问题
(This question is specific to my machine's architecture and calling conventions, Windows x86_64)
I don't exactly remember where I had read this, or if I had recalled it correctly, but I had heard that, when a function should return some struct or object by value, it will either stuff it in rax (if the object can fit in the register width of 64 bits) or be passed a pointer to where the resulting object would be (I'm guessing allocated in the calling function's stack frame) in rcx, where it would do all the usual initialization, and then a mov rax, rcx for the return trip. That is, something like
extern some_struct create_it(); // implemented in assembly
would really have a secret parameter like
extern some_struct create_it(some_struct* secret_param_pointing_to_where_i_will_be);
Did my memory serve me right, or am I incorrect? How are large objects (i.e. wider than the register width) returned by value from functions?
回答1:
Here's a simple disassembling of a code exampling what you're saying
typedef struct
{
int b;
int c;
int d;
int e;
int f;
int g;
char x;
} A;
A foo(int b, int c)
{
A myA = {b, c, 5, 6, 7, 8, 10};
return myA;
}
int main()
{
A myA = foo(5,9);
return 0;
}
and here's the disassembly of the foo function, and the main function calling it
main:
push ebp
mov ebp, esp
and esp, 0FFFFFFF0h
sub esp, 30h
call ___main
lea eax, [esp+20] ; placing the addr of myA in eax
mov dword ptr [esp+8], 9 ; param passing
mov dword ptr [esp+4], 5 ; param passing
mov [esp], eax ; passing myA addr as a param
call _foo
mov eax, 0
leave
retn
foo:
push ebp
mov ebp, esp
sub esp, 20h
mov eax, [ebp+12]
mov [ebp-28], eax
mov eax, [ebp+16]
mov [ebp-24], eax
mov dword ptr [ebp-20], 5
mov dword ptr [ebp-16], 6
mov dword ptr [ebp-12], 7
mov dword ptr [ebp-8], 9
mov byte ptr [ebp-4], 0Ah
mov eax, [ebp+8]
mov edx, [ebp-28]
mov [eax], edx
mov edx, [ebp-24]
mov [eax+4], edx
mov edx, [ebp-20]
mov [eax+8], edx
mov edx, [ebp-16]
mov [eax+0Ch], edx
mov edx, [ebp-12]
mov [eax+10h], edx
mov edx, [ebp-8]
mov [eax+14h], edx
mov edx, [ebp-4]
mov [eax+18h], edx
mov eax, [ebp+8]
leave
retn
now let's go through what just happened, so when calling foo the paramaters were passed in the following way, 9 was at highest address, then 5 then the address the myA in main begins
lea eax, [esp+20] ; placing the addr of myA in eax
mov dword ptr [esp+8], 9 ; param passing
mov dword ptr [esp+4], 5 ; param passing
mov [esp], eax ; passing myA addr as a param
within foo there is some local myA which is stored on the stack frame, since the stack is going downwards, the lowest address of myA begins in [ebp - 28], the -28 offset could be caused by struct alignments so I'm guessing the size of the struct should be 28 bytes here and not 25 as expected. and as we can see in foo after the local myA of foo was created and filled with parameters and immediate values, it is copied and re-written to the address of myA passed from main ( this is the actual meaning of return by value )
mov eax, [ebp+8]
mov edx, [ebp-28]
[ebp + 8] is where the address of main::myA was stored ( memory address go upwards hence ebp + old ebp ( 4 bytes ) + return address ( 4 bytes )) at overall ebp + 8 to get to the first byte of main::myA, as said earlier foo::myA is stored within [ebp-28] as stack goes downwards
mov [eax], edx
place foo::myA.b in the address of the first data member of main::myA which is main::myA.b
mov edx, [ebp-24]
mov [eax+4], edx
place the value that resides in the address of foo::myA.c in edx, and place that value within the address of main::myA.b + 4 bytes which is main::myA.c
as you can see this process repeats itself through out the function
mov edx, [ebp-20]
mov [eax+8], edx
mov edx, [ebp-16]
mov [eax+0Ch], edx
mov edx, [ebp-12]
mov [eax+10h], edx
mov edx, [ebp-8]
mov [eax+14h], edx
mov edx, [ebp-4]
mov [eax+18h], edx
mov eax, [ebp+8]
which basically proves that when returning a struct by val, that could not be placed in as a param, what happens is that the address of where the return value should reside in is passed as a param to the function and within the function being called the values of the returned struct are copied into the address passed as a parameter...
hope this exampled helped you visualize what happens under the hood a little bit better :)
EDIT
I hope that you've noticed that my example was using 32 bit assembler and I KNOW you've asked regarding x86-64, but I'm currently unable to disassemble code on a 64 bit machine so I hope you take my word on it that the concept is exactly the same both for 64 bit and 32 bit, and that the calling convention is nearly the same
回答2:
That is exactly correct. The caller passes an extra argument which is the address of the return value. Normally it will be on the caller's stack frame but there are no guarantees.
The precise mechanics are specified by the platform ABI, but this mechanism is very common.
Various commentators have left useful links with documentation for calling conventions, so I'll hoist some of them into this answer:
Wikipedia article on x86 calling conventions
Agner Fog's collection of optimization resources, including a summary of calling conventions (Direct link to 57-page PDF document.)
Microsoft Developer Network (MSDN) documentation on calling conventions.
StackOverflow x86 tag wiki has lots of useful links.
来源:https://stackoverflow.com/questions/39068492/c-c-returning-struct-by-value-under-the-hood