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I'm trying to call a library function to test something while debugging with GDB. (dlinfo())

It takes a reference to an int and the function writes the result to that address.

I tried calling malloc so I could pass a reference into the function, but when I try and see if malloc worked, I can never access the memory.

(gdb) p (int *) malloc(sizeof(int)) 
$8 = (int *) 0xffffffffa9e83f28
(gdb) p * (int *)0xffffffffa9e83f28 = 5                     
Cannot access memory at address 0xffffffffa9e83f28

Am I doing something wrong?

Thanks in advance

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  • I guess the problem is that it doesn't know the prototype of malloc, therefore it will miscast the address Dec 22, 2017 at 21:13
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    Same principle. GDB thinks the return value of malloc is an int and not void *. But the rest of the 64-bit pointer is lost when GDB coerces it to a 32-bit int. It is then sign-extended to 64-bits which results in a pointer that is in kernel space. Dec 22, 2017 at 21:17
  • ahhh ok, one sec i'll see if I can fix it, thanks. I thought the repeating FFF's were because I had a lot of free RAM, but I see it's half of them now Dec 22, 2017 at 21:20
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    I fixed it, thanks. Here's the steps I used. (gdb) set $malloc = (void*(*)(long long)) malloc (gdb) set $mem = $malloc(4) (gdb) p $mem $1 = (void *) 0x5591420469b0 (gdb) p * (int *)0x5591420469b0 = 5 $2 = 5 (gdb) Dec 22, 2017 at 21:21

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