安恒九月赛

Posted liyuechan

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作为一名新菜鸡,就只能签下到,最后的re还是看了大佬的wp才明白的

1:NewDrive

    首先,直接对IDA 里面  找到mian F5,然后发现

  技术分享图片

发现指针偏移 值没找到  ,然后就ALt+k  平衡栈堆。就ok  

技术分享图片

 

 

   我分析了好久,都没分,比赛后也是个朋友 给了指点和他的wp我看才明白。

其实第一个就是base64加密 下面的就是rc4,其实不知道下面的也ok的。

进入第一个函数,

  if ( v2 > 0 )
  {
    v18 = v16;
    v15 = v1;
    v14 = v2;
    do
    {
      v3 = 0;
      *(_DWORD *)Dest = 0;
      strncpy(Dest, v1, 3u);
      v4 = Dest;
      v5 = 0;
      do
        v6 = *v4++;
      while ( v6 );
      v7 = v4 - &Dest[1];
      if ( v4 != &Dest[1] )
      {
        v8 = 0x10;
        do
        {
          v9 = Dest[v5++] << v8;
          v8 -= 8;
          v3 |= v9;
        }
        while ( v5 < v7 );
      }
      v10 = 0;
      v11 = 18;
      do
      {
        if ( v7 + 1 <= v10 )
          *((_BYTE *)v18 + v10) = 0x3D;
        else
          *((_BYTE *)v18 + v10) = byte_402138[(v3 >> v11) & 0x3F];
        v11 -= 6;
        ++v10;
      }
      while ( v11 > -6 );
      v18 = (char *)v18 + 4;
      v1 = v15 + 3;
      v12 = v14-- == 1;
      v15 += 3;
    }
    while ( !v12 );
  }

  

 ; char byte_402138[]
.rdata:00402138     byte_402138     db 41h                  ; DATA XREF: sub_401160+DEr
.rdata:00402138                                             ; .data:00403018o
.rdata:00402139     aBcdefghijstuvw db ‘BCDEFGHIJSTUVWKLMNOPQRXYZabcdqrstuvwxefghijklmnopyz0123456789+/‘,0

  又找到了 这个 还有

  v1 = a1;
  v2 = strlen(a1) / 3 + (strlen(a1) % 3 != 0);
  v16 = malloc(4 * v2 + 1);
  memset(v16, 0, 4 * v2 + 1);
  if ( v2 > 0 )

  这差不多就能明白是base64加密,只是这个加密用的字符串和平时的不一样而已。所以这里最好返回加密后的字符串。

接下来的 一个函数是生成了一个16*16的矩阵。就是利用前面的假flag 生成的,

 

v12 = 256;
  while ( 1 )
  {
    v10 = *result;
    v3 = ((unsigned __int8)*result + result[(_DWORD)v8] + v3) % 256;
    *result++ = a1[v3];
    v11 = v12-- == 1;
    a1[v3] = v10;
    if ( v11 )
      break;
    v8 = (char *)(&v13 - a1);

  这里进行了256次。。。

所以我们可以进行动态调试,去抠出来,

 sub_401000(&v7, (int)&v9, strlen(&v9));
    sub_4010E0((int)&v7, (int)v3, strlen(v3));

  第一个生成的v7 个下面的用,如果抠的话,可以下断点在下面的函数,再

int __usercall [email protected]<eax>(int [email protected]<eax>, int a2, unsigned int a3)

  再根据这个 找到eax的值  扣出来就ok了   其实还有种简单的方法,我也看了大佬的做法,就是进od里面,在进入第二加密的函数地方,去把加密生成的*(_BYTE *)((v6 + *(_BYTE *)(v3 + result)) % 256 + result) 抠出来  这样更快 而且也不用逆第二加密前面的算法,这里就不多说了 ,有兴趣的可以去试试。。

  

  if ( a3 )
  {
    do
    {
      v3 = (v3 + 1) % 256;
      v6 = *(_BYTE *)(v3 + result);
      v4 = (*(_BYTE *)(v3 + result) + v4) % 256;
      *(_BYTE *)(v3 + result) = *(_BYTE *)(v4 + result);
      *(_BYTE *)(v4 + result) = v6;
      *(_BYTE *)(v5++ + a2) ^= *(_BYTE *)((v6 + *(_BYTE *)(v3 + result)) % 256 + result);
    }
    while ( v5 < a3 );
  }

  最后一个就加密 也就是第二个加密。直接 从内存扣出来 加密后的 再后再 base64解密就ok

这里就贴出大佬的代码,毕竟我一个菜鸡,代码能力差,写不出来:

     

key=[0x66, 0x32, 0xCA, 0xA0, 0xBF, 0x98, 0x2D, 0x76, 0xF1, 0x59, 0x2A, 0x4A, 0xF4, 0x30, 0xAD, 0xD2, 0x1D, 0x02, 0xD8, 0x23, 0x89, 0x5D, 0x83, 0x38, 0x09, 0xF2, 0x74, 0x65, 0x40, 0x19, 0xC6, 0xDD, 0x18, 0xD3, 0x8F, 0x6C, 0x8B, 0xC0, 0xC5, 0x54, 0x2E, 0x81, 0x10, 0xC4, 0x26, 0x56, 0x5F, 0x53, 0x80, 0x43, 0x27, 0x62, 0xEA, 0x3D, 0xE6, 0x00, 0xE7, 0xB7, 0x50, 0x94, 0x90, 0x4C, 0x3F, 0x9D, 0x07, 0xE0, 0xA3, 0x9C, 0x4E, 0x0F, 0x9F, 0xFE, 0x5B, 0x8E, 0xDE, 0x88, 0x72, 0x2F, 0xC1, 0x67, 0x31, 0x70, 0x8D, 0xFD, 0xBE, 0x64, 0xC3, 0xBD, 0x6B, 0x7A, 0xCF, 0x0C, 0x34, 0x1F, 0x6F, 0x01, 0xF0, 0x7C, 0x5E, 0xA4, 0x1E, 0x49, 0x8C, 0x75, 0x1C, 0xE3, 0x20, 0x48, 0x28, 0x79, 0xA5, 0x7F, 0xF5, 0xEC, 0x4F, 0x78, 0x58, 0x11, 0xF7, 0xCD, 0x91, 0x13, 0xFC, 0xB8, 0x2C, 0x04, 0xEE, 0xD5, 0x08, 0x44, 0xA9, 0xE1, 0xB1, 0x42, 0x84, 0x29, 0xA7, 0x47, 0x97, 0x7E, 0xE8, 0xB3, 0x60, 0x0B, 0xF9, 0x4B, 0x3C, 0x77, 0x17, 0x03, 0x82, 0x69, 0x87, 0xD4, 0x95, 0x1A, 0x33, 0x25, 0x6E, 0xCC, 0xD6, 0xBB, 0x99, 0xB0, 0x85, 0x41, 0xB2, 0x0D, 0xDB, 0x35, 0x3B, 0x5C, 0xF8, 0xED, 0x9E, 0xA6, 0x96, 0x39, 0x63, 0x0A, 0x1B, 0x93, 0x21, 0x46, 0x12, 0xD0, 0xB4, 0x22, 0x51, 0xC9, 0x61, 0xD1, 0x2B, 0xAA, 0x45, 0x06, 0x05, 0xCE, 0xFA, 0x92, 0x68, 0xAB, 0x36, 0xDA, 0xC8, 0xE2, 0x37, 0xD9, 0xA2, 0x5A, 0xD7, 0x6A, 0xB5, 0xFF, 0xE9, 0xBA, 0x52, 0x15, 0xF6, 0xBC, 0x9A, 0xB6, 0xEF, 0x6D, 0xCB, 0x4D, 0xAE, 0xE4, 0xA1, 0xAC, 0xEB, 0x0E, 0x71, 0x7B, 0xF3, 0x24, 0xC2, 0xFB, 0x7D, 0x86, 0x55, 0xAF, 0x3A, 0xDF, 0x3E, 0x14, 0xB9, 0x9B, 0x16, 0xDC, 0x73, 0x57, 0xE5, 0xC7, 0x8A, 0xA8, 0x66, 0x6C, 0x61, 0x67, 0x7B, 0x74, 0x68, 0x69, 0x73, 0x5F, 0x69, 0x73, 0x5F, 0x6E, 0x6F, 0x74, 0x5F, 0x74, 0x68, 0x65, 0x5F, 0x66, 0x6C, 0x61, 0x67, 0x5F, 0x68, 0x61, 0x68, 0x61, 0x68, 0x61, 0x7D]
key2=[0x20, 0xC3, 0x1A, 0xAE, 0x97, 0x3C, 0x7A, 0x41, 0xDE, 0xF6, 0x78, 0x15, 0xCB, 0x4B, 0x4C, 0xDC, 0x26, 0x55, 0x8B, 0x55, 0xE5, 0xE9, 0x55, 0x75, 0x40, 0x3D, 0x82, 0x13, 0xA5, 0x60, 0x13, 0x3B, 0xF5, 0xD8, 0x19, 0x0E, 0x47, 0xCF, 0x5F, 0x5E, 0xDE, 0x9D, 0x14, 0xBD]
key3=[]
v3=0
v4=0
v6=0
s=""
for v3 in range(44):
  v3+=1
  v6=key[v3]
  v4=(v6+v4)%256
  key[v3]=key[v4]
  key[v4]=v6
  key3.append(key[(key[v3]+v6)%256])
for i in range(44):
  key2[i]^=key3[i]
for i in key2:
  s+=chr(i)
print s
作者:Kirin_say
链接:https://www.jianshu.com/p/7fdfe26f27a8
來源:简书
简书著作权归作者所有,任何形式的转载都请联系作者获得授权并注明出处。

  base64解密的:

#include<stdio.h>
#include<string.h>
int findchar(char *str,char c){
for(int i=0;str[i];i++)
  if(str[i]==c)
      return i;
return -1;
}

int main(){
char key[]="ABCDEFGHIJSTUVWKLMNOPQRXYZabcdqrstuvwxefghijklmnopyz0123456789+/";
char str[100];
char ans[100];
int temp[2];
memset(str,0,100);
memset(ans,0,100);
scanf("%s",str);
for(int i=0,j=0;str[i];i+=4,j+=3)
  {temp[0]=findchar(key,str[i]);
   temp[1]=findchar(key,str[i+1]);
   ans[j]=(temp[0]<<2&0xfc)|(temp[1]>>4&0x3);
   if(!str[i+2]||str[i+2]==‘=‘)
            break;
   else{
      temp[0]=findchar(key,str[i+2]);
      ans[j+1]=(temp[1]<<4&0xf0)|(temp[0]>>2&0xf);  
       }
   if(!str[i+3]||str[i+3]==‘=‘)
            break;
    else{
       temp[1]=findchar(key,str[i+3]);
       ans[j+2]=(temp[0]<<6&0xc0)|(temp[1]&0x3f);
         }
    }
puts(ans);
}

作者:Kirin_say
链接:https://www.jianshu.com/p/7fdfe26f27a8
來源:简书
简书著作权归作者所有,任何形式的转载都请联系作者获得授权并注明出处。

 2:misc1

技术分享图片

 

  直接修改图片 高度,然后再binwalk 发现有rar 直接解密 发现有个数据包,就分析,里面就发现一串奇怪的文字

 

技术分享图片

 

 

技术分享图片

 

直接base64解密就出来了  我也是导出http才找到,在直接分析的时候找不到,有大佬在的  ,希望能给我指点下。

3:misc2

题目都给出crc 所以直接撸,刚刚开始的时候实在太懒,脚本都不想写,所以就猜啊猜 是那个组合那个,所以  浪费一堆时间,

技术分享图片

 

就是这些,然后就直接上脚本,再爆破字典就OK

 

f1=open("1.txt")
f2=open("2.txt")
f3=open("3.txt")
c1=f1.readlines()
c2=f2.readlines()
c3=f3.readlines()
f4=open("4.txt","a+")
s=""
for line in c1:
	for line1 in c2:
		for line2 in c3:
			line=line.rstrip("
")
			line1=line1.rstrip("
")
			line2=line2.rstrip("
")
			s=line+line1+line2+"
"
			print s
			f4.write(s)
			s=""


f1.close()
f2.close()
f3.close()

 

  爆破密码就出来了,然后就发现一串

 

 

00111100011010010110110101100111001000000111001101110010011000110011110100100010011001000110000101110100011000010011101001101001011011010110000101100111011001010010111101110000011011100110011100111011011000100110000101110011011001010011011000110100001011000110100101010110010000100100111101010010011101110011000001001011010001110110011101101111010000010100000101000001010000010100111001010011010101010110100001000101010101010110011101000001010000010100000101010010011001110100000101000001010000010100010101011001010000110100000101001001010000010100000101000001010000010100100100110111010010000011011101100010010000010100000101000001010001100101001000110000011011000100010101010001010101100101001000110100011011100100111100110011011001000101000101011001001101010110001001001110011110000100001001000001010100010101010100101011010100010010101100110001001011110101101001001111010101010100011101001001011001110100100001101100011100010100111000110010011001010111000101110100011011110101100101101100011010100110011001010001011001100111010101000111011010010101000100101111010100000111001000111001001010110010111101100011011101100011010001010000001011110011010100110110001100000011100100101111010000010101000001100111010011110110100001000001010100010100001001001001010101010100011001000001010100110100001001000001010100010100010101100111010100110100010101000010010000010100010101101000010100010101010101000010010010010100010101010000011010100011011100111000010001110011100101100110010110000011000100111001011010100110111001111001010011110101100001000100001101010110111101101110011101100011010000110011010001000110100000110111001011110011011101000111010100000110101101001100010011000110111001101101011101100101001101100101011000110110111001111001011011110110111101000101010000010101001101000110010000100101000101000101011001110101000101000101010000100100100101000101011010000100000101010001010000100100100101010101010001100100000101010011010000100100000101010001010001010110011101010010010011110100000100111001011011010100010001001010011001100111010001110001001110000111011101001000011001100011000000111001010100000100101001110101011110000010111101101100001101110110100001010000011011010100010000111000010001000111001001010100001101010101000101010110010000110101000101001010010000110110011101101111010000110101000101001001010000110100000101101011010000110100000101100111010010100100000101101011010010110100001101100111010010100100000101100111010010010100001101010001010010010101100001000001001101010110101101000100001101010110001001001101010001110101000100101111011101010011010101101111011110010101010000110000001110000110110101000100001011110101100101010000010011000010111101011000011101010101010001010000001011110100010101100100010101110111000001000101011001110100100101000011010100010100100101000011010000010110101101000011010100010110111101001011010000010110101101000011010000010110011101001010010000010110011101001001010000110101000101001010010000110110011101101011010000010010111101101011010010000011000101100001010100000111000101110011001110010101011101000100010010110011010001011000010001000100110001101000011001100101101000110000010101100100001101010001010010100100001101100111011011110100001101010001010010010100001101000001011010110100001101000001011001110100101001000001011010110100101101000011011001110100101001000001011001110100100101000011010100010100100100101111010011010101001101000010001101110100111101010010011110000111010100110011011001000100010000110000011100010110010001010000010101000111011000110110010110100111001001000101011001110101000101000101010000100100100101000101011010000100000101010001010000100100100101010101010001100100000101010011010000100100000101010001010001010110011101010011010001010100001001000001010001010110100001010001011000010100000101100110011110010100100000110111010110000100100001011010011001100011010101001001011000100011001001010100011101010011001101000101010100000011100101110110001110010110010100101011011110100010111101101000010011000111100101110011010100110100101001001001010100010100010101000001010100110100011001000010010100010100010101100111010100010100010101000010010010010100010101101000010000010101000101000010010010010101010101000110010000010101001101000010010000110011010001001000010011010110011100101011011101100110000100110001011110010010111100110010001100100111011101101011001101110101000001100001010010100101010001100110011100010101000001110110001100010100010100101111011000100100100101101001010100010101010101001010010010010100010101000010010000010101001101000010010010010101000101000101010000010101001101000110010000100101000101000101011001110101000101000101010000100100100101000101011010000100000101010011010000100111001001111001011001010011001001001000001100100011011001110111010110100100000101010011001101010110011000111001011110100011010101001101001101010011100001101111010010110111100001001001010001010110100001000001010100010100001001001001010101010100011001000001010100110100001001000001010100010100010101100111010100110100010101000010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  http://www.5ixuexiwang.com/str/from-binary.php 这个网站可以直接二进制转ascii

然后就简单了  再base64转图片,发现二维码,

技术分享图片

扫就出来。

 

这些比赛有很大的收获,也明白了base64算法和rc4。

 

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