Ingress 13 Archetypes 12: Catalyst

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还有这种操作?




About 13 Archetypes





这是一个长达 13 周的解谜挑战,北京时间 12 月 10 日凌晨 01:00 起, Niantic 会在其论坛上发布一个谜题,然后让玩家解谜,结果会是一个 Passcode ,兑换后可获得 Media 一个。




Catalyst





C:ptslashsofourtwominushyphenzrotwohyphenaltwoothree

A: rTLLlqZAgNgnYxlFakrMkvDxugedRGbjUAFtyEgeZywqVXtzgEnRxanrAWfJqtKHxeUcwmTgyIaeVONgeAGlHgrTtpMxtyOmoPksyfxCQgaIZFbiQwpRialUMqseQtIkpheBNsNfcTNnMFmeUcgAwsPhkgDrSNQhoGOXjEwsxOQrgMVFrLAomFLSzDnlnOchGbfijvOTcePWIerXvhBsjvGDngeZyXybzsEPyXxzMFdAepIzdlvguWuneBnrCfxrRPtLuGQTeOksaNmmFgzstgUTyiGGVrbRbuTgzrUMcniWsGgnxrLJuAfqKCu:fz

B: StmjkLSrryIIZUEJDuUfsBFBCuEeqiBGwgHNqntTGYPuuECVcpdhNzVGIeCTRTmCXfzNsKrBsnnSutMELFqIqRsczUXBsLZVcxVsAoGCeAsjEtvYdIzuSNtnLOIdsjraPtBeaacvPAgVbNGiwtUgoJBMAdcenTtvYYunbnuIXestUIbNWKrEdeYiCpdYacBuatLXeSqczAQfTPjrrUduYGWqtBaytxAsQdhralsYewqplTAApKRmPIFBRIAgrnXKqbRZRMvCTbHTssJXGWrDuPUhVQlcDEidJXxYqRSrnRwbfqRsMTbnkmKdvjt:jk




Decode





C


按照 slash = /, four = 4, two = 2, minus = -, hyphen = — three = 3 来转换字符串 C ,可得:


pt/so42-—zro2—al2o3


Google 搜索了一下,发现是一种催化剂。


Pt / SO42− - ZrO2 - Al2O3


A


如果把字符串 A 的大小写分别转换成 A 和 B ,即为:


ABBBAABBABAABAABAAABAABAAAAABBAABBBAABAABAAABBAAABABAAAABBABAABBAABAAABAABAABBBAABBABAABAABAAABAABAAAAABBAABBBAABAABAAABBAAABABAAAABBABAABBABBAABAABAABAAABABBBAABBBABAAABBAABBBABBAABBBABAAABAABAAAAABBAABBBAABAABAAABBAAABABAAAABBABAABBABAABAAAAAABAAABAABAAABBABABBBABAAABAABAAAAABBAABBBAABAABAAABBAAABABAAAABBABAABBA


再以此来做 Bacon 解谜,即为:


oneredherringisoneredherringzeroortworedherringsarenoredherring


分一下词得到一句话:



One Red herring is one red herring, zero or two red herrings are no red herring.


在提醒我们,奇数是有用的、偶数是没用的。


以字符串 C 为 key ,将字符串 A 做 Vigenere 解谜(忽略大小写),可得:


catalysisistheprocessofincreasingtherateofachemicalreactionbyaddingasubstanceknownasacatalystwhichisnotconsumedinthecatalyzedreactionandcancontinuetoactrepeatedlybecauseofthisonlyverysmallamountsofcatalystarerequiredtoalterthereactionrateinprincipleingeneralchemicalreactionsoccurfasterinthepresenceofacatalystbecau:ui


B


以上述字符串为 key ,将字符串 B 做 Beaufort 解谜(忽略大小写),可得:


khhrbnarbkklikliliknanahlinakkhhknarbnalihlinaknalikrbhnaklihhrblihnakkrbnakkrbklikkklirbrbrblinaknananaknalilikklikknanakrblinanahknalinahhnanarbknarbhrbnanalinahrbnakhknanarbrbhrbnakklinaknanahrbkkrblinalinaknaklinananahrbrbknarbkkrblilinahrbnakknananahhkklinanahkklikklirblinakkkhrbnakkkhrbnanalinaklihhklihrbhrb:ly


除去结尾冒号及之后的部分,可以发现前面的部分都是第 1 族(氢和碱金属)元素,即:

氢, H 锂, Li 钠, Na 钾, K 铷, Rb


那么按顺序 H = 1, ... Rb = 5 来转换,即为:


41153544242243312344114353212343245134211521344534454244425552343334322442443345233143231133543515332315341433551534423433154452323434233315543544522315344333114423314424425234441534441533234211421515


将这一串数字做 Polybius 解谜:



12345
1ABCDE
2FGHI/JK
3LMNOP
4QRSTU
5VWXYZ


可得:


QEPTIGSLHTASXFHSIVOFEFOUOURTRZWONOMIRTNUHLSHANYPENHEODNZEORONETWMOOHNEYPTWHEOSNATHLTIRWOTEOTENHRAREE


一个 100 字符的字符串。每两个字符串一组后,再将奇数组和偶数组分别组成一个字符串,可得:


QEIGHTXFIVEFOURZNORTHLANENODEONEMONETWOSTHIRTEENAR PTSLASHSOFOURTWOMINUSHYPHENZROTWOHYPHENALTWOOTHREE


可以发现第二个字符串和字符串 C 是一样的,所以偶数行确实没用。


将奇数行按照 EIGHT = 8, FIVE = 5, FOUR = 4, ONE = 1, TWO = 2, THIRTEEN = 13 来转换,可得:


Q8X54ZNORTHLANENODE1M12S13AR


按照 13AR 系列的 passcode 格式来分一下词,可得


Q8X54Z Northlane Node 1m12s 13AR


Google 搜索后得知,Node 是 澳大利亚乐队 Nourthlane 的一个专辑,也是其中的第 3 首音乐的标题。


而这首音乐的 1′12″ 的歌词为:


多次尝试后发现, keyword 为 bethecatalyst,即 passcode 为:


q8x54zbethecatalyst13ar


兑换获得 Media 一枚。



三个单词组成一个 password ,竟然还有这种操作?


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