Fininshed first version of admm part and comparison

This commit is contained in:
2023-04-18 00:39:13 +02:00
parent d1fc41541c
commit a37dede8e6
46 changed files with 2599 additions and 161 deletions

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@@ -287,7 +287,8 @@
\input{sections/theoretical_background.tex}
\input{sections/decoding_algorithms.tex}
\input{sections/examination_results.tex}
\input{sections/forthcoming_examination.tex}
%\input{sections/forthcoming_examination.tex}
\input{sections/comparison.tex}
\input{sections/question_slide.tex}
\begin{frame}[allowframebreaks]

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@@ -0,0 +1,241 @@
k,SNR,err
1.0,1.0,20.91491649335093
6.0,1.0,14.673283601370503
11.0,1.0,13.200462933259713
16.0,1.0,12.5022317077578
21.0,1.0,12.114259641732986
26.0,1.0,11.940451032359299
31.0,1.0,11.916152333099207
36.0,1.0,11.985684616964807
41.0,1.0,12.124506177073048
46.0,1.0,12.281166456201795
51.0,1.0,12.437905617375852
56.0,1.0,12.59626111585147
61.0,1.0,12.744247538734976
66.0,1.0,12.893211714161616
71.0,1.0,13.026341002483601
76.0,1.0,13.143235246361908
81.0,1.0,13.25843101153651
86.0,1.0,13.36152607235254
91.0,1.0,13.458411398075643
96.0,1.0,13.55128433836517
101.0,1.0,13.634716127797692
106.0,1.0,13.704546715908265
111.0,1.0,13.78369927212415
116.0,1.0,13.852191301732066
121.0,1.0,13.914766161475022
126.0,1.0,13.970313339683377
131.0,1.0,14.017699152788985
136.0,1.0,14.069031690817802
141.0,1.0,14.121378603565562
146.0,1.0,14.165863354117976
151.0,1.0,14.206734612178787
156.0,1.0,14.24557674285502
161.0,1.0,14.284004797888281
166.0,1.0,14.316221675079142
171.0,1.0,14.34367036238877
176.0,1.0,14.375740060276517
181.0,1.0,14.413785624165634
186.0,1.0,14.43695431307512
191.0,1.0,14.458957345676207
196.0,1.0,14.481729662652462
1.0,2.0,16.134654041899402
6.0,2.0,8.556073822474437
11.0,2.0,6.213782534401913
16.0,2.0,5.011889081220674
21.0,2.0,4.566993729558366
26.0,2.0,4.590739128858202
31.0,2.0,4.830574092938118
36.0,2.0,5.176990474892537
41.0,2.0,5.5431281292818495
46.0,2.0,5.915063685420125
51.0,2.0,6.257013207015733
56.0,2.0,6.570533204989702
61.0,2.0,6.858655241745002
66.0,2.0,7.111627561111664
71.0,2.0,7.354086198030697
76.0,2.0,7.578434950992218
81.0,2.0,7.784726030238063
86.0,2.0,7.969240781478449
91.0,2.0,8.138537010639057
96.0,2.0,8.29360005331358
101.0,2.0,8.436412726454238
106.0,2.0,8.57253681788219
111.0,2.0,8.68865267709653
116.0,2.0,8.80498836016572
121.0,2.0,8.912429177130857
126.0,2.0,8.99701274851312
131.0,2.0,9.088987808961926
136.0,2.0,9.176475701046021
141.0,2.0,9.255112937079815
146.0,2.0,9.327689862233216
151.0,2.0,9.38855838516752
156.0,2.0,9.45713453794913
161.0,2.0,9.520056275436863
166.0,2.0,9.571399471130766
171.0,2.0,9.628068685236707
176.0,2.0,9.68170878281504
181.0,2.0,9.727962943099527
186.0,2.0,9.773695675352934
191.0,2.0,9.81660407009979
196.0,2.0,9.861528919057307
1.0,3.0,11.789165775894825
6.0,3.0,3.816709417451862
11.0,3.0,1.6752991919117708
16.0,3.0,1.0392606390307797
21.0,3.0,1.0628023119067522
26.0,3.0,1.288703640979824
31.0,3.0,1.6088660653014168
36.0,3.0,1.9852723011464584
41.0,3.0,2.358549152174719
46.0,3.0,2.761128041476725
51.0,3.0,3.1471331133456775
56.0,3.0,3.5005212529393144
61.0,3.0,3.825983052887548
66.0,3.0,4.136788212756503
71.0,3.0,4.421620293960815
76.0,3.0,4.620869881557296
81.0,3.0,4.859351192648304
86.0,3.0,5.044330647512259
91.0,3.0,5.214888113324626
96.0,3.0,5.415121524386491
101.0,3.0,5.586539654622247
106.0,3.0,5.7354347746812815
111.0,3.0,5.879142913998661
116.0,3.0,5.99075956022528
121.0,3.0,6.09238408599562
126.0,3.0,6.1879571075588835
131.0,3.0,6.292309659727661
136.0,3.0,6.357998975206197
141.0,3.0,6.434081884548063
146.0,3.0,6.523355968345268
151.0,3.0,6.618473783083535
156.0,3.0,6.7337568052149095
161.0,3.0,6.79798349882911
166.0,3.0,6.84529131759905
171.0,3.0,6.892543885555942
176.0,3.0,6.942528503712422
181.0,3.0,7.004113070816406
186.0,3.0,7.052231635274817
191.0,3.0,7.092653194849312
196.0,3.0,7.144636665117471
1.0,4.0,8.08220518324194
6.0,4.0,1.2113357663834143
11.0,4.0,0.22349629086100364
16.0,4.0,0.14618449224796007
21.0,4.0,0.22599943256013053
26.0,4.0,0.37341871923374276
31.0,4.0,0.5664820792004165
36.0,4.0,0.8130282104316755
41.0,4.0,1.1587477634828214
46.0,4.0,1.4177978825616833
51.0,4.0,1.6860775948430722
56.0,4.0,1.8213817657267923
61.0,4.0,2.098084697074224
66.0,4.0,2.3675056974941286
71.0,4.0,2.633697805611984
76.0,4.0,2.9474643545658434
81.0,4.0,3.0230241471772206
86.0,4.0,3.1708874460335927
91.0,4.0,3.2761528754363924
96.0,4.0,3.4143415775833956
101.0,4.0,3.586306987009883
106.0,4.0,3.8016546152270965
111.0,4.0,3.78351865979343
116.0,4.0,3.913823175867467
121.0,4.0,4.15275023114524
126.0,4.0,4.174516814967082
131.0,4.0,4.38936642989745
136.0,4.0,4.752947612978367
141.0,4.0,4.706655676528805
146.0,4.0,4.901292975113155
151.0,4.0,4.867799374365887
156.0,4.0,4.961112877373201
161.0,4.0,5.195795713924483
166.0,4.0,5.306213974877493
171.0,4.0,5.42690318120553
176.0,4.0,5.400111172164723
181.0,4.0,5.374450129090998
186.0,4.0,5.506435745627798
191.0,4.0,5.47971664734396
196.0,4.0,5.792049970684826
1.0,5.0,5.162002086132225
6.0,5.0,0.27891528762187506
11.0,5.0,0.021195076652084144
16.0,5.0,0.02523094440476598
21.0,5.0,0.06877349325022895
26.0,5.0,0.1329787505628861
31.0,5.0,0.16950031921924608
36.0,5.0,0.19828706973492322
41.0,5.0,0.33811691967972946
46.0,5.0,0.3532038991763932
51.0,5.0,0.11733695204945241
56.0,5.0,0.00043192902347876955
61.0,5.0,0.0
66.0,5.0,5e-324
71.0,5.0,6.91198954571554e-310
76.0,5.0,4.67465005828325e-310
81.0,5.0,4.409744504302253e-235
86.0,5.0,0.0
91.0,5.0,4.6746500902386e-310
96.0,5.0,4.409744504324994e-235
101.0,5.0,1.6093e-319
106.0,5.0,2.33419537016e-313
111.0,5.0,5e-324
116.0,5.0,4.67465009179513e-310
121.0,5.0,4.6746498503836e-310
126.0,5.0,4.6746498503836e-310
131.0,5.0,4.4371949547837924e-235
136.0,5.0,1.35e-321
141.0,5.0,4.67465004549525e-310
146.0,5.0,4.382030107181462e-235
151.0,5.0,0.0
156.0,5.0,0.0
161.0,5.0,4.0490014339232835e-235
166.0,5.0,0.0
171.0,5.0,6.9119895280519e-310
176.0,5.0,5e-324
181.0,5.0,4.6746487621775e-310
186.0,5.0,0.0
191.0,5.0,1.5e-323
196.0,5.0,4.4085447468738776e-235
1.0,6.0,3.031680057151526
6.0,6.0,0.05333026561685521
11.0,6.0,0.002676162465853709
16.0,6.0,0.007346181683092963
21.0,6.0,0.03846534626344263
26.0,6.0,0.07801802186532696
31.0,6.0,0.0009001870238587752
36.0,6.0,0.0
41.0,6.0,0.0
46.0,6.0,0.0
51.0,6.0,0.0
56.0,6.0,0.0
61.0,6.0,0.0
66.0,6.0,0.0
71.0,6.0,0.0
76.0,6.0,0.0
81.0,6.0,0.0
86.0,6.0,0.0
91.0,6.0,0.0
96.0,6.0,0.0
101.0,6.0,0.0
106.0,6.0,0.0
111.0,6.0,0.0
116.0,6.0,0.0
121.0,6.0,0.0
126.0,6.0,0.0
131.0,6.0,0.0
136.0,6.0,0.0
141.0,6.0,0.0
146.0,6.0,0.0
151.0,6.0,0.0
156.0,6.0,0.0
161.0,6.0,0.0
166.0,6.0,0.0
171.0,6.0,0.0
176.0,6.0,0.0
181.0,6.0,0.0
186.0,6.0,0.0
191.0,6.0,0.0
196.0,6.0,0.0
1 k SNR err
2 1.0 1.0 20.91491649335093
3 6.0 1.0 14.673283601370503
4 11.0 1.0 13.200462933259713
5 16.0 1.0 12.5022317077578
6 21.0 1.0 12.114259641732986
7 26.0 1.0 11.940451032359299
8 31.0 1.0 11.916152333099207
9 36.0 1.0 11.985684616964807
10 41.0 1.0 12.124506177073048
11 46.0 1.0 12.281166456201795
12 51.0 1.0 12.437905617375852
13 56.0 1.0 12.59626111585147
14 61.0 1.0 12.744247538734976
15 66.0 1.0 12.893211714161616
16 71.0 1.0 13.026341002483601
17 76.0 1.0 13.143235246361908
18 81.0 1.0 13.25843101153651
19 86.0 1.0 13.36152607235254
20 91.0 1.0 13.458411398075643
21 96.0 1.0 13.55128433836517
22 101.0 1.0 13.634716127797692
23 106.0 1.0 13.704546715908265
24 111.0 1.0 13.78369927212415
25 116.0 1.0 13.852191301732066
26 121.0 1.0 13.914766161475022
27 126.0 1.0 13.970313339683377
28 131.0 1.0 14.017699152788985
29 136.0 1.0 14.069031690817802
30 141.0 1.0 14.121378603565562
31 146.0 1.0 14.165863354117976
32 151.0 1.0 14.206734612178787
33 156.0 1.0 14.24557674285502
34 161.0 1.0 14.284004797888281
35 166.0 1.0 14.316221675079142
36 171.0 1.0 14.34367036238877
37 176.0 1.0 14.375740060276517
38 181.0 1.0 14.413785624165634
39 186.0 1.0 14.43695431307512
40 191.0 1.0 14.458957345676207
41 196.0 1.0 14.481729662652462
42 1.0 2.0 16.134654041899402
43 6.0 2.0 8.556073822474437
44 11.0 2.0 6.213782534401913
45 16.0 2.0 5.011889081220674
46 21.0 2.0 4.566993729558366
47 26.0 2.0 4.590739128858202
48 31.0 2.0 4.830574092938118
49 36.0 2.0 5.176990474892537
50 41.0 2.0 5.5431281292818495
51 46.0 2.0 5.915063685420125
52 51.0 2.0 6.257013207015733
53 56.0 2.0 6.570533204989702
54 61.0 2.0 6.858655241745002
55 66.0 2.0 7.111627561111664
56 71.0 2.0 7.354086198030697
57 76.0 2.0 7.578434950992218
58 81.0 2.0 7.784726030238063
59 86.0 2.0 7.969240781478449
60 91.0 2.0 8.138537010639057
61 96.0 2.0 8.29360005331358
62 101.0 2.0 8.436412726454238
63 106.0 2.0 8.57253681788219
64 111.0 2.0 8.68865267709653
65 116.0 2.0 8.80498836016572
66 121.0 2.0 8.912429177130857
67 126.0 2.0 8.99701274851312
68 131.0 2.0 9.088987808961926
69 136.0 2.0 9.176475701046021
70 141.0 2.0 9.255112937079815
71 146.0 2.0 9.327689862233216
72 151.0 2.0 9.38855838516752
73 156.0 2.0 9.45713453794913
74 161.0 2.0 9.520056275436863
75 166.0 2.0 9.571399471130766
76 171.0 2.0 9.628068685236707
77 176.0 2.0 9.68170878281504
78 181.0 2.0 9.727962943099527
79 186.0 2.0 9.773695675352934
80 191.0 2.0 9.81660407009979
81 196.0 2.0 9.861528919057307
82 1.0 3.0 11.789165775894825
83 6.0 3.0 3.816709417451862
84 11.0 3.0 1.6752991919117708
85 16.0 3.0 1.0392606390307797
86 21.0 3.0 1.0628023119067522
87 26.0 3.0 1.288703640979824
88 31.0 3.0 1.6088660653014168
89 36.0 3.0 1.9852723011464584
90 41.0 3.0 2.358549152174719
91 46.0 3.0 2.761128041476725
92 51.0 3.0 3.1471331133456775
93 56.0 3.0 3.5005212529393144
94 61.0 3.0 3.825983052887548
95 66.0 3.0 4.136788212756503
96 71.0 3.0 4.421620293960815
97 76.0 3.0 4.620869881557296
98 81.0 3.0 4.859351192648304
99 86.0 3.0 5.044330647512259
100 91.0 3.0 5.214888113324626
101 96.0 3.0 5.415121524386491
102 101.0 3.0 5.586539654622247
103 106.0 3.0 5.7354347746812815
104 111.0 3.0 5.879142913998661
105 116.0 3.0 5.99075956022528
106 121.0 3.0 6.09238408599562
107 126.0 3.0 6.1879571075588835
108 131.0 3.0 6.292309659727661
109 136.0 3.0 6.357998975206197
110 141.0 3.0 6.434081884548063
111 146.0 3.0 6.523355968345268
112 151.0 3.0 6.618473783083535
113 156.0 3.0 6.7337568052149095
114 161.0 3.0 6.79798349882911
115 166.0 3.0 6.84529131759905
116 171.0 3.0 6.892543885555942
117 176.0 3.0 6.942528503712422
118 181.0 3.0 7.004113070816406
119 186.0 3.0 7.052231635274817
120 191.0 3.0 7.092653194849312
121 196.0 3.0 7.144636665117471
122 1.0 4.0 8.08220518324194
123 6.0 4.0 1.2113357663834143
124 11.0 4.0 0.22349629086100364
125 16.0 4.0 0.14618449224796007
126 21.0 4.0 0.22599943256013053
127 26.0 4.0 0.37341871923374276
128 31.0 4.0 0.5664820792004165
129 36.0 4.0 0.8130282104316755
130 41.0 4.0 1.1587477634828214
131 46.0 4.0 1.4177978825616833
132 51.0 4.0 1.6860775948430722
133 56.0 4.0 1.8213817657267923
134 61.0 4.0 2.098084697074224
135 66.0 4.0 2.3675056974941286
136 71.0 4.0 2.633697805611984
137 76.0 4.0 2.9474643545658434
138 81.0 4.0 3.0230241471772206
139 86.0 4.0 3.1708874460335927
140 91.0 4.0 3.2761528754363924
141 96.0 4.0 3.4143415775833956
142 101.0 4.0 3.586306987009883
143 106.0 4.0 3.8016546152270965
144 111.0 4.0 3.78351865979343
145 116.0 4.0 3.913823175867467
146 121.0 4.0 4.15275023114524
147 126.0 4.0 4.174516814967082
148 131.0 4.0 4.38936642989745
149 136.0 4.0 4.752947612978367
150 141.0 4.0 4.706655676528805
151 146.0 4.0 4.901292975113155
152 151.0 4.0 4.867799374365887
153 156.0 4.0 4.961112877373201
154 161.0 4.0 5.195795713924483
155 166.0 4.0 5.306213974877493
156 171.0 4.0 5.42690318120553
157 176.0 4.0 5.400111172164723
158 181.0 4.0 5.374450129090998
159 186.0 4.0 5.506435745627798
160 191.0 4.0 5.47971664734396
161 196.0 4.0 5.792049970684826
162 1.0 5.0 5.162002086132225
163 6.0 5.0 0.27891528762187506
164 11.0 5.0 0.021195076652084144
165 16.0 5.0 0.02523094440476598
166 21.0 5.0 0.06877349325022895
167 26.0 5.0 0.1329787505628861
168 31.0 5.0 0.16950031921924608
169 36.0 5.0 0.19828706973492322
170 41.0 5.0 0.33811691967972946
171 46.0 5.0 0.3532038991763932
172 51.0 5.0 0.11733695204945241
173 56.0 5.0 0.00043192902347876955
174 61.0 5.0 0.0
175 66.0 5.0 5e-324
176 71.0 5.0 6.91198954571554e-310
177 76.0 5.0 4.67465005828325e-310
178 81.0 5.0 4.409744504302253e-235
179 86.0 5.0 0.0
180 91.0 5.0 4.6746500902386e-310
181 96.0 5.0 4.409744504324994e-235
182 101.0 5.0 1.6093e-319
183 106.0 5.0 2.33419537016e-313
184 111.0 5.0 5e-324
185 116.0 5.0 4.67465009179513e-310
186 121.0 5.0 4.6746498503836e-310
187 126.0 5.0 4.6746498503836e-310
188 131.0 5.0 4.4371949547837924e-235
189 136.0 5.0 1.35e-321
190 141.0 5.0 4.67465004549525e-310
191 146.0 5.0 4.382030107181462e-235
192 151.0 5.0 0.0
193 156.0 5.0 0.0
194 161.0 5.0 4.0490014339232835e-235
195 166.0 5.0 0.0
196 171.0 5.0 6.9119895280519e-310
197 176.0 5.0 5e-324
198 181.0 5.0 4.6746487621775e-310
199 186.0 5.0 0.0
200 191.0 5.0 1.5e-323
201 196.0 5.0 4.4085447468738776e-235
202 1.0 6.0 3.031680057151526
203 6.0 6.0 0.05333026561685521
204 11.0 6.0 0.002676162465853709
205 16.0 6.0 0.007346181683092963
206 21.0 6.0 0.03846534626344263
207 26.0 6.0 0.07801802186532696
208 31.0 6.0 0.0009001870238587752
209 36.0 6.0 0.0
210 41.0 6.0 0.0
211 46.0 6.0 0.0
212 51.0 6.0 0.0
213 56.0 6.0 0.0
214 61.0 6.0 0.0
215 66.0 6.0 0.0
216 71.0 6.0 0.0
217 76.0 6.0 0.0
218 81.0 6.0 0.0
219 86.0 6.0 0.0
220 91.0 6.0 0.0
221 96.0 6.0 0.0
222 101.0 6.0 0.0
223 106.0 6.0 0.0
224 111.0 6.0 0.0
225 116.0 6.0 0.0
226 121.0 6.0 0.0
227 126.0 6.0 0.0
228 131.0 6.0 0.0
229 136.0 6.0 0.0
230 141.0 6.0 0.0
231 146.0 6.0 0.0
232 151.0 6.0 0.0
233 156.0 6.0 0.0
234 161.0 6.0 0.0
235 166.0 6.0 0.0
236 171.0 6.0 0.0
237 176.0 6.0 0.0
238 181.0 6.0 0.0
239 186.0 6.0 0.0
240 191.0 6.0 0.0
241 196.0 6.0 0.0

View File

@@ -0,0 +1,12 @@
{
"duration": 993.1899228320108,
"name": "avg_error_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"mu": 5,
"rho": 1.0,
"epsilon_dual": 1e-05,
"num_iterations": 100000,
"end_time": "2023-04-17 16:32:11.491868"
}

View File

@@ -0,0 +1,91 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.07218591140159768,0.7407407407407407,1.0,135.0
1.0,2.0,0.0720406681190995,0.7407407407407407,1.0,135.0
1.0,3.0,0.07175018155410312,0.7407407407407407,1.0,135.0
1.0,4.0,0.07178649237472767,0.7407407407407407,1.0,135.0
1.0,5.0,0.07229484386347132,0.7407407407407407,1.0,135.0
1.0,6.0,0.07139171458056907,0.7518796992481203,1.0,133.0
1.0,7.0,0.0719077104526021,0.7518796992481203,1.0,133.0
1.0,8.0,0.07681025165971901,0.7874015748031497,1.0,127.0
1.0,9.0,0.07623529411764705,0.8,1.0,125.0
1.5,1.0,0.04049119647859144,0.5102040816326531,1.0,196.0
1.5,2.0,0.03934073629451781,0.5102040816326531,1.0,196.0
1.5,3.0,0.03951734539969834,0.5128205128205128,1.0,195.0
1.5,4.0,0.039240954113604204,0.5154639175257731,1.0,194.0
1.5,5.0,0.03985396241830065,0.5208333333333334,1.0,192.0
1.5,6.0,0.03683750728013978,0.49504950495049505,1.0,202.0
1.5,7.0,0.03422336676606126,0.4608294930875576,1.0,217.0
1.5,8.0,0.0367037362208565,0.4975124378109453,1.0,201.0
1.5,9.0,0.03512684694730973,0.47393364928909953,1.0,211.0
2.0,1.0,0.016891391317232184,0.2518891687657431,1.0,397.0
2.0,2.0,0.016512501806619454,0.2457002457002457,1.0,407.0
2.0,3.0,0.016642754662840747,0.24390243902439024,1.0,410.0
2.0,4.0,0.01651672433679354,0.23529411764705882,1.0,425.0
2.0,5.0,0.016736694677871148,0.23809523809523808,1.0,420.0
2.0,6.0,0.01686924769907963,0.25510204081632654,1.0,392.0
2.0,7.0,0.017019307723089235,0.25510204081632654,1.0,392.0
2.0,8.0,0.015793878527020563,0.24390243902439024,1.0,410.0
2.0,9.0,0.015859284890426758,0.24509803921568626,1.0,408.0
2.5,1.0,0.00463465257795179,0.08019246190858059,1.0,1247.0
2.5,2.0,0.004429065743944637,0.0784313725490196,1.0,1275.0
2.5,3.0,0.004454240712678514,0.078064012490242,1.0,1281.0
2.5,4.0,0.004901960784313725,0.08488964346349745,1.0,1178.0
2.5,5.0,0.004937258431725526,0.09000900090009001,1.0,1111.0
2.5,6.0,0.004915161755905235,0.08976660682226212,1.0,1114.0
2.5,7.0,0.005067295833556759,0.09115770282588878,1.0,1097.0
2.5,8.0,0.004852354925410827,0.09199632014719411,1.0,1087.0
2.5,9.0,0.004828018163787254,0.08873114463176575,1.0,1127.0
3.0,1.0,0.0009363087762972183,0.01889287738522577,1.0,5293.0
3.0,2.0,0.0009157602856762813,0.017394329448599758,1.0,5749.0
3.0,3.0,0.0008953735130105303,0.01707067258449983,1.0,5858.0
3.0,4.0,0.0009096775965288076,0.01750700280112045,1.0,5712.0
3.0,5.0,0.0009096422073984233,0.017774617845716316,1.0,5626.0
3.0,6.0,0.0009536924264202976,0.018653236336504384,1.0,5361.0
3.0,7.0,0.0009746207636111793,0.0189897455374098,1.0,5266.0
3.0,8.0,0.0009502070093841872,0.018218254691200583,1.0,5489.0
3.0,9.0,0.001059442896027904,0.020781379883624274,1.0,4812.0
3.5,1.0,0.00013241525423728814,0.003115653040877368,1.0,32096.0
3.5,2.0,0.00011462004756731974,0.0026571011026969575,1.0,37635.0
3.5,3.0,0.00011200205383607669,0.0025875899187496765,1.0,38646.0
3.5,4.0,0.00011181672173206333,0.002528892597931366,1.0,39543.0
3.5,5.0,0.00011214668736133385,0.002579247375615795,1.0,38771.0
3.5,6.0,0.0001176280482298761,0.0026931674342193855,1.0,37131.0
3.5,7.0,0.00011985960229288179,0.002753531404025663,1.0,36317.0
3.5,8.0,0.0001273698191585535,0.003021330593993595,1.0,33098.0
3.5,9.0,0.00013979313199248151,0.003293048374880627,1.0,30367.0
4.0,1.0,1.158334210075127e-05,0.0003105127186009539,1.0,322048.0
4.0,2.0,8.999199571811633e-06,0.00022692666410995959,1.0,440671.0
4.0,3.0,8.660324136482014e-06,0.00022166952620355468,1.0,451122.0
4.0,4.0,8.4609817009315e-06,0.00021848610974557292,1.0,457695.0
4.0,5.0,8.267752040195013e-06,0.000216233514897408,1.0,462463.0
4.0,6.0,7.844397332465538e-06,0.00021139459125798807,1.0,473049.0
4.0,7.0,8.00508236454363e-06,0.0002227881040063985,1.0,448857.0
4.0,8.0,8.571277559437881e-06,0.00024662068013051166,1.0,405481.0
4.0,9.0,1.0263468364654873e-05,0.00029079827033188805,1.0,343881.0
4.5,1.0,1.5e-06,4.6e-05,1.0,500000.0
4.5,2.0,1.1666666666666666e-06,3.2e-05,1.0,500000.0
4.5,3.0,1.1470588235294117e-06,3e-05,1.0,500000.0
4.5,4.0,1.0392156862745097e-06,2.8e-05,1.0,500000.0
4.5,5.0,1.0686274509803922e-06,2.8e-05,1.0,500000.0
4.5,6.0,8.725490196078432e-07,2.4e-05,1.0,500000.0
4.5,7.0,6.176470588235294e-07,1.8e-05,1.0,500000.0
4.5,8.0,9.117647058823529e-07,2.4e-05,1.0,500000.0
4.5,9.0,6.862745098039216e-07,2e-05,1.0,500000.0
5.0,1.0,1.764705882352941e-07,2e-06,1.0,500000.0
5.0,2.0,2.156862745098039e-07,2e-06,1.0,500000.0
5.0,3.0,1.764705882352941e-07,2e-06,1.0,500000.0
5.0,4.0,1.764705882352941e-07,2e-06,1.0,500000.0
5.0,5.0,0.0,0.0,1.0,500000.0
5.0,6.0,0.0,0.0,1.0,500000.0
5.0,7.0,0.0,0.0,1.0,500000.0
5.0,8.0,0.0,0.0,1.0,500000.0
5.0,9.0,0.0,0.0,1.0,500000.0
5.5,1.0,0.0,0.0,1.0,500000.0
5.5,2.0,0.0,0.0,1.0,500000.0
5.5,3.0,0.0,0.0,1.0,500000.0
5.5,4.0,0.0,0.0,1.0,500000.0
5.5,5.0,0.0,0.0,1.0,500000.0
5.5,6.0,0.0,0.0,1.0,500000.0
5.5,7.0,0.0,0.0,1.0,500000.0
5.5,8.0,0.0,0.0,1.0,500000.0
5.5,9.0,0.0,0.0,1.0,500000.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.07218591140159768 0.7407407407407407 1.0 135.0
3 1.0 2.0 0.0720406681190995 0.7407407407407407 1.0 135.0
4 1.0 3.0 0.07175018155410312 0.7407407407407407 1.0 135.0
5 1.0 4.0 0.07178649237472767 0.7407407407407407 1.0 135.0
6 1.0 5.0 0.07229484386347132 0.7407407407407407 1.0 135.0
7 1.0 6.0 0.07139171458056907 0.7518796992481203 1.0 133.0
8 1.0 7.0 0.0719077104526021 0.7518796992481203 1.0 133.0
9 1.0 8.0 0.07681025165971901 0.7874015748031497 1.0 127.0
10 1.0 9.0 0.07623529411764705 0.8 1.0 125.0
11 1.5 1.0 0.04049119647859144 0.5102040816326531 1.0 196.0
12 1.5 2.0 0.03934073629451781 0.5102040816326531 1.0 196.0
13 1.5 3.0 0.03951734539969834 0.5128205128205128 1.0 195.0
14 1.5 4.0 0.039240954113604204 0.5154639175257731 1.0 194.0
15 1.5 5.0 0.03985396241830065 0.5208333333333334 1.0 192.0
16 1.5 6.0 0.03683750728013978 0.49504950495049505 1.0 202.0
17 1.5 7.0 0.03422336676606126 0.4608294930875576 1.0 217.0
18 1.5 8.0 0.0367037362208565 0.4975124378109453 1.0 201.0
19 1.5 9.0 0.03512684694730973 0.47393364928909953 1.0 211.0
20 2.0 1.0 0.016891391317232184 0.2518891687657431 1.0 397.0
21 2.0 2.0 0.016512501806619454 0.2457002457002457 1.0 407.0
22 2.0 3.0 0.016642754662840747 0.24390243902439024 1.0 410.0
23 2.0 4.0 0.01651672433679354 0.23529411764705882 1.0 425.0
24 2.0 5.0 0.016736694677871148 0.23809523809523808 1.0 420.0
25 2.0 6.0 0.01686924769907963 0.25510204081632654 1.0 392.0
26 2.0 7.0 0.017019307723089235 0.25510204081632654 1.0 392.0
27 2.0 8.0 0.015793878527020563 0.24390243902439024 1.0 410.0
28 2.0 9.0 0.015859284890426758 0.24509803921568626 1.0 408.0
29 2.5 1.0 0.00463465257795179 0.08019246190858059 1.0 1247.0
30 2.5 2.0 0.004429065743944637 0.0784313725490196 1.0 1275.0
31 2.5 3.0 0.004454240712678514 0.078064012490242 1.0 1281.0
32 2.5 4.0 0.004901960784313725 0.08488964346349745 1.0 1178.0
33 2.5 5.0 0.004937258431725526 0.09000900090009001 1.0 1111.0
34 2.5 6.0 0.004915161755905235 0.08976660682226212 1.0 1114.0
35 2.5 7.0 0.005067295833556759 0.09115770282588878 1.0 1097.0
36 2.5 8.0 0.004852354925410827 0.09199632014719411 1.0 1087.0
37 2.5 9.0 0.004828018163787254 0.08873114463176575 1.0 1127.0
38 3.0 1.0 0.0009363087762972183 0.01889287738522577 1.0 5293.0
39 3.0 2.0 0.0009157602856762813 0.017394329448599758 1.0 5749.0
40 3.0 3.0 0.0008953735130105303 0.01707067258449983 1.0 5858.0
41 3.0 4.0 0.0009096775965288076 0.01750700280112045 1.0 5712.0
42 3.0 5.0 0.0009096422073984233 0.017774617845716316 1.0 5626.0
43 3.0 6.0 0.0009536924264202976 0.018653236336504384 1.0 5361.0
44 3.0 7.0 0.0009746207636111793 0.0189897455374098 1.0 5266.0
45 3.0 8.0 0.0009502070093841872 0.018218254691200583 1.0 5489.0
46 3.0 9.0 0.001059442896027904 0.020781379883624274 1.0 4812.0
47 3.5 1.0 0.00013241525423728814 0.003115653040877368 1.0 32096.0
48 3.5 2.0 0.00011462004756731974 0.0026571011026969575 1.0 37635.0
49 3.5 3.0 0.00011200205383607669 0.0025875899187496765 1.0 38646.0
50 3.5 4.0 0.00011181672173206333 0.002528892597931366 1.0 39543.0
51 3.5 5.0 0.00011214668736133385 0.002579247375615795 1.0 38771.0
52 3.5 6.0 0.0001176280482298761 0.0026931674342193855 1.0 37131.0
53 3.5 7.0 0.00011985960229288179 0.002753531404025663 1.0 36317.0
54 3.5 8.0 0.0001273698191585535 0.003021330593993595 1.0 33098.0
55 3.5 9.0 0.00013979313199248151 0.003293048374880627 1.0 30367.0
56 4.0 1.0 1.158334210075127e-05 0.0003105127186009539 1.0 322048.0
57 4.0 2.0 8.999199571811633e-06 0.00022692666410995959 1.0 440671.0
58 4.0 3.0 8.660324136482014e-06 0.00022166952620355468 1.0 451122.0
59 4.0 4.0 8.4609817009315e-06 0.00021848610974557292 1.0 457695.0
60 4.0 5.0 8.267752040195013e-06 0.000216233514897408 1.0 462463.0
61 4.0 6.0 7.844397332465538e-06 0.00021139459125798807 1.0 473049.0
62 4.0 7.0 8.00508236454363e-06 0.0002227881040063985 1.0 448857.0
63 4.0 8.0 8.571277559437881e-06 0.00024662068013051166 1.0 405481.0
64 4.0 9.0 1.0263468364654873e-05 0.00029079827033188805 1.0 343881.0
65 4.5 1.0 1.5e-06 4.6e-05 1.0 500000.0
66 4.5 2.0 1.1666666666666666e-06 3.2e-05 1.0 500000.0
67 4.5 3.0 1.1470588235294117e-06 3e-05 1.0 500000.0
68 4.5 4.0 1.0392156862745097e-06 2.8e-05 1.0 500000.0
69 4.5 5.0 1.0686274509803922e-06 2.8e-05 1.0 500000.0
70 4.5 6.0 8.725490196078432e-07 2.4e-05 1.0 500000.0
71 4.5 7.0 6.176470588235294e-07 1.8e-05 1.0 500000.0
72 4.5 8.0 9.117647058823529e-07 2.4e-05 1.0 500000.0
73 4.5 9.0 6.862745098039216e-07 2e-05 1.0 500000.0
74 5.0 1.0 1.764705882352941e-07 2e-06 1.0 500000.0
75 5.0 2.0 2.156862745098039e-07 2e-06 1.0 500000.0
76 5.0 3.0 1.764705882352941e-07 2e-06 1.0 500000.0
77 5.0 4.0 1.764705882352941e-07 2e-06 1.0 500000.0
78 5.0 5.0 0.0 0.0 1.0 500000.0
79 5.0 6.0 0.0 0.0 1.0 500000.0
80 5.0 7.0 0.0 0.0 1.0 500000.0
81 5.0 8.0 0.0 0.0 1.0 500000.0
82 5.0 9.0 0.0 0.0 1.0 500000.0
83 5.5 1.0 0.0 0.0 1.0 500000.0
84 5.5 2.0 0.0 0.0 1.0 500000.0
85 5.5 3.0 0.0 0.0 1.0 500000.0
86 5.5 4.0 0.0 0.0 1.0 500000.0
87 5.5 5.0 0.0 0.0 1.0 500000.0
88 5.5 6.0 0.0 0.0 1.0 500000.0
89 5.5 7.0 0.0 0.0 1.0 500000.0
90 5.5 8.0 0.0 0.0 1.0 500000.0
91 5.5 9.0 0.0 0.0 1.0 500000.0

View File

@@ -0,0 +1,11 @@
{
"duration": 1623.720144351013,
"name": "ber_2d_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 05:39:37.550901"
}

View File

@@ -0,0 +1,56 @@
SNR,rho,BER,FER,DFR,num_iterations
1.0,0.1,0.03973168214654283,0.7518796992481203,1.0,133.0
1.0,0.30000000000000004,0.0643602764846946,0.7194244604316546,1.0,139.0
1.0,0.5000000000000001,0.07016602261342493,0.7299270072992701,1.0,137.0
1.0,0.7000000000000001,0.07100634371395617,0.7352941176470589,1.0,136.0
1.0,0.9000000000000001,0.07256333190210391,0.7299270072992701,1.0,137.0
1.0,1.1000000000000003,0.07233037099731979,0.7194244604316546,1.0,139.0
1.0,1.3000000000000003,0.07201297785301171,0.7194244604316546,1.0,139.0
1.0,1.5000000000000004,0.06644482610562473,0.7299270072992701,1.0,137.0
1.0,1.7000000000000004,0.06488095238095239,0.7142857142857143,1.0,140.0
1.0,1.9000000000000004,0.06572128851540616,0.7142857142857143,1.0,140.0
1.0,2.1000000000000005,0.07194813409234661,0.8064516129032258,1.0,124.0
2.0,0.1,0.009515570934256055,0.32679738562091504,1.0,306.0
2.0,0.30000000000000004,0.013685165582942688,0.2570694087403599,1.0,389.0
2.0,0.5000000000000001,0.014068627450980392,0.25,1.0,400.0
2.0,0.7000000000000001,0.016552420426165046,0.27100271002710025,1.0,369.0
2.0,0.9000000000000001,0.016301271164633833,0.26246719160104987,1.0,381.0
2.0,1.1000000000000003,0.015934506795045385,0.2557544757033248,1.0,391.0
2.0,1.3000000000000003,0.016314536150377465,0.25839793281653745,1.0,387.0
2.0,1.5000000000000004,0.016478411813603246,0.24937655860349128,1.0,401.0
2.0,1.7000000000000004,0.014750649118094726,0.228310502283105,1.0,438.0
2.0,1.9000000000000004,0.016240719588806397,0.24271844660194175,1.0,412.0
2.0,2.1000000000000005,0.017399877798144753,0.28328611898017,1.0,353.0
3.0,0.1,0.0010866175496043347,0.04970178926441352,1.0,2012.0
3.0,0.30000000000000004,0.00097450096713698,0.02503755633450175,1.0,3994.0
3.0,0.5000000000000001,0.0009122439039718452,0.020032051282051284,1.0,4992.0
3.0,0.7000000000000001,0.0009116534841572858,0.018597731076808628,1.0,5377.0
3.0,0.9000000000000001,0.0009229633275904504,0.01819174094960888,1.0,5497.0
3.0,1.1000000000000003,0.0008852507344984808,0.017085255424568596,1.0,5853.0
3.0,1.3000000000000003,0.0008553811695689399,0.016603021749958494,1.0,6023.0
3.0,1.5000000000000004,0.0008010308919304844,0.014801657785671996,1.0,6756.0
3.0,1.7000000000000004,0.0007963295160526994,0.014452955629426218,1.0,6919.0
3.0,1.9000000000000004,0.0007702982892356493,0.01404297149276787,1.0,7121.0
3.0,2.1000000000000005,0.0010269869344440006,0.02424830261881668,1.0,4124.0
4.0,0.1,7.603566423586497e-05,0.003977250129260629,1.0,25143.0
4.0,0.30000000000000004,1.2745098039215686e-05,0.00038,1.0,50000.0
4.0,0.5000000000000001,8.725490196078431e-06,0.00024,1.0,50000.0
4.0,0.7000000000000001,7.84313725490196e-06,0.00024,1.0,50000.0
4.0,0.9000000000000001,8.333333333333334e-06,0.00022,1.0,50000.0
4.0,1.1000000000000003,7.254901960784314e-06,0.00018,1.0,50000.0
4.0,1.3000000000000003,1.0196078431372549e-05,0.00022,1.0,50000.0
4.0,1.5000000000000004,9.313725490196078e-06,0.00022,1.0,50000.0
4.0,1.7000000000000004,9.803921568627451e-06,0.00024,1.0,50000.0
4.0,1.9000000000000004,9.803921568627451e-06,0.00022,1.0,50000.0
4.0,2.1000000000000005,1.6470588235294116e-05,0.0005,1.0,50000.0
5.0,0.1,3.4313725490196077e-06,0.00018,1.0,50000.0
5.0,0.30000000000000004,0.0,0.0,1.0,50000.0
5.0,0.5000000000000001,0.0,0.0,1.0,50000.0
5.0,0.7000000000000001,0.0,0.0,1.0,50000.0
5.0,0.9000000000000001,0.0,0.0,1.0,50000.0
5.0,1.1000000000000003,0.0,0.0,1.0,50000.0
5.0,1.3000000000000003,0.0,0.0,1.0,50000.0
5.0,1.5000000000000004,0.0,0.0,1.0,50000.0
5.0,1.7000000000000004,0.0,0.0,1.0,50000.0
5.0,1.9000000000000004,0.0,0.0,1.0,50000.0
5.0,2.1000000000000005,0.0,0.0,1.0,50000.0
1 SNR rho BER FER DFR num_iterations
2 1.0 0.1 0.03973168214654283 0.7518796992481203 1.0 133.0
3 1.0 0.30000000000000004 0.0643602764846946 0.7194244604316546 1.0 139.0
4 1.0 0.5000000000000001 0.07016602261342493 0.7299270072992701 1.0 137.0
5 1.0 0.7000000000000001 0.07100634371395617 0.7352941176470589 1.0 136.0
6 1.0 0.9000000000000001 0.07256333190210391 0.7299270072992701 1.0 137.0
7 1.0 1.1000000000000003 0.07233037099731979 0.7194244604316546 1.0 139.0
8 1.0 1.3000000000000003 0.07201297785301171 0.7194244604316546 1.0 139.0
9 1.0 1.5000000000000004 0.06644482610562473 0.7299270072992701 1.0 137.0
10 1.0 1.7000000000000004 0.06488095238095239 0.7142857142857143 1.0 140.0
11 1.0 1.9000000000000004 0.06572128851540616 0.7142857142857143 1.0 140.0
12 1.0 2.1000000000000005 0.07194813409234661 0.8064516129032258 1.0 124.0
13 2.0 0.1 0.009515570934256055 0.32679738562091504 1.0 306.0
14 2.0 0.30000000000000004 0.013685165582942688 0.2570694087403599 1.0 389.0
15 2.0 0.5000000000000001 0.014068627450980392 0.25 1.0 400.0
16 2.0 0.7000000000000001 0.016552420426165046 0.27100271002710025 1.0 369.0
17 2.0 0.9000000000000001 0.016301271164633833 0.26246719160104987 1.0 381.0
18 2.0 1.1000000000000003 0.015934506795045385 0.2557544757033248 1.0 391.0
19 2.0 1.3000000000000003 0.016314536150377465 0.25839793281653745 1.0 387.0
20 2.0 1.5000000000000004 0.016478411813603246 0.24937655860349128 1.0 401.0
21 2.0 1.7000000000000004 0.014750649118094726 0.228310502283105 1.0 438.0
22 2.0 1.9000000000000004 0.016240719588806397 0.24271844660194175 1.0 412.0
23 2.0 2.1000000000000005 0.017399877798144753 0.28328611898017 1.0 353.0
24 3.0 0.1 0.0010866175496043347 0.04970178926441352 1.0 2012.0
25 3.0 0.30000000000000004 0.00097450096713698 0.02503755633450175 1.0 3994.0
26 3.0 0.5000000000000001 0.0009122439039718452 0.020032051282051284 1.0 4992.0
27 3.0 0.7000000000000001 0.0009116534841572858 0.018597731076808628 1.0 5377.0
28 3.0 0.9000000000000001 0.0009229633275904504 0.01819174094960888 1.0 5497.0
29 3.0 1.1000000000000003 0.0008852507344984808 0.017085255424568596 1.0 5853.0
30 3.0 1.3000000000000003 0.0008553811695689399 0.016603021749958494 1.0 6023.0
31 3.0 1.5000000000000004 0.0008010308919304844 0.014801657785671996 1.0 6756.0
32 3.0 1.7000000000000004 0.0007963295160526994 0.014452955629426218 1.0 6919.0
33 3.0 1.9000000000000004 0.0007702982892356493 0.01404297149276787 1.0 7121.0
34 3.0 2.1000000000000005 0.0010269869344440006 0.02424830261881668 1.0 4124.0
35 4.0 0.1 7.603566423586497e-05 0.003977250129260629 1.0 25143.0
36 4.0 0.30000000000000004 1.2745098039215686e-05 0.00038 1.0 50000.0
37 4.0 0.5000000000000001 8.725490196078431e-06 0.00024 1.0 50000.0
38 4.0 0.7000000000000001 7.84313725490196e-06 0.00024 1.0 50000.0
39 4.0 0.9000000000000001 8.333333333333334e-06 0.00022 1.0 50000.0
40 4.0 1.1000000000000003 7.254901960784314e-06 0.00018 1.0 50000.0
41 4.0 1.3000000000000003 1.0196078431372549e-05 0.00022 1.0 50000.0
42 4.0 1.5000000000000004 9.313725490196078e-06 0.00022 1.0 50000.0
43 4.0 1.7000000000000004 9.803921568627451e-06 0.00024 1.0 50000.0
44 4.0 1.9000000000000004 9.803921568627451e-06 0.00022 1.0 50000.0
45 4.0 2.1000000000000005 1.6470588235294116e-05 0.0005 1.0 50000.0
46 5.0 0.1 3.4313725490196077e-06 0.00018 1.0 50000.0
47 5.0 0.30000000000000004 0.0 0.0 1.0 50000.0
48 5.0 0.5000000000000001 0.0 0.0 1.0 50000.0
49 5.0 0.7000000000000001 0.0 0.0 1.0 50000.0
50 5.0 0.9000000000000001 0.0 0.0 1.0 50000.0
51 5.0 1.1000000000000003 0.0 0.0 1.0 50000.0
52 5.0 1.3000000000000003 0.0 0.0 1.0 50000.0
53 5.0 1.5000000000000004 0.0 0.0 1.0 50000.0
54 5.0 1.7000000000000004 0.0 0.0 1.0 50000.0
55 5.0 1.9000000000000004 0.0 0.0 1.0 50000.0
56 5.0 2.1000000000000005 0.0 0.0 1.0 50000.0

View File

@@ -0,0 +1,11 @@
{
"duration": 677.445701618999,
"name": "ber_2d_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"mu": 5,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 17:36:42.965492"
}

View File

@@ -0,0 +1,91 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.1253364090734333,0.9803921568627451,1.0,102.0
1.0,2.0,0.1251441753171857,0.9803921568627451,1.0,102.0
1.0,3.0,0.1250961168781238,0.9803921568627451,1.0,102.0
1.0,4.0,0.1254325259515571,0.9803921568627451,1.0,102.0
1.0,5.0,0.125,0.9803921568627451,1.0,102.0
1.0,6.0,0.12480776624375241,0.9803921568627451,1.0,102.0
1.0,7.0,0.1250480584390619,0.9803921568627451,1.0,102.0
1.0,8.0,0.1269171034750534,0.9900990099009901,1.0,101.0
1.0,9.0,0.12682003494467095,0.9900990099009901,1.0,101.0
1.5,1.0,0.10808580858085809,0.9900990099009901,1.0,101.0
1.5,2.0,0.10876528829353524,0.9900990099009901,1.0,101.0
1.5,3.0,0.10910502814987381,0.9900990099009901,1.0,101.0
1.5,4.0,0.10925063094544749,0.9900990099009901,1.0,101.0
1.5,5.0,0.10920209668025627,0.9900990099009901,1.0,101.0
1.5,6.0,0.10280112044817927,0.9523809523809523,1.0,105.0
1.5,7.0,0.10270774976657329,0.9523809523809523,1.0,105.0
1.5,8.0,0.10252100840336134,0.9523809523809523,1.0,105.0
1.5,9.0,0.10270774976657329,0.9523809523809523,1.0,105.0
2.0,1.0,0.07839017960125226,0.8403361344537815,1.0,119.0
2.0,2.0,0.07805749418411433,0.847457627118644,1.0,118.0
2.0,3.0,0.07826520438683948,0.847457627118644,1.0,118.0
2.0,4.0,0.0704656862745098,0.8333333333333334,1.0,120.0
2.0,5.0,0.07070455300764374,0.847457627118644,1.0,118.0
2.0,6.0,0.07099534729145895,0.847457627118644,1.0,118.0
2.0,7.0,0.07103688933200399,0.847457627118644,1.0,118.0
2.0,8.0,0.0693336656696577,0.847457627118644,1.0,118.0
2.0,9.0,0.06968390804597702,0.8620689655172413,1.0,116.0
2.5,1.0,0.042119565217391304,0.5434782608695652,1.0,184.0
2.5,2.0,0.044503194536241464,0.5617977528089888,1.0,178.0
2.5,3.0,0.044420577219651904,0.5617977528089888,1.0,178.0
2.5,4.0,0.04411764705882353,0.5649717514124294,1.0,177.0
2.5,5.0,0.044257703081232495,0.5714285714285714,1.0,175.0
2.5,6.0,0.04623896342162596,0.5847953216374269,1.0,171.0
2.5,7.0,0.045886993850794755,0.591715976331361,1.0,169.0
2.5,8.0,0.04683402023229674,0.6369426751592356,1.0,157.0
2.5,9.0,0.04408775705404113,0.6097560975609756,1.0,164.0
3.0,1.0,0.02084507924575581,0.3194888178913738,1.0,313.0
3.0,2.0,0.02097036897826223,0.3194888178913738,1.0,313.0
3.0,3.0,0.021542827657378742,0.32894736842105265,1.0,304.0
3.0,4.0,0.02130037682825573,0.3257328990228013,1.0,307.0
3.0,5.0,0.0212903643305507,0.33003300330033003,1.0,303.0
3.0,6.0,0.02215954875100725,0.3424657534246575,1.0,292.0
3.0,7.0,0.019976291170062797,0.32679738562091504,1.0,306.0
3.0,8.0,0.018131165509682134,0.3105590062111801,1.0,322.0
3.0,9.0,0.01895007204159619,0.3194888178913738,1.0,313.0
3.5,1.0,0.005495608751069439,0.08904719501335707,1.0,1123.0
3.5,2.0,0.005568035384668965,0.08880994671403197,1.0,1126.0
3.5,3.0,0.0055060144625225975,0.08865248226950355,1.0,1128.0
3.5,4.0,0.005649487151607408,0.09242144177449169,1.0,1082.0
3.5,5.0,0.0059513101876836364,0.1019367991845056,1.0,981.0
3.5,6.0,0.005920416435199473,0.1049317943336831,1.0,953.0
3.5,7.0,0.005993595741584015,0.10604453870625663,1.0,943.0
3.5,8.0,0.005667729365922777,0.10626992561105207,1.0,941.0
3.5,9.0,0.005557670748989995,0.10787486515641856,1.0,927.0
4.0,1.0,0.0011370977598519371,0.02226179875333927,1.0,4492.0
4.0,2.0,0.001104985453356057,0.021949078138718173,1.0,4556.0
4.0,3.0,0.0011066210887033577,0.02160293799956794,1.0,4629.0
4.0,4.0,0.0011366865586814436,0.023004370830457786,1.0,4347.0
4.0,5.0,0.0011532649327924919,0.023860653781913623,1.0,4191.0
4.0,6.0,0.001113873854072222,0.023353573096683792,1.0,4282.0
4.0,7.0,0.0011209732252788652,0.023430178069353328,1.0,4268.0
4.0,8.0,0.0008494622379918278,0.020173492031470647,1.0,4957.0
4.0,9.0,0.0008734028763656565,0.02098635886673662,1.0,4765.0
4.5,1.0,0.00010642139524427896,0.0024393218685205514,1.0,40995.0
4.5,2.0,9.874093897093041e-05,0.0022159682673344116,1.0,45127.0
4.5,3.0,9.863820677693311e-05,0.0022136627263470137,1.0,45174.0
4.5,4.0,9.930431005335788e-05,0.002283887175973507,1.0,43785.0
4.5,5.0,9.929659427434275e-05,0.002315029169367534,1.0,43196.0
4.5,6.0,0.0001063778679130035,0.0025001250062503125,1.0,39998.0
4.5,7.0,0.00010651384447584344,0.0026337968815844924,1.0,37968.0
4.5,8.0,0.00013144058885383806,0.0030927197377373663,1.0,32334.0
4.5,9.0,0.00013377639822520138,0.0032372936225315637,1.0,30890.0
5.0,1.0,1.392156862745098e-05,0.00028,1.0,50000.0
5.0,2.0,1.1764705882352942e-05,0.00024,1.0,50000.0
5.0,3.0,1.1274509803921569e-05,0.00024,1.0,50000.0
5.0,4.0,1.1470588235294118e-05,0.00024,1.0,50000.0
5.0,5.0,1.1764705882352942e-05,0.00026,1.0,50000.0
5.0,6.0,6.568627450980392e-06,0.00016,1.0,50000.0
5.0,7.0,4.803921568627451e-06,0.00014,1.0,50000.0
5.0,8.0,7.450980392156862e-06,0.00018,1.0,50000.0
5.0,9.0,5.294117647058824e-06,0.00016,1.0,50000.0
5.5,1.0,0.0,0.0,1.0,50000.0
5.5,2.0,0.0,0.0,1.0,50000.0
5.5,3.0,0.0,0.0,1.0,50000.0
5.5,4.0,0.0,0.0,1.0,50000.0
5.5,5.0,0.0,0.0,1.0,50000.0
5.5,6.0,0.0,0.0,1.0,50000.0
5.5,7.0,0.0,0.0,1.0,50000.0
5.5,8.0,0.0,0.0,1.0,50000.0
5.5,9.0,0.0,0.0,1.0,50000.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.1253364090734333 0.9803921568627451 1.0 102.0
3 1.0 2.0 0.1251441753171857 0.9803921568627451 1.0 102.0
4 1.0 3.0 0.1250961168781238 0.9803921568627451 1.0 102.0
5 1.0 4.0 0.1254325259515571 0.9803921568627451 1.0 102.0
6 1.0 5.0 0.125 0.9803921568627451 1.0 102.0
7 1.0 6.0 0.12480776624375241 0.9803921568627451 1.0 102.0
8 1.0 7.0 0.1250480584390619 0.9803921568627451 1.0 102.0
9 1.0 8.0 0.1269171034750534 0.9900990099009901 1.0 101.0
10 1.0 9.0 0.12682003494467095 0.9900990099009901 1.0 101.0
11 1.5 1.0 0.10808580858085809 0.9900990099009901 1.0 101.0
12 1.5 2.0 0.10876528829353524 0.9900990099009901 1.0 101.0
13 1.5 3.0 0.10910502814987381 0.9900990099009901 1.0 101.0
14 1.5 4.0 0.10925063094544749 0.9900990099009901 1.0 101.0
15 1.5 5.0 0.10920209668025627 0.9900990099009901 1.0 101.0
16 1.5 6.0 0.10280112044817927 0.9523809523809523 1.0 105.0
17 1.5 7.0 0.10270774976657329 0.9523809523809523 1.0 105.0
18 1.5 8.0 0.10252100840336134 0.9523809523809523 1.0 105.0
19 1.5 9.0 0.10270774976657329 0.9523809523809523 1.0 105.0
20 2.0 1.0 0.07839017960125226 0.8403361344537815 1.0 119.0
21 2.0 2.0 0.07805749418411433 0.847457627118644 1.0 118.0
22 2.0 3.0 0.07826520438683948 0.847457627118644 1.0 118.0
23 2.0 4.0 0.0704656862745098 0.8333333333333334 1.0 120.0
24 2.0 5.0 0.07070455300764374 0.847457627118644 1.0 118.0
25 2.0 6.0 0.07099534729145895 0.847457627118644 1.0 118.0
26 2.0 7.0 0.07103688933200399 0.847457627118644 1.0 118.0
27 2.0 8.0 0.0693336656696577 0.847457627118644 1.0 118.0
28 2.0 9.0 0.06968390804597702 0.8620689655172413 1.0 116.0
29 2.5 1.0 0.042119565217391304 0.5434782608695652 1.0 184.0
30 2.5 2.0 0.044503194536241464 0.5617977528089888 1.0 178.0
31 2.5 3.0 0.044420577219651904 0.5617977528089888 1.0 178.0
32 2.5 4.0 0.04411764705882353 0.5649717514124294 1.0 177.0
33 2.5 5.0 0.044257703081232495 0.5714285714285714 1.0 175.0
34 2.5 6.0 0.04623896342162596 0.5847953216374269 1.0 171.0
35 2.5 7.0 0.045886993850794755 0.591715976331361 1.0 169.0
36 2.5 8.0 0.04683402023229674 0.6369426751592356 1.0 157.0
37 2.5 9.0 0.04408775705404113 0.6097560975609756 1.0 164.0
38 3.0 1.0 0.02084507924575581 0.3194888178913738 1.0 313.0
39 3.0 2.0 0.02097036897826223 0.3194888178913738 1.0 313.0
40 3.0 3.0 0.021542827657378742 0.32894736842105265 1.0 304.0
41 3.0 4.0 0.02130037682825573 0.3257328990228013 1.0 307.0
42 3.0 5.0 0.0212903643305507 0.33003300330033003 1.0 303.0
43 3.0 6.0 0.02215954875100725 0.3424657534246575 1.0 292.0
44 3.0 7.0 0.019976291170062797 0.32679738562091504 1.0 306.0
45 3.0 8.0 0.018131165509682134 0.3105590062111801 1.0 322.0
46 3.0 9.0 0.01895007204159619 0.3194888178913738 1.0 313.0
47 3.5 1.0 0.005495608751069439 0.08904719501335707 1.0 1123.0
48 3.5 2.0 0.005568035384668965 0.08880994671403197 1.0 1126.0
49 3.5 3.0 0.0055060144625225975 0.08865248226950355 1.0 1128.0
50 3.5 4.0 0.005649487151607408 0.09242144177449169 1.0 1082.0
51 3.5 5.0 0.0059513101876836364 0.1019367991845056 1.0 981.0
52 3.5 6.0 0.005920416435199473 0.1049317943336831 1.0 953.0
53 3.5 7.0 0.005993595741584015 0.10604453870625663 1.0 943.0
54 3.5 8.0 0.005667729365922777 0.10626992561105207 1.0 941.0
55 3.5 9.0 0.005557670748989995 0.10787486515641856 1.0 927.0
56 4.0 1.0 0.0011370977598519371 0.02226179875333927 1.0 4492.0
57 4.0 2.0 0.001104985453356057 0.021949078138718173 1.0 4556.0
58 4.0 3.0 0.0011066210887033577 0.02160293799956794 1.0 4629.0
59 4.0 4.0 0.0011366865586814436 0.023004370830457786 1.0 4347.0
60 4.0 5.0 0.0011532649327924919 0.023860653781913623 1.0 4191.0
61 4.0 6.0 0.001113873854072222 0.023353573096683792 1.0 4282.0
62 4.0 7.0 0.0011209732252788652 0.023430178069353328 1.0 4268.0
63 4.0 8.0 0.0008494622379918278 0.020173492031470647 1.0 4957.0
64 4.0 9.0 0.0008734028763656565 0.02098635886673662 1.0 4765.0
65 4.5 1.0 0.00010642139524427896 0.0024393218685205514 1.0 40995.0
66 4.5 2.0 9.874093897093041e-05 0.0022159682673344116 1.0 45127.0
67 4.5 3.0 9.863820677693311e-05 0.0022136627263470137 1.0 45174.0
68 4.5 4.0 9.930431005335788e-05 0.002283887175973507 1.0 43785.0
69 4.5 5.0 9.929659427434275e-05 0.002315029169367534 1.0 43196.0
70 4.5 6.0 0.0001063778679130035 0.0025001250062503125 1.0 39998.0
71 4.5 7.0 0.00010651384447584344 0.0026337968815844924 1.0 37968.0
72 4.5 8.0 0.00013144058885383806 0.0030927197377373663 1.0 32334.0
73 4.5 9.0 0.00013377639822520138 0.0032372936225315637 1.0 30890.0
74 5.0 1.0 1.392156862745098e-05 0.00028 1.0 50000.0
75 5.0 2.0 1.1764705882352942e-05 0.00024 1.0 50000.0
76 5.0 3.0 1.1274509803921569e-05 0.00024 1.0 50000.0
77 5.0 4.0 1.1470588235294118e-05 0.00024 1.0 50000.0
78 5.0 5.0 1.1764705882352942e-05 0.00026 1.0 50000.0
79 5.0 6.0 6.568627450980392e-06 0.00016 1.0 50000.0
80 5.0 7.0 4.803921568627451e-06 0.00014 1.0 50000.0
81 5.0 8.0 7.450980392156862e-06 0.00018 1.0 50000.0
82 5.0 9.0 5.294117647058824e-06 0.00016 1.0 50000.0
83 5.5 1.0 0.0 0.0 1.0 50000.0
84 5.5 2.0 0.0 0.0 1.0 50000.0
85 5.5 3.0 0.0 0.0 1.0 50000.0
86 5.5 4.0 0.0 0.0 1.0 50000.0
87 5.5 5.0 0.0 0.0 1.0 50000.0
88 5.5 6.0 0.0 0.0 1.0 50000.0
89 5.5 7.0 0.0 0.0 1.0 50000.0
90 5.5 8.0 0.0 0.0 1.0 50000.0
91 5.5 9.0 0.0 0.0 1.0 50000.0

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@@ -0,0 +1,11 @@
{
"duration": 478.0061850019847,
"name": "ber_2d_20455187",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 08:17:44.218669"
}

View File

@@ -0,0 +1,46 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.06706593927893738,0.8064516129032258,1.0,124.0
1.0,2.0,0.06604137718079357,0.7874015748031497,1.0,127.0
1.0,3.0,0.06631156399567702,0.7874015748031497,1.0,127.0
1.0,4.0,0.06635016211208893,0.7874015748031497,1.0,127.0
1.0,5.0,0.06742172675521822,0.8064516129032258,1.0,124.0
1.0,6.0,0.06779003267973856,0.8333333333333334,1.0,120.0
1.0,7.0,0.06803513071895424,0.8333333333333334,1.0,120.0
1.0,8.0,0.06700069408294292,0.8849557522123894,1.0,113.0
1.0,9.0,0.06506820119352089,0.8695652173913043,1.0,115.0
1.5,1.0,0.03349673202614379,0.5376344086021505,1.0,186.0
1.5,2.0,0.03307533539731682,0.5263157894736842,1.0,190.0
1.5,3.0,0.03359668335419274,0.5319148936170213,1.0,188.0
1.5,4.0,0.03317342979972738,0.5347593582887701,1.0,187.0
1.5,5.0,0.03391410912190963,0.5434782608695652,1.0,184.0
1.5,6.0,0.03727532679738562,0.5952380952380952,1.0,168.0
1.5,7.0,0.03702930035650624,0.5681818181818182,1.0,176.0
1.5,8.0,0.034926470588235295,0.5813953488372093,1.0,172.0
1.5,9.0,0.034765989729225025,0.5952380952380952,1.0,168.0
2.0,1.0,0.01110026451694168,0.21413276231263384,1.0,467.0
2.0,2.0,0.010714860893022506,0.2053388090349076,1.0,487.0
2.0,3.0,0.010908871745419478,0.20491803278688525,1.0,488.0
2.0,4.0,0.010938832054560955,0.21739130434782608,1.0,460.0
2.0,5.0,0.010903580182072829,0.22321428571428573,1.0,448.0
2.0,6.0,0.010987728424703214,0.22675736961451248,1.0,441.0
2.0,7.0,0.011099519899492979,0.2288329519450801,1.0,437.0
2.0,8.0,0.012883521284161334,0.25906735751295334,1.0,386.0
2.0,9.0,0.012699380270242812,0.25906735751295334,1.0,386.0
2.5,1.0,0.0017317365153840956,0.049236829148202856,1.0,2031.0
2.5,2.0,0.0015409629198213939,0.041254125412541254,1.0,2424.0
2.5,3.0,0.001496079240610813,0.041271151465125874,1.0,2423.0
2.5,4.0,0.0015836121682715639,0.04342162396873643,1.0,2303.0
2.5,5.0,0.0016280880583280242,0.04512635379061372,1.0,2216.0
2.5,6.0,0.0014345933619627816,0.042444821731748725,1.0,2356.0
2.5,7.0,0.0014615750186409708,0.041788549937317176,1.0,2393.0
2.5,8.0,0.0014600391438626733,0.045787545787545784,1.0,2184.0
2.5,9.0,0.0015155938305843428,0.04962779156327544,1.0,2015.0
3.0,1.0,0.0001489824986493345,0.0055663790704146955,1.0,17965.0
3.0,2.0,0.00011769028825236607,0.0037367811367288216,1.0,26761.0
3.0,3.0,0.00011504766158023599,0.0036500346753294156,1.0,27397.0
3.0,4.0,0.00011632538518639219,0.003693444136657433,1.0,27075.0
3.0,5.0,0.00011771589424535873,0.0037346877801015836,1.0,26776.0
3.0,6.0,0.0001190502155626804,0.0037078235076010383,1.0,26970.0
3.0,7.0,0.00011796606564894628,0.003766052800060257,1.0,26553.0
3.0,8.0,0.00010760903384851041,0.0038144644491913335,1.0,26216.0
3.0,9.0,0.00012616029955801685,0.004783773440489858,1.0,20904.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.06706593927893738 0.8064516129032258 1.0 124.0
3 1.0 2.0 0.06604137718079357 0.7874015748031497 1.0 127.0
4 1.0 3.0 0.06631156399567702 0.7874015748031497 1.0 127.0
5 1.0 4.0 0.06635016211208893 0.7874015748031497 1.0 127.0
6 1.0 5.0 0.06742172675521822 0.8064516129032258 1.0 124.0
7 1.0 6.0 0.06779003267973856 0.8333333333333334 1.0 120.0
8 1.0 7.0 0.06803513071895424 0.8333333333333334 1.0 120.0
9 1.0 8.0 0.06700069408294292 0.8849557522123894 1.0 113.0
10 1.0 9.0 0.06506820119352089 0.8695652173913043 1.0 115.0
11 1.5 1.0 0.03349673202614379 0.5376344086021505 1.0 186.0
12 1.5 2.0 0.03307533539731682 0.5263157894736842 1.0 190.0
13 1.5 3.0 0.03359668335419274 0.5319148936170213 1.0 188.0
14 1.5 4.0 0.03317342979972738 0.5347593582887701 1.0 187.0
15 1.5 5.0 0.03391410912190963 0.5434782608695652 1.0 184.0
16 1.5 6.0 0.03727532679738562 0.5952380952380952 1.0 168.0
17 1.5 7.0 0.03702930035650624 0.5681818181818182 1.0 176.0
18 1.5 8.0 0.034926470588235295 0.5813953488372093 1.0 172.0
19 1.5 9.0 0.034765989729225025 0.5952380952380952 1.0 168.0
20 2.0 1.0 0.01110026451694168 0.21413276231263384 1.0 467.0
21 2.0 2.0 0.010714860893022506 0.2053388090349076 1.0 487.0
22 2.0 3.0 0.010908871745419478 0.20491803278688525 1.0 488.0
23 2.0 4.0 0.010938832054560955 0.21739130434782608 1.0 460.0
24 2.0 5.0 0.010903580182072829 0.22321428571428573 1.0 448.0
25 2.0 6.0 0.010987728424703214 0.22675736961451248 1.0 441.0
26 2.0 7.0 0.011099519899492979 0.2288329519450801 1.0 437.0
27 2.0 8.0 0.012883521284161334 0.25906735751295334 1.0 386.0
28 2.0 9.0 0.012699380270242812 0.25906735751295334 1.0 386.0
29 2.5 1.0 0.0017317365153840956 0.049236829148202856 1.0 2031.0
30 2.5 2.0 0.0015409629198213939 0.041254125412541254 1.0 2424.0
31 2.5 3.0 0.001496079240610813 0.041271151465125874 1.0 2423.0
32 2.5 4.0 0.0015836121682715639 0.04342162396873643 1.0 2303.0
33 2.5 5.0 0.0016280880583280242 0.04512635379061372 1.0 2216.0
34 2.5 6.0 0.0014345933619627816 0.042444821731748725 1.0 2356.0
35 2.5 7.0 0.0014615750186409708 0.041788549937317176 1.0 2393.0
36 2.5 8.0 0.0014600391438626733 0.045787545787545784 1.0 2184.0
37 2.5 9.0 0.0015155938305843428 0.04962779156327544 1.0 2015.0
38 3.0 1.0 0.0001489824986493345 0.0055663790704146955 1.0 17965.0
39 3.0 2.0 0.00011769028825236607 0.0037367811367288216 1.0 26761.0
40 3.0 3.0 0.00011504766158023599 0.0036500346753294156 1.0 27397.0
41 3.0 4.0 0.00011632538518639219 0.003693444136657433 1.0 27075.0
42 3.0 5.0 0.00011771589424535873 0.0037346877801015836 1.0 26776.0
43 3.0 6.0 0.0001190502155626804 0.0037078235076010383 1.0 26970.0
44 3.0 7.0 0.00011796606564894628 0.003766052800060257 1.0 26553.0
45 3.0 8.0 0.00010760903384851041 0.0038144644491913335 1.0 26216.0
46 3.0 9.0 0.00012616029955801685 0.004783773440489858 1.0 20904.0

View File

@@ -0,0 +1,11 @@
{
"duration": 205.50386531601544,
"name": "ber_2d_40833844",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 09:05:32.777268"
}

View File

@@ -0,0 +1,91 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.06802839851024209,0.5586592178770949,1.0,179.0
1.0,2.0,0.06700608614232209,0.5617977528089888,1.0,178.0
1.0,3.0,0.06828034682080925,0.5780346820809249,1.0,173.0
1.0,4.0,0.06770833333333333,0.5882352941176471,1.0,170.0
1.0,5.0,0.06749260355029586,0.591715976331361,1.0,169.0
1.0,6.0,0.06902610441767068,0.6024096385542169,1.0,166.0
1.0,7.0,0.06940261044176707,0.6024096385542169,1.0,166.0
1.0,8.0,0.07376302083333333,0.625,1.0,160.0
1.0,9.0,0.07107142857142858,0.5714285714285714,1.0,175.0
1.5,1.0,0.04284090909090909,0.36363636363636365,1.0,275.0
1.5,2.0,0.04401137761377614,0.36900369003690037,1.0,271.0
1.5,3.0,0.043402777777777776,0.37037037037037035,1.0,270.0
1.5,4.0,0.04282837670384139,0.37174721189591076,1.0,269.0
1.5,5.0,0.04204963235294118,0.36764705882352944,1.0,272.0
1.5,6.0,0.04244987468671679,0.37593984962406013,1.0,266.0
1.5,7.0,0.047518260292164674,0.398406374501992,1.0,251.0
1.5,8.0,0.050067204301075266,0.4032258064516129,1.0,248.0
1.5,9.0,0.04997469635627531,0.4048582995951417,1.0,247.0
2.0,1.0,0.02255794701986755,0.22075055187637968,1.0,453.0
2.0,2.0,0.02337719298245614,0.21052631578947367,1.0,475.0
2.0,3.0,0.024647215865751335,0.2288329519450801,1.0,437.0
2.0,4.0,0.024647215865751335,0.2288329519450801,1.0,437.0
2.0,5.0,0.025014671361502348,0.2347417840375587,1.0,426.0
2.0,6.0,0.024703865336658352,0.24937655860349128,1.0,401.0
2.0,7.0,0.02598879018612521,0.25380710659898476,1.0,394.0
2.0,8.0,0.023205203442879498,0.2347417840375587,1.0,426.0
2.0,9.0,0.023393993635640414,0.2386634844868735,1.0,419.0
2.5,1.0,0.01200041203131438,0.12360939431396786,1.0,809.0
2.5,2.0,0.011361376292760541,0.11933174224343675,1.0,838.0
2.5,3.0,0.011204688731284477,0.1182033096926714,1.0,846.0
2.5,4.0,0.010789549653579677,0.11547344110854503,1.0,866.0
2.5,5.0,0.011593614718614718,0.12987012987012986,1.0,770.0
2.5,6.0,0.011728896103896104,0.12987012987012986,1.0,770.0
2.5,7.0,0.011996187363834423,0.13071895424836602,1.0,765.0
2.5,8.0,0.0113519885198852,0.12300123001230012,1.0,813.0
2.5,9.0,0.011123737373737374,0.12121212121212122,1.0,825.0
3.0,1.0,0.0047176742233417295,0.05037783375314862,1.0,1985.0
3.0,2.0,0.004651598401598402,0.04995004995004995,1.0,2002.0
3.0,3.0,0.004330632716049383,0.046296296296296294,1.0,2160.0
3.0,4.0,0.0037199164144689437,0.043233895373973194,1.0,2313.0
3.0,5.0,0.004561205744822979,0.050100200400801605,1.0,1996.0
3.0,6.0,0.004552738927738928,0.04995004995004995,1.0,2002.0
3.0,7.0,0.003961131696773198,0.04631773969430292,1.0,2159.0
3.0,8.0,0.004373208565166076,0.05058168942842691,1.0,1977.0
3.0,9.0,0.0038108570539741797,0.04666355576294914,1.0,2143.0
3.5,1.0,0.0010133162669541003,0.013473457289140393,1.0,7422.0
3.5,2.0,0.0009449414136323547,0.012599218848431397,1.0,7937.0
3.5,3.0,0.0009872047661451046,0.012721027859051012,1.0,7861.0
3.5,4.0,0.0009733956306536951,0.012800819252432157,1.0,7812.0
3.5,5.0,0.0009292584389483615,0.012304663467454164,1.0,8127.0
3.5,6.0,0.001003106393994305,0.012943308309603935,1.0,7726.0
3.5,7.0,0.0010066526610644257,0.013130252100840336,1.0,7616.0
3.5,8.0,0.0010280622340951816,0.014841199168892847,1.0,6738.0
3.5,9.0,0.0009964826444671632,0.014604936468526362,1.0,6847.0
4.0,1.0,0.0002914550310885367,0.004378667133724494,1.0,22838.0
4.0,2.0,0.0002750034321801208,0.004118616144975288,1.0,24280.0
4.0,3.0,0.0002702582632389527,0.003948979188879675,1.0,25323.0
4.0,4.0,0.00028869493824516313,0.004283572499464553,1.0,23345.0
4.0,5.0,0.00028656821378340364,0.004219409282700422,1.0,23700.0
4.0,6.0,0.00027946301116802416,0.004198505332101771,1.0,23818.0
4.0,7.0,0.00028319391479066715,0.004100545372534547,1.0,24387.0
4.0,8.0,0.00027695834291114344,0.0038311240517967973,1.0,26102.0
4.0,9.0,0.0002824165029469548,0.003929273084479371,1.0,25450.0
4.5,1.0,6.428915346231288e-05,0.0010942834631883043,1.0,91384.0
4.5,2.0,5.782962888464246e-05,0.0010057326762546515,1.0,99430.0
4.5,3.0,5.719542825989603e-05,0.0009735392044237621,1.0,102718.0
4.5,4.0,5.791236052007138e-05,0.0009805267389641715,1.0,101986.0
4.5,5.0,5.8317923779750656e-05,0.001021627861835048,1.0,97883.0
4.5,6.0,5.397993992669587e-05,0.0010023354415788787,1.0,99767.0
4.5,7.0,5.4212825609930704e-05,0.0009989311436762664,1.0,100107.0
4.5,8.0,5.6484106964212285e-05,0.0009206238146968386,1.0,108622.0
4.5,9.0,5.6550106916880344e-05,0.0009392405301073552,1.0,106469.0
5.0,1.0,1.307838765761879e-05,0.0002583385216319761,1.0,387089.0
5.0,2.0,1.1166561109677621e-05,0.00023457108676784499,1.0,426310.0
5.0,3.0,1.0957289385278553e-05,0.00022719217731895054,1.0,440156.0
5.0,4.0,1.0601997742590019e-05,0.00021747687677107732,1.0,459819.0
5.0,5.0,1.0609838111515777e-05,0.0002171736585726044,1.0,460461.0
5.0,6.0,1.1628960520589125e-05,0.00024269134999490349,1.0,412046.0
5.0,7.0,1.1514379136684323e-05,0.00023977882800904445,1.0,417051.0
5.0,8.0,1.2970719191004452e-05,0.00026325349732271195,1.0,379862.0
5.0,9.0,1.3122673657087003e-05,0.0002680375895915643,1.0,373082.0
5.5,1.0,3.7916666666666666e-06,8.2e-05,1.0,500000.0
5.5,2.0,3.854166666666667e-06,8.6e-05,1.0,500000.0
5.5,3.0,3.7916666666666666e-06,8.4e-05,1.0,500000.0
5.5,4.0,3.4791666666666667e-06,8e-05,1.0,500000.0
5.5,5.0,3.5833333333333335e-06,8.2e-05,1.0,500000.0
5.5,6.0,4e-06,8.4e-05,1.0,500000.0
5.5,7.0,3.75e-06,8e-05,1.0,500000.0
5.5,8.0,4e-06,8.4e-05,1.0,500000.0
5.5,9.0,3.0625e-06,6.6e-05,1.0,500000.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.06802839851024209 0.5586592178770949 1.0 179.0
3 1.0 2.0 0.06700608614232209 0.5617977528089888 1.0 178.0
4 1.0 3.0 0.06828034682080925 0.5780346820809249 1.0 173.0
5 1.0 4.0 0.06770833333333333 0.5882352941176471 1.0 170.0
6 1.0 5.0 0.06749260355029586 0.591715976331361 1.0 169.0
7 1.0 6.0 0.06902610441767068 0.6024096385542169 1.0 166.0
8 1.0 7.0 0.06940261044176707 0.6024096385542169 1.0 166.0
9 1.0 8.0 0.07376302083333333 0.625 1.0 160.0
10 1.0 9.0 0.07107142857142858 0.5714285714285714 1.0 175.0
11 1.5 1.0 0.04284090909090909 0.36363636363636365 1.0 275.0
12 1.5 2.0 0.04401137761377614 0.36900369003690037 1.0 271.0
13 1.5 3.0 0.043402777777777776 0.37037037037037035 1.0 270.0
14 1.5 4.0 0.04282837670384139 0.37174721189591076 1.0 269.0
15 1.5 5.0 0.04204963235294118 0.36764705882352944 1.0 272.0
16 1.5 6.0 0.04244987468671679 0.37593984962406013 1.0 266.0
17 1.5 7.0 0.047518260292164674 0.398406374501992 1.0 251.0
18 1.5 8.0 0.050067204301075266 0.4032258064516129 1.0 248.0
19 1.5 9.0 0.04997469635627531 0.4048582995951417 1.0 247.0
20 2.0 1.0 0.02255794701986755 0.22075055187637968 1.0 453.0
21 2.0 2.0 0.02337719298245614 0.21052631578947367 1.0 475.0
22 2.0 3.0 0.024647215865751335 0.2288329519450801 1.0 437.0
23 2.0 4.0 0.024647215865751335 0.2288329519450801 1.0 437.0
24 2.0 5.0 0.025014671361502348 0.2347417840375587 1.0 426.0
25 2.0 6.0 0.024703865336658352 0.24937655860349128 1.0 401.0
26 2.0 7.0 0.02598879018612521 0.25380710659898476 1.0 394.0
27 2.0 8.0 0.023205203442879498 0.2347417840375587 1.0 426.0
28 2.0 9.0 0.023393993635640414 0.2386634844868735 1.0 419.0
29 2.5 1.0 0.01200041203131438 0.12360939431396786 1.0 809.0
30 2.5 2.0 0.011361376292760541 0.11933174224343675 1.0 838.0
31 2.5 3.0 0.011204688731284477 0.1182033096926714 1.0 846.0
32 2.5 4.0 0.010789549653579677 0.11547344110854503 1.0 866.0
33 2.5 5.0 0.011593614718614718 0.12987012987012986 1.0 770.0
34 2.5 6.0 0.011728896103896104 0.12987012987012986 1.0 770.0
35 2.5 7.0 0.011996187363834423 0.13071895424836602 1.0 765.0
36 2.5 8.0 0.0113519885198852 0.12300123001230012 1.0 813.0
37 2.5 9.0 0.011123737373737374 0.12121212121212122 1.0 825.0
38 3.0 1.0 0.0047176742233417295 0.05037783375314862 1.0 1985.0
39 3.0 2.0 0.004651598401598402 0.04995004995004995 1.0 2002.0
40 3.0 3.0 0.004330632716049383 0.046296296296296294 1.0 2160.0
41 3.0 4.0 0.0037199164144689437 0.043233895373973194 1.0 2313.0
42 3.0 5.0 0.004561205744822979 0.050100200400801605 1.0 1996.0
43 3.0 6.0 0.004552738927738928 0.04995004995004995 1.0 2002.0
44 3.0 7.0 0.003961131696773198 0.04631773969430292 1.0 2159.0
45 3.0 8.0 0.004373208565166076 0.05058168942842691 1.0 1977.0
46 3.0 9.0 0.0038108570539741797 0.04666355576294914 1.0 2143.0
47 3.5 1.0 0.0010133162669541003 0.013473457289140393 1.0 7422.0
48 3.5 2.0 0.0009449414136323547 0.012599218848431397 1.0 7937.0
49 3.5 3.0 0.0009872047661451046 0.012721027859051012 1.0 7861.0
50 3.5 4.0 0.0009733956306536951 0.012800819252432157 1.0 7812.0
51 3.5 5.0 0.0009292584389483615 0.012304663467454164 1.0 8127.0
52 3.5 6.0 0.001003106393994305 0.012943308309603935 1.0 7726.0
53 3.5 7.0 0.0010066526610644257 0.013130252100840336 1.0 7616.0
54 3.5 8.0 0.0010280622340951816 0.014841199168892847 1.0 6738.0
55 3.5 9.0 0.0009964826444671632 0.014604936468526362 1.0 6847.0
56 4.0 1.0 0.0002914550310885367 0.004378667133724494 1.0 22838.0
57 4.0 2.0 0.0002750034321801208 0.004118616144975288 1.0 24280.0
58 4.0 3.0 0.0002702582632389527 0.003948979188879675 1.0 25323.0
59 4.0 4.0 0.00028869493824516313 0.004283572499464553 1.0 23345.0
60 4.0 5.0 0.00028656821378340364 0.004219409282700422 1.0 23700.0
61 4.0 6.0 0.00027946301116802416 0.004198505332101771 1.0 23818.0
62 4.0 7.0 0.00028319391479066715 0.004100545372534547 1.0 24387.0
63 4.0 8.0 0.00027695834291114344 0.0038311240517967973 1.0 26102.0
64 4.0 9.0 0.0002824165029469548 0.003929273084479371 1.0 25450.0
65 4.5 1.0 6.428915346231288e-05 0.0010942834631883043 1.0 91384.0
66 4.5 2.0 5.782962888464246e-05 0.0010057326762546515 1.0 99430.0
67 4.5 3.0 5.719542825989603e-05 0.0009735392044237621 1.0 102718.0
68 4.5 4.0 5.791236052007138e-05 0.0009805267389641715 1.0 101986.0
69 4.5 5.0 5.8317923779750656e-05 0.001021627861835048 1.0 97883.0
70 4.5 6.0 5.397993992669587e-05 0.0010023354415788787 1.0 99767.0
71 4.5 7.0 5.4212825609930704e-05 0.0009989311436762664 1.0 100107.0
72 4.5 8.0 5.6484106964212285e-05 0.0009206238146968386 1.0 108622.0
73 4.5 9.0 5.6550106916880344e-05 0.0009392405301073552 1.0 106469.0
74 5.0 1.0 1.307838765761879e-05 0.0002583385216319761 1.0 387089.0
75 5.0 2.0 1.1166561109677621e-05 0.00023457108676784499 1.0 426310.0
76 5.0 3.0 1.0957289385278553e-05 0.00022719217731895054 1.0 440156.0
77 5.0 4.0 1.0601997742590019e-05 0.00021747687677107732 1.0 459819.0
78 5.0 5.0 1.0609838111515777e-05 0.0002171736585726044 1.0 460461.0
79 5.0 6.0 1.1628960520589125e-05 0.00024269134999490349 1.0 412046.0
80 5.0 7.0 1.1514379136684323e-05 0.00023977882800904445 1.0 417051.0
81 5.0 8.0 1.2970719191004452e-05 0.00026325349732271195 1.0 379862.0
82 5.0 9.0 1.3122673657087003e-05 0.0002680375895915643 1.0 373082.0
83 5.5 1.0 3.7916666666666666e-06 8.2e-05 1.0 500000.0
84 5.5 2.0 3.854166666666667e-06 8.6e-05 1.0 500000.0
85 5.5 3.0 3.7916666666666666e-06 8.4e-05 1.0 500000.0
86 5.5 4.0 3.4791666666666667e-06 8e-05 1.0 500000.0
87 5.5 5.0 3.5833333333333335e-06 8.2e-05 1.0 500000.0
88 5.5 6.0 4e-06 8.4e-05 1.0 500000.0
89 5.5 7.0 3.75e-06 8e-05 1.0 500000.0
90 5.5 8.0 4e-06 8.4e-05 1.0 500000.0
91 5.5 9.0 3.0625e-06 6.6e-05 1.0 500000.0

View File

@@ -0,0 +1,11 @@
{
"duration": 237.38844839399098,
"name": "ber_2d_963965",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 05:11:11.828781"
}

View File

@@ -0,0 +1,91 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.15556711758584807,0.8064516129032258,1.0,124.0
1.0,2.0,0.15578284815106216,0.8130081300813008,1.0,123.0
1.0,3.0,0.15106215578284815,0.8130081300813008,1.0,123.0
1.0,4.0,0.15237345921846315,0.8130081300813008,1.0,123.0
1.0,5.0,0.15415124272871497,0.819672131147541,1.0,122.0
1.0,6.0,0.15415124272871497,0.819672131147541,1.0,122.0
1.0,7.0,0.1570597567424643,0.819672131147541,1.0,122.0
1.0,8.0,0.11884550084889643,0.7518796992481203,1.0,133.0
1.0,9.0,0.11908804268736357,0.7518796992481203,1.0,133.0
1.5,1.0,0.12004608294930876,0.7142857142857143,1.0,140.0
1.5,2.0,0.1067330591037021,0.6711409395973155,1.0,149.0
1.5,3.0,0.10586707079454427,0.6711409395973155,1.0,149.0
1.5,4.0,0.10651656202641265,0.6711409395973155,1.0,149.0
1.5,5.0,0.10527462946817785,0.6756756756756757,1.0,148.0
1.5,6.0,0.10621022602589422,0.6802721088435374,1.0,147.0
1.5,7.0,0.11813426329555361,0.6756756756756757,1.0,148.0
1.5,8.0,0.11766071014156416,0.7194244604316546,1.0,139.0
1.5,9.0,0.11560943927256982,0.6711409395973155,1.0,149.0
2.0,1.0,0.0959874114870181,0.6097560975609756,1.0,164.0
2.0,2.0,0.09500393391030684,0.6097560975609756,1.0,164.0
2.0,3.0,0.09737156511350059,0.6172839506172839,1.0,162.0
2.0,4.0,0.09575336872192731,0.6329113924050633,1.0,158.0
2.0,5.0,0.09698097601323408,0.6410256410256411,1.0,156.0
2.0,6.0,0.09444228527011271,0.6024096385542169,1.0,166.0
2.0,7.0,0.10288846721484293,0.6535947712418301,1.0,153.0
2.0,8.0,0.0940536338904003,0.6024096385542169,1.0,166.0
2.0,9.0,0.0959874114870181,0.6097560975609756,1.0,164.0
2.5,1.0,0.06875662577616234,0.4694835680751174,1.0,213.0
2.5,2.0,0.07363621009964533,0.5235602094240838,1.0,191.0
2.5,3.0,0.07721345229924502,0.5319148936170213,1.0,188.0
2.5,4.0,0.0742447516641065,0.5291005291005291,1.0,189.0
2.5,5.0,0.07572156196943973,0.5263157894736842,1.0,190.0
2.5,6.0,0.0766562608394034,0.5376344086021505,1.0,186.0
2.5,7.0,0.08090391581852682,0.5347593582887701,1.0,187.0
2.5,8.0,0.07627688172043011,0.5208333333333334,1.0,192.0
2.5,9.0,0.07927247769389156,0.5319148936170213,1.0,188.0
3.0,1.0,0.06048387096774194,0.4166666666666667,1.0,240.0
3.0,2.0,0.058726220016542596,0.42735042735042733,1.0,234.0
3.0,3.0,0.06290322580645161,0.4166666666666667,1.0,240.0
3.0,4.0,0.053249525616698296,0.36764705882352944,1.0,272.0
3.0,5.0,0.051949734421557196,0.40160642570281124,1.0,249.0
3.0,6.0,0.052618667974978536,0.38022813688212925,1.0,263.0
3.0,7.0,0.051319648093841645,0.3787878787878788,1.0,264.0
3.0,8.0,0.05259194175975901,0.38910505836575876,1.0,257.0
3.0,9.0,0.05203312322333457,0.3831417624521073,1.0,261.0
3.5,1.0,0.036015395894428155,0.2840909090909091,1.0,352.0
3.5,2.0,0.027707808564231738,0.2518891687657431,1.0,397.0
3.5,3.0,0.03468208092485549,0.28901734104046245,1.0,346.0
3.5,4.0,0.03369175627240143,0.24691358024691357,1.0,405.0
3.5,5.0,0.037666602279312345,0.2994011976047904,1.0,334.0
3.5,6.0,0.04340900039824771,0.30864197530864196,1.0,324.0
3.5,7.0,0.04017415396793984,0.3067484662576687,1.0,326.0
3.5,8.0,0.039967539054574966,0.31446540880503143,1.0,318.0
3.5,9.0,0.03776798236826287,0.3105590062111801,1.0,322.0
4.0,1.0,0.02661290322580645,0.22727272727272727,1.0,440.0
4.0,2.0,0.021980633279866928,0.1841620626151013,1.0,543.0
4.0,3.0,0.027336059366954414,0.2347417840375587,1.0,426.0
4.0,4.0,0.021116724964373623,0.20080321285140562,1.0,498.0
4.0,5.0,0.020327912556651558,0.2066115702479339,1.0,484.0
4.0,6.0,0.023510114816839803,0.211864406779661,1.0,472.0
4.0,7.0,0.027638771267995996,0.2386634844868735,1.0,419.0
4.0,8.0,0.02800179211469534,0.23148148148148148,1.0,432.0
4.0,9.0,0.01852991873922679,0.19083969465648856,1.0,524.0
4.5,1.0,0.015221912474003275,0.13717421124828533,1.0,729.0
4.5,2.0,0.01072844310288395,0.11273957158962795,1.0,887.0
4.5,3.0,0.011425524622005561,0.1180637544273908,1.0,847.0
4.5,4.0,0.010934937124111536,0.11299435028248588,1.0,885.0
4.5,5.0,0.013650767855691883,0.12594458438287154,1.0,794.0
4.5,6.0,0.0112350992116388,0.1180637544273908,1.0,847.0
4.5,7.0,0.011014948859166011,0.11614401858304298,1.0,861.0
4.5,8.0,0.014099551377910703,0.13245033112582782,1.0,755.0
4.5,9.0,0.010456619161048085,0.1251564455569462,1.0,799.0
5.0,1.0,0.008647906657515443,0.0851063829787234,1.0,1175.0
5.0,2.0,0.007123864947574375,0.07776049766718507,1.0,1286.0
5.0,3.0,0.008838923306985687,0.08278145695364239,1.0,1208.0
5.0,4.0,0.006824372759856631,0.08888888888888889,1.0,1125.0
5.0,5.0,0.009216589861751152,0.08453085376162299,1.0,1183.0
5.0,6.0,0.008640069337233552,0.08396305625524769,1.0,1191.0
5.0,7.0,0.007877291764901673,0.08598452278589853,1.0,1163.0
5.0,8.0,0.006683375104427736,0.0835421888053467,1.0,1197.0
5.0,9.0,0.006113939269908675,0.07930214115781126,1.0,1261.0
5.5,1.0,0.0032945070730412518,0.0484027105517909,1.0,2066.0
5.5,2.0,0.0038000337780780273,0.05235602094240838,1.0,1910.0
5.5,3.0,0.003721424774056353,0.0531632110579479,1.0,1881.0
5.5,4.0,0.0038782915543127267,0.05159958720330237,1.0,1938.0
5.5,5.0,0.0037959352475481507,0.045787545787545784,1.0,2184.0
5.5,6.0,0.003340032677375978,0.04482294935006723,1.0,2231.0
5.5,7.0,0.003154893703237384,0.04486316733961418,1.0,2229.0
5.5,8.0,0.003037117452440033,0.04006410256410257,1.0,2496.0
5.5,9.0,0.003275750631646983,0.04553734061930783,1.0,2196.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.15556711758584807 0.8064516129032258 1.0 124.0
3 1.0 2.0 0.15578284815106216 0.8130081300813008 1.0 123.0
4 1.0 3.0 0.15106215578284815 0.8130081300813008 1.0 123.0
5 1.0 4.0 0.15237345921846315 0.8130081300813008 1.0 123.0
6 1.0 5.0 0.15415124272871497 0.819672131147541 1.0 122.0
7 1.0 6.0 0.15415124272871497 0.819672131147541 1.0 122.0
8 1.0 7.0 0.1570597567424643 0.819672131147541 1.0 122.0
9 1.0 8.0 0.11884550084889643 0.7518796992481203 1.0 133.0
10 1.0 9.0 0.11908804268736357 0.7518796992481203 1.0 133.0
11 1.5 1.0 0.12004608294930876 0.7142857142857143 1.0 140.0
12 1.5 2.0 0.1067330591037021 0.6711409395973155 1.0 149.0
13 1.5 3.0 0.10586707079454427 0.6711409395973155 1.0 149.0
14 1.5 4.0 0.10651656202641265 0.6711409395973155 1.0 149.0
15 1.5 5.0 0.10527462946817785 0.6756756756756757 1.0 148.0
16 1.5 6.0 0.10621022602589422 0.6802721088435374 1.0 147.0
17 1.5 7.0 0.11813426329555361 0.6756756756756757 1.0 148.0
18 1.5 8.0 0.11766071014156416 0.7194244604316546 1.0 139.0
19 1.5 9.0 0.11560943927256982 0.6711409395973155 1.0 149.0
20 2.0 1.0 0.0959874114870181 0.6097560975609756 1.0 164.0
21 2.0 2.0 0.09500393391030684 0.6097560975609756 1.0 164.0
22 2.0 3.0 0.09737156511350059 0.6172839506172839 1.0 162.0
23 2.0 4.0 0.09575336872192731 0.6329113924050633 1.0 158.0
24 2.0 5.0 0.09698097601323408 0.6410256410256411 1.0 156.0
25 2.0 6.0 0.09444228527011271 0.6024096385542169 1.0 166.0
26 2.0 7.0 0.10288846721484293 0.6535947712418301 1.0 153.0
27 2.0 8.0 0.0940536338904003 0.6024096385542169 1.0 166.0
28 2.0 9.0 0.0959874114870181 0.6097560975609756 1.0 164.0
29 2.5 1.0 0.06875662577616234 0.4694835680751174 1.0 213.0
30 2.5 2.0 0.07363621009964533 0.5235602094240838 1.0 191.0
31 2.5 3.0 0.07721345229924502 0.5319148936170213 1.0 188.0
32 2.5 4.0 0.0742447516641065 0.5291005291005291 1.0 189.0
33 2.5 5.0 0.07572156196943973 0.5263157894736842 1.0 190.0
34 2.5 6.0 0.0766562608394034 0.5376344086021505 1.0 186.0
35 2.5 7.0 0.08090391581852682 0.5347593582887701 1.0 187.0
36 2.5 8.0 0.07627688172043011 0.5208333333333334 1.0 192.0
37 2.5 9.0 0.07927247769389156 0.5319148936170213 1.0 188.0
38 3.0 1.0 0.06048387096774194 0.4166666666666667 1.0 240.0
39 3.0 2.0 0.058726220016542596 0.42735042735042733 1.0 234.0
40 3.0 3.0 0.06290322580645161 0.4166666666666667 1.0 240.0
41 3.0 4.0 0.053249525616698296 0.36764705882352944 1.0 272.0
42 3.0 5.0 0.051949734421557196 0.40160642570281124 1.0 249.0
43 3.0 6.0 0.052618667974978536 0.38022813688212925 1.0 263.0
44 3.0 7.0 0.051319648093841645 0.3787878787878788 1.0 264.0
45 3.0 8.0 0.05259194175975901 0.38910505836575876 1.0 257.0
46 3.0 9.0 0.05203312322333457 0.3831417624521073 1.0 261.0
47 3.5 1.0 0.036015395894428155 0.2840909090909091 1.0 352.0
48 3.5 2.0 0.027707808564231738 0.2518891687657431 1.0 397.0
49 3.5 3.0 0.03468208092485549 0.28901734104046245 1.0 346.0
50 3.5 4.0 0.03369175627240143 0.24691358024691357 1.0 405.0
51 3.5 5.0 0.037666602279312345 0.2994011976047904 1.0 334.0
52 3.5 6.0 0.04340900039824771 0.30864197530864196 1.0 324.0
53 3.5 7.0 0.04017415396793984 0.3067484662576687 1.0 326.0
54 3.5 8.0 0.039967539054574966 0.31446540880503143 1.0 318.0
55 3.5 9.0 0.03776798236826287 0.3105590062111801 1.0 322.0
56 4.0 1.0 0.02661290322580645 0.22727272727272727 1.0 440.0
57 4.0 2.0 0.021980633279866928 0.1841620626151013 1.0 543.0
58 4.0 3.0 0.027336059366954414 0.2347417840375587 1.0 426.0
59 4.0 4.0 0.021116724964373623 0.20080321285140562 1.0 498.0
60 4.0 5.0 0.020327912556651558 0.2066115702479339 1.0 484.0
61 4.0 6.0 0.023510114816839803 0.211864406779661 1.0 472.0
62 4.0 7.0 0.027638771267995996 0.2386634844868735 1.0 419.0
63 4.0 8.0 0.02800179211469534 0.23148148148148148 1.0 432.0
64 4.0 9.0 0.01852991873922679 0.19083969465648856 1.0 524.0
65 4.5 1.0 0.015221912474003275 0.13717421124828533 1.0 729.0
66 4.5 2.0 0.01072844310288395 0.11273957158962795 1.0 887.0
67 4.5 3.0 0.011425524622005561 0.1180637544273908 1.0 847.0
68 4.5 4.0 0.010934937124111536 0.11299435028248588 1.0 885.0
69 4.5 5.0 0.013650767855691883 0.12594458438287154 1.0 794.0
70 4.5 6.0 0.0112350992116388 0.1180637544273908 1.0 847.0
71 4.5 7.0 0.011014948859166011 0.11614401858304298 1.0 861.0
72 4.5 8.0 0.014099551377910703 0.13245033112582782 1.0 755.0
73 4.5 9.0 0.010456619161048085 0.1251564455569462 1.0 799.0
74 5.0 1.0 0.008647906657515443 0.0851063829787234 1.0 1175.0
75 5.0 2.0 0.007123864947574375 0.07776049766718507 1.0 1286.0
76 5.0 3.0 0.008838923306985687 0.08278145695364239 1.0 1208.0
77 5.0 4.0 0.006824372759856631 0.08888888888888889 1.0 1125.0
78 5.0 5.0 0.009216589861751152 0.08453085376162299 1.0 1183.0
79 5.0 6.0 0.008640069337233552 0.08396305625524769 1.0 1191.0
80 5.0 7.0 0.007877291764901673 0.08598452278589853 1.0 1163.0
81 5.0 8.0 0.006683375104427736 0.0835421888053467 1.0 1197.0
82 5.0 9.0 0.006113939269908675 0.07930214115781126 1.0 1261.0
83 5.5 1.0 0.0032945070730412518 0.0484027105517909 1.0 2066.0
84 5.5 2.0 0.0038000337780780273 0.05235602094240838 1.0 1910.0
85 5.5 3.0 0.003721424774056353 0.0531632110579479 1.0 1881.0
86 5.5 4.0 0.0038782915543127267 0.05159958720330237 1.0 1938.0
87 5.5 5.0 0.0037959352475481507 0.045787545787545784 1.0 2184.0
88 5.5 6.0 0.003340032677375978 0.04482294935006723 1.0 2231.0
89 5.5 7.0 0.003154893703237384 0.04486316733961418 1.0 2229.0
90 5.5 8.0 0.003037117452440033 0.04006410256410257 1.0 2496.0
91 5.5 9.0 0.003275750631646983 0.04553734061930783 1.0 2196.0

View File

@@ -0,0 +1,11 @@
{
"duration": 7.9043709189863876,
"name": "ber_2d_bch_31_11",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 05:40:11.757944"
}

View File

@@ -0,0 +1,91 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.0765838941749826,0.7194244604316546,1.0,139.0
1.0,2.0,0.07797632861452773,0.7194244604316546,1.0,139.0
1.0,3.0,0.07635182176839174,0.7194244604316546,1.0,139.0
1.0,4.0,0.07635182176839174,0.7194244604316546,1.0,139.0
1.0,5.0,0.07704803898816431,0.7194244604316546,1.0,139.0
1.0,6.0,0.0765838941749826,0.7194244604316546,1.0,139.0
1.0,7.0,0.07526881720430108,0.7246376811594203,1.0,138.0
1.0,8.0,0.0688460705780472,0.6711409395973155,1.0,149.0
1.0,9.0,0.07101104135094176,0.6711409395973155,1.0,149.0
1.5,1.0,0.06106715358084804,0.6289308176100629,1.0,159.0
1.5,2.0,0.05985455901547641,0.5780346820809249,1.0,173.0
1.5,3.0,0.06391129032258064,0.625,1.0,160.0
1.5,4.0,0.06431451612903226,0.625,1.0,160.0
1.5,5.0,0.06391129032258064,0.625,1.0,160.0
1.5,6.0,0.05888068402642829,0.6024096385542169,1.0,166.0
1.5,7.0,0.06451612903225806,0.6289308176100629,1.0,159.0
1.5,8.0,0.05672969966629588,0.5747126436781609,1.0,174.0
1.5,9.0,0.052594670406732116,0.5434782608695652,1.0,184.0
2.0,1.0,0.04431715405486886,0.4672897196261682,1.0,214.0
2.0,2.0,0.04528535980148883,0.4807692307692308,1.0,208.0
2.0,3.0,0.046892210857592445,0.4878048780487805,1.0,205.0
2.0,4.0,0.046370967741935484,0.4807692307692308,1.0,208.0
2.0,5.0,0.04594807238394965,0.4878048780487805,1.0,205.0
2.0,6.0,0.04606079404466501,0.4807692307692308,1.0,208.0
2.0,7.0,0.04262151510728361,0.45248868778280543,1.0,221.0
2.0,8.0,0.0433560224918615,0.45871559633027525,1.0,218.0
2.0,9.0,0.04320804971885173,0.45871559633027525,1.0,218.0
2.5,1.0,0.03214285714285714,0.35714285714285715,1.0,280.0
2.5,2.0,0.031586021505376344,0.3472222222222222,1.0,288.0
2.5,3.0,0.03261385199240987,0.36764705882352944,1.0,272.0
2.5,4.0,0.03146016186025305,0.35335689045936397,1.0,283.0
2.5,5.0,0.03494623655913978,0.3968253968253968,1.0,252.0
2.5,6.0,0.031329774889765606,0.3597122302158273,1.0,278.0
2.5,7.0,0.03225806451612903,0.36900369003690037,1.0,271.0
2.5,8.0,0.03225806451612903,0.3597122302158273,1.0,278.0
2.5,9.0,0.03381123058542413,0.37037037037037035,1.0,270.0
3.0,1.0,0.023177376113465365,0.2680965147453083,1.0,373.0
3.0,2.0,0.023579943899018234,0.2717391304347826,1.0,368.0
3.0,3.0,0.01829222011385199,0.23529411764705882,1.0,425.0
3.0,4.0,0.022970395555186998,0.2570694087403599,1.0,389.0
3.0,5.0,0.02275042444821732,0.2631578947368421,1.0,380.0
3.0,6.0,0.02424016408726459,0.28901734104046245,1.0,346.0
3.0,7.0,0.022255563890972743,0.25839793281653745,1.0,387.0
3.0,8.0,0.022693678810538215,0.2695417789757412,1.0,371.0
3.0,9.0,0.02211731794737302,0.27100271002710025,1.0,369.0
3.5,1.0,0.015180265654648957,0.18975332068311196,1.0,527.0
3.5,2.0,0.014202748548099591,0.17825311942959002,1.0,561.0
3.5,3.0,0.01548874931398256,0.1890359168241966,1.0,529.0
3.5,4.0,0.014476233899464265,0.17667844522968199,1.0,566.0
3.5,5.0,0.014599803797103121,0.17889087656529518,1.0,559.0
3.5,6.0,0.014198091776465242,0.176056338028169,1.0,568.0
3.5,7.0,0.013418040418423791,0.1697792869269949,1.0,589.0
3.5,8.0,0.013188987195691598,0.17035775127768313,1.0,587.0
3.5,9.0,0.014832680132649986,0.18691588785046728,1.0,535.0
4.0,1.0,0.008501854313903856,0.10845986984815618,1.0,922.0
4.0,2.0,0.008831245612090307,0.1145475372279496,1.0,873.0
4.0,3.0,0.008442677735955254,0.10905125408942203,1.0,917.0
4.0,4.0,0.009464941085570795,0.11976047904191617,1.0,835.0
4.0,5.0,0.009556500370558177,0.12091898428053205,1.0,827.0
4.0,6.0,0.009843453510436433,0.12254901960784313,1.0,816.0
4.0,7.0,0.009836718438868977,0.12345679012345678,1.0,810.0
4.0,8.0,0.008116545265348595,0.10752688172043011,1.0,930.0
4.0,9.0,0.009953231802374386,0.12391573729863693,1.0,807.0
4.5,1.0,0.005267482775331325,0.06531678641410843,1.0,1531.0
4.5,2.0,0.005180586433994714,0.06501950585175553,1.0,1538.0
4.5,3.0,0.0047245657568238215,0.06153846153846154,1.0,1625.0
4.5,4.0,0.004139697240786542,0.054377379010331704,1.0,1839.0
4.5,5.0,0.004997156090030064,0.06297229219143577,1.0,1588.0
4.5,6.0,0.004663816556548776,0.06341154090044387,1.0,1577.0
4.5,7.0,0.004071238002841204,0.05370569280343716,1.0,1862.0
4.5,8.0,0.004468241548990404,0.058445353594389245,1.0,1711.0
4.5,9.0,0.0050808613681570525,0.06702412868632708,1.0,1492.0
5.0,1.0,0.001946607341490545,0.027808676307007785,1.0,3596.0
5.0,2.0,0.001905760993093802,0.02710027100271003,1.0,3690.0
5.0,3.0,0.0020369719420634705,0.02794076557697681,1.0,3579.0
5.0,4.0,0.00206887164829182,0.02812939521800281,1.0,3555.0
5.0,5.0,0.001952748514486377,0.025980774227071967,1.0,3849.0
5.0,6.0,0.002093848292004974,0.02834467120181406,1.0,3528.0
5.0,7.0,0.002050986812514618,0.02788622420524261,1.0,3586.0
5.0,8.0,0.0022568160646889916,0.02977076510866329,1.0,3359.0
5.0,9.0,0.0024057902765123205,0.031735956839098696,1.0,3151.0
5.5,1.0,0.0010411933969407844,0.014671361502347418,1.0,6816.0
5.5,2.0,0.0009072175637320338,0.013392259274139548,1.0,7467.0
5.5,3.0,0.001011999421714616,0.014457134595923089,1.0,6917.0
5.5,4.0,0.0009221491651333256,0.013296104241457253,1.0,7521.0
5.5,5.0,0.001004071051718787,0.014148273910582909,1.0,7068.0
5.5,6.0,0.0008670412835514011,0.012799180852425445,1.0,7813.0
5.5,7.0,0.0008713844910398943,0.013049719431032232,1.0,7663.0
5.5,8.0,0.0009384784704507257,0.013224014810896589,1.0,7562.0
5.5,9.0,0.0008598486038257373,0.012171372930866602,1.0,8216.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.0765838941749826 0.7194244604316546 1.0 139.0
3 1.0 2.0 0.07797632861452773 0.7194244604316546 1.0 139.0
4 1.0 3.0 0.07635182176839174 0.7194244604316546 1.0 139.0
5 1.0 4.0 0.07635182176839174 0.7194244604316546 1.0 139.0
6 1.0 5.0 0.07704803898816431 0.7194244604316546 1.0 139.0
7 1.0 6.0 0.0765838941749826 0.7194244604316546 1.0 139.0
8 1.0 7.0 0.07526881720430108 0.7246376811594203 1.0 138.0
9 1.0 8.0 0.0688460705780472 0.6711409395973155 1.0 149.0
10 1.0 9.0 0.07101104135094176 0.6711409395973155 1.0 149.0
11 1.5 1.0 0.06106715358084804 0.6289308176100629 1.0 159.0
12 1.5 2.0 0.05985455901547641 0.5780346820809249 1.0 173.0
13 1.5 3.0 0.06391129032258064 0.625 1.0 160.0
14 1.5 4.0 0.06431451612903226 0.625 1.0 160.0
15 1.5 5.0 0.06391129032258064 0.625 1.0 160.0
16 1.5 6.0 0.05888068402642829 0.6024096385542169 1.0 166.0
17 1.5 7.0 0.06451612903225806 0.6289308176100629 1.0 159.0
18 1.5 8.0 0.05672969966629588 0.5747126436781609 1.0 174.0
19 1.5 9.0 0.052594670406732116 0.5434782608695652 1.0 184.0
20 2.0 1.0 0.04431715405486886 0.4672897196261682 1.0 214.0
21 2.0 2.0 0.04528535980148883 0.4807692307692308 1.0 208.0
22 2.0 3.0 0.046892210857592445 0.4878048780487805 1.0 205.0
23 2.0 4.0 0.046370967741935484 0.4807692307692308 1.0 208.0
24 2.0 5.0 0.04594807238394965 0.4878048780487805 1.0 205.0
25 2.0 6.0 0.04606079404466501 0.4807692307692308 1.0 208.0
26 2.0 7.0 0.04262151510728361 0.45248868778280543 1.0 221.0
27 2.0 8.0 0.0433560224918615 0.45871559633027525 1.0 218.0
28 2.0 9.0 0.04320804971885173 0.45871559633027525 1.0 218.0
29 2.5 1.0 0.03214285714285714 0.35714285714285715 1.0 280.0
30 2.5 2.0 0.031586021505376344 0.3472222222222222 1.0 288.0
31 2.5 3.0 0.03261385199240987 0.36764705882352944 1.0 272.0
32 2.5 4.0 0.03146016186025305 0.35335689045936397 1.0 283.0
33 2.5 5.0 0.03494623655913978 0.3968253968253968 1.0 252.0
34 2.5 6.0 0.031329774889765606 0.3597122302158273 1.0 278.0
35 2.5 7.0 0.03225806451612903 0.36900369003690037 1.0 271.0
36 2.5 8.0 0.03225806451612903 0.3597122302158273 1.0 278.0
37 2.5 9.0 0.03381123058542413 0.37037037037037035 1.0 270.0
38 3.0 1.0 0.023177376113465365 0.2680965147453083 1.0 373.0
39 3.0 2.0 0.023579943899018234 0.2717391304347826 1.0 368.0
40 3.0 3.0 0.01829222011385199 0.23529411764705882 1.0 425.0
41 3.0 4.0 0.022970395555186998 0.2570694087403599 1.0 389.0
42 3.0 5.0 0.02275042444821732 0.2631578947368421 1.0 380.0
43 3.0 6.0 0.02424016408726459 0.28901734104046245 1.0 346.0
44 3.0 7.0 0.022255563890972743 0.25839793281653745 1.0 387.0
45 3.0 8.0 0.022693678810538215 0.2695417789757412 1.0 371.0
46 3.0 9.0 0.02211731794737302 0.27100271002710025 1.0 369.0
47 3.5 1.0 0.015180265654648957 0.18975332068311196 1.0 527.0
48 3.5 2.0 0.014202748548099591 0.17825311942959002 1.0 561.0
49 3.5 3.0 0.01548874931398256 0.1890359168241966 1.0 529.0
50 3.5 4.0 0.014476233899464265 0.17667844522968199 1.0 566.0
51 3.5 5.0 0.014599803797103121 0.17889087656529518 1.0 559.0
52 3.5 6.0 0.014198091776465242 0.176056338028169 1.0 568.0
53 3.5 7.0 0.013418040418423791 0.1697792869269949 1.0 589.0
54 3.5 8.0 0.013188987195691598 0.17035775127768313 1.0 587.0
55 3.5 9.0 0.014832680132649986 0.18691588785046728 1.0 535.0
56 4.0 1.0 0.008501854313903856 0.10845986984815618 1.0 922.0
57 4.0 2.0 0.008831245612090307 0.1145475372279496 1.0 873.0
58 4.0 3.0 0.008442677735955254 0.10905125408942203 1.0 917.0
59 4.0 4.0 0.009464941085570795 0.11976047904191617 1.0 835.0
60 4.0 5.0 0.009556500370558177 0.12091898428053205 1.0 827.0
61 4.0 6.0 0.009843453510436433 0.12254901960784313 1.0 816.0
62 4.0 7.0 0.009836718438868977 0.12345679012345678 1.0 810.0
63 4.0 8.0 0.008116545265348595 0.10752688172043011 1.0 930.0
64 4.0 9.0 0.009953231802374386 0.12391573729863693 1.0 807.0
65 4.5 1.0 0.005267482775331325 0.06531678641410843 1.0 1531.0
66 4.5 2.0 0.005180586433994714 0.06501950585175553 1.0 1538.0
67 4.5 3.0 0.0047245657568238215 0.06153846153846154 1.0 1625.0
68 4.5 4.0 0.004139697240786542 0.054377379010331704 1.0 1839.0
69 4.5 5.0 0.004997156090030064 0.06297229219143577 1.0 1588.0
70 4.5 6.0 0.004663816556548776 0.06341154090044387 1.0 1577.0
71 4.5 7.0 0.004071238002841204 0.05370569280343716 1.0 1862.0
72 4.5 8.0 0.004468241548990404 0.058445353594389245 1.0 1711.0
73 4.5 9.0 0.0050808613681570525 0.06702412868632708 1.0 1492.0
74 5.0 1.0 0.001946607341490545 0.027808676307007785 1.0 3596.0
75 5.0 2.0 0.001905760993093802 0.02710027100271003 1.0 3690.0
76 5.0 3.0 0.0020369719420634705 0.02794076557697681 1.0 3579.0
77 5.0 4.0 0.00206887164829182 0.02812939521800281 1.0 3555.0
78 5.0 5.0 0.001952748514486377 0.025980774227071967 1.0 3849.0
79 5.0 6.0 0.002093848292004974 0.02834467120181406 1.0 3528.0
80 5.0 7.0 0.002050986812514618 0.02788622420524261 1.0 3586.0
81 5.0 8.0 0.0022568160646889916 0.02977076510866329 1.0 3359.0
82 5.0 9.0 0.0024057902765123205 0.031735956839098696 1.0 3151.0
83 5.5 1.0 0.0010411933969407844 0.014671361502347418 1.0 6816.0
84 5.5 2.0 0.0009072175637320338 0.013392259274139548 1.0 7467.0
85 5.5 3.0 0.001011999421714616 0.014457134595923089 1.0 6917.0
86 5.5 4.0 0.0009221491651333256 0.013296104241457253 1.0 7521.0
87 5.5 5.0 0.001004071051718787 0.014148273910582909 1.0 7068.0
88 5.5 6.0 0.0008670412835514011 0.012799180852425445 1.0 7813.0
89 5.5 7.0 0.0008713844910398943 0.013049719431032232 1.0 7663.0
90 5.5 8.0 0.0009384784704507257 0.013224014810896589 1.0 7562.0
91 5.5 9.0 0.0008598486038257373 0.012171372930866602 1.0 8216.0

View File

@@ -0,0 +1,11 @@
{
"duration": 3.1022358250047546,
"name": "ber_2d_bch_31_26",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 05:40:31.112140"
}

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@@ -0,0 +1,46 @@
SNR,mu,BER,FER,DFR,num_iterations
1.0,1.0,0.06912223578890246,0.8547008547008547,1.0,117.0
1.0,2.0,0.06871523538190205,0.8547008547008547,1.0,117.0
1.0,3.0,0.06785714285714285,0.8695652173913043,1.0,115.0
1.0,4.0,0.0679951690821256,0.8695652173913043,1.0,115.0
1.0,5.0,0.06808688387635756,0.8771929824561403,1.0,114.0
1.0,6.0,0.06812169312169312,0.8771929824561403,1.0,114.0
1.0,7.0,0.06818664965986394,0.8928571428571429,1.0,112.0
1.0,8.0,0.06794340924775708,0.8695652173913043,1.0,115.0
1.0,9.0,0.0666839199447895,0.8695652173913043,1.0,115.0
1.5,1.0,0.029565456545654567,0.49504950495049505,1.0,202.0
1.5,2.0,0.029304777466542174,0.49019607843137253,1.0,204.0
1.5,3.0,0.029367053620784966,0.4975124378109453,1.0,201.0
1.5,4.0,0.028281068524970965,0.4878048780487805,1.0,205.0
1.5,5.0,0.029083911621600064,0.5025125628140703,1.0,199.0
1.5,6.0,0.02992063492063492,0.5,1.0,200.0
1.5,7.0,0.029414171166748486,0.5154639175257731,1.0,194.0
1.5,8.0,0.031138867204440975,0.546448087431694,1.0,183.0
1.5,9.0,0.03171259140360264,0.5617977528089888,1.0,178.0
2.0,1.0,0.007062251984126984,0.15625,1.0,640.0
2.0,2.0,0.007008547008547009,0.15384615384615385,1.0,650.0
2.0,3.0,0.006956654456654457,0.15384615384615385,1.0,650.0
2.0,4.0,0.007274065540194573,0.16129032258064516,1.0,620.0
2.0,5.0,0.007325501944707243,0.16556291390728478,1.0,604.0
2.0,6.0,0.007328786923157784,0.16556291390728478,1.0,604.0
2.0,7.0,0.007500399488654522,0.16778523489932887,1.0,596.0
2.0,8.0,0.008829794544080258,0.21645021645021645,1.0,462.0
2.0,9.0,0.008962928605785748,0.21645021645021645,1.0,462.0
2.5,1.0,0.0011866261866261866,0.03465003465003465,1.0,2886.0
2.5,2.0,0.0009723923510097143,0.02679528403001072,1.0,3732.0
2.5,3.0,0.0009784149250024621,0.026975991367682764,1.0,3707.0
2.5,4.0,0.0010824673594457767,0.02997601918465228,1.0,3336.0
2.5,5.0,0.0010879326246298724,0.03058103975535168,1.0,3270.0
2.5,6.0,0.0010179755981994788,0.03109452736318408,1.0,3216.0
2.5,7.0,0.0011280041881877993,0.034002040122407345,1.0,2941.0
2.5,8.0,0.0010260238600135602,0.030293850348379277,1.0,3301.0
2.5,9.0,0.001154920634920635,0.032,1.0,3125.0
3.0,1.0,4.099206349206349e-05,0.00152,1.0,50000.0
3.0,2.0,3.472222222222222e-05,0.00114,1.0,50000.0
3.0,3.0,3.277777777777778e-05,0.00106,1.0,50000.0
3.0,4.0,3.345238095238095e-05,0.00106,1.0,50000.0
3.0,5.0,3.321428571428572e-05,0.00108,1.0,50000.0
3.0,6.0,3.107142857142857e-05,0.0011,1.0,50000.0
3.0,7.0,3.154761904761905e-05,0.0012,1.0,50000.0
3.0,8.0,3.5476190476190475e-05,0.00118,1.0,50000.0
3.0,9.0,3.650793650793651e-05,0.00132,1.0,50000.0
1 SNR mu BER FER DFR num_iterations
2 1.0 1.0 0.06912223578890246 0.8547008547008547 1.0 117.0
3 1.0 2.0 0.06871523538190205 0.8547008547008547 1.0 117.0
4 1.0 3.0 0.06785714285714285 0.8695652173913043 1.0 115.0
5 1.0 4.0 0.0679951690821256 0.8695652173913043 1.0 115.0
6 1.0 5.0 0.06808688387635756 0.8771929824561403 1.0 114.0
7 1.0 6.0 0.06812169312169312 0.8771929824561403 1.0 114.0
8 1.0 7.0 0.06818664965986394 0.8928571428571429 1.0 112.0
9 1.0 8.0 0.06794340924775708 0.8695652173913043 1.0 115.0
10 1.0 9.0 0.0666839199447895 0.8695652173913043 1.0 115.0
11 1.5 1.0 0.029565456545654567 0.49504950495049505 1.0 202.0
12 1.5 2.0 0.029304777466542174 0.49019607843137253 1.0 204.0
13 1.5 3.0 0.029367053620784966 0.4975124378109453 1.0 201.0
14 1.5 4.0 0.028281068524970965 0.4878048780487805 1.0 205.0
15 1.5 5.0 0.029083911621600064 0.5025125628140703 1.0 199.0
16 1.5 6.0 0.02992063492063492 0.5 1.0 200.0
17 1.5 7.0 0.029414171166748486 0.5154639175257731 1.0 194.0
18 1.5 8.0 0.031138867204440975 0.546448087431694 1.0 183.0
19 1.5 9.0 0.03171259140360264 0.5617977528089888 1.0 178.0
20 2.0 1.0 0.007062251984126984 0.15625 1.0 640.0
21 2.0 2.0 0.007008547008547009 0.15384615384615385 1.0 650.0
22 2.0 3.0 0.006956654456654457 0.15384615384615385 1.0 650.0
23 2.0 4.0 0.007274065540194573 0.16129032258064516 1.0 620.0
24 2.0 5.0 0.007325501944707243 0.16556291390728478 1.0 604.0
25 2.0 6.0 0.007328786923157784 0.16556291390728478 1.0 604.0
26 2.0 7.0 0.007500399488654522 0.16778523489932887 1.0 596.0
27 2.0 8.0 0.008829794544080258 0.21645021645021645 1.0 462.0
28 2.0 9.0 0.008962928605785748 0.21645021645021645 1.0 462.0
29 2.5 1.0 0.0011866261866261866 0.03465003465003465 1.0 2886.0
30 2.5 2.0 0.0009723923510097143 0.02679528403001072 1.0 3732.0
31 2.5 3.0 0.0009784149250024621 0.026975991367682764 1.0 3707.0
32 2.5 4.0 0.0010824673594457767 0.02997601918465228 1.0 3336.0
33 2.5 5.0 0.0010879326246298724 0.03058103975535168 1.0 3270.0
34 2.5 6.0 0.0010179755981994788 0.03109452736318408 1.0 3216.0
35 2.5 7.0 0.0011280041881877993 0.034002040122407345 1.0 2941.0
36 2.5 8.0 0.0010260238600135602 0.030293850348379277 1.0 3301.0
37 2.5 9.0 0.001154920634920635 0.032 1.0 3125.0
38 3.0 1.0 4.099206349206349e-05 0.00152 1.0 50000.0
39 3.0 2.0 3.472222222222222e-05 0.00114 1.0 50000.0
40 3.0 3.0 3.277777777777778e-05 0.00106 1.0 50000.0
41 3.0 4.0 3.345238095238095e-05 0.00106 1.0 50000.0
42 3.0 5.0 3.321428571428572e-05 0.00108 1.0 50000.0
43 3.0 6.0 3.107142857142857e-05 0.0011 1.0 50000.0
44 3.0 7.0 3.154761904761905e-05 0.0012 1.0 50000.0
45 3.0 8.0 3.5476190476190475e-05 0.00118 1.0 50000.0
46 3.0 9.0 3.650793650793651e-05 0.00132 1.0 50000.0

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@@ -0,0 +1,11 @@
{
"duration": 801.6169191169902,
"name": "ber_2d_pegreg252x504",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"rho": 1,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 08:35:05.910887"
}

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@@ -0,0 +1,6 @@
SNR,BER,FER,DFR,num_iterations
1.0,0.07218346834683469,1.0,0.0,101.0
1.3,0.04716241360978203,0.8859649122807017,0.0,114.0
1.6,0.016790859413810234,0.5519125683060109,0.0,183.0
1.9,0.002006491369768764,0.09970384995064166,0.0,1013.0
2.2,6e-05,0.0038,0.0,10000.0
1 SNR BER FER DFR num_iterations
2 1.0 0.07218346834683469 1.0 0.0 101.0
3 1.3 0.04716241360978203 0.8859649122807017 0.0 114.0
4 1.6 0.016790859413810234 0.5519125683060109 0.0 183.0
5 1.9 0.002006491369768764 0.09970384995064166 0.0 1013.0
6 2.2 6e-05 0.0038 0.0 10000.0

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@@ -0,0 +1,10 @@
{
"duration": 810.1076940880157,
"name": "ber_margulis264013203",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100,
"end_time": "2023-04-17 07:18:49.041714"
}

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@@ -0,0 +1,9 @@
SNR,FER
1.0,0.969806653628656
1.3,0.9405249454224117
1.6,0.5584933783543885
1.9,0.09435333882134775
2.2,0.0036591833235249784
2.5,2.5490595938421584e-05
2.8,3.2889674547887473e-08
3.0,2.590089428727302e-10
1 SNR FER
2 1.0 0.969806653628656
3 1.3 0.9405249454224117
4 1.6 0.5584933783543885
5 1.9 0.09435333882134775
6 2.2 0.0036591833235249784
7 2.5 2.5490595938421584e-05
8 2.8 3.2889674547887473e-08
9 3.0 2.590089428727302e-10

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@@ -0,0 +1,8 @@
n,k,fps,spf
96,48,39957.22228344159,2.5026764696163664e-05
204,102,10897.944489733865,9.176042334790976e-05
204,102,2753.9141569779777,0.000363119524792071
408,204,1234.4196037865486,0.0008100973096445708
31,11,6652.774843053966,0.00015031321870814262
31,26,44163.9539121079,2.264290018031746e-05
504,252,608.2730895165126,0.0016439984231340111
1 n k fps spf
2 96 48 39957.22228344159 2.5026764696163664e-05
3 204 102 10897.944489733865 9.176042334790976e-05
4 204 102 2753.9141569779777 0.000363119524792071
5 408 204 1234.4196037865486 0.0008100973096445708
6 31 11 6652.774843053966 0.00015031321870814262
7 31 26 44163.9539121079 2.264290018031746e-05
8 504 252 608.2730895165126 0.0016439984231340111

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@@ -0,0 +1,46 @@
SNR,mu,BER,FER,DFR,num_iterations,k_avg
1.0,1.0,0.0680686274509804,0.7,0.0,1000.0,159.337
1.0,2.0,0.06776960784313725,0.697,0.0,1000.0,158.357
1.0,3.0,0.06786764705882353,0.7,0.0,1000.0,160.46
1.0,4.0,0.06797058823529412,0.705,0.0,1000.0,163.171
1.0,5.0,0.06987254901960785,0.709,0.0,1000.0,168.513
1.0,6.0,0.06990686274509804,0.715,0.0,1000.0,171.169
1.0,7.0,0.07023039215686275,0.72,0.0,1000.0,173.464
1.0,8.0,0.07035294117647059,0.732,0.0,1000.0,175.54
1.0,9.0,0.07370098039215686,0.748,0.0,1000.0,177.747
2.0,1.0,0.018622549019607842,0.267,0.0,1000.0,90.384
2.0,2.0,0.018480392156862747,0.263,0.0,1000.0,84.444
2.0,3.0,0.018465686274509802,0.263,0.0,1000.0,85.536
2.0,4.0,0.016058823529411764,0.226,0.0,1000.0,80.878
2.0,5.0,0.01607843137254902,0.227,0.0,1000.0,84.524
2.0,6.0,0.016098039215686276,0.231,0.0,1000.0,88.419
2.0,7.0,0.017573529411764707,0.246,0.0,1000.0,94.727
2.0,8.0,0.01771078431372549,0.252,0.0,1000.0,98.781
2.0,9.0,0.016446078431372548,0.244,0.0,1000.0,99.976
3.0,1.0,0.0010098039215686275,0.019,0.0,1000.0,34.779
3.0,2.0,0.0008921568627450981,0.019,0.0,1000.0,27.968
3.0,3.0,0.0013970588235294118,0.022,0.0,1000.0,27.183
3.0,4.0,0.0008970588235294117,0.019,0.0,1000.0,27.557
3.0,5.0,0.0010294117647058824,0.022,0.0,1000.0,28.867
3.0,6.0,0.0009019607843137254,0.019,0.0,1000.0,30.563
3.0,7.0,0.000946078431372549,0.018,0.0,1000.0,32.267
3.0,8.0,0.0014313725490196078,0.024,0.0,1000.0,34.575
3.0,9.0,0.001068627450980392,0.022,0.0,1000.0,36.313
4.0,1.0,0.0,0.0,0.0,1000.0,20.374
4.0,2.0,0.0,0.0,0.0,1000.0,15.73
4.0,3.0,0.0,0.0,0.0,1000.0,14.642
4.0,4.0,0.0,0.0,0.0,1000.0,14.507
4.0,5.0,0.0,0.0,0.0,1000.0,14.566
4.0,6.0,0.0,0.0,0.0,1000.0,15.09
4.0,7.0,0.0,0.0,0.0,1000.0,15.607
4.0,8.0,0.0,0.0,0.0,1000.0,16.109
4.0,9.0,0.0,0.0,0.0,1000.0,16.948
5.0,1.0,0.0,0.0,0.0,1000.0,15.802
5.0,2.0,0.0,0.0,0.0,1000.0,11.95
5.0,3.0,0.0,0.0,0.0,1000.0,11.017
5.0,4.0,0.0,0.0,0.0,1000.0,10.8
5.0,5.0,0.0,0.0,0.0,1000.0,10.868
5.0,6.0,0.0,0.0,0.0,1000.0,11.043
5.0,7.0,0.0,0.0,0.0,1000.0,11.23
5.0,8.0,0.0,0.0,0.0,1000.0,11.555
5.0,9.0,0.0,0.0,0.0,1000.0,11.761
1 SNR mu BER FER DFR num_iterations k_avg
2 1.0 1.0 0.0680686274509804 0.7 0.0 1000.0 159.337
3 1.0 2.0 0.06776960784313725 0.697 0.0 1000.0 158.357
4 1.0 3.0 0.06786764705882353 0.7 0.0 1000.0 160.46
5 1.0 4.0 0.06797058823529412 0.705 0.0 1000.0 163.171
6 1.0 5.0 0.06987254901960785 0.709 0.0 1000.0 168.513
7 1.0 6.0 0.06990686274509804 0.715 0.0 1000.0 171.169
8 1.0 7.0 0.07023039215686275 0.72 0.0 1000.0 173.464
9 1.0 8.0 0.07035294117647059 0.732 0.0 1000.0 175.54
10 1.0 9.0 0.07370098039215686 0.748 0.0 1000.0 177.747
11 2.0 1.0 0.018622549019607842 0.267 0.0 1000.0 90.384
12 2.0 2.0 0.018480392156862747 0.263 0.0 1000.0 84.444
13 2.0 3.0 0.018465686274509802 0.263 0.0 1000.0 85.536
14 2.0 4.0 0.016058823529411764 0.226 0.0 1000.0 80.878
15 2.0 5.0 0.01607843137254902 0.227 0.0 1000.0 84.524
16 2.0 6.0 0.016098039215686276 0.231 0.0 1000.0 88.419
17 2.0 7.0 0.017573529411764707 0.246 0.0 1000.0 94.727
18 2.0 8.0 0.01771078431372549 0.252 0.0 1000.0 98.781
19 2.0 9.0 0.016446078431372548 0.244 0.0 1000.0 99.976
20 3.0 1.0 0.0010098039215686275 0.019 0.0 1000.0 34.779
21 3.0 2.0 0.0008921568627450981 0.019 0.0 1000.0 27.968
22 3.0 3.0 0.0013970588235294118 0.022 0.0 1000.0 27.183
23 3.0 4.0 0.0008970588235294117 0.019 0.0 1000.0 27.557
24 3.0 5.0 0.0010294117647058824 0.022 0.0 1000.0 28.867
25 3.0 6.0 0.0009019607843137254 0.019 0.0 1000.0 30.563
26 3.0 7.0 0.000946078431372549 0.018 0.0 1000.0 32.267
27 3.0 8.0 0.0014313725490196078 0.024 0.0 1000.0 34.575
28 3.0 9.0 0.001068627450980392 0.022 0.0 1000.0 36.313
29 4.0 1.0 0.0 0.0 0.0 1000.0 20.374
30 4.0 2.0 0.0 0.0 0.0 1000.0 15.73
31 4.0 3.0 0.0 0.0 0.0 1000.0 14.642
32 4.0 4.0 0.0 0.0 0.0 1000.0 14.507
33 4.0 5.0 0.0 0.0 0.0 1000.0 14.566
34 4.0 6.0 0.0 0.0 0.0 1000.0 15.09
35 4.0 7.0 0.0 0.0 0.0 1000.0 15.607
36 4.0 8.0 0.0 0.0 0.0 1000.0 16.109
37 4.0 9.0 0.0 0.0 0.0 1000.0 16.948
38 5.0 1.0 0.0 0.0 0.0 1000.0 15.802
39 5.0 2.0 0.0 0.0 0.0 1000.0 11.95
40 5.0 3.0 0.0 0.0 0.0 1000.0 11.017
41 5.0 4.0 0.0 0.0 0.0 1000.0 10.8
42 5.0 5.0 0.0 0.0 0.0 1000.0 10.868
43 5.0 6.0 0.0 0.0 0.0 1000.0 11.043
44 5.0 7.0 0.0 0.0 0.0 1000.0 11.23
45 5.0 8.0 0.0 0.0 0.0 1000.0 11.555
46 5.0 9.0 0.0 0.0 0.0 1000.0 11.761

View File

@@ -0,0 +1,10 @@
{
"duration": 23.065021517000787,
"name": "mu_kavg_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100000,
"end_time": "2023-04-18 00:23:21.622498"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.03545098039215686,0.763,0.0,1000.0,200.0
1.0,0.30000000000000004,0.020122549019607843,0.332,0.0,1000.0,162.453
1.0,0.5000000000000001,0.017578431372549018,0.267,0.0,1000.0,124.623
1.0,0.7000000000000001,0.016759803921568627,0.244,0.0,1000.0,103.936
1.0,0.9000000000000001,0.01647549019607843,0.236,0.0,1000.0,90.959
1.0,1.1000000000000003,0.01625,0.231,0.0,1000.0,81.827
1.0,1.3000000000000003,0.016176470588235296,0.227,0.0,1000.0,76.676
1.0,1.5000000000000004,0.016455882352941178,0.233,0.0,1000.0,74.11
1.0,1.7000000000000004,0.01640686274509804,0.232,0.0,1000.0,71.432
1.0,1.9000000000000004,0.016426470588235296,0.232,0.0,1000.0,69.38
1.0,2.1000000000000005,0.0171421568627451,0.25,0.0,1000.0,71.482
2.0,0.1,0.030147058823529412,0.579,0.0,1000.0,200.0
2.0,0.30000000000000004,0.017754901960784313,0.282,0.0,1000.0,150.957
2.0,0.5000000000000001,0.017,0.252,0.0,1000.0,115.014
2.0,0.7000000000000001,0.016387254901960784,0.235,0.0,1000.0,95.632
2.0,0.9000000000000001,0.016166666666666666,0.229,0.0,1000.0,83.964
2.0,1.1000000000000003,0.016401960784313725,0.236,0.0,1000.0,77.036
2.0,1.3000000000000003,0.015818627450980394,0.223,0.0,1000.0,71.768
2.0,1.5000000000000004,0.015808823529411764,0.22,0.0,1000.0,68.707
2.0,1.7000000000000004,0.015779411764705882,0.215,0.0,1000.0,66.628
2.0,1.9000000000000004,0.015725490196078433,0.214,0.0,1000.0,65.073
2.0,2.1000000000000005,0.017127450980392155,0.262,0.0,1000.0,71.836
3.0,0.1,0.023387254901960784,0.481,0.0,1000.0,199.988
3.0,0.30000000000000004,0.01728921568627451,0.28,0.0,1000.0,148.598
3.0,0.5000000000000001,0.016401960784313725,0.243,0.0,1000.0,114.355
3.0,0.7000000000000001,0.016102941176470587,0.231,0.0,1000.0,96.505
3.0,0.9000000000000001,0.016044117647058823,0.231,0.0,1000.0,85.682
3.0,1.1000000000000003,0.015941176470588236,0.224,0.0,1000.0,77.654
3.0,1.3000000000000003,0.015867647058823528,0.224,0.0,1000.0,73.451
3.0,1.5000000000000004,0.01565686274509804,0.221,0.0,1000.0,68.4
3.0,1.7000000000000004,0.015725490196078433,0.221,0.0,1000.0,67.509
3.0,1.9000000000000004,0.01559313725490196,0.217,0.0,1000.0,65.641
3.0,2.1000000000000005,0.017495098039215687,0.273,0.0,1000.0,71.788
4.0,0.1,0.015838235294117646,0.376,0.0,1000.0,199.963
4.0,0.30000000000000004,0.01646078431372549,0.267,0.0,1000.0,149.33
4.0,0.5000000000000001,0.016151960784313725,0.245,0.0,1000.0,114.593
4.0,0.7000000000000001,0.015759803921568626,0.243,0.0,1000.0,97.063
4.0,0.9000000000000001,0.015833333333333335,0.227,0.0,1000.0,85.374
4.0,1.1000000000000003,0.015808823529411764,0.226,0.0,1000.0,78.33
4.0,1.3000000000000003,0.015377450980392157,0.228,0.0,1000.0,75.947
4.0,1.5000000000000004,0.015465686274509803,0.225,0.0,1000.0,71.019
4.0,1.7000000000000004,0.015269607843137255,0.222,0.0,1000.0,68.999
4.0,1.9000000000000004,0.015558823529411766,0.218,0.0,1000.0,65.939
4.0,2.1000000000000005,0.01843137254901961,0.296,0.0,1000.0,76.23
5.0,0.1,0.010720588235294117,0.313,0.0,1000.0,199.971
5.0,0.30000000000000004,0.013681372549019608,0.233,0.0,1000.0,146.419
5.0,0.5000000000000001,0.015230392156862746,0.245,0.0,1000.0,113.1
5.0,0.7000000000000001,0.015607843137254902,0.246,0.0,1000.0,99.363
5.0,0.9000000000000001,0.015519607843137256,0.232,0.0,1000.0,89.715
5.0,1.1000000000000003,0.01582843137254902,0.227,0.0,1000.0,81.822
5.0,1.3000000000000003,0.015740196078431374,0.227,0.0,1000.0,77.211
5.0,1.5000000000000004,0.016857843137254903,0.228,0.0,1000.0,74.522
5.0,1.7000000000000004,0.014058823529411764,0.203,0.0,1000.0,66.829
5.0,1.9000000000000004,0.014838235294117647,0.217,0.0,1000.0,66.522
5.0,2.1000000000000005,0.016833333333333332,0.282,0.0,1000.0,73.051
6.0,0.1,0.008166666666666666,0.271,0.0,1000.0,199.964
6.0,0.30000000000000004,0.01325,0.246,0.0,1000.0,145.758
6.0,0.5000000000000001,0.015004901960784314,0.24,0.0,1000.0,114.664
6.0,0.7000000000000001,0.015352941176470588,0.24,0.0,1000.0,101.446
6.0,0.9000000000000001,0.015485294117647059,0.237,0.0,1000.0,93.407
6.0,1.1000000000000003,0.017058823529411765,0.238,0.0,1000.0,87.738
6.0,1.3000000000000003,0.017034313725490195,0.232,0.0,1000.0,82.622
6.0,1.5000000000000004,0.014166666666666666,0.208,0.0,1000.0,74.684
6.0,1.7000000000000004,0.01684313725490196,0.239,0.0,1000.0,74.161
6.0,1.9000000000000004,0.015112745098039216,0.22,0.0,1000.0,66.528
6.0,2.1000000000000005,0.017333333333333333,0.286,0.0,1000.0,74.439
7.0,0.1,0.005862745098039216,0.215,0.0,1000.0,199.924
7.0,0.30000000000000004,0.012166666666666666,0.233,0.0,1000.0,145.107
7.0,0.5000000000000001,0.013259803921568628,0.22,0.0,1000.0,115.938
7.0,0.7000000000000001,0.015220588235294118,0.234,0.0,1000.0,103.581
7.0,0.9000000000000001,0.016931372549019608,0.242,0.0,1000.0,98.292
7.0,1.1000000000000003,0.017240196078431372,0.252,0.0,1000.0,92.647
7.0,1.3000000000000003,0.017009803921568627,0.238,0.0,1000.0,86.291
7.0,1.5000000000000004,0.016107843137254902,0.227,0.0,1000.0,81.439
7.0,1.7000000000000004,0.016823529411764706,0.239,0.0,1000.0,76.045
7.0,1.9000000000000004,0.014926470588235295,0.22,0.0,1000.0,67.46
7.0,2.1000000000000005,0.017911764705882353,0.296,0.0,1000.0,76.326
8.0,0.1,0.004583333333333333,0.188,0.0,1000.0,199.863
8.0,0.30000000000000004,0.011441176470588236,0.214,0.0,1000.0,144.44
8.0,0.5000000000000001,0.014107843137254902,0.237,0.0,1000.0,118.694
8.0,0.7000000000000001,0.017926470588235294,0.274,0.0,1000.0,112.823
8.0,0.9000000000000001,0.015549019607843138,0.234,0.0,1000.0,100.218
8.0,1.1000000000000003,0.01740686274509804,0.261,0.0,1000.0,96.353
8.0,1.3000000000000003,0.017088235294117647,0.24,0.0,1000.0,89.953
8.0,1.5000000000000004,0.01727450980392157,0.243,0.0,1000.0,84.895
8.0,1.7000000000000004,0.016769607843137253,0.239,0.0,1000.0,77.952
8.0,1.9000000000000004,0.015254901960784314,0.225,0.0,1000.0,68.861
8.0,2.1000000000000005,0.02041176470588235,0.33,0.0,1000.0,82.074
9.0,0.1,0.003200980392156863,0.154,0.0,1000.0,199.883
9.0,0.30000000000000004,0.010975490196078432,0.209,0.0,1000.0,146.426
9.0,0.5000000000000001,0.013784313725490197,0.229,0.0,1000.0,119.561
9.0,0.7000000000000001,0.015357843137254901,0.243,0.0,1000.0,111.475
9.0,0.9000000000000001,0.015602941176470589,0.232,0.0,1000.0,102.627
9.0,1.1000000000000003,0.01565686274509804,0.235,0.0,1000.0,97.911
9.0,1.3000000000000003,0.01855392156862745,0.266,0.0,1000.0,98.402
9.0,1.5000000000000004,0.01822549019607843,0.262,0.0,1000.0,91.4
9.0,1.7000000000000004,0.01581372549019608,0.224,0.0,1000.0,79.224
9.0,1.9000000000000004,0.012926470588235294,0.202,0.0,1000.0,66.081
9.0,2.1000000000000005,0.021838235294117648,0.334,0.0,1000.0,83.142
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.03545098039215686 0.763 0.0 1000.0 200.0
3 1.0 0.30000000000000004 0.020122549019607843 0.332 0.0 1000.0 162.453
4 1.0 0.5000000000000001 0.017578431372549018 0.267 0.0 1000.0 124.623
5 1.0 0.7000000000000001 0.016759803921568627 0.244 0.0 1000.0 103.936
6 1.0 0.9000000000000001 0.01647549019607843 0.236 0.0 1000.0 90.959
7 1.0 1.1000000000000003 0.01625 0.231 0.0 1000.0 81.827
8 1.0 1.3000000000000003 0.016176470588235296 0.227 0.0 1000.0 76.676
9 1.0 1.5000000000000004 0.016455882352941178 0.233 0.0 1000.0 74.11
10 1.0 1.7000000000000004 0.01640686274509804 0.232 0.0 1000.0 71.432
11 1.0 1.9000000000000004 0.016426470588235296 0.232 0.0 1000.0 69.38
12 1.0 2.1000000000000005 0.0171421568627451 0.25 0.0 1000.0 71.482
13 2.0 0.1 0.030147058823529412 0.579 0.0 1000.0 200.0
14 2.0 0.30000000000000004 0.017754901960784313 0.282 0.0 1000.0 150.957
15 2.0 0.5000000000000001 0.017 0.252 0.0 1000.0 115.014
16 2.0 0.7000000000000001 0.016387254901960784 0.235 0.0 1000.0 95.632
17 2.0 0.9000000000000001 0.016166666666666666 0.229 0.0 1000.0 83.964
18 2.0 1.1000000000000003 0.016401960784313725 0.236 0.0 1000.0 77.036
19 2.0 1.3000000000000003 0.015818627450980394 0.223 0.0 1000.0 71.768
20 2.0 1.5000000000000004 0.015808823529411764 0.22 0.0 1000.0 68.707
21 2.0 1.7000000000000004 0.015779411764705882 0.215 0.0 1000.0 66.628
22 2.0 1.9000000000000004 0.015725490196078433 0.214 0.0 1000.0 65.073
23 2.0 2.1000000000000005 0.017127450980392155 0.262 0.0 1000.0 71.836
24 3.0 0.1 0.023387254901960784 0.481 0.0 1000.0 199.988
25 3.0 0.30000000000000004 0.01728921568627451 0.28 0.0 1000.0 148.598
26 3.0 0.5000000000000001 0.016401960784313725 0.243 0.0 1000.0 114.355
27 3.0 0.7000000000000001 0.016102941176470587 0.231 0.0 1000.0 96.505
28 3.0 0.9000000000000001 0.016044117647058823 0.231 0.0 1000.0 85.682
29 3.0 1.1000000000000003 0.015941176470588236 0.224 0.0 1000.0 77.654
30 3.0 1.3000000000000003 0.015867647058823528 0.224 0.0 1000.0 73.451
31 3.0 1.5000000000000004 0.01565686274509804 0.221 0.0 1000.0 68.4
32 3.0 1.7000000000000004 0.015725490196078433 0.221 0.0 1000.0 67.509
33 3.0 1.9000000000000004 0.01559313725490196 0.217 0.0 1000.0 65.641
34 3.0 2.1000000000000005 0.017495098039215687 0.273 0.0 1000.0 71.788
35 4.0 0.1 0.015838235294117646 0.376 0.0 1000.0 199.963
36 4.0 0.30000000000000004 0.01646078431372549 0.267 0.0 1000.0 149.33
37 4.0 0.5000000000000001 0.016151960784313725 0.245 0.0 1000.0 114.593
38 4.0 0.7000000000000001 0.015759803921568626 0.243 0.0 1000.0 97.063
39 4.0 0.9000000000000001 0.015833333333333335 0.227 0.0 1000.0 85.374
40 4.0 1.1000000000000003 0.015808823529411764 0.226 0.0 1000.0 78.33
41 4.0 1.3000000000000003 0.015377450980392157 0.228 0.0 1000.0 75.947
42 4.0 1.5000000000000004 0.015465686274509803 0.225 0.0 1000.0 71.019
43 4.0 1.7000000000000004 0.015269607843137255 0.222 0.0 1000.0 68.999
44 4.0 1.9000000000000004 0.015558823529411766 0.218 0.0 1000.0 65.939
45 4.0 2.1000000000000005 0.01843137254901961 0.296 0.0 1000.0 76.23
46 5.0 0.1 0.010720588235294117 0.313 0.0 1000.0 199.971
47 5.0 0.30000000000000004 0.013681372549019608 0.233 0.0 1000.0 146.419
48 5.0 0.5000000000000001 0.015230392156862746 0.245 0.0 1000.0 113.1
49 5.0 0.7000000000000001 0.015607843137254902 0.246 0.0 1000.0 99.363
50 5.0 0.9000000000000001 0.015519607843137256 0.232 0.0 1000.0 89.715
51 5.0 1.1000000000000003 0.01582843137254902 0.227 0.0 1000.0 81.822
52 5.0 1.3000000000000003 0.015740196078431374 0.227 0.0 1000.0 77.211
53 5.0 1.5000000000000004 0.016857843137254903 0.228 0.0 1000.0 74.522
54 5.0 1.7000000000000004 0.014058823529411764 0.203 0.0 1000.0 66.829
55 5.0 1.9000000000000004 0.014838235294117647 0.217 0.0 1000.0 66.522
56 5.0 2.1000000000000005 0.016833333333333332 0.282 0.0 1000.0 73.051
57 6.0 0.1 0.008166666666666666 0.271 0.0 1000.0 199.964
58 6.0 0.30000000000000004 0.01325 0.246 0.0 1000.0 145.758
59 6.0 0.5000000000000001 0.015004901960784314 0.24 0.0 1000.0 114.664
60 6.0 0.7000000000000001 0.015352941176470588 0.24 0.0 1000.0 101.446
61 6.0 0.9000000000000001 0.015485294117647059 0.237 0.0 1000.0 93.407
62 6.0 1.1000000000000003 0.017058823529411765 0.238 0.0 1000.0 87.738
63 6.0 1.3000000000000003 0.017034313725490195 0.232 0.0 1000.0 82.622
64 6.0 1.5000000000000004 0.014166666666666666 0.208 0.0 1000.0 74.684
65 6.0 1.7000000000000004 0.01684313725490196 0.239 0.0 1000.0 74.161
66 6.0 1.9000000000000004 0.015112745098039216 0.22 0.0 1000.0 66.528
67 6.0 2.1000000000000005 0.017333333333333333 0.286 0.0 1000.0 74.439
68 7.0 0.1 0.005862745098039216 0.215 0.0 1000.0 199.924
69 7.0 0.30000000000000004 0.012166666666666666 0.233 0.0 1000.0 145.107
70 7.0 0.5000000000000001 0.013259803921568628 0.22 0.0 1000.0 115.938
71 7.0 0.7000000000000001 0.015220588235294118 0.234 0.0 1000.0 103.581
72 7.0 0.9000000000000001 0.016931372549019608 0.242 0.0 1000.0 98.292
73 7.0 1.1000000000000003 0.017240196078431372 0.252 0.0 1000.0 92.647
74 7.0 1.3000000000000003 0.017009803921568627 0.238 0.0 1000.0 86.291
75 7.0 1.5000000000000004 0.016107843137254902 0.227 0.0 1000.0 81.439
76 7.0 1.7000000000000004 0.016823529411764706 0.239 0.0 1000.0 76.045
77 7.0 1.9000000000000004 0.014926470588235295 0.22 0.0 1000.0 67.46
78 7.0 2.1000000000000005 0.017911764705882353 0.296 0.0 1000.0 76.326
79 8.0 0.1 0.004583333333333333 0.188 0.0 1000.0 199.863
80 8.0 0.30000000000000004 0.011441176470588236 0.214 0.0 1000.0 144.44
81 8.0 0.5000000000000001 0.014107843137254902 0.237 0.0 1000.0 118.694
82 8.0 0.7000000000000001 0.017926470588235294 0.274 0.0 1000.0 112.823
83 8.0 0.9000000000000001 0.015549019607843138 0.234 0.0 1000.0 100.218
84 8.0 1.1000000000000003 0.01740686274509804 0.261 0.0 1000.0 96.353
85 8.0 1.3000000000000003 0.017088235294117647 0.24 0.0 1000.0 89.953
86 8.0 1.5000000000000004 0.01727450980392157 0.243 0.0 1000.0 84.895
87 8.0 1.7000000000000004 0.016769607843137253 0.239 0.0 1000.0 77.952
88 8.0 1.9000000000000004 0.015254901960784314 0.225 0.0 1000.0 68.861
89 8.0 2.1000000000000005 0.02041176470588235 0.33 0.0 1000.0 82.074
90 9.0 0.1 0.003200980392156863 0.154 0.0 1000.0 199.883
91 9.0 0.30000000000000004 0.010975490196078432 0.209 0.0 1000.0 146.426
92 9.0 0.5000000000000001 0.013784313725490197 0.229 0.0 1000.0 119.561
93 9.0 0.7000000000000001 0.015357843137254901 0.243 0.0 1000.0 111.475
94 9.0 0.9000000000000001 0.015602941176470589 0.232 0.0 1000.0 102.627
95 9.0 1.1000000000000003 0.01565686274509804 0.235 0.0 1000.0 97.911
96 9.0 1.3000000000000003 0.01855392156862745 0.266 0.0 1000.0 98.402
97 9.0 1.5000000000000004 0.01822549019607843 0.262 0.0 1000.0 91.4
98 9.0 1.7000000000000004 0.01581372549019608 0.224 0.0 1000.0 79.224
99 9.0 1.9000000000000004 0.012926470588235294 0.202 0.0 1000.0 66.081
100 9.0 2.1000000000000005 0.021838235294117648 0.334 0.0 1000.0 83.142

View File

@@ -0,0 +1,10 @@
{
"duration": 77.23330376800004,
"name": "mu_rho_kavg_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:14:12.314697"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.08772549019607843,0.973,0.0,1000.0,200.0
1.0,0.30000000000000004,0.0773921568627451,0.87,0.0,1000.0,195.226
1.0,0.5000000000000001,0.07654411764705882,0.844,0.0,1000.0,187.254
1.0,0.7000000000000001,0.07599019607843137,0.832,0.0,1000.0,182.298
1.0,0.9000000000000001,0.0757843137254902,0.826,0.0,1000.0,178.944
1.0,1.1000000000000003,0.0755735294117647,0.823,0.0,1000.0,176.402
1.0,1.3000000000000003,0.0755343137254902,0.819,0.0,1000.0,174.834
1.0,1.5000000000000004,0.07591666666666666,0.804,0.0,1000.0,172.195
1.0,1.7000000000000004,0.07605392156862745,0.804,0.0,1000.0,171.111
1.0,1.9000000000000004,0.07604901960784313,0.804,0.0,1000.0,170.282
1.0,2.1000000000000005,0.0774313725490196,0.848,0.0,1000.0,175.692
2.0,0.1,0.08072549019607843,0.935,0.0,1000.0,200.0
2.0,0.30000000000000004,0.07724019607843137,0.858,0.0,1000.0,195.014
2.0,0.5000000000000001,0.07635294117647058,0.832,0.0,1000.0,187.459
2.0,0.7000000000000001,0.07558333333333334,0.829,0.0,1000.0,182.744
2.0,0.9000000000000001,0.07544607843137255,0.824,0.0,1000.0,179.49
2.0,1.1000000000000003,0.0753578431372549,0.821,0.0,1000.0,176.991
2.0,1.3000000000000003,0.07523529411764705,0.819,0.0,1000.0,175.373
2.0,1.5000000000000004,0.07524509803921568,0.818,0.0,1000.0,174.117
2.0,1.7000000000000004,0.07509803921568628,0.818,0.0,1000.0,173.124
2.0,1.9000000000000004,0.07513725490196078,0.818,0.0,1000.0,172.267
2.0,2.1000000000000005,0.0788578431372549,0.869,0.0,1000.0,178.438
3.0,0.1,0.0632107843137255,0.883,0.0,1000.0,200.0
3.0,0.30000000000000004,0.07519117647058823,0.84,0.0,1000.0,194.565
3.0,0.5000000000000001,0.07582843137254902,0.828,0.0,1000.0,187.915
3.0,0.7000000000000001,0.07592156862745097,0.824,0.0,1000.0,184.154
3.0,0.9000000000000001,0.07584803921568628,0.819,0.0,1000.0,181.354
3.0,1.1000000000000003,0.07580392156862745,0.813,0.0,1000.0,178.891
3.0,1.3000000000000003,0.07425,0.818,0.0,1000.0,177.218
3.0,1.5000000000000004,0.07422058823529412,0.817,0.0,1000.0,175.531
3.0,1.7000000000000004,0.07403921568627451,0.814,0.0,1000.0,173.715
3.0,1.9000000000000004,0.07388725490196078,0.809,0.0,1000.0,171.71
3.0,2.1000000000000005,0.07776960784313726,0.876,0.0,1000.0,178.917
4.0,0.1,0.04632843137254902,0.805,0.0,1000.0,200.0
4.0,0.30000000000000004,0.07025,0.822,0.0,1000.0,194.388
4.0,0.5000000000000001,0.07254411764705883,0.807,0.0,1000.0,186.805
4.0,0.7000000000000001,0.07342156862745099,0.808,0.0,1000.0,183.41
4.0,0.9000000000000001,0.07355882352941176,0.806,0.0,1000.0,180.897
4.0,1.1000000000000003,0.07379901960784313,0.804,0.0,1000.0,178.452
4.0,1.3000000000000003,0.07369117647058823,0.804,0.0,1000.0,176.085
4.0,1.5000000000000004,0.07353921568627451,0.801,0.0,1000.0,173.731
4.0,1.7000000000000004,0.07317647058823529,0.8,0.0,1000.0,171.018
4.0,1.9000000000000004,0.07190686274509804,0.766,0.0,1000.0,167.045
4.0,2.1000000000000005,0.07666176470588236,0.851,0.0,1000.0,174.865
5.0,0.1,0.03283333333333333,0.705,0.0,1000.0,200.0
5.0,0.30000000000000004,0.06461274509803921,0.776,0.0,1000.0,193.83
5.0,0.5000000000000001,0.07174509803921568,0.802,0.0,1000.0,187.048
5.0,0.7000000000000001,0.0719264705882353,0.81,0.0,1000.0,185.098
5.0,0.9000000000000001,0.07260294117647059,0.813,0.0,1000.0,183.2
5.0,1.1000000000000003,0.0728921568627451,0.805,0.0,1000.0,181.161
5.0,1.3000000000000003,0.07406862745098039,0.805,0.0,1000.0,177.853
5.0,1.5000000000000004,0.07386764705882352,0.801,0.0,1000.0,175.179
5.0,1.7000000000000004,0.0735735294117647,0.796,0.0,1000.0,171.841
5.0,1.9000000000000004,0.07310294117647059,0.788,0.0,1000.0,167.953
5.0,2.1000000000000005,0.08022549019607843,0.884,0.0,1000.0,180.633
6.0,0.1,0.024387254901960784,0.652,0.0,1000.0,199.995
6.0,0.30000000000000004,0.06191666666666667,0.781,0.0,1000.0,193.401
6.0,0.5000000000000001,0.07191666666666667,0.831,0.0,1000.0,191.348
6.0,0.7000000000000001,0.07505882352941176,0.844,0.0,1000.0,189.678
6.0,0.9000000000000001,0.07622058823529412,0.844,0.0,1000.0,188.318
6.0,1.1000000000000003,0.07639705882352942,0.84,0.0,1000.0,186.663
6.0,1.3000000000000003,0.07495098039215686,0.839,0.0,1000.0,184.315
6.0,1.5000000000000004,0.0746029411764706,0.833,0.0,1000.0,181.746
6.0,1.7000000000000004,0.07509803921568628,0.818,0.0,1000.0,178.311
6.0,1.9000000000000004,0.07445098039215686,0.801,0.0,1000.0,173.671
6.0,2.1000000000000005,0.07986274509803921,0.886,0.0,1000.0,180.83
7.0,0.1,0.016431372549019607,0.559,0.0,1000.0,200.0
7.0,0.30000000000000004,0.05860294117647059,0.776,0.0,1000.0,195.07
7.0,0.5000000000000001,0.0690343137254902,0.839,0.0,1000.0,191.773
7.0,0.7000000000000001,0.07377941176470589,0.834,0.0,1000.0,189.591
7.0,0.9000000000000001,0.07507843137254902,0.855,0.0,1000.0,189.355
7.0,1.1000000000000003,0.07604411764705882,0.839,0.0,1000.0,186.833
7.0,1.3000000000000003,0.07512745098039215,0.848,0.0,1000.0,185.865
7.0,1.5000000000000004,0.07527450980392157,0.821,0.0,1000.0,181.373
7.0,1.7000000000000004,0.07145588235294117,0.782,0.0,1000.0,175.082
7.0,1.9000000000000004,0.07071078431372549,0.768,0.0,1000.0,169.175
7.0,2.1000000000000005,0.08090196078431372,0.879,0.0,1000.0,179.744
8.0,0.1,0.011333333333333334,0.49,0.0,1000.0,200.0
8.0,0.30000000000000004,0.055058823529411764,0.768,0.0,1000.0,195.443
8.0,0.5000000000000001,0.06694117647058824,0.793,0.0,1000.0,191.678
8.0,0.7000000000000001,0.07341176470588236,0.836,0.0,1000.0,190.781
8.0,0.9000000000000001,0.07317647058823529,0.819,0.0,1000.0,189.043
8.0,1.1000000000000003,0.07339705882352941,0.823,0.0,1000.0,186.344
8.0,1.3000000000000003,0.07308333333333333,0.815,0.0,1000.0,183.981
8.0,1.5000000000000004,0.07266666666666667,0.802,0.0,1000.0,180.569
8.0,1.7000000000000004,0.07181372549019607,0.788,0.0,1000.0,175.289
8.0,1.9000000000000004,0.07034313725490196,0.768,0.0,1000.0,169.91
8.0,2.1000000000000005,0.07980392156862745,0.875,0.0,1000.0,178.634
9.0,0.1,0.007715686274509804,0.395,0.0,1000.0,200.0
9.0,0.30000000000000004,0.04993137254901961,0.741,0.0,1000.0,195.107
9.0,0.5000000000000001,0.06566666666666666,0.795,0.0,1000.0,192.704
9.0,0.7000000000000001,0.07115686274509804,0.816,0.0,1000.0,191.52
9.0,0.9000000000000001,0.07283333333333333,0.821,0.0,1000.0,189.962
9.0,1.1000000000000003,0.07500980392156863,0.845,0.0,1000.0,189.53
9.0,1.3000000000000003,0.07351960784313726,0.814,0.0,1000.0,185.925
9.0,1.5000000000000004,0.07284313725490196,0.801,0.0,1000.0,182.016
9.0,1.7000000000000004,0.07101960784313725,0.787,0.0,1000.0,176.943
9.0,1.9000000000000004,0.07030882352941177,0.77,0.0,1000.0,169.935
9.0,2.1000000000000005,0.07980392156862745,0.879,0.0,1000.0,180.147
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.08772549019607843 0.973 0.0 1000.0 200.0
3 1.0 0.30000000000000004 0.0773921568627451 0.87 0.0 1000.0 195.226
4 1.0 0.5000000000000001 0.07654411764705882 0.844 0.0 1000.0 187.254
5 1.0 0.7000000000000001 0.07599019607843137 0.832 0.0 1000.0 182.298
6 1.0 0.9000000000000001 0.0757843137254902 0.826 0.0 1000.0 178.944
7 1.0 1.1000000000000003 0.0755735294117647 0.823 0.0 1000.0 176.402
8 1.0 1.3000000000000003 0.0755343137254902 0.819 0.0 1000.0 174.834
9 1.0 1.5000000000000004 0.07591666666666666 0.804 0.0 1000.0 172.195
10 1.0 1.7000000000000004 0.07605392156862745 0.804 0.0 1000.0 171.111
11 1.0 1.9000000000000004 0.07604901960784313 0.804 0.0 1000.0 170.282
12 1.0 2.1000000000000005 0.0774313725490196 0.848 0.0 1000.0 175.692
13 2.0 0.1 0.08072549019607843 0.935 0.0 1000.0 200.0
14 2.0 0.30000000000000004 0.07724019607843137 0.858 0.0 1000.0 195.014
15 2.0 0.5000000000000001 0.07635294117647058 0.832 0.0 1000.0 187.459
16 2.0 0.7000000000000001 0.07558333333333334 0.829 0.0 1000.0 182.744
17 2.0 0.9000000000000001 0.07544607843137255 0.824 0.0 1000.0 179.49
18 2.0 1.1000000000000003 0.0753578431372549 0.821 0.0 1000.0 176.991
19 2.0 1.3000000000000003 0.07523529411764705 0.819 0.0 1000.0 175.373
20 2.0 1.5000000000000004 0.07524509803921568 0.818 0.0 1000.0 174.117
21 2.0 1.7000000000000004 0.07509803921568628 0.818 0.0 1000.0 173.124
22 2.0 1.9000000000000004 0.07513725490196078 0.818 0.0 1000.0 172.267
23 2.0 2.1000000000000005 0.0788578431372549 0.869 0.0 1000.0 178.438
24 3.0 0.1 0.0632107843137255 0.883 0.0 1000.0 200.0
25 3.0 0.30000000000000004 0.07519117647058823 0.84 0.0 1000.0 194.565
26 3.0 0.5000000000000001 0.07582843137254902 0.828 0.0 1000.0 187.915
27 3.0 0.7000000000000001 0.07592156862745097 0.824 0.0 1000.0 184.154
28 3.0 0.9000000000000001 0.07584803921568628 0.819 0.0 1000.0 181.354
29 3.0 1.1000000000000003 0.07580392156862745 0.813 0.0 1000.0 178.891
30 3.0 1.3000000000000003 0.07425 0.818 0.0 1000.0 177.218
31 3.0 1.5000000000000004 0.07422058823529412 0.817 0.0 1000.0 175.531
32 3.0 1.7000000000000004 0.07403921568627451 0.814 0.0 1000.0 173.715
33 3.0 1.9000000000000004 0.07388725490196078 0.809 0.0 1000.0 171.71
34 3.0 2.1000000000000005 0.07776960784313726 0.876 0.0 1000.0 178.917
35 4.0 0.1 0.04632843137254902 0.805 0.0 1000.0 200.0
36 4.0 0.30000000000000004 0.07025 0.822 0.0 1000.0 194.388
37 4.0 0.5000000000000001 0.07254411764705883 0.807 0.0 1000.0 186.805
38 4.0 0.7000000000000001 0.07342156862745099 0.808 0.0 1000.0 183.41
39 4.0 0.9000000000000001 0.07355882352941176 0.806 0.0 1000.0 180.897
40 4.0 1.1000000000000003 0.07379901960784313 0.804 0.0 1000.0 178.452
41 4.0 1.3000000000000003 0.07369117647058823 0.804 0.0 1000.0 176.085
42 4.0 1.5000000000000004 0.07353921568627451 0.801 0.0 1000.0 173.731
43 4.0 1.7000000000000004 0.07317647058823529 0.8 0.0 1000.0 171.018
44 4.0 1.9000000000000004 0.07190686274509804 0.766 0.0 1000.0 167.045
45 4.0 2.1000000000000005 0.07666176470588236 0.851 0.0 1000.0 174.865
46 5.0 0.1 0.03283333333333333 0.705 0.0 1000.0 200.0
47 5.0 0.30000000000000004 0.06461274509803921 0.776 0.0 1000.0 193.83
48 5.0 0.5000000000000001 0.07174509803921568 0.802 0.0 1000.0 187.048
49 5.0 0.7000000000000001 0.0719264705882353 0.81 0.0 1000.0 185.098
50 5.0 0.9000000000000001 0.07260294117647059 0.813 0.0 1000.0 183.2
51 5.0 1.1000000000000003 0.0728921568627451 0.805 0.0 1000.0 181.161
52 5.0 1.3000000000000003 0.07406862745098039 0.805 0.0 1000.0 177.853
53 5.0 1.5000000000000004 0.07386764705882352 0.801 0.0 1000.0 175.179
54 5.0 1.7000000000000004 0.0735735294117647 0.796 0.0 1000.0 171.841
55 5.0 1.9000000000000004 0.07310294117647059 0.788 0.0 1000.0 167.953
56 5.0 2.1000000000000005 0.08022549019607843 0.884 0.0 1000.0 180.633
57 6.0 0.1 0.024387254901960784 0.652 0.0 1000.0 199.995
58 6.0 0.30000000000000004 0.06191666666666667 0.781 0.0 1000.0 193.401
59 6.0 0.5000000000000001 0.07191666666666667 0.831 0.0 1000.0 191.348
60 6.0 0.7000000000000001 0.07505882352941176 0.844 0.0 1000.0 189.678
61 6.0 0.9000000000000001 0.07622058823529412 0.844 0.0 1000.0 188.318
62 6.0 1.1000000000000003 0.07639705882352942 0.84 0.0 1000.0 186.663
63 6.0 1.3000000000000003 0.07495098039215686 0.839 0.0 1000.0 184.315
64 6.0 1.5000000000000004 0.0746029411764706 0.833 0.0 1000.0 181.746
65 6.0 1.7000000000000004 0.07509803921568628 0.818 0.0 1000.0 178.311
66 6.0 1.9000000000000004 0.07445098039215686 0.801 0.0 1000.0 173.671
67 6.0 2.1000000000000005 0.07986274509803921 0.886 0.0 1000.0 180.83
68 7.0 0.1 0.016431372549019607 0.559 0.0 1000.0 200.0
69 7.0 0.30000000000000004 0.05860294117647059 0.776 0.0 1000.0 195.07
70 7.0 0.5000000000000001 0.0690343137254902 0.839 0.0 1000.0 191.773
71 7.0 0.7000000000000001 0.07377941176470589 0.834 0.0 1000.0 189.591
72 7.0 0.9000000000000001 0.07507843137254902 0.855 0.0 1000.0 189.355
73 7.0 1.1000000000000003 0.07604411764705882 0.839 0.0 1000.0 186.833
74 7.0 1.3000000000000003 0.07512745098039215 0.848 0.0 1000.0 185.865
75 7.0 1.5000000000000004 0.07527450980392157 0.821 0.0 1000.0 181.373
76 7.0 1.7000000000000004 0.07145588235294117 0.782 0.0 1000.0 175.082
77 7.0 1.9000000000000004 0.07071078431372549 0.768 0.0 1000.0 169.175
78 7.0 2.1000000000000005 0.08090196078431372 0.879 0.0 1000.0 179.744
79 8.0 0.1 0.011333333333333334 0.49 0.0 1000.0 200.0
80 8.0 0.30000000000000004 0.055058823529411764 0.768 0.0 1000.0 195.443
81 8.0 0.5000000000000001 0.06694117647058824 0.793 0.0 1000.0 191.678
82 8.0 0.7000000000000001 0.07341176470588236 0.836 0.0 1000.0 190.781
83 8.0 0.9000000000000001 0.07317647058823529 0.819 0.0 1000.0 189.043
84 8.0 1.1000000000000003 0.07339705882352941 0.823 0.0 1000.0 186.344
85 8.0 1.3000000000000003 0.07308333333333333 0.815 0.0 1000.0 183.981
86 8.0 1.5000000000000004 0.07266666666666667 0.802 0.0 1000.0 180.569
87 8.0 1.7000000000000004 0.07181372549019607 0.788 0.0 1000.0 175.289
88 8.0 1.9000000000000004 0.07034313725490196 0.768 0.0 1000.0 169.91
89 8.0 2.1000000000000005 0.07980392156862745 0.875 0.0 1000.0 178.634
90 9.0 0.1 0.007715686274509804 0.395 0.0 1000.0 200.0
91 9.0 0.30000000000000004 0.04993137254901961 0.741 0.0 1000.0 195.107
92 9.0 0.5000000000000001 0.06566666666666666 0.795 0.0 1000.0 192.704
93 9.0 0.7000000000000001 0.07115686274509804 0.816 0.0 1000.0 191.52
94 9.0 0.9000000000000001 0.07283333333333333 0.821 0.0 1000.0 189.962
95 9.0 1.1000000000000003 0.07500980392156863 0.845 0.0 1000.0 189.53
96 9.0 1.3000000000000003 0.07351960784313726 0.814 0.0 1000.0 185.925
97 9.0 1.5000000000000004 0.07284313725490196 0.801 0.0 1000.0 182.016
98 9.0 1.7000000000000004 0.07101960784313725 0.787 0.0 1000.0 176.943
99 9.0 1.9000000000000004 0.07030882352941177 0.77 0.0 1000.0 169.935
100 9.0 2.1000000000000005 0.07980392156862745 0.879 0.0 1000.0 180.147

View File

@@ -0,0 +1,10 @@
{
"duration": 299.0503712320001,
"name": "mu_rho_kavg_20455187",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:20:50.550679"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.03399264705882353,0.922,0.0,1000.0,200.0
1.0,0.30000000000000004,0.01420343137254902,0.408,0.0,1000.0,178.259
1.0,0.5000000000000001,0.012176470588235294,0.301,0.0,1000.0,140.932
1.0,0.7000000000000001,0.01138235294117647,0.267,0.0,1000.0,118.111
1.0,0.9000000000000001,0.010914215686274509,0.242,0.0,1000.0,103.139
1.0,1.1000000000000003,0.010727941176470588,0.235,0.0,1000.0,92.489
1.0,1.3000000000000003,0.010561274509803922,0.225,0.0,1000.0,85.928
1.0,1.5000000000000004,0.009975490196078431,0.204,0.0,1000.0,77.216
1.0,1.7000000000000004,0.009948529411764705,0.199,0.0,1000.0,73.493
1.0,1.9000000000000004,0.010002450980392158,0.198,0.0,1000.0,70.623
1.0,2.1000000000000005,0.010610294117647058,0.221,0.0,1000.0,73.094
2.0,0.1,0.026083333333333333,0.746,0.0,1000.0,200.0
2.0,0.30000000000000004,0.011774509803921569,0.302,0.0,1000.0,165.367
2.0,0.5000000000000001,0.010534313725490196,0.236,0.0,1000.0,125.414
2.0,0.7000000000000001,0.010723039215686275,0.228,0.0,1000.0,102.986
2.0,0.9000000000000001,0.01013235294117647,0.21,0.0,1000.0,89.036
2.0,1.1000000000000003,0.010502450980392156,0.221,0.0,1000.0,80.461
2.0,1.3000000000000003,0.010522058823529412,0.218,0.0,1000.0,75.228
2.0,1.5000000000000004,0.010490196078431373,0.212,0.0,1000.0,71.596
2.0,1.7000000000000004,0.009196078431372549,0.188,0.0,1000.0,65.522
2.0,1.9000000000000004,0.01045343137254902,0.209,0.0,1000.0,67.157
2.0,2.1000000000000005,0.010752450980392157,0.231,0.0,1000.0,69.984
3.0,0.1,0.018892156862745098,0.618,0.0,1000.0,200.0
3.0,0.30000000000000004,0.010818627450980393,0.272,0.0,1000.0,160.939
3.0,0.5000000000000001,0.009674019607843138,0.226,0.0,1000.0,120.299
3.0,0.7000000000000001,0.010524509803921568,0.226,0.0,1000.0,102.27
3.0,0.9000000000000001,0.010610294117647058,0.219,0.0,1000.0,91.944
3.0,1.1000000000000003,0.009254901960784314,0.197,0.0,1000.0,77.555
3.0,1.3000000000000003,0.010541666666666666,0.213,0.0,1000.0,77.878
3.0,1.5000000000000004,0.010448529411764705,0.21,0.0,1000.0,73.729
3.0,1.7000000000000004,0.01045343137254902,0.209,0.0,1000.0,70.556
3.0,1.9000000000000004,0.010394607843137255,0.207,0.0,1000.0,68.321
3.0,2.1000000000000005,0.012656862745098038,0.285,0.0,1000.0,78.782
4.0,0.1,0.013752450980392157,0.543,0.0,1000.0,200.0
4.0,0.30000000000000004,0.010294117647058823,0.263,0.0,1000.0,159.466
4.0,0.5000000000000001,0.010789215686274509,0.245,0.0,1000.0,124.778
4.0,0.7000000000000001,0.010843137254901962,0.235,0.0,1000.0,106.597
4.0,0.9000000000000001,0.01036764705882353,0.231,0.0,1000.0,94.946
4.0,1.1000000000000003,0.010200980392156863,0.211,0.0,1000.0,85.479
4.0,1.3000000000000003,0.010029411764705882,0.205,0.0,1000.0,79.729
4.0,1.5000000000000004,0.010223039215686274,0.219,0.0,1000.0,77.187
4.0,1.7000000000000004,0.01028186274509804,0.212,0.0,1000.0,72.772
4.0,1.9000000000000004,0.010193627450980392,0.211,0.0,1000.0,69.495
4.0,2.1000000000000005,0.01350735294117647,0.305,0.0,1000.0,80.754
5.0,0.1,0.009276960784313726,0.451,0.0,1000.0,200.0
5.0,0.30000000000000004,0.010801470588235294,0.273,0.0,1000.0,160.526
5.0,0.5000000000000001,0.010950980392156863,0.252,0.0,1000.0,126.568
5.0,0.7000000000000001,0.010583333333333333,0.243,0.0,1000.0,109.731
5.0,0.9000000000000001,0.010649509803921568,0.236,0.0,1000.0,100.156
5.0,1.1000000000000003,0.010477941176470587,0.23,0.0,1000.0,91.984
5.0,1.3000000000000003,0.01031372549019608,0.221,0.0,1000.0,85.116
5.0,1.5000000000000004,0.008808823529411765,0.189,0.0,1000.0,75.203
5.0,1.7000000000000004,0.01045343137254902,0.214,0.0,1000.0,73.074
5.0,1.9000000000000004,0.009987745098039215,0.202,0.0,1000.0,68.401
5.0,2.1000000000000005,0.014372549019607843,0.324,0.0,1000.0,84.258
6.0,0.1,0.006482843137254902,0.353,0.0,1000.0,200.0
6.0,0.30000000000000004,0.00963970588235294,0.269,0.0,1000.0,162.694
6.0,0.5000000000000001,0.010389705882352942,0.252,0.0,1000.0,129.146
6.0,0.7000000000000001,0.009105392156862745,0.216,0.0,1000.0,109.342
6.0,0.9000000000000001,0.01049264705882353,0.227,0.0,1000.0,104.179
6.0,1.1000000000000003,0.010573529411764706,0.233,0.0,1000.0,95.673
6.0,1.3000000000000003,0.010610294117647058,0.22,0.0,1000.0,87.318
6.0,1.5000000000000004,0.00904656862745098,0.194,0.0,1000.0,78.642
6.0,1.7000000000000004,0.010232843137254902,0.207,0.0,1000.0,77.073
6.0,1.9000000000000004,0.010200980392156863,0.211,0.0,1000.0,69.385
6.0,2.1000000000000005,0.015017156862745098,0.337,0.0,1000.0,86.164
7.0,0.1,0.004303921568627451,0.287,0.0,1000.0,200.0
7.0,0.30000000000000004,0.007014705882352941,0.209,0.0,1000.0,159.98
7.0,0.5000000000000001,0.00858578431372549,0.222,0.0,1000.0,126.802
7.0,0.7000000000000001,0.009107843137254903,0.218,0.0,1000.0,113.039
7.0,0.9000000000000001,0.009259803921568627,0.215,0.0,1000.0,103.988
7.0,1.1000000000000003,0.009279411764705882,0.202,0.0,1000.0,97.007
7.0,1.3000000000000003,0.010710784313725491,0.228,0.0,1000.0,91.598
7.0,1.5000000000000004,0.01029656862745098,0.214,0.0,1000.0,87.413
7.0,1.7000000000000004,0.010208333333333333,0.209,0.0,1000.0,79.826
7.0,1.9000000000000004,0.01011029411764706,0.203,0.0,1000.0,71.692
7.0,2.1000000000000005,0.01419607843137255,0.323,0.0,1000.0,84.352
8.0,0.1,0.002213235294117647,0.195,0.0,1000.0,200.0
8.0,0.30000000000000004,0.007424019607843137,0.242,0.0,1000.0,163.466
8.0,0.5000000000000001,0.00836029411764706,0.222,0.0,1000.0,129.016
8.0,0.7000000000000001,0.009120098039215686,0.227,0.0,1000.0,116.799
8.0,0.9000000000000001,0.009024509803921568,0.207,0.0,1000.0,108.641
8.0,1.1000000000000003,0.009379901960784314,0.206,0.0,1000.0,102.087
8.0,1.3000000000000003,0.009267156862745098,0.202,0.0,1000.0,94.646
8.0,1.5000000000000004,0.009825980392156862,0.216,0.0,1000.0,92.87
8.0,1.7000000000000004,0.010208333333333333,0.21,0.0,1000.0,82.53
8.0,1.9000000000000004,0.010029411764705882,0.203,0.0,1000.0,73.072
8.0,2.1000000000000005,0.014436274509803922,0.323,0.0,1000.0,84.913
9.0,0.1,0.0015245098039215687,0.148,0.0,1000.0,200.0
9.0,0.30000000000000004,0.006683823529411765,0.216,0.0,1000.0,159.878
9.0,0.5000000000000001,0.009340686274509805,0.237,0.0,1000.0,131.949
9.0,0.7000000000000001,0.010125,0.266,0.0,1000.0,126.926
9.0,0.9000000000000001,0.009536764705882352,0.221,0.0,1000.0,114.401
9.0,1.1000000000000003,0.009458333333333332,0.21,0.0,1000.0,106.91
9.0,1.3000000000000003,0.010245098039215686,0.235,0.0,1000.0,105.052
9.0,1.5000000000000004,0.010237745098039215,0.224,0.0,1000.0,91.906
9.0,1.7000000000000004,0.010480392156862745,0.214,0.0,1000.0,82.018
9.0,1.9000000000000004,0.009495098039215687,0.195,0.0,1000.0,72.756
9.0,2.1000000000000005,0.015036764705882354,0.329,0.0,1000.0,86.995
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.03399264705882353 0.922 0.0 1000.0 200.0
3 1.0 0.30000000000000004 0.01420343137254902 0.408 0.0 1000.0 178.259
4 1.0 0.5000000000000001 0.012176470588235294 0.301 0.0 1000.0 140.932
5 1.0 0.7000000000000001 0.01138235294117647 0.267 0.0 1000.0 118.111
6 1.0 0.9000000000000001 0.010914215686274509 0.242 0.0 1000.0 103.139
7 1.0 1.1000000000000003 0.010727941176470588 0.235 0.0 1000.0 92.489
8 1.0 1.3000000000000003 0.010561274509803922 0.225 0.0 1000.0 85.928
9 1.0 1.5000000000000004 0.009975490196078431 0.204 0.0 1000.0 77.216
10 1.0 1.7000000000000004 0.009948529411764705 0.199 0.0 1000.0 73.493
11 1.0 1.9000000000000004 0.010002450980392158 0.198 0.0 1000.0 70.623
12 1.0 2.1000000000000005 0.010610294117647058 0.221 0.0 1000.0 73.094
13 2.0 0.1 0.026083333333333333 0.746 0.0 1000.0 200.0
14 2.0 0.30000000000000004 0.011774509803921569 0.302 0.0 1000.0 165.367
15 2.0 0.5000000000000001 0.010534313725490196 0.236 0.0 1000.0 125.414
16 2.0 0.7000000000000001 0.010723039215686275 0.228 0.0 1000.0 102.986
17 2.0 0.9000000000000001 0.01013235294117647 0.21 0.0 1000.0 89.036
18 2.0 1.1000000000000003 0.010502450980392156 0.221 0.0 1000.0 80.461
19 2.0 1.3000000000000003 0.010522058823529412 0.218 0.0 1000.0 75.228
20 2.0 1.5000000000000004 0.010490196078431373 0.212 0.0 1000.0 71.596
21 2.0 1.7000000000000004 0.009196078431372549 0.188 0.0 1000.0 65.522
22 2.0 1.9000000000000004 0.01045343137254902 0.209 0.0 1000.0 67.157
23 2.0 2.1000000000000005 0.010752450980392157 0.231 0.0 1000.0 69.984
24 3.0 0.1 0.018892156862745098 0.618 0.0 1000.0 200.0
25 3.0 0.30000000000000004 0.010818627450980393 0.272 0.0 1000.0 160.939
26 3.0 0.5000000000000001 0.009674019607843138 0.226 0.0 1000.0 120.299
27 3.0 0.7000000000000001 0.010524509803921568 0.226 0.0 1000.0 102.27
28 3.0 0.9000000000000001 0.010610294117647058 0.219 0.0 1000.0 91.944
29 3.0 1.1000000000000003 0.009254901960784314 0.197 0.0 1000.0 77.555
30 3.0 1.3000000000000003 0.010541666666666666 0.213 0.0 1000.0 77.878
31 3.0 1.5000000000000004 0.010448529411764705 0.21 0.0 1000.0 73.729
32 3.0 1.7000000000000004 0.01045343137254902 0.209 0.0 1000.0 70.556
33 3.0 1.9000000000000004 0.010394607843137255 0.207 0.0 1000.0 68.321
34 3.0 2.1000000000000005 0.012656862745098038 0.285 0.0 1000.0 78.782
35 4.0 0.1 0.013752450980392157 0.543 0.0 1000.0 200.0
36 4.0 0.30000000000000004 0.010294117647058823 0.263 0.0 1000.0 159.466
37 4.0 0.5000000000000001 0.010789215686274509 0.245 0.0 1000.0 124.778
38 4.0 0.7000000000000001 0.010843137254901962 0.235 0.0 1000.0 106.597
39 4.0 0.9000000000000001 0.01036764705882353 0.231 0.0 1000.0 94.946
40 4.0 1.1000000000000003 0.010200980392156863 0.211 0.0 1000.0 85.479
41 4.0 1.3000000000000003 0.010029411764705882 0.205 0.0 1000.0 79.729
42 4.0 1.5000000000000004 0.010223039215686274 0.219 0.0 1000.0 77.187
43 4.0 1.7000000000000004 0.01028186274509804 0.212 0.0 1000.0 72.772
44 4.0 1.9000000000000004 0.010193627450980392 0.211 0.0 1000.0 69.495
45 4.0 2.1000000000000005 0.01350735294117647 0.305 0.0 1000.0 80.754
46 5.0 0.1 0.009276960784313726 0.451 0.0 1000.0 200.0
47 5.0 0.30000000000000004 0.010801470588235294 0.273 0.0 1000.0 160.526
48 5.0 0.5000000000000001 0.010950980392156863 0.252 0.0 1000.0 126.568
49 5.0 0.7000000000000001 0.010583333333333333 0.243 0.0 1000.0 109.731
50 5.0 0.9000000000000001 0.010649509803921568 0.236 0.0 1000.0 100.156
51 5.0 1.1000000000000003 0.010477941176470587 0.23 0.0 1000.0 91.984
52 5.0 1.3000000000000003 0.01031372549019608 0.221 0.0 1000.0 85.116
53 5.0 1.5000000000000004 0.008808823529411765 0.189 0.0 1000.0 75.203
54 5.0 1.7000000000000004 0.01045343137254902 0.214 0.0 1000.0 73.074
55 5.0 1.9000000000000004 0.009987745098039215 0.202 0.0 1000.0 68.401
56 5.0 2.1000000000000005 0.014372549019607843 0.324 0.0 1000.0 84.258
57 6.0 0.1 0.006482843137254902 0.353 0.0 1000.0 200.0
58 6.0 0.30000000000000004 0.00963970588235294 0.269 0.0 1000.0 162.694
59 6.0 0.5000000000000001 0.010389705882352942 0.252 0.0 1000.0 129.146
60 6.0 0.7000000000000001 0.009105392156862745 0.216 0.0 1000.0 109.342
61 6.0 0.9000000000000001 0.01049264705882353 0.227 0.0 1000.0 104.179
62 6.0 1.1000000000000003 0.010573529411764706 0.233 0.0 1000.0 95.673
63 6.0 1.3000000000000003 0.010610294117647058 0.22 0.0 1000.0 87.318
64 6.0 1.5000000000000004 0.00904656862745098 0.194 0.0 1000.0 78.642
65 6.0 1.7000000000000004 0.010232843137254902 0.207 0.0 1000.0 77.073
66 6.0 1.9000000000000004 0.010200980392156863 0.211 0.0 1000.0 69.385
67 6.0 2.1000000000000005 0.015017156862745098 0.337 0.0 1000.0 86.164
68 7.0 0.1 0.004303921568627451 0.287 0.0 1000.0 200.0
69 7.0 0.30000000000000004 0.007014705882352941 0.209 0.0 1000.0 159.98
70 7.0 0.5000000000000001 0.00858578431372549 0.222 0.0 1000.0 126.802
71 7.0 0.7000000000000001 0.009107843137254903 0.218 0.0 1000.0 113.039
72 7.0 0.9000000000000001 0.009259803921568627 0.215 0.0 1000.0 103.988
73 7.0 1.1000000000000003 0.009279411764705882 0.202 0.0 1000.0 97.007
74 7.0 1.3000000000000003 0.010710784313725491 0.228 0.0 1000.0 91.598
75 7.0 1.5000000000000004 0.01029656862745098 0.214 0.0 1000.0 87.413
76 7.0 1.7000000000000004 0.010208333333333333 0.209 0.0 1000.0 79.826
77 7.0 1.9000000000000004 0.01011029411764706 0.203 0.0 1000.0 71.692
78 7.0 2.1000000000000005 0.01419607843137255 0.323 0.0 1000.0 84.352
79 8.0 0.1 0.002213235294117647 0.195 0.0 1000.0 200.0
80 8.0 0.30000000000000004 0.007424019607843137 0.242 0.0 1000.0 163.466
81 8.0 0.5000000000000001 0.00836029411764706 0.222 0.0 1000.0 129.016
82 8.0 0.7000000000000001 0.009120098039215686 0.227 0.0 1000.0 116.799
83 8.0 0.9000000000000001 0.009024509803921568 0.207 0.0 1000.0 108.641
84 8.0 1.1000000000000003 0.009379901960784314 0.206 0.0 1000.0 102.087
85 8.0 1.3000000000000003 0.009267156862745098 0.202 0.0 1000.0 94.646
86 8.0 1.5000000000000004 0.009825980392156862 0.216 0.0 1000.0 92.87
87 8.0 1.7000000000000004 0.010208333333333333 0.21 0.0 1000.0 82.53
88 8.0 1.9000000000000004 0.010029411764705882 0.203 0.0 1000.0 73.072
89 8.0 2.1000000000000005 0.014436274509803922 0.323 0.0 1000.0 84.913
90 9.0 0.1 0.0015245098039215687 0.148 0.0 1000.0 200.0
91 9.0 0.30000000000000004 0.006683823529411765 0.216 0.0 1000.0 159.878
92 9.0 0.5000000000000001 0.009340686274509805 0.237 0.0 1000.0 131.949
93 9.0 0.7000000000000001 0.010125 0.266 0.0 1000.0 126.926
94 9.0 0.9000000000000001 0.009536764705882352 0.221 0.0 1000.0 114.401
95 9.0 1.1000000000000003 0.009458333333333332 0.21 0.0 1000.0 106.91
96 9.0 1.3000000000000003 0.010245098039215686 0.235 0.0 1000.0 105.052
97 9.0 1.5000000000000004 0.010237745098039215 0.224 0.0 1000.0 91.906
98 9.0 1.7000000000000004 0.010480392156862745 0.214 0.0 1000.0 82.018
99 9.0 1.9000000000000004 0.009495098039215687 0.195 0.0 1000.0 72.756
100 9.0 2.1000000000000005 0.015036764705882354 0.329 0.0 1000.0 86.995

View File

@@ -0,0 +1,10 @@
{
"duration": 226.94167350900034,
"name": "mu_rho_kavg_40833844",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:25:00.813737"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.04051041666666667,0.551,0.0,1000.0,199.804
1.0,0.30000000000000004,0.027177083333333334,0.284,0.0,1000.0,142.055
1.0,0.5000000000000001,0.02546875,0.25,0.0,1000.0,106.932
1.0,0.7000000000000001,0.024614583333333332,0.238,0.0,1000.0,89.39
1.0,0.9000000000000001,0.02428125,0.235,0.0,1000.0,78.55
1.0,1.1000000000000003,0.024072916666666666,0.231,0.0,1000.0,70.854
1.0,1.3000000000000003,0.024229166666666666,0.23,0.0,1000.0,67.119
1.0,1.5000000000000004,0.024614583333333332,0.229,0.0,1000.0,63.874
1.0,1.7000000000000004,0.024729166666666667,0.228,0.0,1000.0,62.023
1.0,1.9000000000000004,0.024958333333333332,0.227,0.0,1000.0,60.761
1.0,2.1000000000000005,0.024822916666666667,0.242,0.0,1000.0,62.67
2.0,0.1,0.03396875,0.399,0.0,1000.0,199.613
2.0,0.30000000000000004,0.025604166666666667,0.262,0.0,1000.0,130.896
2.0,0.5000000000000001,0.025333333333333333,0.242,0.0,1000.0,98.266
2.0,0.7000000000000001,0.024666666666666667,0.239,0.0,1000.0,83.753
2.0,0.9000000000000001,0.0245,0.235,0.0,1000.0,74.182
2.0,1.1000000000000003,0.024395833333333332,0.235,0.0,1000.0,67.51
2.0,1.3000000000000003,0.024416666666666666,0.233,0.0,1000.0,64.43
2.0,1.5000000000000004,0.024166666666666666,0.232,0.0,1000.0,62.27
2.0,1.7000000000000004,0.02266666666666667,0.217,0.0,1000.0,60.463
2.0,1.9000000000000004,0.02246875,0.217,0.0,1000.0,59.228
2.0,2.1000000000000005,0.024,0.263,0.0,1000.0,65.808
3.0,0.1,0.02690625,0.357,0.0,1000.0,199.519
3.0,0.30000000000000004,0.02471875,0.248,0.0,1000.0,129.881
3.0,0.5000000000000001,0.022822916666666665,0.238,0.0,1000.0,100.615
3.0,0.7000000000000001,0.024489583333333332,0.238,0.0,1000.0,84.416
3.0,0.9000000000000001,0.0228125,0.226,0.0,1000.0,74.765
3.0,1.1000000000000003,0.022645833333333334,0.222,0.0,1000.0,68.337
3.0,1.3000000000000003,0.02269791666666667,0.22,0.0,1000.0,65.036
3.0,1.5000000000000004,0.0226875,0.22,0.0,1000.0,62.392
3.0,1.7000000000000004,0.02271875,0.217,0.0,1000.0,61.503
3.0,1.9000000000000004,0.024416666666666666,0.227,0.0,1000.0,59.819
3.0,2.1000000000000005,0.024395833333333332,0.272,0.0,1000.0,67.514
4.0,0.1,0.021052083333333332,0.292,0.0,1000.0,199.123
4.0,0.30000000000000004,0.02440625,0.247,0.0,1000.0,128.947
4.0,0.5000000000000001,0.024635416666666667,0.239,0.0,1000.0,99.197
4.0,0.7000000000000001,0.023583333333333335,0.237,0.0,1000.0,84.968
4.0,0.9000000000000001,0.022583333333333334,0.227,0.0,1000.0,77.136
4.0,1.1000000000000003,0.02259375,0.223,0.0,1000.0,71.086
4.0,1.3000000000000003,0.022260416666666668,0.224,0.0,1000.0,68.534
4.0,1.5000000000000004,0.02266666666666667,0.22,0.0,1000.0,64.469
4.0,1.7000000000000004,0.023916666666666666,0.233,0.0,1000.0,62.943
4.0,1.9000000000000004,0.023510416666666666,0.226,0.0,1000.0,59.495
4.0,2.1000000000000005,0.026416666666666668,0.281,0.0,1000.0,67.927
5.0,0.1,0.01621875,0.249,0.0,1000.0,198.807
5.0,0.30000000000000004,0.02171875,0.235,0.0,1000.0,127.114
5.0,0.5000000000000001,0.02246875,0.236,0.0,1000.0,96.915
5.0,0.7000000000000001,0.024375,0.235,0.0,1000.0,88.414
5.0,0.9000000000000001,0.022177083333333333,0.227,0.0,1000.0,81.357
5.0,1.1000000000000003,0.02359375,0.234,0.0,1000.0,74.386
5.0,1.3000000000000003,0.023458333333333335,0.234,0.0,1000.0,70.634
5.0,1.5000000000000004,0.023635416666666666,0.228,0.0,1000.0,69.184
5.0,1.7000000000000004,0.023145833333333334,0.23,0.0,1000.0,63.329
5.0,1.9000000000000004,0.021791666666666668,0.22,0.0,1000.0,59.901
5.0,2.1000000000000005,0.024270833333333332,0.272,0.0,1000.0,67.515
6.0,0.1,0.012125,0.21,0.0,1000.0,198.153
6.0,0.30000000000000004,0.019291666666666665,0.218,0.0,1000.0,126.113
6.0,0.5000000000000001,0.022416666666666668,0.234,0.0,1000.0,100.395
6.0,0.7000000000000001,0.022145833333333333,0.231,0.0,1000.0,90.956
6.0,0.9000000000000001,0.0235625,0.235,0.0,1000.0,83.059
6.0,1.1000000000000003,0.024322916666666666,0.239,0.0,1000.0,77.957
6.0,1.3000000000000003,0.02409375,0.237,0.0,1000.0,74.162
6.0,1.5000000000000004,0.02709375,0.265,0.0,1000.0,76.751
6.0,1.7000000000000004,0.02328125,0.228,0.0,1000.0,64.33
6.0,1.9000000000000004,0.024541666666666666,0.223,0.0,1000.0,61.95
6.0,2.1000000000000005,0.024541666666666666,0.275,0.0,1000.0,68.532
7.0,0.1,0.008489583333333333,0.174,0.0,1000.0,197.931
7.0,0.30000000000000004,0.018458333333333334,0.215,0.0,1000.0,124.84
7.0,0.5000000000000001,0.021604166666666667,0.23,0.0,1000.0,99.627
7.0,0.7000000000000001,0.021875,0.221,0.0,1000.0,91.176
7.0,0.9000000000000001,0.024104166666666666,0.241,0.0,1000.0,86.295
7.0,1.1000000000000003,0.02420833333333333,0.24,0.0,1000.0,83.531
7.0,1.3000000000000003,0.024125,0.239,0.0,1000.0,76.971
7.0,1.5000000000000004,0.024666666666666667,0.239,0.0,1000.0,74.785
7.0,1.7000000000000004,0.023572916666666666,0.226,0.0,1000.0,68.602
7.0,1.9000000000000004,0.023072916666666665,0.22,0.0,1000.0,62.776
7.0,2.1000000000000005,0.027447916666666666,0.302,0.0,1000.0,72.794
8.0,0.1,0.007395833333333333,0.156,0.0,1000.0,197.768
8.0,0.30000000000000004,0.016958333333333332,0.205,0.0,1000.0,126.574
8.0,0.5000000000000001,0.020947916666666667,0.229,0.0,1000.0,101.468
8.0,0.7000000000000001,0.0228125,0.233,0.0,1000.0,92.78
8.0,0.9000000000000001,0.023458333333333335,0.243,0.0,1000.0,87.374
8.0,1.1000000000000003,0.023302083333333334,0.239,0.0,1000.0,83.338
8.0,1.3000000000000003,0.023104166666666665,0.234,0.0,1000.0,78.985
8.0,1.5000000000000004,0.023739583333333335,0.231,0.0,1000.0,76.607
8.0,1.7000000000000004,0.02321875,0.231,0.0,1000.0,70.597
8.0,1.9000000000000004,0.0255625,0.252,0.0,1000.0,69.445
8.0,2.1000000000000005,0.0265625,0.304,0.0,1000.0,73.754
9.0,0.1,0.006625,0.148,0.0,1000.0,197.126
9.0,0.30000000000000004,0.019614583333333335,0.231,0.0,1000.0,133.765
9.0,0.5000000000000001,0.020947916666666667,0.224,0.0,1000.0,108.166
9.0,0.7000000000000001,0.020614583333333332,0.216,0.0,1000.0,94.369
9.0,0.9000000000000001,0.0255625,0.246,0.0,1000.0,92.274
9.0,1.1000000000000003,0.02325,0.243,0.0,1000.0,86.457
9.0,1.3000000000000003,0.023322916666666665,0.238,0.0,1000.0,81.733
9.0,1.5000000000000004,0.025395833333333333,0.241,0.0,1000.0,76.717
9.0,1.7000000000000004,0.0265625,0.263,0.0,1000.0,77.395
9.0,1.9000000000000004,0.021802083333333333,0.206,0.0,1000.0,61.978
9.0,2.1000000000000005,0.02734375,0.305,0.0,1000.0,73.959
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.04051041666666667 0.551 0.0 1000.0 199.804
3 1.0 0.30000000000000004 0.027177083333333334 0.284 0.0 1000.0 142.055
4 1.0 0.5000000000000001 0.02546875 0.25 0.0 1000.0 106.932
5 1.0 0.7000000000000001 0.024614583333333332 0.238 0.0 1000.0 89.39
6 1.0 0.9000000000000001 0.02428125 0.235 0.0 1000.0 78.55
7 1.0 1.1000000000000003 0.024072916666666666 0.231 0.0 1000.0 70.854
8 1.0 1.3000000000000003 0.024229166666666666 0.23 0.0 1000.0 67.119
9 1.0 1.5000000000000004 0.024614583333333332 0.229 0.0 1000.0 63.874
10 1.0 1.7000000000000004 0.024729166666666667 0.228 0.0 1000.0 62.023
11 1.0 1.9000000000000004 0.024958333333333332 0.227 0.0 1000.0 60.761
12 1.0 2.1000000000000005 0.024822916666666667 0.242 0.0 1000.0 62.67
13 2.0 0.1 0.03396875 0.399 0.0 1000.0 199.613
14 2.0 0.30000000000000004 0.025604166666666667 0.262 0.0 1000.0 130.896
15 2.0 0.5000000000000001 0.025333333333333333 0.242 0.0 1000.0 98.266
16 2.0 0.7000000000000001 0.024666666666666667 0.239 0.0 1000.0 83.753
17 2.0 0.9000000000000001 0.0245 0.235 0.0 1000.0 74.182
18 2.0 1.1000000000000003 0.024395833333333332 0.235 0.0 1000.0 67.51
19 2.0 1.3000000000000003 0.024416666666666666 0.233 0.0 1000.0 64.43
20 2.0 1.5000000000000004 0.024166666666666666 0.232 0.0 1000.0 62.27
21 2.0 1.7000000000000004 0.02266666666666667 0.217 0.0 1000.0 60.463
22 2.0 1.9000000000000004 0.02246875 0.217 0.0 1000.0 59.228
23 2.0 2.1000000000000005 0.024 0.263 0.0 1000.0 65.808
24 3.0 0.1 0.02690625 0.357 0.0 1000.0 199.519
25 3.0 0.30000000000000004 0.02471875 0.248 0.0 1000.0 129.881
26 3.0 0.5000000000000001 0.022822916666666665 0.238 0.0 1000.0 100.615
27 3.0 0.7000000000000001 0.024489583333333332 0.238 0.0 1000.0 84.416
28 3.0 0.9000000000000001 0.0228125 0.226 0.0 1000.0 74.765
29 3.0 1.1000000000000003 0.022645833333333334 0.222 0.0 1000.0 68.337
30 3.0 1.3000000000000003 0.02269791666666667 0.22 0.0 1000.0 65.036
31 3.0 1.5000000000000004 0.0226875 0.22 0.0 1000.0 62.392
32 3.0 1.7000000000000004 0.02271875 0.217 0.0 1000.0 61.503
33 3.0 1.9000000000000004 0.024416666666666666 0.227 0.0 1000.0 59.819
34 3.0 2.1000000000000005 0.024395833333333332 0.272 0.0 1000.0 67.514
35 4.0 0.1 0.021052083333333332 0.292 0.0 1000.0 199.123
36 4.0 0.30000000000000004 0.02440625 0.247 0.0 1000.0 128.947
37 4.0 0.5000000000000001 0.024635416666666667 0.239 0.0 1000.0 99.197
38 4.0 0.7000000000000001 0.023583333333333335 0.237 0.0 1000.0 84.968
39 4.0 0.9000000000000001 0.022583333333333334 0.227 0.0 1000.0 77.136
40 4.0 1.1000000000000003 0.02259375 0.223 0.0 1000.0 71.086
41 4.0 1.3000000000000003 0.022260416666666668 0.224 0.0 1000.0 68.534
42 4.0 1.5000000000000004 0.02266666666666667 0.22 0.0 1000.0 64.469
43 4.0 1.7000000000000004 0.023916666666666666 0.233 0.0 1000.0 62.943
44 4.0 1.9000000000000004 0.023510416666666666 0.226 0.0 1000.0 59.495
45 4.0 2.1000000000000005 0.026416666666666668 0.281 0.0 1000.0 67.927
46 5.0 0.1 0.01621875 0.249 0.0 1000.0 198.807
47 5.0 0.30000000000000004 0.02171875 0.235 0.0 1000.0 127.114
48 5.0 0.5000000000000001 0.02246875 0.236 0.0 1000.0 96.915
49 5.0 0.7000000000000001 0.024375 0.235 0.0 1000.0 88.414
50 5.0 0.9000000000000001 0.022177083333333333 0.227 0.0 1000.0 81.357
51 5.0 1.1000000000000003 0.02359375 0.234 0.0 1000.0 74.386
52 5.0 1.3000000000000003 0.023458333333333335 0.234 0.0 1000.0 70.634
53 5.0 1.5000000000000004 0.023635416666666666 0.228 0.0 1000.0 69.184
54 5.0 1.7000000000000004 0.023145833333333334 0.23 0.0 1000.0 63.329
55 5.0 1.9000000000000004 0.021791666666666668 0.22 0.0 1000.0 59.901
56 5.0 2.1000000000000005 0.024270833333333332 0.272 0.0 1000.0 67.515
57 6.0 0.1 0.012125 0.21 0.0 1000.0 198.153
58 6.0 0.30000000000000004 0.019291666666666665 0.218 0.0 1000.0 126.113
59 6.0 0.5000000000000001 0.022416666666666668 0.234 0.0 1000.0 100.395
60 6.0 0.7000000000000001 0.022145833333333333 0.231 0.0 1000.0 90.956
61 6.0 0.9000000000000001 0.0235625 0.235 0.0 1000.0 83.059
62 6.0 1.1000000000000003 0.024322916666666666 0.239 0.0 1000.0 77.957
63 6.0 1.3000000000000003 0.02409375 0.237 0.0 1000.0 74.162
64 6.0 1.5000000000000004 0.02709375 0.265 0.0 1000.0 76.751
65 6.0 1.7000000000000004 0.02328125 0.228 0.0 1000.0 64.33
66 6.0 1.9000000000000004 0.024541666666666666 0.223 0.0 1000.0 61.95
67 6.0 2.1000000000000005 0.024541666666666666 0.275 0.0 1000.0 68.532
68 7.0 0.1 0.008489583333333333 0.174 0.0 1000.0 197.931
69 7.0 0.30000000000000004 0.018458333333333334 0.215 0.0 1000.0 124.84
70 7.0 0.5000000000000001 0.021604166666666667 0.23 0.0 1000.0 99.627
71 7.0 0.7000000000000001 0.021875 0.221 0.0 1000.0 91.176
72 7.0 0.9000000000000001 0.024104166666666666 0.241 0.0 1000.0 86.295
73 7.0 1.1000000000000003 0.02420833333333333 0.24 0.0 1000.0 83.531
74 7.0 1.3000000000000003 0.024125 0.239 0.0 1000.0 76.971
75 7.0 1.5000000000000004 0.024666666666666667 0.239 0.0 1000.0 74.785
76 7.0 1.7000000000000004 0.023572916666666666 0.226 0.0 1000.0 68.602
77 7.0 1.9000000000000004 0.023072916666666665 0.22 0.0 1000.0 62.776
78 7.0 2.1000000000000005 0.027447916666666666 0.302 0.0 1000.0 72.794
79 8.0 0.1 0.007395833333333333 0.156 0.0 1000.0 197.768
80 8.0 0.30000000000000004 0.016958333333333332 0.205 0.0 1000.0 126.574
81 8.0 0.5000000000000001 0.020947916666666667 0.229 0.0 1000.0 101.468
82 8.0 0.7000000000000001 0.0228125 0.233 0.0 1000.0 92.78
83 8.0 0.9000000000000001 0.023458333333333335 0.243 0.0 1000.0 87.374
84 8.0 1.1000000000000003 0.023302083333333334 0.239 0.0 1000.0 83.338
85 8.0 1.3000000000000003 0.023104166666666665 0.234 0.0 1000.0 78.985
86 8.0 1.5000000000000004 0.023739583333333335 0.231 0.0 1000.0 76.607
87 8.0 1.7000000000000004 0.02321875 0.231 0.0 1000.0 70.597
88 8.0 1.9000000000000004 0.0255625 0.252 0.0 1000.0 69.445
89 8.0 2.1000000000000005 0.0265625 0.304 0.0 1000.0 73.754
90 9.0 0.1 0.006625 0.148 0.0 1000.0 197.126
91 9.0 0.30000000000000004 0.019614583333333335 0.231 0.0 1000.0 133.765
92 9.0 0.5000000000000001 0.020947916666666667 0.224 0.0 1000.0 108.166
93 9.0 0.7000000000000001 0.020614583333333332 0.216 0.0 1000.0 94.369
94 9.0 0.9000000000000001 0.0255625 0.246 0.0 1000.0 92.274
95 9.0 1.1000000000000003 0.02325 0.243 0.0 1000.0 86.457
96 9.0 1.3000000000000003 0.023322916666666665 0.238 0.0 1000.0 81.733
97 9.0 1.5000000000000004 0.025395833333333333 0.241 0.0 1000.0 76.717
98 9.0 1.7000000000000004 0.0265625 0.263 0.0 1000.0 77.395
99 9.0 1.9000000000000004 0.021802083333333333 0.206 0.0 1000.0 61.978
100 9.0 2.1000000000000005 0.02734375 0.305 0.0 1000.0 73.959

View File

@@ -0,0 +1,10 @@
{
"duration": 24.581720929999847,
"name": "mu_rho_kavg_963965",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:12:25.532997"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.04693548387096774,0.577,0.0,1000.0,156.089
1.0,0.30000000000000004,0.043516129032258065,0.482,0.0,1000.0,120.89
1.0,0.5000000000000001,0.04387096774193548,0.475,0.0,1000.0,101.688
1.0,0.7000000000000001,0.04341935483870968,0.47,0.0,1000.0,88.283
1.0,0.9000000000000001,0.04358064516129032,0.47,0.0,1000.0,78.19
1.0,1.1000000000000003,0.043483870967741936,0.469,0.0,1000.0,71.539
1.0,1.3000000000000003,0.043806451612903224,0.469,0.0,1000.0,70.019
1.0,1.5000000000000004,0.04448387096774194,0.475,0.0,1000.0,73.249
1.0,1.7000000000000004,0.044774193548387096,0.475,0.0,1000.0,79.86
1.0,1.9000000000000004,0.0452258064516129,0.475,0.0,1000.0,85.882
1.0,2.1000000000000005,0.043806451612903224,0.477,0.0,1000.0,86.777
2.0,0.1,0.04238709677419355,0.513,0.0,1000.0,158.879
2.0,0.30000000000000004,0.04361290322580645,0.479,0.0,1000.0,120.085
2.0,0.5000000000000001,0.04419354838709678,0.477,0.0,1000.0,97.894
2.0,0.7000000000000001,0.04416129032258065,0.469,0.0,1000.0,82.589
2.0,0.9000000000000001,0.04361290322580645,0.476,0.0,1000.0,73.789
2.0,1.1000000000000003,0.04374193548387097,0.467,0.0,1000.0,66.529
2.0,1.3000000000000003,0.043548387096774194,0.467,0.0,1000.0,65.808
2.0,1.5000000000000004,0.04341935483870968,0.484,0.0,1000.0,71.888
2.0,1.7000000000000004,0.043774193548387096,0.467,0.0,1000.0,77.651
2.0,1.9000000000000004,0.043483870967741936,0.467,0.0,1000.0,84.363
2.0,2.1000000000000005,0.04206451612903226,0.469,0.0,1000.0,82.369
3.0,0.1,0.04138709677419355,0.497,0.0,1000.0,159.639
3.0,0.30000000000000004,0.041741935483870965,0.464,0.0,1000.0,118.336
3.0,0.5000000000000001,0.04283870967741935,0.483,0.0,1000.0,96.827
3.0,0.7000000000000001,0.04367741935483871,0.484,0.0,1000.0,82.673
3.0,0.9000000000000001,0.043548387096774194,0.484,0.0,1000.0,73.369
3.0,1.1000000000000003,0.041774193548387094,0.451,0.0,1000.0,65.091
3.0,1.3000000000000003,0.04341935483870968,0.484,0.0,1000.0,67.864
3.0,1.5000000000000004,0.046,0.488,0.0,1000.0,74.293
3.0,1.7000000000000004,0.042451612903225806,0.463,0.0,1000.0,75.077
3.0,1.9000000000000004,0.041483870967741934,0.463,0.0,1000.0,81.41
3.0,2.1000000000000005,0.04154838709677419,0.466,0.0,1000.0,83.157
4.0,0.1,0.03932258064516129,0.474,0.0,1000.0,159.212
4.0,0.30000000000000004,0.04332258064516129,0.472,0.0,1000.0,118.623
4.0,0.5000000000000001,0.04154838709677419,0.461,0.0,1000.0,95.369
4.0,0.7000000000000001,0.041709677419354836,0.465,0.0,1000.0,81.33
4.0,0.9000000000000001,0.042741935483870966,0.451,0.0,1000.0,72.35
4.0,1.1000000000000003,0.04212903225806452,0.452,0.0,1000.0,67.011
4.0,1.3000000000000003,0.046354838709677416,0.502,0.0,1000.0,72.786
4.0,1.5000000000000004,0.04232258064516129,0.45,0.0,1000.0,69.162
4.0,1.7000000000000004,0.042,0.449,0.0,1000.0,75.94
4.0,1.9000000000000004,0.041935483870967745,0.448,0.0,1000.0,81.738
4.0,2.1000000000000005,0.04503225806451613,0.496,0.0,1000.0,92.224
5.0,0.1,0.037,0.45,0.0,1000.0,159.7
5.0,0.30000000000000004,0.04335483870967742,0.471,0.0,1000.0,120.724
5.0,0.5000000000000001,0.044774193548387096,0.479,0.0,1000.0,102.611
5.0,0.7000000000000001,0.04161290322580645,0.464,0.0,1000.0,83.252
5.0,0.9000000000000001,0.04596774193548387,0.509,0.0,1000.0,79.496
5.0,1.1000000000000003,0.04629032258064516,0.489,0.0,1000.0,74.825
5.0,1.3000000000000003,0.04616129032258064,0.489,0.0,1000.0,73.79
5.0,1.5000000000000004,0.04206451612903226,0.451,0.0,1000.0,70.575
5.0,1.7000000000000004,0.04396774193548387,0.478,0.0,1000.0,80.442
5.0,1.9000000000000004,0.04467741935483871,0.476,0.0,1000.0,87.731
5.0,2.1000000000000005,0.04387096774193548,0.481,0.0,1000.0,90.082
6.0,0.1,0.0332258064516129,0.411,0.0,1000.0,154.367
6.0,0.30000000000000004,0.041935483870967745,0.463,0.0,1000.0,119.894
6.0,0.5000000000000001,0.04774193548387097,0.512,0.0,1000.0,105.08
6.0,0.7000000000000001,0.044548387096774195,0.478,0.0,1000.0,88.875
6.0,0.9000000000000001,0.04574193548387097,0.487,0.0,1000.0,82.59
6.0,1.1000000000000003,0.04706451612903226,0.503,0.0,1000.0,78.191
6.0,1.3000000000000003,0.04574193548387097,0.507,0.0,1000.0,76.649
6.0,1.5000000000000004,0.0467741935483871,0.5,0.0,1000.0,78.588
6.0,1.7000000000000004,0.044838709677419354,0.477,0.0,1000.0,82.228
6.0,1.9000000000000004,0.04629032258064516,0.497,0.0,1000.0,90.418
6.0,2.1000000000000005,0.045,0.507,0.0,1000.0,93.972
7.0,0.1,0.0315483870967742,0.401,0.0,1000.0,152.571
7.0,0.30000000000000004,0.04209677419354839,0.476,0.0,1000.0,124.814
7.0,0.5000000000000001,0.043516129032258065,0.485,0.0,1000.0,106.455
7.0,0.7000000000000001,0.04461290322580645,0.492,0.0,1000.0,93.436
7.0,0.9000000000000001,0.04541935483870968,0.499,0.0,1000.0,84.213
7.0,1.1000000000000003,0.04680645161290323,0.502,0.0,1000.0,80.377
7.0,1.3000000000000003,0.04548387096774194,0.499,0.0,1000.0,76.457
7.0,1.5000000000000004,0.04632258064516129,0.508,0.0,1000.0,79.327
7.0,1.7000000000000004,0.0457741935483871,0.504,0.0,1000.0,85.752
7.0,1.9000000000000004,0.0457741935483871,0.503,0.0,1000.0,91.049
7.0,2.1000000000000005,0.043258064516129034,0.493,0.0,1000.0,93.856
8.0,0.1,0.030806451612903227,0.403,0.0,1000.0,157.68
8.0,0.30000000000000004,0.04064516129032258,0.466,0.0,1000.0,124.911
8.0,0.5000000000000001,0.04235483870967742,0.467,0.0,1000.0,105.916
8.0,0.7000000000000001,0.046,0.505,0.0,1000.0,95.462
8.0,0.9000000000000001,0.04293548387096774,0.478,0.0,1000.0,84.859
8.0,1.1000000000000003,0.044096774193548384,0.482,0.0,1000.0,79.073
8.0,1.3000000000000003,0.046129032258064515,0.509,0.0,1000.0,78.595
8.0,1.5000000000000004,0.049225806451612904,0.517,0.0,1000.0,81.049
8.0,1.7000000000000004,0.046387096774193545,0.504,0.0,1000.0,86.91
8.0,1.9000000000000004,0.04290322580645161,0.473,0.0,1000.0,88.259
8.0,2.1000000000000005,0.042806451612903224,0.507,0.0,1000.0,94.453
9.0,0.1,0.031096774193548386,0.396,0.0,1000.0,155.969
9.0,0.30000000000000004,0.04370967741935484,0.484,0.0,1000.0,126.452
9.0,0.5000000000000001,0.04209677419354839,0.492,0.0,1000.0,111.441
9.0,0.7000000000000001,0.04293548387096774,0.473,0.0,1000.0,95.758
9.0,0.9000000000000001,0.04364516129032258,0.478,0.0,1000.0,87.204
9.0,1.1000000000000003,0.04925806451612903,0.52,0.0,1000.0,83.803
9.0,1.3000000000000003,0.04487096774193548,0.488,0.0,1000.0,75.966
9.0,1.5000000000000004,0.04293548387096774,0.461,0.0,1000.0,78.56
9.0,1.7000000000000004,0.049,0.515,0.0,1000.0,88.433
9.0,1.9000000000000004,0.04487096774193548,0.496,0.0,1000.0,89.996
9.0,2.1000000000000005,0.04332258064516129,0.505,0.0,1000.0,97.225
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.04693548387096774 0.577 0.0 1000.0 156.089
3 1.0 0.30000000000000004 0.043516129032258065 0.482 0.0 1000.0 120.89
4 1.0 0.5000000000000001 0.04387096774193548 0.475 0.0 1000.0 101.688
5 1.0 0.7000000000000001 0.04341935483870968 0.47 0.0 1000.0 88.283
6 1.0 0.9000000000000001 0.04358064516129032 0.47 0.0 1000.0 78.19
7 1.0 1.1000000000000003 0.043483870967741936 0.469 0.0 1000.0 71.539
8 1.0 1.3000000000000003 0.043806451612903224 0.469 0.0 1000.0 70.019
9 1.0 1.5000000000000004 0.04448387096774194 0.475 0.0 1000.0 73.249
10 1.0 1.7000000000000004 0.044774193548387096 0.475 0.0 1000.0 79.86
11 1.0 1.9000000000000004 0.0452258064516129 0.475 0.0 1000.0 85.882
12 1.0 2.1000000000000005 0.043806451612903224 0.477 0.0 1000.0 86.777
13 2.0 0.1 0.04238709677419355 0.513 0.0 1000.0 158.879
14 2.0 0.30000000000000004 0.04361290322580645 0.479 0.0 1000.0 120.085
15 2.0 0.5000000000000001 0.04419354838709678 0.477 0.0 1000.0 97.894
16 2.0 0.7000000000000001 0.04416129032258065 0.469 0.0 1000.0 82.589
17 2.0 0.9000000000000001 0.04361290322580645 0.476 0.0 1000.0 73.789
18 2.0 1.1000000000000003 0.04374193548387097 0.467 0.0 1000.0 66.529
19 2.0 1.3000000000000003 0.043548387096774194 0.467 0.0 1000.0 65.808
20 2.0 1.5000000000000004 0.04341935483870968 0.484 0.0 1000.0 71.888
21 2.0 1.7000000000000004 0.043774193548387096 0.467 0.0 1000.0 77.651
22 2.0 1.9000000000000004 0.043483870967741936 0.467 0.0 1000.0 84.363
23 2.0 2.1000000000000005 0.04206451612903226 0.469 0.0 1000.0 82.369
24 3.0 0.1 0.04138709677419355 0.497 0.0 1000.0 159.639
25 3.0 0.30000000000000004 0.041741935483870965 0.464 0.0 1000.0 118.336
26 3.0 0.5000000000000001 0.04283870967741935 0.483 0.0 1000.0 96.827
27 3.0 0.7000000000000001 0.04367741935483871 0.484 0.0 1000.0 82.673
28 3.0 0.9000000000000001 0.043548387096774194 0.484 0.0 1000.0 73.369
29 3.0 1.1000000000000003 0.041774193548387094 0.451 0.0 1000.0 65.091
30 3.0 1.3000000000000003 0.04341935483870968 0.484 0.0 1000.0 67.864
31 3.0 1.5000000000000004 0.046 0.488 0.0 1000.0 74.293
32 3.0 1.7000000000000004 0.042451612903225806 0.463 0.0 1000.0 75.077
33 3.0 1.9000000000000004 0.041483870967741934 0.463 0.0 1000.0 81.41
34 3.0 2.1000000000000005 0.04154838709677419 0.466 0.0 1000.0 83.157
35 4.0 0.1 0.03932258064516129 0.474 0.0 1000.0 159.212
36 4.0 0.30000000000000004 0.04332258064516129 0.472 0.0 1000.0 118.623
37 4.0 0.5000000000000001 0.04154838709677419 0.461 0.0 1000.0 95.369
38 4.0 0.7000000000000001 0.041709677419354836 0.465 0.0 1000.0 81.33
39 4.0 0.9000000000000001 0.042741935483870966 0.451 0.0 1000.0 72.35
40 4.0 1.1000000000000003 0.04212903225806452 0.452 0.0 1000.0 67.011
41 4.0 1.3000000000000003 0.046354838709677416 0.502 0.0 1000.0 72.786
42 4.0 1.5000000000000004 0.04232258064516129 0.45 0.0 1000.0 69.162
43 4.0 1.7000000000000004 0.042 0.449 0.0 1000.0 75.94
44 4.0 1.9000000000000004 0.041935483870967745 0.448 0.0 1000.0 81.738
45 4.0 2.1000000000000005 0.04503225806451613 0.496 0.0 1000.0 92.224
46 5.0 0.1 0.037 0.45 0.0 1000.0 159.7
47 5.0 0.30000000000000004 0.04335483870967742 0.471 0.0 1000.0 120.724
48 5.0 0.5000000000000001 0.044774193548387096 0.479 0.0 1000.0 102.611
49 5.0 0.7000000000000001 0.04161290322580645 0.464 0.0 1000.0 83.252
50 5.0 0.9000000000000001 0.04596774193548387 0.509 0.0 1000.0 79.496
51 5.0 1.1000000000000003 0.04629032258064516 0.489 0.0 1000.0 74.825
52 5.0 1.3000000000000003 0.04616129032258064 0.489 0.0 1000.0 73.79
53 5.0 1.5000000000000004 0.04206451612903226 0.451 0.0 1000.0 70.575
54 5.0 1.7000000000000004 0.04396774193548387 0.478 0.0 1000.0 80.442
55 5.0 1.9000000000000004 0.04467741935483871 0.476 0.0 1000.0 87.731
56 5.0 2.1000000000000005 0.04387096774193548 0.481 0.0 1000.0 90.082
57 6.0 0.1 0.0332258064516129 0.411 0.0 1000.0 154.367
58 6.0 0.30000000000000004 0.041935483870967745 0.463 0.0 1000.0 119.894
59 6.0 0.5000000000000001 0.04774193548387097 0.512 0.0 1000.0 105.08
60 6.0 0.7000000000000001 0.044548387096774195 0.478 0.0 1000.0 88.875
61 6.0 0.9000000000000001 0.04574193548387097 0.487 0.0 1000.0 82.59
62 6.0 1.1000000000000003 0.04706451612903226 0.503 0.0 1000.0 78.191
63 6.0 1.3000000000000003 0.04574193548387097 0.507 0.0 1000.0 76.649
64 6.0 1.5000000000000004 0.0467741935483871 0.5 0.0 1000.0 78.588
65 6.0 1.7000000000000004 0.044838709677419354 0.477 0.0 1000.0 82.228
66 6.0 1.9000000000000004 0.04629032258064516 0.497 0.0 1000.0 90.418
67 6.0 2.1000000000000005 0.045 0.507 0.0 1000.0 93.972
68 7.0 0.1 0.0315483870967742 0.401 0.0 1000.0 152.571
69 7.0 0.30000000000000004 0.04209677419354839 0.476 0.0 1000.0 124.814
70 7.0 0.5000000000000001 0.043516129032258065 0.485 0.0 1000.0 106.455
71 7.0 0.7000000000000001 0.04461290322580645 0.492 0.0 1000.0 93.436
72 7.0 0.9000000000000001 0.04541935483870968 0.499 0.0 1000.0 84.213
73 7.0 1.1000000000000003 0.04680645161290323 0.502 0.0 1000.0 80.377
74 7.0 1.3000000000000003 0.04548387096774194 0.499 0.0 1000.0 76.457
75 7.0 1.5000000000000004 0.04632258064516129 0.508 0.0 1000.0 79.327
76 7.0 1.7000000000000004 0.0457741935483871 0.504 0.0 1000.0 85.752
77 7.0 1.9000000000000004 0.0457741935483871 0.503 0.0 1000.0 91.049
78 7.0 2.1000000000000005 0.043258064516129034 0.493 0.0 1000.0 93.856
79 8.0 0.1 0.030806451612903227 0.403 0.0 1000.0 157.68
80 8.0 0.30000000000000004 0.04064516129032258 0.466 0.0 1000.0 124.911
81 8.0 0.5000000000000001 0.04235483870967742 0.467 0.0 1000.0 105.916
82 8.0 0.7000000000000001 0.046 0.505 0.0 1000.0 95.462
83 8.0 0.9000000000000001 0.04293548387096774 0.478 0.0 1000.0 84.859
84 8.0 1.1000000000000003 0.044096774193548384 0.482 0.0 1000.0 79.073
85 8.0 1.3000000000000003 0.046129032258064515 0.509 0.0 1000.0 78.595
86 8.0 1.5000000000000004 0.049225806451612904 0.517 0.0 1000.0 81.049
87 8.0 1.7000000000000004 0.046387096774193545 0.504 0.0 1000.0 86.91
88 8.0 1.9000000000000004 0.04290322580645161 0.473 0.0 1000.0 88.259
89 8.0 2.1000000000000005 0.042806451612903224 0.507 0.0 1000.0 94.453
90 9.0 0.1 0.031096774193548386 0.396 0.0 1000.0 155.969
91 9.0 0.30000000000000004 0.04370967741935484 0.484 0.0 1000.0 126.452
92 9.0 0.5000000000000001 0.04209677419354839 0.492 0.0 1000.0 111.441
93 9.0 0.7000000000000001 0.04293548387096774 0.473 0.0 1000.0 95.758
94 9.0 0.9000000000000001 0.04364516129032258 0.478 0.0 1000.0 87.204
95 9.0 1.1000000000000003 0.04925806451612903 0.52 0.0 1000.0 83.803
96 9.0 1.3000000000000003 0.04487096774193548 0.488 0.0 1000.0 75.966
97 9.0 1.5000000000000004 0.04293548387096774 0.461 0.0 1000.0 78.56
98 9.0 1.7000000000000004 0.049 0.515 0.0 1000.0 88.433
99 9.0 1.9000000000000004 0.04487096774193548 0.496 0.0 1000.0 89.996
100 9.0 2.1000000000000005 0.04332258064516129 0.505 0.0 1000.0 97.225

View File

@@ -0,0 +1,10 @@
{
"duration": 10.732620243999918,
"name": "mu_rho_kavg_bch_31_26",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:11:28.872324"
}

View File

@@ -0,0 +1,100 @@
mu,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.032996031746031745,0.953,0.0,1000.0,200.0
1.0,0.30000000000000004,0.011017857142857143,0.342,0.0,1000.0,178.753
1.0,0.5000000000000001,0.00923015873015873,0.242,0.0,1000.0,137.241
1.0,0.7000000000000001,0.008472222222222223,0.204,0.0,1000.0,112.281
1.0,0.9000000000000001,0.00729563492063492,0.172,0.0,1000.0,92.503
1.0,1.1000000000000003,0.006976190476190476,0.155,0.0,1000.0,80.925
1.0,1.3000000000000003,0.006853174603174603,0.146,0.0,1000.0,73.894
1.0,1.5000000000000004,0.006652777777777777,0.141,0.0,1000.0,68.598
1.0,1.7000000000000004,0.009,0.186,0.0,1000.0,73.378
1.0,1.9000000000000004,0.008952380952380953,0.184,0.0,1000.0,70.205
1.0,2.1000000000000005,0.00986111111111111,0.214,0.0,1000.0,72.903
2.0,0.1,0.026097222222222223,0.804,0.0,1000.0,200.0
2.0,0.30000000000000004,0.009458333333333332,0.269,0.0,1000.0,167.058
2.0,0.5000000000000001,0.008501984126984127,0.207,0.0,1000.0,124.418
2.0,0.7000000000000001,0.008396825396825397,0.191,0.0,1000.0,100.861
2.0,0.9000000000000001,0.007704365079365079,0.164,0.0,1000.0,83.686
2.0,1.1000000000000003,0.007579365079365079,0.156,0.0,1000.0,73.764
2.0,1.3000000000000003,0.008166666666666666,0.179,0.0,1000.0,70.85
2.0,1.5000000000000004,0.007496031746031746,0.148,0.0,1000.0,63.685
2.0,1.7000000000000004,0.008329365079365079,0.174,0.0,1000.0,64.407
2.0,1.9000000000000004,0.007490079365079365,0.148,0.0,1000.0,58.4
2.0,2.1000000000000005,0.00978968253968254,0.223,0.0,1000.0,70.381
3.0,0.1,0.018978174603174604,0.655,0.0,1000.0,200.0
3.0,0.30000000000000004,0.009027777777777777,0.254,0.0,1000.0,164.938
3.0,0.5000000000000001,0.008833333333333334,0.211,0.0,1000.0,122.818
3.0,0.7000000000000001,0.007805555555555555,0.179,0.0,1000.0,98.867
3.0,0.9000000000000001,0.007704365079365079,0.174,0.0,1000.0,84.818
3.0,1.1000000000000003,0.007628968253968254,0.169,0.0,1000.0,75.325
3.0,1.3000000000000003,0.0074523809523809525,0.154,0.0,1000.0,68.111
3.0,1.5000000000000004,0.007406746031746032,0.153,0.0,1000.0,63.878
3.0,1.7000000000000004,0.0074285714285714285,0.153,0.0,1000.0,60.553
3.0,1.9000000000000004,0.007406746031746032,0.153,0.0,1000.0,58.225
3.0,2.1000000000000005,0.00998015873015873,0.235,0.0,1000.0,70.826
4.0,0.1,0.012162698412698413,0.54,0.0,1000.0,200.0
4.0,0.30000000000000004,0.008823412698412698,0.24,0.0,1000.0,163.79
4.0,0.5000000000000001,0.008166666666666666,0.209,0.0,1000.0,122.955
4.0,0.7000000000000001,0.008601190476190476,0.207,0.0,1000.0,103.645
4.0,0.9000000000000001,0.008458333333333333,0.198,0.0,1000.0,91.144
4.0,1.1000000000000003,0.008331349206349207,0.193,0.0,1000.0,82.366
4.0,1.3000000000000003,0.008246031746031746,0.187,0.0,1000.0,76.596
4.0,1.5000000000000004,0.008206349206349207,0.169,0.0,1000.0,68.68
4.0,1.7000000000000004,0.008140873015873016,0.168,0.0,1000.0,64.475
4.0,1.9000000000000004,0.008136904761904762,0.167,0.0,1000.0,60.972
4.0,2.1000000000000005,0.010115079365079365,0.248,0.0,1000.0,71.141
5.0,0.1,0.007545634920634921,0.402,0.0,1000.0,200.0
5.0,0.30000000000000004,0.007583333333333333,0.216,0.0,1000.0,161.239
5.0,0.5000000000000001,0.007551587301587301,0.191,0.0,1000.0,121.095
5.0,0.7000000000000001,0.0076924603174603175,0.181,0.0,1000.0,103.368
5.0,0.9000000000000001,0.007896825396825397,0.181,0.0,1000.0,92.266
5.0,1.1000000000000003,0.007517857142857143,0.163,0.0,1000.0,82.815
5.0,1.3000000000000003,0.007488095238095238,0.159,0.0,1000.0,76.4
5.0,1.5000000000000004,0.007113095238095238,0.149,0.0,1000.0,69.571
5.0,1.7000000000000004,0.007972222222222223,0.169,0.0,1000.0,66.393
5.0,1.9000000000000004,0.00725,0.151,0.0,1000.0,60.068
5.0,2.1000000000000005,0.01122420634920635,0.267,0.0,1000.0,74.672
6.0,0.1,0.00448015873015873,0.321,0.0,1000.0,200.0
6.0,0.30000000000000004,0.007093253968253968,0.212,0.0,1000.0,160.645
6.0,0.5000000000000001,0.007734126984126984,0.195,0.0,1000.0,124.105
6.0,0.7000000000000001,0.008410714285714285,0.191,0.0,1000.0,107.958
6.0,0.9000000000000001,0.007222222222222222,0.174,0.0,1000.0,94.752
6.0,1.1000000000000003,0.007803571428571429,0.18,0.0,1000.0,89.942
6.0,1.3000000000000003,0.008192460317460317,0.174,0.0,1000.0,82.033
6.0,1.5000000000000004,0.008101190476190475,0.171,0.0,1000.0,75.453
6.0,1.7000000000000004,0.008301587301587301,0.181,0.0,1000.0,72.479
6.0,1.9000000000000004,0.007442460317460317,0.163,0.0,1000.0,63.131
6.0,2.1000000000000005,0.010825396825396825,0.271,0.0,1000.0,75.217
7.0,0.1,0.002859126984126984,0.254,0.0,1000.0,200.0
7.0,0.30000000000000004,0.006523809523809524,0.219,0.0,1000.0,162.363
7.0,0.5000000000000001,0.007240079365079365,0.189,0.0,1000.0,126.245
7.0,0.7000000000000001,0.007930555555555555,0.198,0.0,1000.0,113.081
7.0,0.9000000000000001,0.008021825396825397,0.196,0.0,1000.0,103.492
7.0,1.1000000000000003,0.00846031746031746,0.188,0.0,1000.0,94.106
7.0,1.3000000000000003,0.00751984126984127,0.167,0.0,1000.0,85.62
7.0,1.5000000000000004,0.008384920634920636,0.186,0.0,1000.0,83.157
7.0,1.7000000000000004,0.007013888888888889,0.159,0.0,1000.0,68.536
7.0,1.9000000000000004,0.008029761904761904,0.175,0.0,1000.0,66.946
7.0,2.1000000000000005,0.012087301587301588,0.281,0.0,1000.0,77.904
8.0,0.1,0.001970238095238095,0.201,0.0,1000.0,200.0
8.0,0.30000000000000004,0.006640873015873016,0.216,0.0,1000.0,161.93
8.0,0.5000000000000001,0.00689484126984127,0.188,0.0,1000.0,128.863
8.0,0.7000000000000001,0.008462301587301588,0.208,0.0,1000.0,115.395
8.0,0.9000000000000001,0.008613095238095237,0.2,0.0,1000.0,107.04
8.0,1.1000000000000003,0.00795436507936508,0.183,0.0,1000.0,99.417
8.0,1.3000000000000003,0.007378968253968254,0.173,0.0,1000.0,89.061
8.0,1.5000000000000004,0.007234126984126984,0.167,0.0,1000.0,80.537
8.0,1.7000000000000004,0.007011904761904762,0.161,0.0,1000.0,71.236
8.0,1.9000000000000004,0.008057539682539682,0.167,0.0,1000.0,67.298
8.0,2.1000000000000005,0.014888888888888889,0.316,0.0,1000.0,84.448
9.0,0.1,0.0013214285714285715,0.177,0.0,1000.0,200.0
9.0,0.30000000000000004,0.005867063492063492,0.205,0.0,1000.0,162.436
9.0,0.5000000000000001,0.007571428571428572,0.207,0.0,1000.0,133.904
9.0,0.7000000000000001,0.007738095238095238,0.197,0.0,1000.0,120.776
9.0,0.9000000000000001,0.0075,0.196,0.0,1000.0,112.137
9.0,1.1000000000000003,0.008087301587301587,0.192,0.0,1000.0,104.852
9.0,1.3000000000000003,0.007958333333333333,0.182,0.0,1000.0,96.186
9.0,1.5000000000000004,0.00867063492063492,0.19,0.0,1000.0,90.071
9.0,1.7000000000000004,0.007813492063492064,0.171,0.0,1000.0,77.628
9.0,1.9000000000000004,0.00798611111111111,0.167,0.0,1000.0,68.91
9.0,2.1000000000000005,0.015259920634920635,0.326,0.0,1000.0,86.938
1 mu rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.032996031746031745 0.953 0.0 1000.0 200.0
3 1.0 0.30000000000000004 0.011017857142857143 0.342 0.0 1000.0 178.753
4 1.0 0.5000000000000001 0.00923015873015873 0.242 0.0 1000.0 137.241
5 1.0 0.7000000000000001 0.008472222222222223 0.204 0.0 1000.0 112.281
6 1.0 0.9000000000000001 0.00729563492063492 0.172 0.0 1000.0 92.503
7 1.0 1.1000000000000003 0.006976190476190476 0.155 0.0 1000.0 80.925
8 1.0 1.3000000000000003 0.006853174603174603 0.146 0.0 1000.0 73.894
9 1.0 1.5000000000000004 0.006652777777777777 0.141 0.0 1000.0 68.598
10 1.0 1.7000000000000004 0.009 0.186 0.0 1000.0 73.378
11 1.0 1.9000000000000004 0.008952380952380953 0.184 0.0 1000.0 70.205
12 1.0 2.1000000000000005 0.00986111111111111 0.214 0.0 1000.0 72.903
13 2.0 0.1 0.026097222222222223 0.804 0.0 1000.0 200.0
14 2.0 0.30000000000000004 0.009458333333333332 0.269 0.0 1000.0 167.058
15 2.0 0.5000000000000001 0.008501984126984127 0.207 0.0 1000.0 124.418
16 2.0 0.7000000000000001 0.008396825396825397 0.191 0.0 1000.0 100.861
17 2.0 0.9000000000000001 0.007704365079365079 0.164 0.0 1000.0 83.686
18 2.0 1.1000000000000003 0.007579365079365079 0.156 0.0 1000.0 73.764
19 2.0 1.3000000000000003 0.008166666666666666 0.179 0.0 1000.0 70.85
20 2.0 1.5000000000000004 0.007496031746031746 0.148 0.0 1000.0 63.685
21 2.0 1.7000000000000004 0.008329365079365079 0.174 0.0 1000.0 64.407
22 2.0 1.9000000000000004 0.007490079365079365 0.148 0.0 1000.0 58.4
23 2.0 2.1000000000000005 0.00978968253968254 0.223 0.0 1000.0 70.381
24 3.0 0.1 0.018978174603174604 0.655 0.0 1000.0 200.0
25 3.0 0.30000000000000004 0.009027777777777777 0.254 0.0 1000.0 164.938
26 3.0 0.5000000000000001 0.008833333333333334 0.211 0.0 1000.0 122.818
27 3.0 0.7000000000000001 0.007805555555555555 0.179 0.0 1000.0 98.867
28 3.0 0.9000000000000001 0.007704365079365079 0.174 0.0 1000.0 84.818
29 3.0 1.1000000000000003 0.007628968253968254 0.169 0.0 1000.0 75.325
30 3.0 1.3000000000000003 0.0074523809523809525 0.154 0.0 1000.0 68.111
31 3.0 1.5000000000000004 0.007406746031746032 0.153 0.0 1000.0 63.878
32 3.0 1.7000000000000004 0.0074285714285714285 0.153 0.0 1000.0 60.553
33 3.0 1.9000000000000004 0.007406746031746032 0.153 0.0 1000.0 58.225
34 3.0 2.1000000000000005 0.00998015873015873 0.235 0.0 1000.0 70.826
35 4.0 0.1 0.012162698412698413 0.54 0.0 1000.0 200.0
36 4.0 0.30000000000000004 0.008823412698412698 0.24 0.0 1000.0 163.79
37 4.0 0.5000000000000001 0.008166666666666666 0.209 0.0 1000.0 122.955
38 4.0 0.7000000000000001 0.008601190476190476 0.207 0.0 1000.0 103.645
39 4.0 0.9000000000000001 0.008458333333333333 0.198 0.0 1000.0 91.144
40 4.0 1.1000000000000003 0.008331349206349207 0.193 0.0 1000.0 82.366
41 4.0 1.3000000000000003 0.008246031746031746 0.187 0.0 1000.0 76.596
42 4.0 1.5000000000000004 0.008206349206349207 0.169 0.0 1000.0 68.68
43 4.0 1.7000000000000004 0.008140873015873016 0.168 0.0 1000.0 64.475
44 4.0 1.9000000000000004 0.008136904761904762 0.167 0.0 1000.0 60.972
45 4.0 2.1000000000000005 0.010115079365079365 0.248 0.0 1000.0 71.141
46 5.0 0.1 0.007545634920634921 0.402 0.0 1000.0 200.0
47 5.0 0.30000000000000004 0.007583333333333333 0.216 0.0 1000.0 161.239
48 5.0 0.5000000000000001 0.007551587301587301 0.191 0.0 1000.0 121.095
49 5.0 0.7000000000000001 0.0076924603174603175 0.181 0.0 1000.0 103.368
50 5.0 0.9000000000000001 0.007896825396825397 0.181 0.0 1000.0 92.266
51 5.0 1.1000000000000003 0.007517857142857143 0.163 0.0 1000.0 82.815
52 5.0 1.3000000000000003 0.007488095238095238 0.159 0.0 1000.0 76.4
53 5.0 1.5000000000000004 0.007113095238095238 0.149 0.0 1000.0 69.571
54 5.0 1.7000000000000004 0.007972222222222223 0.169 0.0 1000.0 66.393
55 5.0 1.9000000000000004 0.00725 0.151 0.0 1000.0 60.068
56 5.0 2.1000000000000005 0.01122420634920635 0.267 0.0 1000.0 74.672
57 6.0 0.1 0.00448015873015873 0.321 0.0 1000.0 200.0
58 6.0 0.30000000000000004 0.007093253968253968 0.212 0.0 1000.0 160.645
59 6.0 0.5000000000000001 0.007734126984126984 0.195 0.0 1000.0 124.105
60 6.0 0.7000000000000001 0.008410714285714285 0.191 0.0 1000.0 107.958
61 6.0 0.9000000000000001 0.007222222222222222 0.174 0.0 1000.0 94.752
62 6.0 1.1000000000000003 0.007803571428571429 0.18 0.0 1000.0 89.942
63 6.0 1.3000000000000003 0.008192460317460317 0.174 0.0 1000.0 82.033
64 6.0 1.5000000000000004 0.008101190476190475 0.171 0.0 1000.0 75.453
65 6.0 1.7000000000000004 0.008301587301587301 0.181 0.0 1000.0 72.479
66 6.0 1.9000000000000004 0.007442460317460317 0.163 0.0 1000.0 63.131
67 6.0 2.1000000000000005 0.010825396825396825 0.271 0.0 1000.0 75.217
68 7.0 0.1 0.002859126984126984 0.254 0.0 1000.0 200.0
69 7.0 0.30000000000000004 0.006523809523809524 0.219 0.0 1000.0 162.363
70 7.0 0.5000000000000001 0.007240079365079365 0.189 0.0 1000.0 126.245
71 7.0 0.7000000000000001 0.007930555555555555 0.198 0.0 1000.0 113.081
72 7.0 0.9000000000000001 0.008021825396825397 0.196 0.0 1000.0 103.492
73 7.0 1.1000000000000003 0.00846031746031746 0.188 0.0 1000.0 94.106
74 7.0 1.3000000000000003 0.00751984126984127 0.167 0.0 1000.0 85.62
75 7.0 1.5000000000000004 0.008384920634920636 0.186 0.0 1000.0 83.157
76 7.0 1.7000000000000004 0.007013888888888889 0.159 0.0 1000.0 68.536
77 7.0 1.9000000000000004 0.008029761904761904 0.175 0.0 1000.0 66.946
78 7.0 2.1000000000000005 0.012087301587301588 0.281 0.0 1000.0 77.904
79 8.0 0.1 0.001970238095238095 0.201 0.0 1000.0 200.0
80 8.0 0.30000000000000004 0.006640873015873016 0.216 0.0 1000.0 161.93
81 8.0 0.5000000000000001 0.00689484126984127 0.188 0.0 1000.0 128.863
82 8.0 0.7000000000000001 0.008462301587301588 0.208 0.0 1000.0 115.395
83 8.0 0.9000000000000001 0.008613095238095237 0.2 0.0 1000.0 107.04
84 8.0 1.1000000000000003 0.00795436507936508 0.183 0.0 1000.0 99.417
85 8.0 1.3000000000000003 0.007378968253968254 0.173 0.0 1000.0 89.061
86 8.0 1.5000000000000004 0.007234126984126984 0.167 0.0 1000.0 80.537
87 8.0 1.7000000000000004 0.007011904761904762 0.161 0.0 1000.0 71.236
88 8.0 1.9000000000000004 0.008057539682539682 0.167 0.0 1000.0 67.298
89 8.0 2.1000000000000005 0.014888888888888889 0.316 0.0 1000.0 84.448
90 9.0 0.1 0.0013214285714285715 0.177 0.0 1000.0 200.0
91 9.0 0.30000000000000004 0.005867063492063492 0.205 0.0 1000.0 162.436
92 9.0 0.5000000000000001 0.007571428571428572 0.207 0.0 1000.0 133.904
93 9.0 0.7000000000000001 0.007738095238095238 0.197 0.0 1000.0 120.776
94 9.0 0.9000000000000001 0.0075 0.196 0.0 1000.0 112.137
95 9.0 1.1000000000000003 0.008087301587301587 0.192 0.0 1000.0 104.852
96 9.0 1.3000000000000003 0.007958333333333333 0.182 0.0 1000.0 96.186
97 9.0 1.5000000000000004 0.00867063492063492 0.19 0.0 1000.0 90.071
98 9.0 1.7000000000000004 0.007813492063492064 0.171 0.0 1000.0 77.628
99 9.0 1.9000000000000004 0.00798611111111111 0.167 0.0 1000.0 68.91
100 9.0 2.1000000000000005 0.015259920634920635 0.326 0.0 1000.0 86.938

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@@ -0,0 +1,10 @@
{
"duration": 561.808843455,
"name": "mu_rho_kavg_pegreg252x504",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"num_iterations": 1000,
"end_time": "2023-04-17 20:35:01.574822"
}

View File

@@ -0,0 +1,56 @@
SNR,rho,BER,FER,DFR,num_iterations,k_avg
1.0,0.1,0.04463235294117647,0.759,0.0,1000.0,200.0
1.0,0.30000000000000004,0.06830392156862745,0.753,0.0,1000.0,188.94
1.0,0.5000000000000001,0.07210294117647059,0.759,0.0,1000.0,179.549
1.0,0.7000000000000001,0.07382843137254902,0.763,0.0,1000.0,175.321
1.0,0.9000000000000001,0.07072058823529412,0.735,0.0,1000.0,171.153
1.0,1.1000000000000003,0.0709264705882353,0.735,0.0,1000.0,168.135
1.0,1.3000000000000003,0.0708921568627451,0.73,0.0,1000.0,165.505
1.0,1.5000000000000004,0.07045098039215686,0.723,0.0,1000.0,162.8
1.0,1.7000000000000004,0.07087745098039215,0.705,0.0,1000.0,156.641
1.0,1.9000000000000004,0.07061274509803922,0.698,0.0,1000.0,153.433
1.0,2.1000000000000005,0.07405882352941176,0.766,0.0,1000.0,161.052
2.0,0.1,0.012377450980392156,0.332,0.0,1000.0,199.983
2.0,0.30000000000000004,0.015029411764705883,0.258,0.0,1000.0,146.621
2.0,0.5000000000000001,0.015848039215686276,0.249,0.0,1000.0,114.805
2.0,0.7000000000000001,0.016019607843137256,0.243,0.0,1000.0,100.66
2.0,0.9000000000000001,0.016186274509803922,0.241,0.0,1000.0,92.04
2.0,1.1000000000000003,0.016009803921568627,0.228,0.0,1000.0,81.757
2.0,1.3000000000000003,0.016137254901960784,0.228,0.0,1000.0,77.021
2.0,1.5000000000000004,0.01598529411764706,0.226,0.0,1000.0,72.716
2.0,1.7000000000000004,0.015911764705882354,0.223,0.0,1000.0,68.504
2.0,1.9000000000000004,0.016088235294117646,0.211,0.0,1000.0,63.335
2.0,2.1000000000000005,0.0186078431372549,0.277,0.0,1000.0,72.449
3.0,0.1,0.0016470588235294118,0.059,0.0,1000.0,199.363
3.0,0.30000000000000004,0.0013970588235294118,0.032,0.0,1000.0,92.689
3.0,0.5000000000000001,0.0011029411764705882,0.019,0.0,1000.0,56.047
3.0,0.7000000000000001,0.0009950980392156863,0.018,0.0,1000.0,40.743
3.0,0.9000000000000001,0.0009509803921568628,0.016,0.0,1000.0,32.032
3.0,1.1000000000000003,0.0015147058823529412,0.028,0.0,1000.0,28.373
3.0,1.3000000000000003,0.0014166666666666668,0.027,0.0,1000.0,25.418
3.0,1.5000000000000004,0.0014019607843137256,0.027,0.0,1000.0,22.899
3.0,1.7000000000000004,0.0009068627450980392,0.015,0.0,1000.0,18.696
3.0,1.9000000000000004,0.0009019607843137254,0.015,0.0,1000.0,16.99
3.0,2.1000000000000005,0.0012990196078431372,0.03,0.0,1000.0,19.976
4.0,0.1,0.00012745098039215687,0.005,0.0,1000.0,196.387
4.0,0.30000000000000004,5.392156862745098e-05,0.001,0.0,1000.0,68.299
4.0,0.5000000000000001,5.392156862745098e-05,0.001,0.0,1000.0,37.665
4.0,0.7000000000000001,0.0,0.0,0.0,1000.0,25.98
4.0,0.9000000000000001,5.392156862745098e-05,0.001,0.0,1000.0,19.312
4.0,1.1000000000000003,0.0,0.0,0.0,1000.0,13.57
4.0,1.3000000000000003,0.0,0.0,0.0,1000.0,11.838
4.0,1.5000000000000004,0.0,0.0,0.0,1000.0,10.413
4.0,1.7000000000000004,0.0,0.0,0.0,1000.0,9.371
4.0,1.9000000000000004,0.0,0.0,0.0,1000.0,8.69
4.0,2.1000000000000005,4.411764705882353e-05,0.001,0.0,1000.0,9.315
5.0,0.1,0.0,0.0,0.0,1000.0,188.087
5.0,0.30000000000000004,0.0,0.0,0.0,1000.0,58.059
5.0,0.5000000000000001,0.0,0.0,0.0,1000.0,31.377
5.0,0.7000000000000001,0.0,0.0,0.0,1000.0,21.032
5.0,0.9000000000000001,0.0,0.0,0.0,1000.0,14.904
5.0,1.1000000000000003,0.0,0.0,0.0,1000.0,10.095
5.0,1.3000000000000003,0.0,0.0,0.0,1000.0,8.869
5.0,1.5000000000000004,0.0,0.0,0.0,1000.0,7.89
5.0,1.7000000000000004,0.0,0.0,0.0,1000.0,7.085
5.0,1.9000000000000004,0.0,0.0,0.0,1000.0,6.48
5.0,2.1000000000000005,0.0,0.0,0.0,1000.0,6.616
1 SNR rho BER FER DFR num_iterations k_avg
2 1.0 0.1 0.04463235294117647 0.759 0.0 1000.0 200.0
3 1.0 0.30000000000000004 0.06830392156862745 0.753 0.0 1000.0 188.94
4 1.0 0.5000000000000001 0.07210294117647059 0.759 0.0 1000.0 179.549
5 1.0 0.7000000000000001 0.07382843137254902 0.763 0.0 1000.0 175.321
6 1.0 0.9000000000000001 0.07072058823529412 0.735 0.0 1000.0 171.153
7 1.0 1.1000000000000003 0.0709264705882353 0.735 0.0 1000.0 168.135
8 1.0 1.3000000000000003 0.0708921568627451 0.73 0.0 1000.0 165.505
9 1.0 1.5000000000000004 0.07045098039215686 0.723 0.0 1000.0 162.8
10 1.0 1.7000000000000004 0.07087745098039215 0.705 0.0 1000.0 156.641
11 1.0 1.9000000000000004 0.07061274509803922 0.698 0.0 1000.0 153.433
12 1.0 2.1000000000000005 0.07405882352941176 0.766 0.0 1000.0 161.052
13 2.0 0.1 0.012377450980392156 0.332 0.0 1000.0 199.983
14 2.0 0.30000000000000004 0.015029411764705883 0.258 0.0 1000.0 146.621
15 2.0 0.5000000000000001 0.015848039215686276 0.249 0.0 1000.0 114.805
16 2.0 0.7000000000000001 0.016019607843137256 0.243 0.0 1000.0 100.66
17 2.0 0.9000000000000001 0.016186274509803922 0.241 0.0 1000.0 92.04
18 2.0 1.1000000000000003 0.016009803921568627 0.228 0.0 1000.0 81.757
19 2.0 1.3000000000000003 0.016137254901960784 0.228 0.0 1000.0 77.021
20 2.0 1.5000000000000004 0.01598529411764706 0.226 0.0 1000.0 72.716
21 2.0 1.7000000000000004 0.015911764705882354 0.223 0.0 1000.0 68.504
22 2.0 1.9000000000000004 0.016088235294117646 0.211 0.0 1000.0 63.335
23 2.0 2.1000000000000005 0.0186078431372549 0.277 0.0 1000.0 72.449
24 3.0 0.1 0.0016470588235294118 0.059 0.0 1000.0 199.363
25 3.0 0.30000000000000004 0.0013970588235294118 0.032 0.0 1000.0 92.689
26 3.0 0.5000000000000001 0.0011029411764705882 0.019 0.0 1000.0 56.047
27 3.0 0.7000000000000001 0.0009950980392156863 0.018 0.0 1000.0 40.743
28 3.0 0.9000000000000001 0.0009509803921568628 0.016 0.0 1000.0 32.032
29 3.0 1.1000000000000003 0.0015147058823529412 0.028 0.0 1000.0 28.373
30 3.0 1.3000000000000003 0.0014166666666666668 0.027 0.0 1000.0 25.418
31 3.0 1.5000000000000004 0.0014019607843137256 0.027 0.0 1000.0 22.899
32 3.0 1.7000000000000004 0.0009068627450980392 0.015 0.0 1000.0 18.696
33 3.0 1.9000000000000004 0.0009019607843137254 0.015 0.0 1000.0 16.99
34 3.0 2.1000000000000005 0.0012990196078431372 0.03 0.0 1000.0 19.976
35 4.0 0.1 0.00012745098039215687 0.005 0.0 1000.0 196.387
36 4.0 0.30000000000000004 5.392156862745098e-05 0.001 0.0 1000.0 68.299
37 4.0 0.5000000000000001 5.392156862745098e-05 0.001 0.0 1000.0 37.665
38 4.0 0.7000000000000001 0.0 0.0 0.0 1000.0 25.98
39 4.0 0.9000000000000001 5.392156862745098e-05 0.001 0.0 1000.0 19.312
40 4.0 1.1000000000000003 0.0 0.0 0.0 1000.0 13.57
41 4.0 1.3000000000000003 0.0 0.0 0.0 1000.0 11.838
42 4.0 1.5000000000000004 0.0 0.0 0.0 1000.0 10.413
43 4.0 1.7000000000000004 0.0 0.0 0.0 1000.0 9.371
44 4.0 1.9000000000000004 0.0 0.0 0.0 1000.0 8.69
45 4.0 2.1000000000000005 4.411764705882353e-05 0.001 0.0 1000.0 9.315
46 5.0 0.1 0.0 0.0 0.0 1000.0 188.087
47 5.0 0.30000000000000004 0.0 0.0 0.0 1000.0 58.059
48 5.0 0.5000000000000001 0.0 0.0 0.0 1000.0 31.377
49 5.0 0.7000000000000001 0.0 0.0 0.0 1000.0 21.032
50 5.0 0.9000000000000001 0.0 0.0 0.0 1000.0 14.904
51 5.0 1.1000000000000003 0.0 0.0 0.0 1000.0 10.095
52 5.0 1.3000000000000003 0.0 0.0 0.0 1000.0 8.869
53 5.0 1.5000000000000004 0.0 0.0 0.0 1000.0 7.89
54 5.0 1.7000000000000004 0.0 0.0 0.0 1000.0 7.085
55 5.0 1.9000000000000004 0.0 0.0 0.0 1000.0 6.48
56 5.0 2.1000000000000005 0.0 0.0 0.0 1000.0 6.616

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{
"duration": 35.0865019390003,
"name": "rho_kavg_20433484",
"platform": "Linux-6.2.10-arch1-1-x86_64-with-glibc2.37",
"K": 200,
"epsilon_pri": 1e-05,
"epsilon_dual": 1e-05,
"max_frame_errors": 100000,
"end_time": "2023-04-18 00:26:20.424530"
}

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@@ -0,0 +1,9 @@
,SNR,FER
0,0.9868766404199476,0.7914135529980044
1,1.288713910761155,0.2149640062907639
2,1.435695538057743,0.1346395694171198
3,1.5826771653543306,0.0261816550874433
4,1.8687664041994752,0.0010584575370171914
5,2.144356955380577,1.2426236719115031e-05
6,2.280839895013123,1.618074630152863e-06
7,2.406824146981627,7.255504808245653e-07
1 SNR FER
2 0 0.9868766404199476 0.7914135529980044
3 1 1.288713910761155 0.2149640062907639
4 2 1.435695538057743 0.1346395694171198
5 3 1.5826771653543306 0.0261816550874433
6 4 1.8687664041994752 0.0010584575370171914
7 5 2.144356955380577 1.2426236719115031e-05
8 6 2.280839895013123 1.618074630152863e-06
9 7 2.406824146981627 7.255504808245653e-07

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@@ -0,0 +1,10 @@
SNR,FER,num_errors,num_iterations
1.00,1.193e-01,100,838
1.50,4.002e-02,100,2499
2.00,6.572e-03,100,15216
2.50,6.019e-04,100,166127
3.00,7.677e-05,100,1302564
3.50,1.562e-05,100,6401819
4.00,4.406e-06,100,22694922
4.50,1.103e-06,100,90621994
5.00,2.800e-07,28,100000000
1 SNR FER num_errors num_iterations
2 1.00 1.193e-01 100 838
3 1.50 4.002e-02 100 2499
4 2.00 6.572e-03 100 15216
5 2.50 6.019e-04 100 166127
6 3.00 7.677e-05 100 1302564
7 3.50 1.562e-05 100 6401819
8 4.00 4.406e-06 100 22694922
9 4.50 1.103e-06 100 90621994
10 5.00 2.800e-07 28 100000000

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@@ -0,0 +1,12 @@
SNR,FER,num_errors,num_iterations
1.00,1.724e-01,100,580
1.50,6.752e-02,100,1481
2.00,2.565e-02,100,3898
2.50,9.100e-03,100,10989
3.00,2.386e-03,100,41914
3.50,6.214e-04,100,160939
4.00,1.797e-04,100,556583
4.50,4.750e-05,100,2105114
5.00,1.802e-05,100,5549579
5.50,4.103e-06,100,24374790
6.00,9.400e-07,94,100000000
1 SNR FER num_errors num_iterations
2 1.00 1.724e-01 100 580
3 1.50 6.752e-02 100 1481
4 2.00 2.565e-02 100 3898
5 2.50 9.100e-03 100 10989
6 3.00 2.386e-03 100 41914
7 3.50 6.214e-04 100 160939
8 4.00 1.797e-04 100 556583
9 4.50 4.750e-05 100 2105114
10 5.00 1.802e-05 100 5549579
11 5.50 4.103e-06 100 24374790
12 6.00 9.400e-07 94 100000000

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SNR,FER,num_errors,num_iterations
0.00,7.353e-01,100,136
1.00,4.566e-01,100,219
2.00,2.695e-01,100,371
3.00,9.990e-02,100,1001
4.00,3.271e-02,100,3057
5.00,5.692e-03,100,17568
6.00,5.506e-04,100,181625
7.00,4.400e-05,44,1000000
1 SNR FER num_errors num_iterations
2 0.00 7.353e-01 100 136
3 1.00 4.566e-01 100 219
4 2.00 2.695e-01 100 371
5 3.00 9.990e-02 100 1001
6 4.00 3.271e-02 100 3057
7 5.00 5.692e-03 100 17568
8 6.00 5.506e-04 100 181625
9 7.00 4.400e-05 44 1000000

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\section{Comparison}%
\label{sec:Comparison}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\subsection{Comparison of Simulation Results}%
\label{sub:Comparison of Simulation Results}
\begin{frame}[t]
\frametitle{Decoding Performance}
\vspace*{-5mm}
\begin{figure}[H]
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$E_b / N_0 \left( \text{dB} \right) $}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=5e-5,
legend columns = 3,
legend style={at={(0.5,-0.5)},anchor=south},
width=0.45\textwidth,
height=0.3375\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma,
discard if not={gamma}{0.05},
discard if gt={SNR}{5.5}]
{res/proximal/2d_ber_fer_dfr_20433484.csv};
\addlegendentry{Proximal decoding}
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma,
discard if not={mu}{3.0},
discard if gt={SNR}{4.0}]
{res/admm/ber_2d_20433484.csv};
\addlegendentry{LP Decoding}
\addplot[PineGreen, line width=1pt, mark=triangle, solid]
table [col sep=comma, x=SNR, y=FER,
discard if gt={SNR}{3.0}]
{res/generic/fer_ml_20433484.csv};
\addlegendentry{ML}
\end{axis}
\end{tikzpicture}
\caption{Comparison of FER of proximal decoding and LP decoding using ADMM%
\protect\footnotemark{}}
\end{figure}%
\footnotetext{Simulation performed with (3,6) regular LDPC code with $n=204, k=102$
\cite[Code: 204.33.484]{mackay_enc}}
\end{frame}
\begin{frame}[t]
\frametitle{Decoding Performance}
\captionsetup[subfigure]{font=footnotesize}
\hspace*{-0.4cm}
\begin{minipage}[c]{0.9\textwidth}
\centering
\begin{figure}[H]
\vspace*{-0.5cm}
\centering
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma, discard if not={gamma}{0.05}]
{res/proximal/2d_ber_fer_dfr_963965.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma, discard if not={mu}{3.0}]
%{res/hybrid/2d_ber_fer_dfr_963965.csv};
{res/admm/ber_2d_963965.csv};
% \addplot[PineGreen, line width=1pt, mark=triangle]
% table [col sep=comma, x=SNR, y=FER,]
% {res/generic/fer_ml_9633965.csv};
\end{axis}
\end{tikzpicture}
\caption{$\left( 3, 6 \right)$-regular LDPC code with $n=96, k=48$
\cite[\text{96.3.965}]{mackay_enc}}
\end{subfigure}%
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma, discard if not={gamma}{0.05}]
{res/proximal/2d_ber_fer_dfr_bch_31_26.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma, discard if not={mu}{3.0}]
{res/admm/ber_2d_bch_31_26.csv};
% \addplot[PineGreen, line width=1pt, mark=triangle*]
% table [x=SNR, y=FER, col sep=comma,
% discard if gt={SNR}{5.5},
% discard if lt={SNR}{1},
% ]
% {res/generic/fer_ml_bch_31_26.csv};
\end{axis}
\end{tikzpicture}
\caption{BCH code with $n=31, k=26$}
\end{subfigure}%
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma,
discard if not={gamma}{0.05},
discard if gt={SNR}{5.5}]
{res/proximal/2d_ber_fer_dfr_20433484.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma,
discard if not={mu}{3.0},
discard if gt={SNR}{5.5}]
{res/admm/ber_2d_20433484.csv};
% \addplot[PineGreen, line width=1pt, mark=triangle, solid]
% table [col sep=comma, x=SNR, y=FER,
% discard if gt={SNR}{5.5}]
% {res/generic/fer_ml_20433484.csv};
\end{axis}
\end{tikzpicture}
\caption{$\left( 3, 6 \right)$-regular LDPC code with $n=204, k=102$
\cite[\text{204.33.484}]{mackay_enc}}
\end{subfigure}%
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma, discard if not={gamma}{0.05}]
{res/proximal/2d_ber_fer_dfr_20455187.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma, discard if not={mu}{3.0}]
{res/admm/ber_2d_20455187.csv};
\end{axis}
\end{tikzpicture}
\caption{$\left( 5, 10 \right)$-regular LDPC code with $n=204, k=102$
\cite[\text{204.55.187}]{mackay_enc}}
\end{subfigure}%
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma, discard if not={gamma}{0.05}]
{res/proximal/2d_ber_fer_dfr_40833844.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma, discard if not={mu}{3.0}]
{res/admm/ber_2d_40833844.csv};
\end{axis}
\end{tikzpicture}
\caption{$\left( 3, 6 \right)$-regular LDPC code with $n=204, k=102$
\cite[\text{204.33.484}]{mackay_enc}}
\end{subfigure}%
\begin{subfigure}[t]{0.33\textwidth}
\centering
\begin{tikzpicture}[scale=0.4]
\begin{axis}[
grid=both,
xlabel={$E_b / N_0$ (dB)}, ylabel={FER},
ymode=log,
ymax=1.5, ymin=8e-5,
% width=1.1\textwidth,
% height=0.825\textwidth,
]
\addplot[RedOrange, line width=1pt, mark=*, solid]
table [x=SNR, y=FER, col sep=comma, discard if not={gamma}{0.05}]
{res/proximal/2d_ber_fer_dfr_pegreg252x504.csv};
\addplot[NavyBlue, line width=1pt, mark=triangle, densely dashed]
table [x=SNR, y=FER, col sep=comma, discard if not={mu}{3.0}]
{res/admm/ber_2d_pegreg252x504.csv};
\end{axis}
\end{tikzpicture}
\caption{LDPC code (progressive edge growth construction) with $n=504, k=252$
\cite[\text{PEGReg252x504}]{mackay_enc}}
\end{subfigure}%
\end{figure}
\end{minipage}%
\begin{minipage}[c]{0.1\textwidth}
\centering
\begin{figure}
\centering
\vspace*{-1.2cm}
\hspace*{-0.5cm}
\begin{tikzpicture}[scale=0.7]
\begin{axis}[hide axis,
xmin=10, xmax=50,
ymin=0, ymax=0.4,
legend columns=1,
legend style={draw=white!15!black}]
\addlegendimage{RedOrange, line width=1pt, mark=*, solid}
\addlegendentry{Proximal decoding}
\addlegendimage{NavyBlue, line width=1pt, mark=triangle, densely dashed}
\addlegendentry{LP decoding}
% \addlegendimage{PineGreen, line width=1pt, mark=triangle*, solid}
% \addlegendentry{ML}
\end{axis}
\end{tikzpicture}
\end{figure}
\end{minipage}
\end{frame}
\begin{frame}[t]
\frametitle{Time Complexity}
\vspace*{-8mm}
\begin{itemize}
\item Both algorithms are $\mathcal{O}\left( n \right)$ on average
\item LP decoding implementation significantly faster
\end{itemize}
\begin{figure}[h]
\centering
\begin{tikzpicture}
\begin{axis}[grid=both,
xlabel={$n$}, ylabel={Time per frame (s)},
width=0.45\textwidth,
height=0.3375\textwidth,
legend style={at={(0.03,0.96)},anchor=north west},
%legend pos=outer north east,
legend cell align={left},]
\addplot[RedOrange, only marks, mark=*]
table [col sep=comma, x=n, y=spf]
{res/proximal/fps_vs_n.csv};
\addlegendentry{Proximal decoding}
\addplot[RoyalPurple, only marks, mark=triangle*]
table [col sep=comma, x=n, y=spf]
{res/admm/fps_vs_n.csv};
\addlegendentry{LP decoding}
\end{axis}
\end{tikzpicture}
\vspace*{-2mm}
\caption{Timing requirements of the proximal decoding and LP decoding imlementations%
\protect\footnotemark{}}
\end{figure}%
\footnotetext{The points shown were calculated by evaluating the metadata
of BER simulation results for the following codes:
BCH $\left( 31, 11 \right)$;
BCH $\left( 31, 26 \right)$;
\cite[\text{96.3.965; 204.33.484;
204.55.187; 408.33.844; PEGReg252x504}]{mackay_enc}
}
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\subsection{Theoretical Comparison}%
\label{sub:Theoretical Comparison}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t, fragile]
\frametitle{Comparison of Proximal Decoding and\\LP Decoding using ADMM}
\vspace*{-1cm}
\begin{figure}[h]
\centering
\begin{subfigure}[b]{0.47\textwidth}
\centering
\begin{align*}
\text{minimize}\hspace{2mm} & \textcolor{KITblue}{\underbrace{L\left(
\boldsymbol{y} \mid \tilde{\boldsymbol{x}} \right)}_{\text{Likelihood}}}
+ \textcolor{KITred}{\underbrace{\gamma h\left( \tilde{\boldsymbol{x}}
\right)} _{\text{Constraints}}} \\
\text{subject to}\hspace{2mm} &\tilde{\boldsymbol{x}} \in \mathbb{R}^n
\end{align*}
\vspace*{-5mm}
\begin{algorithm}[caption={}, label={},
basicstyle=\fontsize{10}{18}\selectfont
]
Initialize $\boldsymbol{r}, \boldsymbol{s}, \omega, \gamma$
while stopping critierion unfulfilled do
$\textcolor{KITblue}{\boldsymbol{r} \leftarrow \boldsymbol{r}
+ \omega \nabla L\left( \boldsymbol{y} \mid \boldsymbol{s} \right)} $
$\textcolor{KITred}{\boldsymbol{s} \leftarrow
\textbf{prox}_{\gamma h}\left( \boldsymbol{r} \right)} $|\Suppressnumber|
|\Reactivatenumber|
end while
return $\boldsymbol{s}$
\end{algorithm}
\end{subfigure}\hfill%
\begin{subfigure}[b]{0.5\textwidth}
\centering
\begin{align*}
\text{minimize}\hspace{5mm} &
\textcolor{KITblue}{\underbrace{\boldsymbol{\gamma}^\text{T}
\tilde{\boldsymbol{c}}}_{\text{Likelihood}}}
+ \textcolor{KITred}{\underbrace{\sum\nolimits_{j\in\mathcal{J}}
g_j\left( \boldsymbol{T}_j\tilde{\boldsymbol{c}}
\right)}_{\text{Constraints}}} \\
\text{subject to}\hspace{5mm} &
\tilde{\boldsymbol{c}} \in \mathbb{R}^n
\end{align*}
\vspace*{-5mm}
\begin{algorithm}[caption={}, label={},
basicstyle=\fontsize{10}{18}\selectfont
]
Initialize $\tilde{\boldsymbol{c}}, \boldsymbol{z}, \boldsymbol{u}, \boldsymbol{\gamma}, \rho$
while stopping criterion unfulfilled do
$\textcolor{KITblue}{\tilde{\boldsymbol{c}} \leftarrow \argmin_{\tilde{\boldsymbol{c}}}
\left( \boldsymbol{\gamma}^\text{T}\tilde{\boldsymbol{c}}
+ \frac{\rho}{2}\sum_{j\in\mathcal{J}} \left\Vert
\boldsymbol{T}_j\tilde{\boldsymbol{c}} - \boldsymbol{z}_j
+ \boldsymbol{u}_j \right\Vert \right)}$
$\textcolor{KITred}{\boldsymbol{z}_j \leftarrow \textbf{prox}_{g_j}
\left( \boldsymbol{T}_j\tilde{\boldsymbol{c}}
+ \boldsymbol{u}_j \right), \hspace{5mm}\forall j\in\mathcal{J}}$
$\boldsymbol{u}_j \leftarrow \boldsymbol{u}_j
+ \tilde{\boldsymbol{c}} - \boldsymbol{z}_j, \hspace{14.5mm}\forall j\in\mathcal{J}$
end while
return $\tilde{\boldsymbol{c}}$
\end{algorithm}
\end{subfigure}%
\end{figure}%
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t, fragile]
\frametitle{Comparison of Proximal Decoding and\\LP Decoding using ADMM}
\vspace*{-1cm}
\begin{figure}[h]
\centering
\begin{subfigure}{0.48\textwidth}
\centering
\begin{algorithm}[caption={}, label={},]
Initialize $\boldsymbol{r}, \boldsymbol{s}, \omega, \gamma$
while stopping critierion unfulfilled do
for j in $\mathcal{J}$ do
$p_j \leftarrow \prod_{i\in N_c\left( j \right) } r_i $
$\textcolor{KITblue}{M_{j\to} \leftarrow p_j^2 - p_j}$|\Suppressnumber|
|\vspace{0.7mm}\Reactivatenumber|
end for
for i in $\mathcal{I}$ do
$s_i \leftarrow s_i + \gamma \left[ 4\left( s_i^2 - 1 \right)s_i
\phantom{\frac{4}{s_i}}\right.$|\Suppressnumber|
|\Reactivatenumber|$\left.+ \frac{4}{s_i}\sum_{j\in N_v\left( i \right) }
M_{j\to} \right] $
$r_i \leftarrow r_i + \omega \left( s_i - y_i \right)$
end for
end while
return $\boldsymbol{s}$
\end{algorithm}
\end{subfigure}%
\hfill
\begin{subfigure}{0.48\textwidth}
\centering
\begin{algorithm}[caption={}, label={},]
Initialize $\tilde{\boldsymbol{c}}, \boldsymbol{z}, \boldsymbol{u}, \boldsymbol{\gamma}, \rho$
while stopping criterion unfulfilled do
for j in $\mathcal{J}$ do
$\boldsymbol{z}_j \leftarrow \Pi_{P_{d_j}}\left(
\boldsymbol{T}_j\tilde{\boldsymbol{c}} + \boldsymbol{u}_j\right)$
$\boldsymbol{u}_j \leftarrow \boldsymbol{u}_j + \boldsymbol{T}_j\tilde{\boldsymbol{c}}
- \boldsymbol{z}_j$
$\textcolor{KITblue}{M_{j\to i} \leftarrow \left( z_j \right)_i - \left( u_j \right)_i,
\hspace{3mm} \forall i \in N_c\left( j \right)}$
end for
for i in $\mathcal{I}$ do
$\tilde{c}_i \leftarrow \frac{1}{d_i}
\left(\sum_{j\in N_v\left( i \right) } M_{j\to i}
- \frac{\gamma_i}{\mu} \right)$|\Suppressnumber|
|\vspace{7mm}\Reactivatenumber|
end for
end while
return $\tilde{\boldsymbol{c}}$
\end{algorithm}
\end{subfigure}%
\end{figure}%
\end{frame}
\begin{frame}[t]
\frametitle{Conclusion}
\end{frame}

View File

@@ -123,8 +123,8 @@ return $\boldsymbol{\hat{c}}$
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\subsection{LP Decoding}%
\label{sub:LP Decoding}
\subsection{LP Decoding using ADMM}%
\label{sub:LP Decoding using ADMM}
\begin{frame}[t]
\frametitle{LP Decoding \cite{feldman_paper}}
@@ -757,10 +757,6 @@ return $\boldsymbol{\hat{c}}$
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\subsection{LP Decoding using ADMM}%
\label{sub:LP Decoding using ADMM}
\begin{frame}[t]
\frametitle{LP Decoding using ADMM}
@@ -838,144 +834,6 @@ return $\boldsymbol{\hat{c}}$
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t, fragile]
\frametitle{Comparison of Proximal Decoding and\\LP Decoding using ADMM}
\vspace*{-1cm}
\begin{figure}[h]
\centering
\begin{subfigure}[b]{0.47\textwidth}
\centering
\begin{align*}
\text{minimize}\hspace{2mm} & \textcolor{KITblue}{\underbrace{L\left(
\boldsymbol{y} \mid \tilde{\boldsymbol{x}} \right)}_{\text{Likelihood}}}
+ \textcolor{KITred}{\underbrace{\gamma h\left( \tilde{\boldsymbol{x}}
\right)} _{\text{Constraints}}} \\
\text{subject to}\hspace{2mm} &\tilde{\boldsymbol{x}} \in \mathbb{R}^n
\end{align*}
\vspace*{-5mm}
\begin{algorithm}[caption={}, label={},
basicstyle=\fontsize{10}{18}\selectfont
]
Initialize $\boldsymbol{r}, \boldsymbol{s}, \omega, \gamma$
while stopping critierion unfulfilled do
$\textcolor{KITblue}{\boldsymbol{r} \leftarrow \boldsymbol{r}
+ \omega \nabla L\left( \boldsymbol{y} \mid \boldsymbol{s} \right)} $
$\textcolor{KITred}{\boldsymbol{s} \leftarrow
\textbf{prox}_{\gamma h}\left( \boldsymbol{r} \right)} $|\Suppressnumber|
|\Reactivatenumber|
end while
return $\boldsymbol{s}$
\end{algorithm}
\end{subfigure}\hfill%
\begin{subfigure}[b]{0.5\textwidth}
\centering
\begin{align*}
\text{minimize}\hspace{5mm} &
\textcolor{KITblue}{\underbrace{\boldsymbol{\gamma}^\text{T}
\tilde{\boldsymbol{c}}}_{\text{Likelihood}}}
+ \textcolor{KITred}{\underbrace{\sum\nolimits_{j\in\mathcal{J}}
g_j\left( \boldsymbol{T}_j\tilde{\boldsymbol{c}}
\right)}_{\text{Constraints}}} \\
\text{subject to}\hspace{5mm} &
\tilde{\boldsymbol{c}} \in \mathbb{R}^n
\end{align*}
\vspace*{-5mm}
\begin{algorithm}[caption={}, label={},
basicstyle=\fontsize{10}{18}\selectfont
]
Initialize $\tilde{\boldsymbol{c}}, \boldsymbol{z}, \boldsymbol{u}, \boldsymbol{\gamma}, \rho$
while stopping criterion unfulfilled do
$\textcolor{KITblue}{\tilde{\boldsymbol{c}} \leftarrow \argmin_{\tilde{\boldsymbol{c}}}
\left( \boldsymbol{\gamma}^\text{T}\tilde{\boldsymbol{c}}
+ \frac{\rho}{2}\sum_{j\in\mathcal{J}} \left\Vert
\boldsymbol{T}_j\tilde{\boldsymbol{c}} - \boldsymbol{z}_j
+ \boldsymbol{u}_j \right\Vert \right)}$
$\textcolor{KITred}{\boldsymbol{z}_j \leftarrow \textbf{prox}_{g_j}
\left( \boldsymbol{T}_j\tilde{\boldsymbol{c}}
+ \boldsymbol{u}_j \right), \hspace{5mm}\forall j\in\mathcal{J}}$
$\boldsymbol{u}_j \leftarrow \boldsymbol{u}_j
+ \tilde{\boldsymbol{c}} - \boldsymbol{z}_j, \hspace{14.5mm}\forall j\in\mathcal{J}$
end while
return $\tilde{\boldsymbol{c}}$
\end{algorithm}
\end{subfigure}%
\end{figure}%
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t, fragile]
\frametitle{Comparison of Proximal Decoding and\\LP Decoding using ADMM}
\vspace*{-0.75cm}
\begin{itemize}
\item Both algorithms can be understood as message passing algorithms
\end{itemize}
\vspace*{-0.25cm}
\begin{figure}[h]
\centering
\begin{subfigure}{0.48\textwidth}
\centering
\begin{algorithm}[caption={}, label={},]
Initialize $\boldsymbol{r}, \boldsymbol{s}, \omega, \gamma$
while stopping critierion unfulfilled do
for j in $\mathcal{J}$ do
$p_j \leftarrow \prod_{i\in N_c\left( j \right) } r_i $
$\textcolor{KITblue}{M_{j\to} \leftarrow p_j^2 - p_j}$|\Suppressnumber|
|\vspace{0.7mm}\Reactivatenumber|
end for
for i in $\mathcal{I}$ do
$s_i \leftarrow s_i + \gamma \left[ 4\left( s_i^2 - 1 \right)s_i
\phantom{\frac{4}{s_i}}\right.$|\Suppressnumber|
|\Reactivatenumber|$\left.+ \frac{4}{s_i}\sum_{j\in N_v\left( i \right) }
M_{j\to} \right] $
$r_i \leftarrow r_i + \omega \left( s_i - y_i \right)$
end for
end while
\end{algorithm}
\end{subfigure}%
\hfill
\begin{subfigure}{0.48\textwidth}
\centering
\begin{algorithm}[caption={}, label={},]
Initialize $\tilde{\boldsymbol{c}}, \boldsymbol{z}, \boldsymbol{u}, \boldsymbol{\gamma}, \rho$
while stopping criterion unfulfilled do
for j in $\mathcal{J}$ do
$\boldsymbol{z}_j \leftarrow \Pi_{P_{d_j}}\left(
\boldsymbol{T}_j\tilde{\boldsymbol{c}} + \boldsymbol{u}_j\right)$
$\boldsymbol{u}_j \leftarrow \boldsymbol{u}_j + \boldsymbol{T}_j\tilde{\boldsymbol{c}}
- \boldsymbol{z}_j$
$\textcolor{KITblue}{M_{j\to i} \leftarrow \left( z_j \right)_i - \left( u_j \right)_i,
\hspace{3mm} \forall i \in N_c\left( j \right)}$
end for
for i in $\mathcal{I}$ do
$\tilde{c}_i \leftarrow \frac{1}{d_i}
\left(\sum_{j\in N_v\left( i \right) } M_{j\to i}
- \frac{\gamma_i}{\mu} \right)$|\Suppressnumber|
|\vspace{7mm}\Reactivatenumber|
end for
end while
\end{algorithm}
\end{subfigure}%
\end{figure}%
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
%\begin{frame}[t]
% \frametitle{LP Relaxation}

View File

@@ -1570,23 +1570,345 @@ $\textcolor{KITblue}{\text{Output }\boldsymbol{\tilde{c}}_l\text{ with lowest }d
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
%\begin{frame}[t]
% \frametitle{Conclusion}
%
% \begin{itemize}
% \item Analysis of proximal decoding for AWGN channels:
% \begin{itemize}
% \item Error correcting performance (BER, FER, decoding failures)
% \item Computational performance ($\mathcal{O}\left( n \right) $ time complexity,
% fast implementation possible)
% \item Number of iterations independent of SNR
% \end{itemize}
% \item Suggestion for improvement of proximal decoding:
% \begin{itemize}
% \item Addition of ``ML-in-the-list'' step
% \item Up to $\sim\SI{1}{dB}$ gain under certain conditions
% \end{itemize}
% \end{itemize}
%\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\subsection{LP Decoding using ADMM}%
\label{sub:LP Decoding using ADMM}
\begin{frame}[t]
\frametitle{LP Decoding using ADMM}
\begin{figure}[H]
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$E_b / N_0 \left( \text{dB} \right) $}, ylabel={FER},
ymode=log,
width=0.45\textwidth,
height=0.325\textwidth,
%legend style={at={(0.03,0.04)},anchor=south west},
legend pos=outer north east,
]
\addplot[RedOrange, line width=1pt]
table [col sep=comma, x=SNR, y=FER,
discard if gt={SNR}{2.2},
]
{res/admm/fer_paper_margulis.csv};
\addlegendentry{ADMM (Barman et al.)}
\addplot[NavyBlue, only marks, mark=o, line width=1pt]
table [col sep=comma, x=SNR, y=FER,]
{res/admm/ber_margulis264013203.csv};
\addlegendentry{ADMM (Own results)}
\addplot[RoyalPurple, line width=1pt, densely dashed]
table [col sep=comma, x=SNR, y=FER, discard if gt={SNR}{2.2},]
{res/generic/fer_bp_mackay_margulis.csv};
\addlegendentry{BP (Barman et al.)}
\end{axis}
\end{tikzpicture}
\caption{Comparison of datapoints from Barman et al. with own simulation results%
\protect\footnotemark{}}
\label{fig:admm:results}
\end{figure}%
%
\footnotetext{``Margulis'' LDPC code with $n = 2640$, $k = 1320$
\cite[\text{Margulis2640.1320.3}]{mackay_enc}; $K=200, \mu = 3.3, \rho=1.9,
\epsilon_{\text{pri}} = 10^{-5}, \epsilon_{\text{dual}} = 10^{-5}$
}%
%
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t]
\frametitle{Conclusion}
\begin{itemize}
\item Analysis of proximal decoding for AWGN channels:
\begin{itemize}
\item Error correcting performance (BER, FER, decoding failures)
\item Computational performance ($\mathcal{O}\left( n \right) $ time complexity,
fast implementation possible)
\item Number of iterations independent of SNR
\end{itemize}
\item Suggestion for improvement of proximal decoding:
\begin{itemize}
\item Addition of ``ML-in-the-list'' step
\item Up to $\sim\SI{1}{dB}$ gain under certain conditions
\end{itemize}
\end{itemize}
\frametitle{LP Decoding using ADMM: Choice of Penalty\\
Parameters}
\begin{figure}[H]
\centering
\begin{subfigure}[c]{0.48\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$\mu$}, ylabel={FER},
ymode=log,
width=0.9\textwidth,
height=0.675\textwidth,
]
\addplot[ForestGreen, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=FER,
discard if not={SNR}{2.0},]
{res/admm/ber_2d_20433484.csv};
\addplot[RedOrange, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=FER,
discard if not={SNR}{3.0},]
{res/admm/ber_2d_20433484.csv};
\addplot[NavyBlue, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=FER,
discard if not={SNR}{4.0},]
{res/admm/ber_2d_20433484.csv};
\end{axis}
\end{tikzpicture}
\end{subfigure}%
\begin{subfigure}[c]{0.48\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$\rho$}, ylabel={FER},
ymode=log,
width=0.9\textwidth,
height=0.675\textwidth,
]
\addplot[ForestGreen, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=FER,
discard if not={SNR}{2.0},]
{res/admm/ber_2d_20433484_rho.csv};
\addplot[RedOrange, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=FER,
discard if not={SNR}{3.0},]
{res/admm/ber_2d_20433484_rho.csv};
\addplot[NavyBlue, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=FER,
discard if not={SNR}{4.0},]
{res/admm/ber_2d_20433484_rho.csv};
\end{axis}
\end{tikzpicture}
\end{subfigure}%
\begin{subfigure}[t]{\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[hide axis,
xmin=10, xmax=50,
ymin=0, ymax=0.4,
legend columns=3,
legend style={draw=white!15!black,legend cell align=left}]
\addlegendimage{ForestGreen, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{2}{dB}$}
\addlegendimage{RedOrange, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{3}{dB}$}
\addlegendimage{NavyBlue, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{4}{dB}$}
\end{axis}
\end{tikzpicture}
\end{subfigure}
\caption{Relation between $\mu$ and $\rho$ and decoding performance%
\protect\footnotemark{}}
\end{figure}%
\footnotetext{Simulation performed with (3,6) regular LDPC code with $n=204, k=102$
\cite[Code: 204.33.484]{mackay_enc}}
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t]
\frametitle{LP Decoding using ADMM: Choice of Penalty\\
Parameters}
\begin{figure}[H]
\centering
\begin{subfigure}[c]{0.48\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$\mu$}, ylabel={Average \# of iterations},
width=0.9\textwidth,
height=0.675\textwidth,
]
\addplot[ForestGreen, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=k_avg,
discard if not={SNR}{2.0},]
{res/admm/mu_kavg_20433484.csv};
\addplot[RedOrange, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=k_avg,
discard if not={SNR}{3.0},]
{res/admm/mu_kavg_20433484.csv};
\addplot[NavyBlue, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=mu, y=k_avg,
discard if not={SNR}{4.0},]
{res/admm/mu_kavg_20433484.csv};
\end{axis}
\end{tikzpicture}
\end{subfigure}%
\begin{subfigure}[c]{0.48\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
xlabel={$\rho$}, ylabel={Average \# of iterations},
width=0.9\textwidth,
height=0.675\textwidth,
]
\addplot[ForestGreen, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=k_avg,
discard if not={SNR}{2.0},]
{res/admm/rho_kavg_20433484.csv};
\addplot[RedOrange, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=k_avg,
discard if not={SNR}{3.0},]
{res/admm/rho_kavg_20433484.csv};
\addplot[NavyBlue, line width=1pt, densely dashed, mark=*]
table [col sep=comma, x=rho, y=k_avg,
discard if not={SNR}{4.0},]
{res/admm/rho_kavg_20433484.csv};
\end{axis}
\end{tikzpicture}
\end{subfigure}%
\begin{subfigure}[t]{\textwidth}
\centering
\begin{tikzpicture}
\begin{axis}[hide axis,
xmin=10, xmax=50,
ymin=0, ymax=0.4,
legend columns=3,
legend style={draw=white!15!black,legend cell align=left}]
\addlegendimage{ForestGreen, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{2}{dB}$}
\addlegendimage{RedOrange, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{3}{dB}$}
\addlegendimage{NavyBlue, line width=1pt, densely dashed, mark=*}
\addlegendentry{$E_b / N_0 = \SI{4}{dB}$}
\end{axis}
\end{tikzpicture}
\end{subfigure}
\caption{Relation between $\mu$ and $\rho$ and speed of convergence%
\protect\footnotemark{}}
\end{figure}%
\footnotetext{Simulation performed with (3,6) regular LDPC code with $n=204, k=102$
\cite[Code: 204.33.484]{mackay_enc}}
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t]
\frametitle{LP Decoding using ADMM: Average Error}
\begin{figure}[H]
\centering
\begin{tikzpicture}
\begin{axis}[
grid=both,
width=0.5\textwidth,
height=0.375\textwidth,
xlabel={Iteration}, ylabel={Average $\left\Vert \hat{\boldsymbol{c}}
- \boldsymbol{c} \right\Vert$}
]
\addplot[ForestGreen, line width=1pt]
table [col sep=comma, x=k, y=err,
discard if not={SNR}{1.0},
discard if gt={k}{100}]
{res/admm/avg_error_20433484.csv};
\addlegendentry{$E_b / N_0 = \SI{1}{dB}$}
\addplot[RedOrange, line width=1pt]
table [col sep=comma, x=k, y=err,
discard if not={SNR}{2.0},
discard if gt={k}{100}]
{res/admm/avg_error_20433484.csv};
\addlegendentry{$E_b / N_0 = \SI{2}{dB}$}
\addplot[NavyBlue, line width=1pt]
table [col sep=comma, x=k, y=err,
discard if not={SNR}{3.0},
discard if gt={k}{100}]
{res/admm/avg_error_20433484.csv};
\addlegendentry{$E_b / N_0 = \SI{3}{dB}$}
\addplot[RoyalPurple, line width=1pt]
table [col sep=comma, x=k, y=err,
discard if not={SNR}{4.0},
discard if gt={k}{100}]
{res/admm/avg_error_20433484.csv};
\addlegendentry{$E_b / N_0 = \SI{4}{dB}$}
\end{axis}
\end{tikzpicture}
\caption{Average error for $\SI{100000}{}$ decodings\protect\footnotemark{}}
\end{figure}%
\footnotetext{Simulation performed with (3,6) regular LDPC code with $n=204, k=102$
\cite[Code: 204.33.484]{mackay_enc}}
\end{frame}
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
\begin{frame}[t]
\frametitle{LP Decoding using ADMM: Time Complexity}
\begin{figure}[h]
\centering
\begin{tikzpicture}
\begin{axis}[grid=both,
xlabel={$n$}, ylabel={Time per frame (s)},
width=0.45\textwidth,
height=0.3375\textwidth,
legend style={at={(0.03,0.96)},anchor=north west},
%legend pos=outer north east,
legend cell align={left},]
% \addplot[RedOrange, only marks, mark=*]
% table [col sep=comma, x=n, y=spf]
% {res/proximal/fps_vs_n.csv};
% \addlegendentry{Proximal decoding}
\addplot[RoyalPurple, only marks, mark=triangle*]
table [col sep=comma, x=n, y=spf]
{res/admm/fps_vs_n.csv};
% \addlegendentry{LP decoding using ADMM}
\end{axis}
\end{tikzpicture}
\caption{Timing requirements of the LP decoding imlementation%
\protect\footnotemark{}}
\end{figure}%
\footnotetext{The points shown were calculated by evaluating the metadata
of BER simulation results for the following codes:
BCH $\left( 31, 11 \right)$;
BCH $\left( 31, 26 \right)$;
\cite[\text{96.3.965; 204.33.484;
204.55.187; 408.33.844; PEGReg252x504}]{mackay_enc}
}
\end{frame}