CRYPTO
1,NO SOS
题目给了一段由.和-构成的密码
由于题目提示不是摩斯码,将.和-化为0和1,长度为65位无法与8或7整除,无法转换为ascii,但可以被5整除,猜测为培根密码,将0化为a,1化为b
解密得flagisguetkkp
以格式flag{guetkkp}
MISC
1,KO
题目给了一段由.?!构成的txt
猜测为OOK用
(http://www.splitbrain.org/sercives/ook)
运行得到flag:welcome to CTF
RE
1,RE
题目给了一个ELF,拖进IDA,发现大段未能反汇编的,猜测为压缩壳 用upx -d
解压缩,将得到的文件再次拖入IDA
由此写脚本
a1=166163712//1629056
a2=731332800//6771600
a3=357245568//3682944
a4=1074393000//10431000
a5=489211344//3977328
a6=518971936//5138336
a7=406741500//7532250
print(chr(a1)+chr(a2)+chr(a3)+chr(a4)+chr(a5)+chr(a6)+'A'+chr(a7),end='')
a8=294236496//5551632
a9=177305856//3409728
a10=650683500//13013670
a11=298351053//6088797
a12=386348487//7884663
a13=438258597//8944053
a14=249527520//5198490
a15=445362764//4544518
a16=981182160//10115280
a17=174988800//3645600
print(chr(a8)+chr(a9)+chr(a10)+chr(a11)+chr(a12)+chr(a13)+chr(a14)+chr(a15)+chr(a16)+chr(a17),end='')
a18=493042704//9667504
a19=257493600//5364450
a20=767478780//13464540
a21=312840624//5488432
a22=1404511500//14479500
a23=316139670//6451830
a24=619005024//6252576
a25=372641472//7763364
a26=373693320//7327320
a27=498266640//8741520
a28=452465676//8871876
a29=208422720//4086720
a30=515592000//9374400
a31=719890500//5759124
print(chr(a18)+chr(a19)+chr(a20)+chr(a21)+chr(a22)+chr(a23)+chr(a24)+chr(a25)+chr(a26)+chr(a27)+chr(a28)+chr(a29)+chr(a30)+chr(a31))
得到flag
ps:特别注意没有a1[6],即没有第七位,因此flag不唯一,在脚本中用A代替