How to overwrite an address with "\x00"

Ask Question

Asked 3 years, 2 months ago

Modified 3 years, 2 months ago

Viewed 464 times

I'm trying to overwrite an address with buffer overflow.

The original address is 0x7fffffffddf0 and I want to overwrite this address and call the function which has an address of 0x400577.

However, if I give an input as "A x *n*" + "\x77\x05\x40\x00\x00\x00",

the address becomes 7fff00400577, instead of 000000400577.

It seems that \x00 is ignored.

I know that \x00 means NULL, but how can I write with \x00 in this case?

asked Jun 9, 2019 at 11:53

yoon

9652 gold badges9 silver badges22 bronze badges

2

Typically this is because the NUL byte is the end-of-string mark in C and programs that copy strings often stop at the first NUL byte.
– fuz
Jun 9, 2019 at 11:55
Yes, but the program says that 0x00007fff00400577 isn't avaiable. 0x00007fff00400577 in ?? () I want to just call the function whose address is 0x0000000000400577. Is there any way?
– yoon
Jun 9, 2019 at 11:57
1

Oh wait, try adding four more NUL bytes to overwrite the high four bytes of the return address.
– fuz
Jun 9, 2019 at 12:10
More than \x77\x05\x40\x00\x00\x00? Like \x77\x05\x40\x00\x00\x00\x00\x00\x00\x00\x00?
– yoon
Jun 10, 2019 at 2:12
1

If you already do that, then indeed the issues is that whatever overflow you try to exploit stops copying your data at the first NUL byte; see how you write three NUL bytes but only one is copied over.
– fuz
Jun 10, 2019 at 2:17

| Show 2 more comments

0 Your Answer

Name

Required, but never shown

Post as a guest

Name

Required, but never shown

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy