Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I just recently moved to the UNIX platform and currently doing research on operating systems. Right now, I am particularly interested at the design/implementation of XNU and currently on the topic of processes and memory.

I have this code snippet which allows my executable to obtain a task port from another process

int retValTask = task_for_pid(mach_task_self(), pid, &task);
if (retValTask != KERN_SUCCESS || !MACH_PORT_VALID(task)) {
    printf("Error while getting port, check if root or valid pid");
}
...
int retValVmRead = mach_vm_read(task, (vm_address_t)0x100000000, sizeof(uint32_t), (vm_offset_t *)&magic, &sz);

I am aware the Mac OSX 10.8.2 has ASLR, so the target process that I run is invoked via gdb.

(gdb) start
Breakpoint 1 at 0x100000ed8
Starting program: /private/tmp/test 
Reading symbols for shared libraries +............................. done

Breakpoint 1, 0x0000000100000ed8 in main ()

I can also verify inside GDB that the address 0x100000000 contains Mach-O's magic number.

(gdb) x/x 0x100000000
0x100000000 <_mh_execute_header>:   0xfeedfacf
(gdb)

However, when my program tries to read the memory of the target process, it just returns random values, not the magic number that I am expecting (it's random).

 2157 -> 1103 [0 - (os/kern) successful]
 0x0619F000 

2157 is the target PID, 1103 is the task port along with the result from mach_error_string. Also I tried the vm_read function and still the same behavior.

share|improve this question

1 Answer 1

Nvm, found the problem. The magic variable should be treated as a pointer and not the actual memory cell where the data is copied.

pointer_t magic;
...
int magicValue = (uint32_t) *((int *)(magic));
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.