蓝桥杯付费CT--逆向
题目:RC4
先查壳,无壳,并且是32位:
用32位的ida打开,直接定位到main函数:
重点关注sub_401005函数,这个应该就是加密函数无疑:
典型的RC4加密无疑,这里有两种方法进行逆向,第一种:可以在main函数中第52行打上断点,运行到这里后直接查看内存中的V5,即位flag。第二种:将需要的信息提取出来key=gamelab@,使用脚本进行解密:
第一种:
第二种:
#RC4加密
def rc4(key, ciphertext):
# 初始化S盒
sbox = list(range(256))
j = 0
for i in range(256):
j = (j + sbox[i] + key[i % len(key)]) % 256
sbox[i], sbox[j] = sbox[j], sbox[i]
# 生成密钥流
i = 0
j = 0
keystream = []
for _ in range(len(ciphertext)):
i = (i + 1) % 256
j = (j + sbox[i]) % 256
sbox[i], sbox[j] = sbox[j], sbox[i]
k = sbox[(sbox[i] + sbox[j]) % 256]
keystream.append(k)
# print(keystream)
# 解密密文
plaintext = []
for i in range(len(ciphertext)):
m = ciphertext[i] ^ keystream[i]
plaintext.append(m)
print(plaintext)
# 将明文转换为字符串
return ''.join([chr(p) for p in plaintext])
# 测试
key = b"gamelab@"
ciphertext =[0xB6,0x42,0xB7,0xFC,0xF0,0xA2,0x5E,0xA9,0x3D,0x29,0x36,0x1F,0x54,0x29,
0x72,0xA8,0x63,0x32,0xF2,0x44,0x8B,0x85,0xEC,0xD,0xAD,0x3F,0x93,0xA3,0x92,
0x74,0x81,0x65,0x69,0xEC,0xE4,0x39,0x85,0xA9,0xCA,0xAF,0xB2,0xC6]
# for i in ciphertext:
# print(chr(i),end="")
plaintext = rc4(key, ciphertext)
print(plaintext)
#flag{12601b2b-2f1e-468a-ae43-92391ff76ef3}
- 两个flag一样,说明正确。
题目:happytime
同样的流程,查壳无,64位的.elf程序,使用ida打开,直接进入main函数:
printf输出提示信息Let’s have a drink,pay your answer(flag):,read在键盘读取flag输入,重要的关键函数是cry加密函数,接受v5和输入的flag,这里的11应该是flag被分割成了11组,最后一个循环比较加密后的flag和V6,刚好和上面v6数组对应:
根据函数的特征,可以判定这是XXTEA加密无疑,找到其中的DELTA,密文(main函数中的v6),和key(前面main函数的V5),即可编写脚本解密(输出的时候注意大小端序):
#include <stdbool.h>
#include <stdio.h>
#define MX (((z >> 5) ^ (y << 2)) + ((y >> 3) ^ (z << 4)) ^ (sum ^ y) + (k[(p & 3) ^ e] ^ z))
bool btea(unsigned int *v, int n, unsigned int *k)
{
unsigned int z = v[n - 1], y = v[0], sum = 0, e, DELTA = 0x61C88647;
unsigned int p, q;
if (n > 1)
{ /* enCoding Part */
q = 415 / n + 114;
while (q-- > 0)
{
sum += DELTA;
e = (sum >> 2) & 3;
for (p = 0; p < (n - 1); p++)
{
y = v[p + 1];
z = v[p] += MX;
}
y = v[0];
z = v[n - 1] += MX;
}
return 0;
}
else if (n < -1)
{ /* Decoding Part */
n = -n;
q = 415 / n + 114;
sum = -q * DELTA;
while (sum != 0)
{
e = (sum >> 2) & 3;
for (p = n - 1; p > 0; p--)
{
z = v[p - 1];
y = v[p] -= MX;
}
z = v[n - 1];
y = v[0] -= MX;
sum += DELTA;
}
return 0;
}
return 1;
}
int main()
{
unsigned int v[11] = {0x480AC20C, 0xCE9037F2, 0x8C212018, 0xE92A18D, 0xA4035274, 0x2473AAB1, 0xA9EFDB58, 0xA52CC5C8, 0xE432CB51, 0xD04E9223, 0x6FD07093}, key[4] = {0x79696755, 0x67346F6C, 0x69231231, 0x5F674231};
int n = 11; // n为要加密的数据个数
btea(v, -n, key); // 取正为加密,取负为解密
char *p = (char *)v;
for (int i = 0; i < 44; i++)
{
printf("%c", *p);
p++;
}
return 0;
}
//flag{efccf8f0-0c97-12ec-82e0-0c9d9242e335}
- 最后输入验证flag成功!!!
总结:
- 蓝桥杯CTF(付费CTF),逆向题难度签到题难度,题目质量。。。。,也难怪圈。