1 00:00:13,264 --> 00:00:18,563 Welcome to my talk. Thanks for your nice introduction and the nice welcoming from you guys! 2 00:00:18,563 --> 00:00:25,472 You see the talk has the allusive name "Surveillance and language" 3 00:00:25,472 --> 00:00:28,343 which obviously alludes to Foucault with "Surveillance and punish" (Discipline and Punish in English) 4 00:00:28,343 --> 00:00:36,115 However, long before Foucault presented the genesis of the disciplinary society, 5 00:00:36,115 --> 00:00:41,592 you find a lovely moral tale in a children's book, 6 00:00:41,592 --> 00:00:48,776 which is named "The Kid in the glass house" by Heinrich Oswalt, written in 1877 and very foreshadowing 7 00:00:48,776 --> 00:00:53,111 In Frankfurt lives a glazier master, Mr. Lebrecht Sheibenmann his name; 8 00:00:53,111 --> 00:00:56,960 He had a little daughter, Who never wanted to be washed. 9 00:00:56,960 --> 00:00:59,576 And Gretchen came with sponge and soap, So the bad girl ran away; 10 00:00:59,576 --> 00:01:04,408 It even flipped the washing table - The water flooded the house. 11 00:01:04,408 --> 00:01:09,695 So Mr. Lebrecht Scheibenmann began to build a strange house, 12 00:01:09,695 --> 00:01:13,519 A house made only of glass, that, alas! Was transparent throughout. 13 00:01:13,519 --> 00:01:16,479 And in this glass house the bad daughter was then seated. 14 00:01:16,479 --> 00:01:19,739 So that, in order to see, People stopped on the street. 15 00:01:19,739 --> 00:01:23,575 So the kid was ashamed and ran around In the entire house and screamed: 16 00:01:23,575 --> 00:01:26,359 "Where can I hide? You can see me from everywhere! 17 00:01:26,359 --> 00:01:31,839 The roof, the cellar, every room Is made of glass! you can always see me!" 18 00:01:31,839 --> 00:01:35,967 The mother said: "My dear child! There is a quick fix to that: 19 00:01:35,967 --> 00:01:40,360 If people see you decent They will pass by; 20 00:01:40,360 --> 00:01:43,472 [...] The daughter remembered that; And tried to be seemly. 21 00:01:43,472 --> 00:01:46,831 And because it no longer screamed while washing, Other people never laughed; 22 00:01:46,831 --> 00:01:50,791 Since everyone who peeked into the house, Sees a kid that's very seemly. 23 00:01:50,791 --> 00:01:54,888 And if you have your own child, you people, That always screams while washing, 24 00:01:54,888 --> 00:02:01,431 Just tell it Mr. Lebrecht Scheibenmann, He will deliver you a glass house immediately. 25 00:02:01,431 --> 00:02:09,935 Yes, there... tentative approaches to applausing laughs Applause 26 00:02:09,935 --> 00:02:13,487 Yes, interesting story, that is certainly fitting for our times 27 00:02:13,487 --> 00:02:21,264 as Lebrecht Scheibenmann is named Keith Alexander and works for the NSA 28 00:02:21,941 --> 00:02:26,311 The NSA has made glass houses out of all our homes 29 00:02:26,311 --> 00:02:29,127 we can all be seen in these glass houses 30 00:02:29,127 --> 00:02:39,559 and you don't know, or at least I'm quite sure that one pursues educational purposes 31 00:02:39,559 --> 00:02:43,351 that certain actions are no longer acceptable 32 00:02:43,351 --> 00:02:47,320 and that we internalize this observation 33 00:02:47,320 --> 00:02:51,552 Regarding this observation, language obviously plays a very important role 34 00:02:51,552 --> 00:02:56,535 Many of our statements take place in the medium of language 35 00:02:56,535 --> 00:03:05,655 This has also given hackers the idea to trick the NSA with a site like "Hello NSA" 36 00:03:05,655 --> 00:03:16,767 A website which assembles suspicious words into messages like a "bullshitter" 37 00:03:16,767 --> 00:03:23,895 and these are then tweeted, mailed or chatted upon 38 00:03:23,895 --> 00:03:30,399 to achieve something like the "operation Troll the NSA: 39 00:03:30,399 --> 00:03:35,879 that you can jam the NSA scanners, so that you can execute a DDOS attack 40 00:03:35,879 --> 00:03:44,370 simply by sending too much content, which is basically suspicious on the basis of keywords 41 00:03:44,370 --> 00:03:50,911 The point of my presentation is showing that the image of the NSA is wrong. 42 00:03:50,911 --> 00:03:55,394 We cannot assume that at the NSA people really print something 43 00:03:55,394 --> 00:04:05,358 as soon as a keyword is displayed and laughter start to analyse everything 44 00:04:05,404 --> 00:04:10,968 and look at it closer and do a qualitative evaluation 45 00:04:11,060 --> 00:04:13,519 and this certainly is a very intensive task 46 00:04:13,519 --> 00:04:26,504 and therefore a keyword spam DDoS would certainly be ineffective 47 00:04:28,900 --> 00:04:34,100 You all have probably read the thanksgiving talkingpoints of the NSA. 48 00:04:34,100 --> 00:04:41,880 I don't know if you stumbled across it, that under the 4th point there is something utterly important 49 00:04:41,880 --> 00:04:47,888 "NSA brings together the best linguists, analysts, mathematicians, engineers and computer scientists 50 00:04:47,888 --> 00:04:52,249 in the United States." and the linguists are named first. 51 00:04:52,249 --> 00:04:56,290 slight laughter 52 00:04:56,290 --> 00:05:02,063 So you can see that the NSA is definitely aware of language as an important medium 53 00:05:02,063 --> 00:05:08,603 and which is also very important to them. In that it surely makes sense to deal with that 54 00:05:08,603 --> 00:05:16,755 It happens that the secretary of the Interior has leaked the most recent analysing software, the "Advanced Security Toolkit" 55 00:05:16,755 --> 00:05:25,514 Developed by the Von-Leitner-Institute for distributed realtime java. laughter 56 00:05:27,530 --> 00:05:31,193 First, we'll look at today's mission. 57 00:05:31,193 --> 00:05:35,913 Today's task is to check out the German blogosphere 58 00:05:35,913 --> 00:05:40,192 that seems to be radicalizing since the government's take-over by the grand coalition 59 00:05:40,192 --> 00:05:47,928 it's important to check if actions are in preparation to identify radical subjects if necessary, 60 00:05:47,928 --> 00:05:59,747 which are especially striking. As a start, we choose our targets, of course some are suggested to us 61 00:05:59,747 --> 00:06:03,873 Unfortunately I can only present a small selection of possible targets. I would have loved to take more 62 00:06:03,873 --> 00:06:06,241 There are a few socio-critical blogs and news sites 63 00:06:06,241 --> 00:06:11,900 like blog.fefe.de, Indymedia, Mädchenmannschaft, Netzpolitik.org, rebellmarkt.blogger.de 64 00:06:11,900 --> 00:06:18,361 And religiously motivated websites like kreuz.net islambruderschaft.com blog and discussion board salafistic 65 00:06:18,361 --> 00:06:23,229 and of course we confirm the selection. This is a very sensitive selection 66 00:06:23,229 --> 00:06:31,681 The following analyses are possible. Naturally, I can only show a selection of possible analytic tools today 67 00:06:31,681 --> 00:06:36,417 I wish I could show lots more, but there won't be enough time. 68 00:06:36,417 --> 00:06:42,361 First we'll look at what authors write about possible sensitive targets 69 00:06:42,361 --> 00:06:46,193 Meaning we'll make a target analysis. 70 00:06:46,193 --> 00:06:55,980 On the basis of Name Entity Recognition it examines the collocation for possible terror targets 71 00:06:55,980 --> 00:07:04,393 We have to... what is this? ...let's have a look in the manual, what Named Entities are 72 00:07:04,393 --> 00:07:08,649 since it is our first day today 73 00:07:08,649 --> 00:07:19,577 First of all, Named Entities are expressions which distinguish one entity clearly from other entities with similar attributes 74 00:07:19,577 --> 00:07:25,139 Spontaneously one thinks of names, but it's not trivial to say what a name is 75 00:07:25,139 --> 00:07:31,690 Accordingly, Named Entity Recognition is the procedure with which one identifies such Named Entities 76 00:07:31,690 --> 00:07:43,889 There sure are different classes of Named Entities, e.g. people, organisations, places 77 00:07:43,889 --> 00:07:51,217 Sometimes it's not very clear what belongs to a certain Named Entity, e.g. "der Bundestag" (Lower House of German Parliament) 78 00:07:51,217 --> 00:07:57,361 this can be a geographical place as well as an organisation 79 00:08:02,100 --> 00:08:06,241 Now we still need to know what collocations are 80 00:08:06,241 --> 00:08:12,409 They are statistically overly random frequent word combinations 81 00:08:12,409 --> 00:08:22,849 so "we define a collocation as a combination of two words, that exhibit a tendency to occur near each other in natural language that is to cooccur” 82 00:08:22,849 --> 00:08:27,369 like "take a road", "go down a road" 83 00:08:27,369 --> 00:08:31,761 Those are typical connections between the words "road", "go down", or "take" 84 00:08:31,761 --> 00:08:41,024 and these connections form collocations if they are overly random 85 00:08:41,024 --> 00:08:44,929 as we could determine with statistical tests 86 00:08:44,929 --> 00:08:48,313 and we can observe them in natural language 87 00:08:48,313 --> 00:08:53,569 One example - you don't need to read that now - I wanted to show an example for the word "Spezialexperte" 88 00:08:53,569 --> 00:08:59,100 you can see the "keyword in context" here, being the requested key word 89 00:08:59,100 --> 00:09:07,242 and you can see the contexts of this word, so apparently they haven't found a "chosen special expert for internet issues" 90 00:09:07,242 --> 00:09:12,337 We won't have to make a quiz game of what blog it could come from 91 00:09:12,337 --> 00:09:15,217 What you do then, for a collocation analysis you examine contexts 92 00:09:15,217 --> 00:09:22,457 e.g. here five words on the left, five words on the right till the beginning or end of a sentence 93 00:09:22,457 --> 00:09:28,833 You just count the words that are in the blue area 94 00:09:28,833 --> 00:09:35,832 and you compare the relative frequency with the words which are on the left and right in the white area 95 00:09:35,832 --> 00:09:43,947 If a word appears significantly more frequent in the blue area, you can say it is a collocation of the word "Spezialexperte" 96 00:09:43,947 --> 00:09:49,529 What is striking here for example is "kriegen" or "Adobe-Spezialexperten" laughter 97 00:09:49,529 --> 00:09:58,395 You can visualize collocation as graphs laughter 98 00:09:59,672 --> 00:10:05,961 The knots denote lexemes (I'm not sure what's there to laugh about) 99 00:10:05,961 --> 00:10:12,170 (that's serious linguistics!) and the edges denote "is collocation of" 100 00:10:12,170 --> 00:10:18,625 So here you see "the best of the best, sir", Sarrazin and Mehdorn belong there. 101 00:10:18,625 --> 00:10:24,258 It proliferates a little more. "Adobe-Backup", "Backup-Spezialexperten“ … interesting 102 00:10:24,258 --> 00:10:34,880 Ok. Now we are in the area of the target analysis. Let's start the analysis. 103 00:10:34,880 --> 00:10:43,241 What is it we are doing there? What we're doing is recognizing all Named Entities in all Corpora 104 00:10:43,241 --> 00:10:49,537 We first calculate it with methods of mechanical learning. 105 00:10:49,537 --> 00:10:53,409 Meaning you examine certain contexts in which the Named Entities stand. 106 00:10:53,409 --> 00:10:59,361 We have a training corpus which already knows what Named Entities are 107 00:10:59,361 --> 00:11:07,569 e.g. that "Bundestag" is an organisation and the software learns from these contexts 108 00:11:07,569 --> 00:11:16,913 what typical contexts for such Named Entities are and tries to apply them to new Corpora 109 00:11:16,913 --> 00:11:23,162 What we're doing here: we identify in all corpora, in all blogs, that we examine, the Named Entities. 110 00:11:23,162 --> 00:11:28,309 we categorize these Named Entities after people, organisation, geographical locations and other 111 00:11:28,309 --> 00:11:32,408 and then we calculate the collocations to the relevant Named Entities. 112 00:11:32,408 --> 00:11:37,353 e.g. "Angela Merkel" could be interesting or something 113 00:11:37,353 --> 00:11:45,281 And then we also look in the collocations, if they contain any danger words 114 00:11:45,281 --> 00:11:50,634 Meaning words that indicate terror plans or others. Now we'll do that. 115 00:11:50,634 --> 00:12:02,157 The analysis seems to be finished and the result is, we have danger level 1 of 5, so it's not really tragic 116 00:12:02,157 --> 00:12:12,730 the software suggests a check of the danger level regarding Berlin 117 00:12:12,730 --> 00:12:17,377 being the location of donalphonso, the blogger of Rebellmarkt 118 00:12:17,377 --> 00:12:31,769 A potential target of Fefe is the SPD (Social Democratic Party) laughter and the Maedchenmannschaft one is "Kristina Schroeder" (Minister of Family Affairs) 119 00:12:31,769 --> 00:12:45,942 As an example, we now have gotten an order to see what bad things donalphonso writes about Berlin and if he is planning something 120 00:12:45,942 --> 00:12:50,219 Now we can display collocation graphs or geo-collocations 121 00:12:50,219 --> 00:13:00,588 This means that we have a map and at the places which donalphonso writes about there are the correspondent collocations 122 00:13:00,588 --> 00:13:07,153 In America he writes about Boyd and culture, lone perpetrators, confused and "hate mail" and stuff 123 00:13:07,153 --> 00:13:15,444 Germany, Middle Europe is in the focus of course. It goes down till Italy 124 00:13:15,444 --> 00:13:20,444 There you can also see what donalphonso writes about 125 00:13:20,444 --> 00:13:26,229 We're approaching Berlin. There are too many collocations to evaluate 126 00:13:26,229 --> 00:13:35,804 So we look at our collocation graph and look for references to terror that could take place 127 00:13:35,804 --> 00:13:45,690 I'll read out some: " „Berlin“, „Slum“, „Reichshauptslum“, „arm“, „Transferleistung“, „abscheulich“, „Berliner Hipster“ laughter 128 00:13:45,690 --> 00:13:54,268 While this may show quite a negative attitude towards the subject, it's not exactly suspicious of terror. 129 00:13:54,268 --> 00:14:01,295 The other potential target were the organisations "SPD" with Fefe 130 00:14:01,295 --> 00:14:13,572 We'll look at the collocation graph. Fefe and the SPD. laughterapplause 131 00:14:13,572 --> 00:14:17,789 hey „betrayer party“, „fall-over party“, let's turn back briefly 132 00:14:17,789 --> 00:14:20,856 In total, in the entire list we really found words such as: 133 00:14:20,856 --> 00:14:36,773 „hang“, „force“, „top candidate“, „betrayer party“, "fall-over party“, „pest“, „cholera“ laughterapplause 134 00:14:36,773 --> 00:14:42,277 If we look at the collocation graph, we can already see that those are accusations 135 00:14:42,277 --> 00:14:54,019 But Fefe is not planning to finish the top candidate off 136 00:14:56,158 --> 00:15:02,477 Let's continue with the ideology monitor. We'd want to take some measurements now... 137 00:15:02,477 --> 00:15:15,530 It has been proven that the NSA has filed many software patents for algorithms about Named Entity Recognition 138 00:15:15,530 --> 00:15:19,689 There has been quite some research going on some time ago 139 00:15:19,689 --> 00:15:27,711 But first you find out what interesting targets are and what is said about them 140 00:15:27,711 --> 00:15:34,234 You can certainly improve that by measuring ideologies. 141 00:15:34,234 --> 00:15:44,227 What we want to calculate now is the similarity of texts, from blogs to certain ideologies 142 00:15:44,227 --> 00:15:53,428 We have the possibility of measuring extreme leftist, rightist or islamistic attitudes 143 00:15:53,428 --> 00:16:06,579 We do this by calculating typical collocations... for a certain corpus 144 00:16:06,579 --> 00:16:11,990 From this corpus we learn. So that's our model of comparison. 145 00:16:11,990 --> 00:16:18,269 146 00:16:18,269 --> 00:16:33,510 147 00:16:33,510 --> 00:16:42,187 148 00:16:42,187 --> 00:16:52,579 149 00:16:52,579 --> 00:16:59,968 150 00:16:59,968 --> 00:17:09,363 151 00:17:09,363 --> 00:17:15,395 152 00:17:15,395 --> 00:17:22,900 153 00:17:22,900 --> 00:17:24,799 154 00:17:24,799 --> 00:17:34,771 155 00:17:34,771 --> 00:17:41,750 156 00:17:41,750 --> 00:17:49,819 157 00:17:49,819 --> 00:17:56,851 158 00:17:56,851 --> 00:18:02,371 159 00:18:02,371 --> 00:18:09,131 160 00:18:09,131 --> 00:18:16,858 161 00:18:16,858 --> 00:18:21,555 162 00:18:21,555 --> 00:18:28,546 163 00:18:28,546 --> 00:18:35,568 164 00:18:35,568 --> 00:18:42,582 165 00:18:42,582 --> 00:18:48,386 166 00:18:48,386 --> 00:18:54,595 167 00:18:54,595 --> 00:19:01,235 168 00:19:01,235 --> 00:19:12,603 169 00:19:12,603 --> 00:19:17,838 170 00:19:17,838 --> 00:19:21,431 171 00:19:21,431 --> 00:19:35,946 172 00:19:35,946 --> 00:19:42,990 173 00:19:43,040 --> 00:19:59,379 174 00:19:59,379 --> 00:20:03,323 175 00:20:03,323 --> 00:20:13,590 176 00:20:13,590 --> 00:20:20,406 177 00:20:20,406 --> 00:20:26,147 178 00:20:26,147 --> 00:20:37,683 179 00:20:37,683 --> 00:20:48,990 180 00:20:48,990 --> 00:20:55,966 181 00:20:55,966 --> 00:21:06,483 182 00:21:06,483 --> 00:21:16,109 183 00:21:16,109 --> 00:21:21,700 184 00:21:21,700 --> 00:21:26,531 185 00:21:26,531 --> 00:21:32,993 186 00:21:32,993 --> 00:21:39,443 187 00:21:39,443 --> 00:21:45,850 188 00:21:45,850 --> 00:21:50,771 189 00:21:50,771 --> 00:21:56,747 190 00:21:56,747 --> 00:22:03,402 191 00:22:03,402 --> 00:22:11,714 192 00:22:11,714 --> 00:22:25,202 193 00:22:25,202 --> 00:22:30,645 194 00:22:30,645 --> 00:22:36,957 195 00:22:36,957 --> 00:22:41,126 196 00:22:41,126 --> 00:22:51,959 197 00:22:51,959 --> 00:22:57,733 198 00:22:57,733 --> 00:23:05,558 199 00:23:05,558 --> 00:23:10,403 200 00:23:10,403 --> 00:23:21,210 201 00:23:21,210 --> 00:23:24,746 202 00:23:24,746 --> 00:23:29,426 203 00:23:29,426 --> 00:23:34,820 204 00:23:34,820 --> 00:23:40,200 205 00:23:40,200 --> 00:23:45,966 206 00:23:45,966 --> 00:23:55,534 207 00:23:55,534 --> 00:24:01,259 208 00:24:01,259 --> 00:24:09,674 209 00:24:09,674 --> 00:24:12,917 210 00:24:12,917 --> 00:24:16,174 211 00:24:16,174 --> 00:24:20,633 212 00:24:20,633 --> 00:24:25,134 213 00:24:25,134 --> 00:24:36,690 214 00:24:36,690 --> 00:24:44,573 215 00:24:44,573 --> 00:24:56,470 216 00:24:56,470 --> 00:25:07,850 217 00:25:07,850 --> 00:25:11,707 218 00:25:11,707 --> 00:25:15,440 219 00:25:15,440 --> 00:25:22,493 220 00:25:22,493 --> 00:25:27,796 221 00:25:27,796 --> 00:25:40,998 222 00:25:40,998 --> 00:25:52,517 223 00:25:52,517 --> 00:26:01,989 224 00:26:01,989 --> 00:26:11,273 225 00:26:11,273 --> 00:26:21,400 226 00:26:21,400 --> 00:26:27,573 227 00:26:27,573 --> 00:26:32,485 228 00:26:32,485 --> 00:26:38,518 229 00:26:38,518 --> 00:26:45,317 230 00:26:45,317 --> 00:26:56,133 231 00:26:56,133 --> 00:27:03,137 232 00:27:03,137 --> 00:27:10,845 233 00:27:10,845 --> 00:27:18,446 234 00:27:18,446 --> 00:27:27,560 235 00:27:27,560 --> 00:27:38,750 236 00:27:38,750 --> 00:27:46,866 237 00:27:46,866 --> 00:27:53,873 238 00:27:53,873 --> 00:28:03,690 239 00:28:03,690 --> 00:28:09,213 240 00:28:09,213 --> 00:28:13,733 241 00:28:13,733 --> 00:28:18,598 242 00:28:18,598 --> 00:28:27,733 243 00:28:27,733 --> 00:28:36,624 244 00:28:36,624 --> 00:28:45,592 245 00:28:45,592 --> 00:28:51,454 246 00:28:51,454 --> 00:28:55,792 247 00:28:55,792 --> 00:29:05,153 248 00:29:05,153 --> 00:29:09,349 249 00:29:09,349 --> 00:29:16,909 250 00:29:16,909 --> 00:29:21,312 251 00:29:21,312 --> 00:29:26,947 252 00:29:26,947 --> 00:29:32,635 253 00:29:32,635 --> 00:29:34,620 254 00:29:34,620 --> 00:29:54,923 255 00:29:54,923 --> 00:29:58,339 256 00:29:58,339 --> 00:30:01,819 257 00:30:01,819 --> 00:30:06,659 258 00:30:06,659 --> 00:30:14,667 259 00:30:14,667 --> 00:30:22,888 260 00:30:22,888 --> 00:30:26,549 261 00:30:26,549 --> 00:30:29,314 262 00:30:29,314 --> 00:30:36,758 263 00:30:36,758 --> 00:30:40,438 264 00:30:40,438 --> 00:30:48,294 265 00:30:48,294 --> 00:30:58,710 266 00:30:58,710 --> 00:31:09,787 267 00:31:09,787 --> 00:31:17,774 268 00:31:17,774 --> 00:31:24,813 269 00:31:24,813 --> 00:31:30,572 270 00:31:30,572 --> 00:31:35,859 271 00:31:35,859 --> 00:31:40,854 272 00:31:40,854 --> 00:31:50,749 273 00:31:50,749 --> 00:31:58,705 274 00:31:58,705 --> 00:32:14,270 275 00:32:14,270 --> 00:32:19,117 276 00:32:19,117 --> 00:32:25,693 277 00:32:25,693 --> 00:32:28,410 278 00:32:28,410 --> 00:32:33,699 279 00:32:33,699 --> 00:32:36,129 280 00:32:36,129 --> 00:32:41,820 281 00:32:41,820 --> 00:32:46,595 282 00:32:46,595 --> 00:32:50,251 283 00:32:50,251 --> 00:33:01,200 284 00:33:01,200 --> 00:33:03,122 285 00:33:03,122 --> 00:33:10,843 286 00:33:10,843 --> 00:33:14,986 287 00:33:14,986 --> 00:33:25,309 288 00:33:25,309 --> 00:33:30,330 289 00:33:30,330 --> 00:33:38,478 290 00:33:38,478 --> 00:33:45,715 291 00:33:45,715 --> 00:33:52,403 292 00:33:52,403 --> 00:33:57,138 293 00:33:57,138 --> 00:34:04,820 294 00:34:04,820 --> 00:34:09,819 295 00:34:09,819 --> 00:34:17,187 296 00:34:17,187 --> 00:34:23,954 297 00:34:23,954 --> 00:34:29,851 298 00:34:29,851 --> 00:34:35,723 299 00:34:35,723 --> 00:34:42,514 300 00:34:42,514 --> 00:34:46,427 301 00:34:46,427 --> 00:34:51,432 302 00:34:51,432 --> 00:34:55,593 303 00:34:55,593 --> 00:35:04,240 304 00:35:04,240 --> 00:35:09,400 305 00:35:09,400 --> 00:35:15,456 306 00:35:15,456 --> 00:35:22,575 307 00:35:22,575 --> 00:35:27,550 308 00:35:27,550 --> 00:35:31,222 309 00:35:31,222 --> 00:35:37,480 310 00:35:37,480 --> 00:35:42,448 311 00:35:42,448 --> 00:35:49,976 312 00:35:49,976 --> 00:35:54,360 313 00:35:54,360 --> 00:36:02,547 314 00:36:02,547 --> 00:36:10,284 315 00:36:10,284 --> 00:36:17,336 316 00:36:17,336 --> 00:36:21,867 317 00:36:21,867 --> 00:36:25,960 318 00:36:25,960 --> 00:36:32,712 319 00:36:32,712 --> 00:36:37,696 320 00:36:37,696 --> 00:36:41,811 321 00:36:41,811 --> 00:36:47,320 322 00:36:47,320 --> 00:36:55,842 323 00:36:55,842 --> 00:37:02,968 324 00:37:02,968 --> 00:37:06,560 325 00:37:06,560 --> 00:37:10,272 326 00:37:10,272 --> 00:37:16,408 327 00:37:16,408 --> 00:37:20,239 328 00:37:20,239 --> 00:37:30,740 329 00:37:30,740 --> 00:37:32,285 330 00:37:32,285 --> 00:37:38,432 331 00:37:38,432 --> 00:37:43,968 332 00:37:43,968 --> 00:37:54,552 333 00:37:54,552 --> 00:38:02,728 334 00:38:02,728 --> 00:38:10,336 335 00:38:10,336 --> 00:38:16,993 336 00:38:16,993 --> 00:38:21,845 337 00:38:21,845 --> 00:38:27,256 338 00:38:27,256 --> 00:38:31,709 339 00:38:31,709 --> 00:38:38,819 340 00:38:38,819 --> 00:38:42,568 341 00:38:42,568 --> 00:38:47,128 342 00:38:47,128 --> 00:38:53,894 343 00:38:53,894 --> 00:38:58,187 344 00:38:58,187 --> 00:39:01,528 345 00:39:01,528 --> 00:39:08,936 346 00:39:08,936 --> 00:39:15,993 347 00:39:15,993 --> 00:39:23,392 348 00:39:23,392 --> 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00:57:35,729 --> 00:57:40,216 525 00:57:40,216 --> 00:57:45,969 526 00:57:45,969 --> 00:57:52,490 527 00:57:52,490 --> 00:57:58,499 528 00:57:58,499 --> 00:58:06,600 529 00:58:06,600 --> 00:58:12,944 530 00:58:12,944 --> 00:58:15,515 531 00:58:15,515 --> 00:58:19,160 532 00:58:19,160 --> 00:58:22,535 533 00:58:22,535 --> 00:58:27,520 534 00:58:27,520 --> 00:58:34,350 535 00:58:34,350 --> 00:58:39,408 536 99:59:59,999 --> 99:59:59,999 subtitles created by c3subtitles.de