打開PE查看工具被唬到了,以為是什么猛殼,那么多區段,實則只是linux下的gcc編譯器整出來的,害:
完事先看程序結構,啥啊,不就是簡單的兩個函數處理大小寫字母和符號,然后后硬編碼字符串比較,太憨憨了:
int func() { int result; // eax int v1; // [esp+14h] [ebp-44h] int v2; // [esp+18h] [ebp-40h] int v3; // [esp+1Ch] [ebp-3Ch] int v4; // [esp+20h] [ebp-38h] unsigned __int8 input; // [esp+24h] [ebp-34h] unsigned __int8 v6; // [esp+25h] [ebp-33h] unsigned __int8 v7; // [esp+26h] [ebp-32h] unsigned __int8 v8; // [esp+27h] [ebp-31h] unsigned __int8 v9; // [esp+28h] [ebp-30h] int v10; // [esp+29h] [ebp-2Fh] int v11; // [esp+2Dh] [ebp-2Bh] int v12; // [esp+31h] [ebp-27h] int v13; // [esp+35h] [ebp-23h] unsigned __int8 v14; // [esp+39h] [ebp-1Fh] char v15; // [esp+3Bh] [ebp-1Dh] char v16; // [esp+3Ch] [ebp-1Ch] char v17; // [esp+3Dh] [ebp-1Bh] char v18; // [esp+3Eh] [ebp-1Ah] char v19; // [esp+3Fh] [ebp-19h] char v20; // [esp+40h] [ebp-18h] char v21; // [esp+41h] [ebp-17h] char v22; // [esp+42h] [ebp-16h] char v23; // [esp+43h] [ebp-15h] char v24; // [esp+44h] [ebp-14h] char v25; // [esp+45h] [ebp-13h] char v26; // [esp+46h] [ebp-12h] char v27; // [esp+47h] [ebp-11h] char v28; // [esp+48h] [ebp-10h] char v29; // [esp+49h] [ebp-Fh] char v30; // [esp+4Ah] [ebp-Eh] char v31; // [esp+4Bh] [ebp-Dh] int i; // [esp+4Ch] [ebp-Ch] v15 = 'Q'; v16 = 's'; v17 = 'w'; v18 = '3'; v19 = 's'; v20 = 'j'; v21 = '_'; v22 = 'l'; v23 = 'z'; v24 = '4'; v25 = '_'; v26 = 'U'; v27 = 'j'; v28 = 'w'; v29 = '@'; v30 = 'l'; v31 = 0; printf("Please input:"); scanf("%s", &input); result = input; if ( input == 'A' ) { result = v6; if ( v6 == 'C' ) { result = v7; if ( v7 == 'T' ) { result = v8; if ( v8 == 'F' ) { result = v9; if ( v9 == '{' ) { result = v14; if ( v14 == '}' ) { v1 = v10; v2 = v11; v3 = v12; v4 = v13; for ( i = 0; i <= 15; ++i ) { if ( *(&v1 + i) > 64 && *(&v1 + i) <= 90 )// 大寫字母 *(&v1 + i) = (*(&v1 + i) - 51) % 26 + 65; if ( *(&v1 + i) > 96 && *(&v1 + i) <= 122 )// 小寫字母 *(&v1 + i) = (*(&v1 + i) - 79) % 26 + 97; } for ( i = 0; i <= 15; ++i ) { result = *(&v15 + i); if ( *(&v1 + i) != result ) return result; } result = printf("You are correct!"); } } } } } } return result; }
對那兩個函數逆操作我就不整了,能窮舉就絕不動腦子:
#include<iostream> #include<stdio.h> using namespace std; int main() { char flag[16] = { 0 }; char c[16] = { 'Q','s','w','3','s','j', '_','l','z','4','_','U','j','w','@','l' }; for (int k = 0; k < 16; k++) { for (int i = 0; i < 127; i++) { int z = 0; z = i; // if (i > 64 && i <= 90) i = (i - 51) % 26 + 65; if (i > 96 && i <= 122) i = (i - 79) % 26 + 97; if (i == c[k]) flag[k] = z; } } for (int i = 0; i < 16; i++) cout << flag[i]; return 0; }
ACTF{Cae3ar_th4_Gre@t}
題目鏈接:https://buuoj.cn/files/588c32051222b5dba864ddeb07c44e74/attachment.tar?token=eyJ1c2VyX2lkIjo1NTY4LCJ0ZWFtX2lkIjpudWxsLCJmaWxlX2lkIjoxNjgzfQ.XorhXQ.nuD8GYtPOowBrVIYfxGh9Y7rn2A