0.283001368975207 & 0.566002737950413 & 0.716998631024793 \tabularnewline
215 & 0.231511942630832 & 0.463023885261664 & 0.768488057369168 \tabularnewline
216 & 0.199549605141446 & 0.399099210282893 & 0.800450394858554 \tabularnewline
217 & 0.158418343521155 & 0.316836687042309 & 0.841581656478845 \tabularnewline
218 & 0.127995384878907 & 0.255990769757814 & 0.872004615121093 \tabularnewline
219 & 0.0978175771613522 & 0.195635154322704 & 0.902182422838648 \tabularnewline
220 & 0.0766444238278322 & 0.153288847655664 & 0.923355576172168 \tabularnewline
221 & 0.163903033300266 & 0.327806066600531 & 0.836096966699734 \tabularnewline
222 & 0.132966165036406 & 0.265932330072813 & 0.867033834963594 \tabularnewline
223 & 0.10278329197042 & 0.20556658394084 & 0.89721670802958 \tabularnewline
224 & 0.0711351650978012 & 0.142270330195602 & 0.928864834902199 \tabularnewline
225 & 0.222328507155169 & 0.444657014310338 & 0.777671492844831 \tabularnewline
226 & 0.162110172647549 & 0.324220345295098 & 0.837889827352451 \tabularnewline
227 & 0.116232441185965 & 0.23246488237193 & 0.883767558814035 \tabularnewline
228 & 0.0791106132532801 & 0.15822122650656 & 0.92088938674672 \tabularnewline
229 & 0.048630015600423 & 0.097260031200846 & 0.951369984399577 \tabularnewline
230 & 0.032654899571406 & 0.065309799142812 & 0.967345100428594 \tabularnewline
231 & 0.0234767492060825 & 0.046953498412165 & 0.976523250793918 \tabularnewline
232 & 0.0159120870228444 & 0.0318241740456888 & 0.984087912977156 \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=5

[TABLE]
[ROW][C]Goldfeld-Quandt test for Heteroskedasticity[/C][/ROW]
[ROW][C]p-values[/C][C]Alternative Hypothesis[/C][/ROW]
[ROW][C]breakpoint index[/C][C]greater[/C][C]2-sided[/C][C]less[/C][/ROW]
[ROW][C]8[/C][C]0.00208285907136244[/C][C]0.00416571814272489[/C][C]0.997917140928638[/C][/ROW]
[ROW][C]9[/C][C]0.000258524507260328[/C][C]0.000517049014520657[/C][C]0.99974147549274[/C][/ROW]
[ROW][C]10[/C][C]3.96051958955247e-05[/C][C]7.92103917910493e-05[/C][C]0.999960394804104[/C][/ROW]
[ROW][C]11[/C][C]5.34801617218323e-05[/C][C]0.000106960323443665[/C][C]0.999946519838278[/C][/ROW]
[ROW][C]12[/C][C]8.70660545707763e-06[/C][C]1.74132109141553e-05[/C][C]0.999991293394543[/C][/ROW]
[ROW][C]13[/C][C]9.56334676985574e-06[/C][C]1.91266935397115e-05[/C][C]0.99999043665323[/C][/ROW]
[ROW][C]14[/C][C]3.14719774683551e-06[/C][C]6.29439549367102e-06[/C][C]0.999996852802253[/C][/ROW]
[ROW][C]15[/C][C]5.25978275658092e-07[/C][C]1.05195655131618e-06[/C][C]0.999999474021724[/C][/ROW]
[ROW][C]16[/C][C]4.54760537476681e-07[/C][C]9.09521074953361e-07[/C][C]0.999999545239463[/C][/ROW]
[ROW][C]17[/C][C]8.59684143222506e-08[/C][C]1.71936828644501e-07[/C][C]0.999999914031586[/C][/ROW]
[ROW][C]18[/C][C]1.64788562887808e-08[/C][C]3.29577125775617e-08[/C][C]0.999999983521144[/C][/ROW]
[ROW][C]19[/C][C]1.06447338592479e-08[/C][C]2.12894677184959e-08[/C][C]0.999999989355266[/C][/ROW]
[ROW][C]20[/C][C]7.37040404554883e-08[/C][C]1.47408080910977e-07[/C][C]0.99999992629596[/C][/ROW]
[ROW][C]21[/C][C]2.37780738553565e-08[/C][C]4.75561477107131e-08[/C][C]0.999999976221926[/C][/ROW]
[ROW][C]22[/C][C]1.69566702749148e-08[/C][C]3.39133405498297e-08[/C][C]0.99999998304333[/C][/ROW]
[ROW][C]23[/C][C]5.42121864684227e-09[/C][C]1.08424372936845e-08[/C][C]0.999999994578781[/C][/ROW]
[ROW][C]24[/C][C]1.28882182269629e-09[/C][C]2.57764364539258e-09[/C][C]0.999999998711178[/C][/ROW]
[ROW][C]25[/C][C]2.97359595243954e-10[/C][C]5.94719190487907e-10[/C][C]0.99999999970264[/C][/ROW]
[ROW][C]26[/C][C]9.38837742550862e-11[/C][C]1.87767548510172e-10[/C][C]0.999999999906116[/C][/ROW]
[ROW][C]27[/C][C]2.11476965232179e-11[/C][C]4.22953930464358e-11[/C][C]0.999999999978852[/C][/ROW]
[ROW][C]28[/C][C]4.46681927451422e-12[/C][C]8.93363854902843e-12[/C][C]0.999999999995533[/C][/ROW]
[ROW][C]29[/C][C]9.81612547575019e-13[/C][C]1.96322509515004e-12[/C][C]0.999999999999018[/C][/ROW]
[ROW][C]30[/C][C]4.69993284745347e-13[/C][C]9.39986569490695e-13[/C][C]0.99999999999953[/C][/ROW]
[ROW][C]31[/C][C]9.84292299205565e-14[/C][C]1.96858459841113e-13[/C][C]0.999999999999902[/C][/ROW]
[ROW][C]32[/C][C]4.4514476695047e-14[/C][C]8.90289533900939e-14[/C][C]0.999999999999955[/C][/ROW]
[ROW][C]33[/C][C]0.00342766423725855[/C][C]0.00685532847451709[/C][C]0.996572335762741[/C][/ROW]
[ROW][C]34[/C][C]0.00212255959182862[/C][C]0.00424511918365723[/C][C]0.997877440408171[/C][/ROW]
[ROW][C]35[/C][C]0.00128930222077351[/C][C]0.00257860444154702[/C][C]0.998710697779226[/C][/ROW]
[ROW][C]36[/C][C]0.000842838179512543[/C][C]0.00168567635902509[/C][C]0.999157161820487[/C][/ROW]
[ROW][C]37[/C][C]0.000500071463176288[/C][C]0.00100014292635258[/C][C]0.999499928536824[/C][/ROW]
[ROW][C]38[/C][C]0.000313725797558314[/C][C]0.000627451595116629[/C][C]0.999686274202442[/C][/ROW]
[ROW][C]39[/C][C]0.898669006561883[/C][C]0.202661986876234[/C][C]0.101330993438117[/C][/ROW]
[ROW][C]40[/C][C]0.880194271767117[/C][C]0.239611456465767[/C][C]0.119805728232884[/C][/ROW]
[ROW][C]41[/C][C]0.854525397539891[/C][C]0.290949204920218[/C][C]0.145474602460109[/C][/ROW]
[ROW][C]42[/C][C]0.828221890328717[/C][C]0.343556219342567[/C][C]0.171778109671283[/C][/ROW]
[ROW][C]43[/C][C]0.79835964353361[/C][C]0.40328071293278[/C][C]0.20164035646639[/C][/ROW]
[ROW][C]44[/C][C]0.762177027794905[/C][C]0.47564594441019[/C][C]0.237822972205095[/C][/ROW]
[ROW][C]45[/C][C]0.932460747019682[/C][C]0.135078505960636[/C][C]0.067539252980318[/C][/ROW]
[ROW][C]46[/C][C]0.918963429180798[/C][C]0.162073141638404[/C][C]0.0810365708192019[/C][/ROW]
[ROW][C]47[/C][C]0.905850618406874[/C][C]0.188298763186253[/C][C]0.0941493815931265[/C][/ROW]
[ROW][C]48[/C][C]0.902385642245756[/C][C]0.195228715508489[/C][C]0.0976143577542444[/C][/ROW]
[ROW][C]49[/C][C]0.882296893631964[/C][C]0.235406212736072[/C][C]0.117703106368036[/C][/ROW]
[ROW][C]50[/C][C]0.867826157204221[/C][C]0.264347685591559[/C][C]0.132173842795779[/C][/ROW]
[ROW][C]51[/C][C]0.841947501466345[/C][C]0.316104997067309[/C][C]0.158052498533655[/C][/ROW]
[ROW][C]52[/C][C]0.817337150999782[/C][C]0.365325698000436[/C][C]0.182662849000218[/C][/ROW]
[ROW][C]53[/C][C]0.787634076042866[/C][C]0.424731847914267[/C][C]0.212365923957134[/C][/ROW]
[ROW][C]54[/C][C]0.755752527893525[/C][C]0.488494944212951[/C][C]0.244247472106475[/C][/ROW]
[ROW][C]55[/C][C]0.720424393442273[/C][C]0.559151213115454[/C][C]0.279575606557727[/C][/ROW]
[ROW][C]56[/C][C]0.682424920598752[/C][C]0.635150158802497[/C][C]0.317575079401248[/C][/ROW]
[ROW][C]57[/C][C]0.999883340523638[/C][C]0.000233318952723993[/C][C]0.000116659476361997[/C][/ROW]
[ROW][C]58[/C][C]0.999887909856399[/C][C]0.000224180287201195[/C][C]0.000112090143600598[/C][/ROW]
[ROW][C]59[/C][C]0.999837639749749[/C][C]0.000324720500502188[/C][C]0.000162360250251094[/C][/ROW]
[ROW][C]60[/C][C]0.999812636081274[/C][C]0.000374727837451612[/C][C]0.000187363918725806[/C][/ROW]
[ROW][C]61[/C][C]0.999744394314138[/C][C]0.000511211371724903[/C][C]0.000255605685862451[/C][/ROW]
[ROW][C]62[/C][C]0.999654177262695[/C][C]0.000691645474609333[/C][C]0.000345822737304666[/C][/ROW]
[ROW][C]63[/C][C]0.99955956720604[/C][C]0.000880865587920563[/C][C]0.000440432793960282[/C][/ROW]
[ROW][C]64[/C][C]0.999433559434539[/C][C]0.0011328811309224[/C][C]0.000566440565461201[/C][/ROW]
[ROW][C]65[/C][C]0.999544206277423[/C][C]0.000911587445153514[/C][C]0.000455793722576757[/C][/ROW]
[ROW][C]66[/C][C]0.999531173312163[/C][C]0.000937653375673397[/C][C]0.000468826687836699[/C][/ROW]
[ROW][C]67[/C][C]0.999378496431366[/C][C]0.00124300713726716[/C][C]0.000621503568633578[/C][/ROW]
[ROW][C]68[/C][C]0.999229441810257[/C][C]0.00154111637948682[/C][C]0.000770558189743411[/C][/ROW]
[ROW][C]69[/C][C]0.999999285444829[/C][C]1.42911034176532e-06[/C][C]7.14555170882659e-07[/C][/ROW]
[ROW][C]70[/C][C]0.999998959962093[/C][C]2.08007581409335e-06[/C][C]1.04003790704667e-06[/C][/ROW]
[ROW][C]71[/C][C]0.999998370042999[/C][C]3.25991400182323e-06[/C][C]1.62995700091162e-06[/C][/ROW]
[ROW][C]72[/C][C]0.999997471817881[/C][C]5.0563642384367e-06[/C][C]2.52818211921835e-06[/C][/ROW]
[ROW][C]73[/C][C]0.999999113870353[/C][C]1.77225929320225e-06[/C][C]8.86129646601126e-07[/C][/ROW]
[ROW][C]74[/C][C]0.999998581048731[/C][C]2.83790253744153e-06[/C][C]1.41895126872077e-06[/C][/ROW]
[ROW][C]75[/C][C]0.999998270581001[/C][C]3.45883799797422e-06[/C][C]1.72941899898711e-06[/C][/ROW]
[ROW][C]76[/C][C]0.999997682916968[/C][C]4.63416606493348e-06[/C][C]2.31708303246674e-06[/C][/ROW]
[ROW][C]77[/C][C]0.999996385374618[/C][C]7.22925076345182e-06[/C][C]3.61462538172591e-06[/C][/ROW]
[ROW][C]78[/C][C]0.999997234846085[/C][C]5.53030783063948e-06[/C][C]2.76515391531974e-06[/C][/ROW]
[ROW][C]79[/C][C]0.999996162437663[/C][C]7.6751246741658e-06[/C][C]3.8375623370829e-06[/C][/ROW]
[ROW][C]80[/C][C]0.999994463496457[/C][C]1.10730070862617e-05[/C][C]5.53650354313083e-06[/C][/ROW]
[ROW][C]81[/C][C]0.999997587159127[/C][C]4.82568174607156e-06[/C][C]2.41284087303578e-06[/C][/ROW]
[ROW][C]82[/C][C]0.999996203378214[/C][C]7.59324357099863e-06[/C][C]3.79662178549931e-06[/C][/ROW]
[ROW][C]83[/C][C]0.99999520547001[/C][C]9.58905997939403e-06[/C][C]4.79452998969701e-06[/C][/ROW]
[ROW][C]84[/C][C]0.999993223802922[/C][C]1.35523941556599e-05[/C][C]6.77619707782994e-06[/C][/ROW]
[ROW][C]85[/C][C]0.99999157069963[/C][C]1.68586007392053e-05[/C][C]8.42930036960265e-06[/C][/ROW]
[ROW][C]86[/C][C]0.999987731648706[/C][C]2.45367025887676e-05[/C][C]1.22683512943838e-05[/C][/ROW]
[ROW][C]87[/C][C]0.999984528159376[/C][C]3.09436812478334e-05[/C][C]1.54718406239167e-05[/C][/ROW]
[ROW][C]88[/C][C]0.999980433894897[/C][C]3.91322102058654e-05[/C][C]1.95661051029327e-05[/C][/ROW]
[ROW][C]89[/C][C]0.999982042317837[/C][C]3.5915364325702e-05[/C][C]1.7957682162851e-05[/C][/ROW]
[ROW][C]90[/C][C]0.99997646539084[/C][C]4.70692183206641e-05[/C][C]2.3534609160332e-05[/C][/ROW]
[ROW][C]91[/C][C]0.999967011781643[/C][C]6.59764367138511e-05[/C][C]3.29882183569255e-05[/C][/ROW]
[ROW][C]92[/C][C]0.999953978062093[/C][C]9.20438758139579e-05[/C][C]4.6021937906979e-05[/C][/ROW]
[ROW][C]93[/C][C]0.999961664011709[/C][C]7.66719765824285e-05[/C][C]3.83359882912142e-05[/C][/ROW]
[ROW][C]94[/C][C]0.999952543477974[/C][C]9.49130440518509e-05[/C][C]4.74565220259255e-05[/C][/ROW]
[ROW][C]95[/C][C]0.99995073457923[/C][C]9.85308415391361e-05[/C][C]4.9265420769568e-05[/C][/ROW]
[ROW][C]96[/C][C]0.999927630377658[/C][C]0.000144739244683605[/C][C]7.23696223418025e-05[/C][/ROW]
[ROW][C]97[/C][C]0.999894669874737[/C][C]0.00021066025052645[/C][C]0.000105330125263225[/C][/ROW]
[ROW][C]98[/C][C]0.99987275025598[/C][C]0.000254499488039243[/C][C]0.000127249744019622[/C][/ROW]
[ROW][C]99[/C][C]0.99985437396707[/C][C]0.000291252065860225[/C][C]0.000145626032930113[/C][/ROW]
[ROW][C]100[/C][C]0.999803086641256[/C][C]0.000393826717487031[/C][C]0.000196913358743515[/C][/ROW]
[ROW][C]101[/C][C]0.999774341932715[/C][C]0.000451316134570088[/C][C]0.000225658067285044[/C][/ROW]
[ROW][C]102[/C][C]0.999681988037592[/C][C]0.000636023924816306[/C][C]0.000318011962408153[/C][/ROW]
[ROW][C]103[/C][C]0.999568356623833[/C][C]0.000863286752333519[/C][C]0.000431643376166759[/C][/ROW]
[ROW][C]104[/C][C]0.999630075874749[/C][C]0.000739848250501582[/C][C]0.000369924125250791[/C][/ROW]
[ROW][C]105[/C][C]0.999577767366374[/C][C]0.000844465267250947[/C][C]0.000422232633625473[/C][/ROW]
[ROW][C]106[/C][C]0.999561612682084[/C][C]0.000876774635832876[/C][C]0.000438387317916438[/C][/ROW]
[ROW][C]107[/C][C]0.999504583770341[/C][C]0.000990832459317733[/C][C]0.000495416229658867[/C][/ROW]
[ROW][C]108[/C][C]0.999426605755667[/C][C]0.0011467884886663[/C][C]0.000573394244333151[/C][/ROW]
[ROW][C]109[/C][C]0.999209579763109[/C][C]0.00158084047378265[/C][C]0.000790420236891326[/C][/ROW]
[ROW][C]110[/C][C]0.998944042499845[/C][C]0.00211191500030991[/C][C]0.00105595750015495[/C][/ROW]
[ROW][C]111[/C][C]0.998699752219625[/C][C]0.00260049556074953[/C][C]0.00130024778037477[/C][/ROW]
[ROW][C]112[/C][C]0.99823931799544[/C][C]0.00352136400911926[/C][C]0.00176068200455963[/C][/ROW]
[ROW][C]113[/C][C]0.998012057928936[/C][C]0.00397588414212838[/C][C]0.00198794207106419[/C][/ROW]
[ROW][C]114[/C][C]0.99792356428067[/C][C]0.00415287143865973[/C][C]0.00207643571932987[/C][/ROW]
[ROW][C]115[/C][C]0.997313383866544[/C][C]0.0053732322669126[/C][C]0.0026866161334563[/C][/ROW]
[ROW][C]116[/C][C]0.997487872313912[/C][C]0.00502425537217618[/C][C]0.00251212768608809[/C][/ROW]
[ROW][C]117[/C][C]0.999012796483048[/C][C]0.00197440703390322[/C][C]0.000987203516951609[/C][/ROW]
[ROW][C]118[/C][C]0.99867841968984[/C][C]0.0026431606203206[/C][C]0.0013215803101603[/C][/ROW]
[ROW][C]119[/C][C]0.998219811351661[/C][C]0.0035603772966786[/C][C]0.0017801886483393[/C][/ROW]
[ROW][C]120[/C][C]0.997788707228433[/C][C]0.00442258554313436[/C][C]0.00221129277156718[/C][/ROW]
[ROW][C]121[/C][C]0.997456100548878[/C][C]0.00508779890224356[/C][C]0.00254389945112178[/C][/ROW]
[ROW][C]122[/C][C]0.996751645702805[/C][C]0.00649670859439042[/C][C]0.00324835429719521[/C][/ROW]
[ROW][C]123[/C][C]0.995756888294795[/C][C]0.00848622341040902[/C][C]0.00424311170520451[/C][/ROW]
[ROW][C]124[/C][C]0.994605458878179[/C][C]0.0107890822436411[/C][C]0.00539454112182056[/C][/ROW]
[ROW][C]125[/C][C]0.993525302955929[/C][C]0.0129493940881413[/C][C]0.00647469704407066[/C][/ROW]
[ROW][C]126[/C][C]0.991814333046079[/C][C]0.0163713339078428[/C][C]0.0081856669539214[/C][/ROW]
[ROW][C]127[/C][C]0.989504611317976[/C][C]0.0209907773640471[/C][C]0.0104953886820236[/C][/ROW]
[ROW][C]128[/C][C]0.98734907503252[/C][C]0.0253018499349594[/C][C]0.0126509249674797[/C][/ROW]
[ROW][C]129[/C][C]0.984138143424071[/C][C]0.0317237131518579[/C][C]0.0158618565759289[/C][/ROW]
[ROW][C]130[/C][C]0.980002352197288[/C][C]0.0399952956054229[/C][C]0.0199976478027115[/C][/ROW]
[ROW][C]131[/C][C]0.975268332678385[/C][C]0.0494633346432293[/C][C]0.0247316673216147[/C][/ROW]
[ROW][C]132[/C][C]0.970909175414884[/C][C]0.0581816491702314[/C][C]0.0290908245851157[/C][/ROW]
[ROW][C]133[/C][C]0.96520818578178[/C][C]0.0695836284364392[/C][C]0.0347918142182196[/C][/ROW]
[ROW][C]134[/C][C]0.957263794473813[/C][C]0.085472411052374[/C][C]0.042736205526187[/C][/ROW]
[ROW][C]135[/C][C]0.94952443941887[/C][C]0.100951121162259[/C][C]0.0504755605811296[/C][/ROW]
[ROW][C]136[/C][C]0.938863258475496[/C][C]0.122273483049008[/C][C]0.0611367415245041[/C][/ROW]
[ROW][C]137[/C][C]0.931502015062949[/C][C]0.136995969874102[/C][C]0.0684979849370511[/C][/ROW]
[ROW][C]138[/C][C]0.928229622091607[/C][C]0.143540755816786[/C][C]0.071770377908393[/C][/ROW]
[ROW][C]139[/C][C]0.914225514035086[/C][C]0.171548971929827[/C][C]0.0857744859649135[/C][/ROW]
[ROW][C]140[/C][C]0.902354407181057[/C][C]0.195291185637885[/C][C]0.0976455928189427[/C][/ROW]
[ROW][C]141[/C][C]0.981029504387601[/C][C]0.0379409912247974[/C][C]0.0189704956123987[/C][/ROW]
[ROW][C]142[/C][C]0.981062118110583[/C][C]0.0378757637788348[/C][C]0.0189378818894174[/C][/ROW]
[ROW][C]143[/C][C]0.976900122362337[/C][C]0.0461997552753259[/C][C]0.0230998776376629[/C][/ROW]
[ROW][C]144[/C][C]0.972156978038795[/C][C]0.0556860439224094[/C][C]0.0278430219612047[/C][/ROW]
[ROW][C]145[/C][C]0.968426955840279[/C][C]0.0631460883194411[/C][C]0.0315730441597206[/C][/ROW]
[ROW][C]146[/C][C]0.961936790843651[/C][C]0.0761264183126983[/C][C]0.0380632091563491[/C][/ROW]
[ROW][C]147[/C][C]0.953936134600088[/C][C]0.0921277307998245[/C][C]0.0460638653999123[/C][/ROW]
[ROW][C]148[/C][C]0.947734306893627[/C][C]0.104531386212746[/C][C]0.0522656931063731[/C][/ROW]
[ROW][C]149[/C][C]0.937240756812969[/C][C]0.125518486374063[/C][C]0.0627592431870315[/C][/ROW]
[ROW][C]150[/C][C]0.926263260000501[/C][C]0.147473479998998[/C][C]0.0737367399994991[/C][/ROW]
[ROW][C]151[/C][C]0.915473743983254[/C][C]0.169052512033492[/C][C]0.0845262560167461[/C][/ROW]
[ROW][C]152[/C][C]0.9085717969107[/C][C]0.182856406178601[/C][C]0.0914282030893004[/C][/ROW]
[ROW][C]153[/C][C]0.932139700471924[/C][C]0.135720599056153[/C][C]0.0678602995280763[/C][/ROW]
[ROW][C]154[/C][C]0.919223650366692[/C][C]0.161552699266615[/C][C]0.0807763496333077[/C][/ROW]
[ROW][C]155[/C][C]0.906092141890791[/C][C]0.187815716218418[/C][C]0.093907858109209[/C][/ROW]
[ROW][C]156[/C][C]0.896795824179891[/C][C]0.206408351640218[/C][C]0.103204175820109[/C][/ROW]
[ROW][C]157[/C][C]0.87799083667539[/C][C]0.244018326649221[/C][C]0.12200916332461[/C][/ROW]
[ROW][C]158[/C][C]0.859119476162644[/C][C]0.281761047674713[/C][C]0.140880523837356[/C][/ROW]
[ROW][C]159[/C][C]0.839205114430346[/C][C]0.321589771139309[/C][C]0.160794885569655[/C][/ROW]
[ROW][C]160[/C][C]0.856296223954549[/C][C]0.287407552090903[/C][C]0.143703776045451[/C][/ROW]
[ROW][C]161[/C][C]0.851299866973025[/C][C]0.29740026605395[/C][C]0.148700133026975[/C][/ROW]
[ROW][C]162[/C][C]0.883469962964348[/C][C]0.233060074071303[/C][C]0.116530037035652[/C][/ROW]
[ROW][C]163[/C][C]0.871521444033066[/C][C]0.256957111933868[/C][C]0.128478555966934[/C][/ROW]
[ROW][C]164[/C][C]0.861364661682152[/C][C]0.277270676635695[/C][C]0.138635338317848[/C][/ROW]
[ROW][C]165[/C][C]0.881312944889618[/C][C]0.237374110220764[/C][C]0.118687055110382[/C][/ROW]
[ROW][C]166[/C][C]0.862405348543632[/C][C]0.275189302912736[/C][C]0.137594651456368[/C][/ROW]
[ROW][C]167[/C][C]0.841552906615042[/C][C]0.316894186769916[/C][C]0.158447093384958[/C][/ROW]
[ROW][C]168[/C][C]0.817830223399826[/C][C]0.364339553200347[/C][C]0.182169776600174[/C][/ROW]
[ROW][C]169[/C][C]0.790910268871658[/C][C]0.418179462256684[/C][C]0.209089731128342[/C][/ROW]
[ROW][C]170[/C][C]0.760971447882278[/C][C]0.478057104235444[/C][C]0.239028552117722[/C][/ROW]
[ROW][C]171[/C][C]0.729836156089355[/C][C]0.54032768782129[/C][C]0.270163843910645[/C][/ROW]
[ROW][C]172[/C][C]0.726706108624481[/C][C]0.546587782751037[/C][C]0.273293891375519[/C][/ROW]
[ROW][C]173[/C][C]0.728488891942004[/C][C]0.543022216115992[/C][C]0.271511108057996[/C][/ROW]
[ROW][C]174[/C][C]0.746721269561739[/C][C]0.506557460876523[/C][C]0.253278730438261[/C][/ROW]
[ROW][C]175[/C][C]0.720246157758254[/C][C]0.559507684483493[/C][C]0.279753842241746[/C][/ROW]
[ROW][C]176[/C][C]0.688948460762995[/C][C]0.622103078474009[/C][C]0.311051539237005[/C][/ROW]
[ROW][C]177[/C][C]0.703948918492812[/C][C]0.592102163014375[/C][C]0.296051081507188[/C][/ROW]
[ROW][C]178[/C][C]0.680761762569093[/C][C]0.638476474861814[/C][C]0.319238237430907[/C][/ROW]
[ROW][C]179[/C][C]0.642761623325778[/C][C]0.714476753348444[/C][C]0.357238376674222[/C][/ROW]
[ROW][C]180[/C][C]0.601613186008703[/C][C]0.796773627982594[/C][C]0.398386813991297[/C][/ROW]
[ROW][C]181[/C][C]0.576363863574701[/C][C]0.847272272850598[/C][C]0.423636136425299[/C][/ROW]
[ROW][C]182[/C][C]0.533847044028465[/C][C]0.932305911943071[/C][C]0.466152955971535[/C][/ROW]
[ROW][C]183[/C][C]0.492102977304597[/C][C]0.984205954609193[/C][C]0.507897022695403[/C][/ROW]
[ROW][C]184[/C][C]0.456135090544669[/C][C]0.912270181089338[/C][C]0.543864909455331[/C][/ROW]
[ROW][C]185[/C][C]0.452772024960795[/C][C]0.905544049921591[/C][C]0.547227975039205[/C][/ROW]
[ROW][C]186[/C][C]0.440752246844547[/C][C]0.881504493689093[/C][C]0.559247753155453[/C][/ROW]
[ROW][C]187[/C][C]0.401757066764841[/C][C]0.803514133529681[/C][C]0.598242933235159[/C][/ROW]
[ROW][C]188[/C][C]0.386037021351235[/C][C]0.772074042702471[/C][C]0.613962978648765[/C][/ROW]
[ROW][C]189[/C][C]0.352123986933468[/C][C]0.704247973866935[/C][C]0.647876013066532[/C][/ROW]
[ROW][C]190[/C][C]0.319139712312052[/C][C]0.638279424624104[/C][C]0.680860287687948[/C][/ROW]
[ROW][C]191[/C][C]0.281077284529308[/C][C]0.562154569058616[/C][C]0.718922715470692[/C][/ROW]
[ROW][C]192[/C][C]0.24514330914589[/C][C]0.490286618291779[/C][C]0.75485669085411[/C][/ROW]
[ROW][C]193[/C][C]0.216031392815955[/C][C]0.43206278563191[/C][C]0.783968607184045[/C][/ROW]
[ROW][C]194[/C][C]0.22142162215948[/C][C]0.44284324431896[/C][C]0.77857837784052[/C][/ROW]
[ROW][C]195[/C][C]0.187310646679865[/C][C]0.37462129335973[/C][C]0.812689353320135[/C][/ROW]
[ROW][C]196[/C][C]0.159413445801216[/C][C]0.318826891602432[/C][C]0.840586554198784[/C][/ROW]
[ROW][C]197[/C][C]0.138558605481921[/C][C]0.277117210963842[/C][C]0.861441394518079[/C][/ROW]
[ROW][C]198[/C][C]0.164599653953453[/C][C]0.329199307906907[/C][C]0.835400346046547[/C][/ROW]
[ROW][C]199[/C][C]0.215855079500663[/C][C]0.431710159001326[/C][C]0.784144920499337[/C][/ROW]
[ROW][C]200[/C][C]0.196633770979167[/C][C]0.393267541958334[/C][C]0.803366229020833[/C][/ROW]
[ROW][C]201[/C][C]0.702291743628305[/C][C]0.595416512743389[/C][C]0.297708256371694[/C][/ROW]
[ROW][C]202[/C][C]0.684505634211306[/C][C]0.630988731577388[/C][C]0.315494365788694[/C][/ROW]
[ROW][C]203[/C][C]0.63446625193027[/C][C]0.73106749613946[/C][C]0.36553374806973[/C][/ROW]
[ROW][C]204[/C][C]0.592816254177497[/C][C]0.814367491645007[/C][C]0.407183745822504[/C][/ROW]
[ROW][C]205[/C][C]0.539265721907794[/C][C]0.921468556184411[/C][C]0.460734278092206[/C][/ROW]
[ROW][C]206[/C][C]0.485734154268603[/C][C]0.971468308537205[/C][C]0.514265845731398[/C][/ROW]
[ROW][C]207[/C][C]0.436155792838013[/C][C]0.872311585676026[/C][C]0.563844207161987[/C][/ROW]
[ROW][C]208[/C][C]0.460908074864213[/C][C]0.921816149728426[/C][C]0.539091925135787[/C][/ROW]
[ROW][C]209[/C][C]0.434963312806763[/C][C]0.869926625613527[/C][C]0.565036687193237[/C][/ROW]
[ROW][C]210[/C][C]0.389866977636778[/C][C]0.779733955273556[/C][C]0.610133022363222[/C][/ROW]
[ROW][C]211[/C][C]0.334250960494129[/C][C]0.668501920988259[/C][C]0.665749039505871[/C][/ROW]
[ROW][C]212[/C][C]0.30535450440478[/C][C]0.610709008809561[/C][C]0.69464549559522[/C][/ROW]
[ROW][C]213[/C][C]0.327375072897292[/C][C]0.654750145794584[/C][C]0.672624927102708[/C][/ROW]
[ROW][C]214[/C][C]0.283001368975207[/C][C]0.566002737950413[/C][C]0.716998631024793[/C][/ROW]
[ROW][C]215[/C][C]0.231511942630832[/C][C]0.463023885261664[/C][C]0.768488057369168[/C][/ROW]
[ROW][C]216[/C][C]0.199549605141446[/C][C]0.399099210282893[/C][C]0.800450394858554[/C][/ROW]
[ROW][C]217[/C][C]0.158418343521155[/C][C]0.316836687042309[/C][C]0.841581656478845[/C][/ROW]
[ROW][C]218[/C][C]0.127995384878907[/C][C]0.255990769757814[/C][C]0.872004615121093[/C][/ROW]
[ROW][C]219[/C][C]0.0978175771613522[/C][C]0.195635154322704[/C][C]0.902182422838648[/C][/ROW]
[ROW][C]220[/C][C]0.0766444238278322[/C][C]0.153288847655664[/C][C]0.923355576172168[/C][/ROW]
[ROW][C]221[/C][C]0.163903033300266[/C][C]0.327806066600531[/C][C]0.836096966699734[/C][/ROW]
[ROW][C]222[/C][C]0.132966165036406[/C][C]0.265932330072813[/C][C]0.867033834963594[/C][/ROW]
[ROW][C]223[/C][C]0.10278329197042[/C][C]0.20556658394084[/C][C]0.89721670802958[/C][/ROW]
[ROW][C]224[/C][C]0.0711351650978012[/C][C]0.142270330195602[/C][C]0.928864834902199[/C][/ROW]
[ROW][C]225[/C][C]0.222328507155169[/C][C]0.444657014310338[/C][C]0.777671492844831[/C][/ROW]
[ROW][C]226[/C][C]0.162110172647549[/C][C]0.324220345295098[/C][C]0.837889827352451[/C][/ROW]
[ROW][C]227[/C][C]0.116232441185965[/C][C]0.23246488237193[/C][C]0.883767558814035[/C][/ROW]
[ROW][C]228[/C][C]0.0791106132532801[/C][C]0.15822122650656[/C][C]0.92088938674672[/C][/ROW]
[ROW][C]229[/C][C]0.048630015600423[/C][C]0.097260031200846[/C][C]0.951369984399577[/C][/ROW]
[ROW][C]230[/C][C]0.032654899571406[/C][C]0.065309799142812[/C][C]0.967345100428594[/C][/ROW]
[ROW][C]231[/C][C]0.0234767492060825[/C][C]0.046953498412165[/C][C]0.976523250793918[/C][/ROW]
[ROW][C]232[/C][C]0.0159120870228444[/C][C]0.0318241740456888[/C][C]0.984087912977156[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=5

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=5

As an alternative you can also use a QR Code:  

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

Goldfeld-Quandt test for Heteroskedasticity
p-valuesAlternative Hypothesis
breakpoint indexgreater2-sidedless
80.002082859071362440.004165718142724890.997917140928638
90.0002585245072603280.0005170490145206570.99974147549274
103.96051958955247e-057.92103917910493e-050.999960394804104
115.34801617218323e-050.0001069603234436650.999946519838278
128.70660545707763e-061.74132109141553e-050.999991293394543
139.56334676985574e-061.91266935397115e-050.99999043665323
143.14719774683551e-066.29439549367102e-060.999996852802253
155.25978275658092e-071.05195655131618e-060.999999474021724
164.54760537476681e-079.09521074953361e-070.999999545239463
178.59684143222506e-081.71936828644501e-070.999999914031586
181.64788562887808e-083.29577125775617e-080.999999983521144
191.06447338592479e-082.12894677184959e-080.999999989355266
207.37040404554883e-081.47408080910977e-070.99999992629596
212.37780738553565e-084.75561477107131e-080.999999976221926
221.69566702749148e-083.39133405498297e-080.99999998304333
235.42121864684227e-091.08424372936845e-080.999999994578781
241.28882182269629e-092.57764364539258e-090.999999998711178
252.97359595243954e-105.94719190487907e-100.99999999970264
269.38837742550862e-111.87767548510172e-100.999999999906116
272.11476965232179e-114.22953930464358e-110.999999999978852
284.46681927451422e-128.93363854902843e-120.999999999995533
299.81612547575019e-131.96322509515004e-120.999999999999018
304.69993284745347e-139.39986569490695e-130.99999999999953
319.84292299205565e-141.96858459841113e-130.999999999999902
324.4514476695047e-148.90289533900939e-140.999999999999955
330.003427664237258550.006855328474517090.996572335762741
340.002122559591828620.004245119183657230.997877440408171
350.001289302220773510.002578604441547020.998710697779226
360.0008428381795125430.001685676359025090.999157161820487
370.0005000714631762880.001000142926352580.999499928536824
380.0003137257975583140.0006274515951166290.999686274202442
390.8986690065618830.2026619868762340.101330993438117
400.8801942717671170.2396114564657670.119805728232884
410.8545253975398910.2909492049202180.145474602460109
420.8282218903287170.3435562193425670.171778109671283
430.798359643533610.403280712932780.20164035646639
440.7621770277949050.475645944410190.237822972205095
450.9324607470196820.1350785059606360.067539252980318
460.9189634291807980.1620731416384040.0810365708192019
470.9058506184068740.1882987631862530.0941493815931265
480.9023856422457560.1952287155084890.0976143577542444
490.8822968936319640.2354062127360720.117703106368036
500.8678261572042210.2643476855915590.132173842795779
510.8419475014663450.3161049970673090.158052498533655
520.8173371509997820.3653256980004360.182662849000218
530.7876340760428660.4247318479142670.212365923957134
540.7557525278935250.4884949442129510.244247472106475
550.7204243934422730.5591512131154540.279575606557727
560.6824249205987520.6351501588024970.317575079401248
570.9998833405236380.0002333189527239930.000116659476361997
580.9998879098563990.0002241802872011950.000112090143600598
590.9998376397497490.0003247205005021880.000162360250251094
600.9998126360812740.0003747278374516120.000187363918725806
610.9997443943141380.0005112113717249030.000255605685862451
620.9996541772626950.0006916454746093330.000345822737304666
630.999559567206040.0008808655879205630.000440432793960282
640.9994335594345390.00113288113092240.000566440565461201
650.9995442062774230.0009115874451535140.000455793722576757
660.9995311733121630.0009376533756733970.000468826687836699
670.9993784964313660.001243007137267160.000621503568633578
680.9992294418102570.001541116379486820.000770558189743411
690.9999992854448291.42911034176532e-067.14555170882659e-07
700.9999989599620932.08007581409335e-061.04003790704667e-06
710.9999983700429993.25991400182323e-061.62995700091162e-06
720.9999974718178815.0563642384367e-062.52818211921835e-06
730.9999991138703531.77225929320225e-068.86129646601126e-07
740.9999985810487312.83790253744153e-061.41895126872077e-06
750.9999982705810013.45883799797422e-061.72941899898711e-06
760.9999976829169684.63416606493348e-062.31708303246674e-06
770.9999963853746187.22925076345182e-063.61462538172591e-06
780.9999972348460855.53030783063948e-062.76515391531974e-06
790.9999961624376637.6751246741658e-063.8375623370829e-06
800.9999944634964571.10730070862617e-055.53650354313083e-06
810.9999975871591274.82568174607156e-062.41284087303578e-06
820.9999962033782147.59324357099863e-063.79662178549931e-06
830.999995205470019.58905997939403e-064.79452998969701e-06
840.9999932238029221.35523941556599e-056.77619707782994e-06
850.999991570699631.68586007392053e-058.42930036960265e-06
860.9999877316487062.45367025887676e-051.22683512943838e-05
870.9999845281593763.09436812478334e-051.54718406239167e-05
880.9999804338948973.91322102058654e-051.95661051029327e-05
890.9999820423178373.5915364325702e-051.7957682162851e-05
900.999976465390844.70692183206641e-052.3534609160332e-05
910.9999670117816436.59764367138511e-053.29882183569255e-05
920.9999539780620939.20438758139579e-054.6021937906979e-05
930.9999616640117097.66719765824285e-053.83359882912142e-05
940.9999525434779749.49130440518509e-054.74565220259255e-05
950.999950734579239.85308415391361e-054.9265420769568e-05
960.9999276303776580.0001447392446836057.23696223418025e-05
970.9998946698747370.000210660250526450.000105330125263225
980.999872750255980.0002544994880392430.000127249744019622
990.999854373967070.0002912520658602250.000145626032930113
1000.9998030866412560.0003938267174870310.000196913358743515
1010.9997743419327150.0004513161345700880.000225658067285044
1020.9996819880375920.0006360239248163060.000318011962408153
1030.9995683566238330.0008632867523335190.000431643376166759
1040.9996300758747490.0007398482505015820.000369924125250791
1050.9995777673663740.0008444652672509470.000422232633625473
1060.9995616126820840.0008767746358328760.000438387317916438
1070.9995045837703410.0009908324593177330.000495416229658867
1080.9994266057556670.00114678848866630.000573394244333151
1090.9992095797631090.001580840473782650.000790420236891326
1100.9989440424998450.002111915000309910.00105595750015495
1110.9986997522196250.002600495560749530.00130024778037477
1120.998239317995440.003521364009119260.00176068200455963
1130.9980120579289360.003975884142128380.00198794207106419
1140.997923564280670.004152871438659730.00207643571932987
1150.9973133838665440.00537323226691260.0026866161334563
1160.9974878723139120.005024255372176180.00251212768608809
1170.9990127964830480.001974407033903220.000987203516951609
1180.998678419689840.00264316062032060.0013215803101603
1190.9982198113516610.00356037729667860.0017801886483393
1200.9977887072284330.004422585543134360.00221129277156718
1210.9974561005488780.005087798902243560.00254389945112178
1220.9967516457028050.006496708594390420.00324835429719521
1230.9957568882947950.008486223410409020.00424311170520451
1240.9946054588781790.01078908224364110.00539454112182056
1250.9935253029559290.01294939408814130.00647469704407066
1260.9918143330460790.01637133390784280.0081856669539214
1270.9895046113179760.02099077736404710.0104953886820236
1280.987349075032520.02530184993495940.0126509249674797
1290.9841381434240710.03172371315185790.0158618565759289
1300.9800023521972880.03999529560542290.0199976478027115
1310.9752683326783850.04946333464322930.0247316673216147
1320.9709091754148840.05818164917023140.0290908245851157
1330.965208185781780.06958362843643920.0347918142182196
1340.9572637944738130.0854724110523740.042736205526187
1350.949524439418870.1009511211622590.0504755605811296
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1490.9372407568129690.1255184863740630.0627592431870315
1500.9262632600005010.1474734799989980.0737367399994991
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1600.8562962239545490.2874075520909030.143703776045451
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1800.6016131860087030.7967736279825940.398386813991297
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1890.3521239869334680.7042479738669350.647876013066532
1900.3191397123120520.6382794246241040.680860287687948
1910.2810772845293080.5621545690586160.718922715470692
1920.245143309145890.4902866182917790.75485669085411
1930.2160313928159550.432062785631910.783968607184045
1940.221421622159480.442843244318960.77857837784052
1950.1873106466798650.374621293359730.812689353320135
1960.1594134458012160.3188268916024320.840586554198784
1970.1385586054819210.2771172109638420.861441394518079
1980.1645996539534530.3291993079069070.835400346046547
1990.2158550795006630.4317101590013260.784144920499337
2000.1966337709791670.3932675419583340.803366229020833
2010.7022917436283050.5954165127433890.297708256371694
2020.6845056342113060.6309887315773880.315494365788694
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2100.3898669776367780.7797339552735560.610133022363222
2110.3342509604941290.6685019209882590.665749039505871
2120.305354504404780.6107090088095610.69464549559522
2130.3273750728972920.6547501457945840.672624927102708
2140.2830013689752070.5660027379504130.716998631024793
2150.2315119426308320.4630238852616640.768488057369168
2160.1995496051414460.3990992102828930.800450394858554
2170.1584183435211550.3168366870423090.841581656478845
2180.1279953848789070.2559907697578140.872004615121093
2190.09781757716135220.1956351543227040.902182422838648
2200.07664442382783220.1532888476556640.923355576172168
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2220.1329661650364060.2659323300728130.867033834963594
2230.102783291970420.205566583940840.89721670802958
2240.07113516509780120.1422703301956020.928864834902199
2250.2223285071551690.4446570143103380.777671492844831
2260.1621101726475490.3242203452950980.837889827352451
2270.1162324411859650.232464882371930.883767558814035
2280.07911061325328010.158221226506560.92088938674672
2290.0486300156004230.0972600312008460.951369984399577
2300.0326548995714060.0653097991428120.967345100428594
2310.02347674920608250.0469534984121650.976523250793918
2320.01591208702284440.03182417404568880.984087912977156







Meta Analysis of Goldfeld-Quandt test for Heteroskedasticity
Description# significant tests% significant testsOK/NOK
1% type I error level980.435555555555556NOK
5% type I error level1110.493333333333333NOK
10% type I error level1200.533333333333333NOK

\begin{tabular}{lllllllll}
\hline
Meta Analysis of Goldfeld-Quandt test for Heteroskedasticity \tabularnewline
Description & # significant tests & % significant tests & OK/NOK \tabularnewline
1% type I error level & 98 & 0.435555555555556 & NOK \tabularnewline
5% type I error level & 111 & 0.493333333333333 & NOK \tabularnewline
10% type I error level & 120 & 0.533333333333333 & NOK \tabularnewline
\hline
\end{tabular}
%Source: https://freestatistics.org/blog/index.php?pk=146813&T=6

[TABLE]
[ROW][C]Meta Analysis of Goldfeld-Quandt test for Heteroskedasticity[/C][/ROW]
[ROW][C]Description[/C][C]# significant tests[/C][C]% significant tests[/C][C]OK/NOK[/C][/ROW]
[ROW][C]1% type I error level[/C][C]98[/C][C]0.435555555555556[/C][C]NOK[/C][/ROW]
[ROW][C]5% type I error level[/C][C]111[/C][C]0.493333333333333[/C][C]NOK[/C][/ROW]
[ROW][C]10% type I error level[/C][C]120[/C][C]0.533333333333333[/C][C]NOK[/C][/ROW]
[/TABLE]
Source: https://freestatistics.org/blog/index.php?pk=146813&T=6

Globally Unique Identifier (entire table): ba.freestatistics.org/blog/index.php?pk=146813&T=6

As an alternative you can also use a QR Code:  

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

Meta Analysis of Goldfeld-Quandt test for Heteroskedasticity
Description# significant tests% significant testsOK/NOK
1% type I error level980.435555555555556NOK
5% type I error level1110.493333333333333NOK
10% type I error level1200.533333333333333NOK



Parameters (Session):
par1 = 1 ; par2 = Do not include Seasonal Dummies ; par3 = No Linear Trend ;
Parameters (R input):
par1 = 1 ; par2 = Do not include Seasonal Dummies ; par3 = No Linear Trend ;
R code (references can be found in the software module):
library(lattice)
library(lmtest)
n25 <- 25 #minimum number of obs. for Goldfeld-Quandt test
par1 <- as.numeric(par1)
x <- t(y)
k <- length(x[1,])
n <- length(x[,1])
x1 <- cbind(x[,par1], x[,1:k!=par1])
mycolnames <- c(colnames(x)[par1], colnames(x)[1:k!=par1])
colnames(x1) <- mycolnames #colnames(x)[par1]
x <- x1
if (par3 == 'First Differences'){
x2 <- array(0, dim=c(n-1,k), dimnames=list(1:(n-1), paste('(1-B)',colnames(x),sep='')))
for (i in 1:n-1) {
for (j in 1:k) {
x2[i,j] <- x[i+1,j] - x[i,j]
}
}
x <- x2
}
if (par2 == 'Include Monthly Dummies'){
x2 <- array(0, dim=c(n,11), dimnames=list(1:n, paste('M', seq(1:11), sep ='')))
for (i in 1:11){
x2[seq(i,n,12),i] <- 1
}
x <- cbind(x, x2)
}
if (par2 == 'Include Quarterly Dummies'){
x2 <- array(0, dim=c(n,3), dimnames=list(1:n, paste('Q', seq(1:3), sep ='')))
for (i in 1:3){
x2[seq(i,n,4),i] <- 1
}
x <- cbind(x, x2)
}
k <- length(x[1,])
if (par3 == 'Linear Trend'){
x <- cbind(x, c(1:n))
colnames(x)[k+1] <- 't'
}
x
k <- length(x[1,])
df <- as.data.frame(x)
(mylm <- lm(df))
(mysum <- summary(mylm))
if (n > n25) {
kp3 <- k + 3
nmkm3 <- n - k - 3
gqarr <- array(NA, dim=c(nmkm3-kp3+1,3))
numgqtests <- 0
numsignificant1 <- 0
numsignificant5 <- 0
numsignificant10 <- 0
for (mypoint in kp3:nmkm3) {
j <- 0
numgqtests <- numgqtests + 1
for (myalt in c('greater', 'two.sided', 'less')) {
j <- j + 1
gqarr[mypoint-kp3+1,j] <- gqtest(mylm, point=mypoint, alternative=myalt)$p.value
}
if (gqarr[mypoint-kp3+1,2] < 0.01) numsignificant1 <- numsignificant1 + 1
if (gqarr[mypoint-kp3+1,2] < 0.05) numsignificant5 <- numsignificant5 + 1
if (gqarr[mypoint-kp3+1,2] < 0.10) numsignificant10 <- numsignificant10 + 1
}
gqarr
}
bitmap(file='test0.png')
plot(x[,1], type='l', main='Actuals and Interpolation', ylab='value of Actuals and Interpolation (dots)', xlab='time or index')
points(x[,1]-mysum$resid)
grid()
dev.off()
bitmap(file='test1.png')
plot(mysum$resid, type='b', pch=19, main='Residuals', ylab='value of Residuals', xlab='time or index')
grid()
dev.off()
bitmap(file='test2.png')
hist(mysum$resid, main='Residual Histogram', xlab='values of Residuals')
grid()
dev.off()
bitmap(file='test3.png')
densityplot(~mysum$resid,col='black',main='Residual Density Plot', xlab='values of Residuals')
dev.off()
bitmap(file='test4.png')
qqnorm(mysum$resid, main='Residual Normal Q-Q Plot')
qqline(mysum$resid)
grid()
dev.off()
(myerror <- as.ts(mysum$resid))
bitmap(file='test5.png')
dum <- cbind(lag(myerror,k=1),myerror)
dum
dum1 <- dum[2:length(myerror),]
dum1
z <- as.data.frame(dum1)
z
plot(z,main=paste('Residual Lag plot, lowess, and regression line'), ylab='values of Residuals', xlab='lagged values of Residuals')
lines(lowess(z))
abline(lm(z))
grid()
dev.off()
bitmap(file='test6.png')
acf(mysum$resid, lag.max=length(mysum$resid)/2, main='Residual Autocorrelation Function')
grid()
dev.off()
bitmap(file='test7.png')
pacf(mysum$resid, lag.max=length(mysum$resid)/2, main='Residual Partial Autocorrelation Function')
grid()
dev.off()
bitmap(file='test8.png')
opar <- par(mfrow = c(2,2), oma = c(0, 0, 1.1, 0))
plot(mylm, las = 1, sub='Residual Diagnostics')
par(opar)
dev.off()
if (n > n25) {
bitmap(file='test9.png')
plot(kp3:nmkm3,gqarr[,2], main='Goldfeld-Quandt test',ylab='2-sided p-value',xlab='breakpoint')
grid()
dev.off()
}
load(file='createtable')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a, 'Multiple Linear Regression - Estimated Regression Equation', 1, TRUE)
a<-table.row.end(a)
myeq <- colnames(x)[1]
myeq <- paste(myeq, '[t] = ', sep='')
for (i in 1:k){
if (mysum$coefficients[i,1] > 0) myeq <- paste(myeq, '+', '')
myeq <- paste(myeq, mysum$coefficients[i,1], sep=' ')
if (rownames(mysum$coefficients)[i] != '(Intercept)') {
myeq <- paste(myeq, rownames(mysum$coefficients)[i], sep='')
if (rownames(mysum$coefficients)[i] != 't') myeq <- paste(myeq, '[t]', sep='')
}
}
myeq <- paste(myeq, ' + e[t]')
a<-table.row.start(a)
a<-table.element(a, myeq)
a<-table.row.end(a)
a<-table.end(a)
table.save(a,file='mytable1.tab')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,hyperlink('ols1.htm','Multiple Linear Regression - Ordinary Least Squares',''), 6, TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'Variable',header=TRUE)
a<-table.element(a,'Parameter',header=TRUE)
a<-table.element(a,'S.D.',header=TRUE)
a<-table.element(a,'T-STAT
H0: parameter = 0',header=TRUE)
a<-table.element(a,'2-tail p-value',header=TRUE)
a<-table.element(a,'1-tail p-value',header=TRUE)
a<-table.row.end(a)
for (i in 1:k){
a<-table.row.start(a)
a<-table.element(a,rownames(mysum$coefficients)[i],header=TRUE)
a<-table.element(a,mysum$coefficients[i,1])
a<-table.element(a, round(mysum$coefficients[i,2],6))
a<-table.element(a, round(mysum$coefficients[i,3],4))
a<-table.element(a, round(mysum$coefficients[i,4],6))
a<-table.element(a, round(mysum$coefficients[i,4]/2,6))
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable2.tab')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a, 'Multiple Linear Regression - Regression Statistics', 2, TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Multiple R',1,TRUE)
a<-table.element(a, sqrt(mysum$r.squared))
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'R-squared',1,TRUE)
a<-table.element(a, mysum$r.squared)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Adjusted R-squared',1,TRUE)
a<-table.element(a, mysum$adj.r.squared)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'F-TEST (value)',1,TRUE)
a<-table.element(a, mysum$fstatistic[1])
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'F-TEST (DF numerator)',1,TRUE)
a<-table.element(a, mysum$fstatistic[2])
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'F-TEST (DF denominator)',1,TRUE)
a<-table.element(a, mysum$fstatistic[3])
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'p-value',1,TRUE)
a<-table.element(a, 1-pf(mysum$fstatistic[1],mysum$fstatistic[2],mysum$fstatistic[3]))
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Multiple Linear Regression - Residual Statistics', 2, TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Residual Standard Deviation',1,TRUE)
a<-table.element(a, mysum$sigma)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Sum Squared Residuals',1,TRUE)
a<-table.element(a, sum(myerror*myerror))
a<-table.row.end(a)
a<-table.end(a)
table.save(a,file='mytable3.tab')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a, 'Multiple Linear Regression - Actuals, Interpolation, and Residuals', 4, TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a, 'Time or Index', 1, TRUE)
a<-table.element(a, 'Actuals', 1, TRUE)
a<-table.element(a, 'Interpolation
Forecast', 1, TRUE)
a<-table.element(a, 'Residuals
Prediction Error', 1, TRUE)
a<-table.row.end(a)
for (i in 1:n) {
a<-table.row.start(a)
a<-table.element(a,i, 1, TRUE)
a<-table.element(a,x[i])
a<-table.element(a,x[i]-mysum$resid[i])
a<-table.element(a,mysum$resid[i])
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable4.tab')
if (n > n25) {
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,'Goldfeld-Quandt test for Heteroskedasticity',4,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'p-values',header=TRUE)
a<-table.element(a,'Alternative Hypothesis',3,header=TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'breakpoint index',header=TRUE)
a<-table.element(a,'greater',header=TRUE)
a<-table.element(a,'2-sided',header=TRUE)
a<-table.element(a,'less',header=TRUE)
a<-table.row.end(a)
for (mypoint in kp3:nmkm3) {
a<-table.row.start(a)
a<-table.element(a,mypoint,header=TRUE)
a<-table.element(a,gqarr[mypoint-kp3+1,1])
a<-table.element(a,gqarr[mypoint-kp3+1,2])
a<-table.element(a,gqarr[mypoint-kp3+1,3])
a<-table.row.end(a)
}
a<-table.end(a)
table.save(a,file='mytable5.tab')
a<-table.start()
a<-table.row.start(a)
a<-table.element(a,'Meta Analysis of Goldfeld-Quandt test for Heteroskedasticity',4,TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'Description',header=TRUE)
a<-table.element(a,'# significant tests',header=TRUE)
a<-table.element(a,'% significant tests',header=TRUE)
a<-table.element(a,'OK/NOK',header=TRUE)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'1% type I error level',header=TRUE)
a<-table.element(a,numsignificant1)
a<-table.element(a,numsignificant1/numgqtests)
if (numsignificant1/numgqtests < 0.01) dum <- 'OK' else dum <- 'NOK'
a<-table.element(a,dum)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'5% type I error level',header=TRUE)
a<-table.element(a,numsignificant5)
a<-table.element(a,numsignificant5/numgqtests)
if (numsignificant5/numgqtests < 0.05) dum <- 'OK' else dum <- 'NOK'
a<-table.element(a,dum)
a<-table.row.end(a)
a<-table.row.start(a)
a<-table.element(a,'10% type I error level',header=TRUE)
a<-table.element(a,numsignificant10)
a<-table.element(a,numsignificant10/numgqtests)
if (numsignificant10/numgqtests < 0.1) dum <- 'OK' else dum <- 'NOK'
a<-table.element(a,dum)
a<-table.row.end(a)
a<-table.end(a)
table.save(a,file='mytable6.tab')
}