I know when using objdump -dr in my file call shows up in machine code as e8 00 00 00 00 because it has not yet been linked. But I need to find out what the 00 00 00 00 will turn into after the linker has done it's job. I know it should calculate the offset, but I'm a little confused about that.
As an example with the code below, after the linker part is done, how should the e8 00 00 00 00 be? And how do I get to that answer?
I'm testing out with this sample code: (I'm trying to call moo)
Disassembly of section .text:
0000000000000000 <foo>:
0: 55 push %rbp
1: 48 89 e5 mov %rsp,%rbp
4: 89 7d fc mov %edi,-0x4(%rbp)
7: 8b 45 fc mov -0x4(%rbp),%eax
a: 83 e8 0a sub $0xa,%eax
d: 5d pop %rbp
e: c3 retq
000000000000000f <moo>:
f: 55 push %rbp
10: 48 89 e5 mov %rsp,%rbp
13: 89 7d fc mov %edi,-0x4(%rbp)
16: b8 01 00 00 00 mov $0x1,%eax
1b: 5d pop %rbp
1c: c3 retq
000000000000001d <main>:
1d: 55 push %rbp
1e: 48 89 e5 mov %rsp,%rbp
21: 48 83 ec 10 sub $0x10,%rsp
25: c7 45 fc 8e 0c 00 00 movl $0xc8e,-0x4(%rbp)
2c: 8b 45 fc mov -0x4(%rbp),%eax
2f: 89 c7 mov %eax,%edi
31: e8 00 00 00 00 callq 36 <main+0x19>
32: R_X86_64_PC32 moo-0x4
36: 89 45 fc mov %eax,-0x4(%rbp)
39: b8 00 00 00 00 mov $0x0,%eax
3e: c9 leaveq
3f: c3 retq
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