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.

Is it possible to pass structure by parameter ?

Is it compatible with the C abi ?

[edit]

Basically, I would like to have a C++ POD which would contain two members (the structure would be a fat pointer, with a pointer and an integer), and be able to pass this structure as function parameter in call instructions (even when calling C code).

I'm not using fat pointer now (the pointer and the integer are each in a different function parameter), and I would like to know if it's possible before starting a pretty big refactoring !

share|improve this question
    
Please elaborate. What have you tried? Can you include some code? –  Simon Germain Oct 6 '12 at 1:25
    
@SimonGermain I have add some context about my use case. There isn't code for now. –  Maël Nison Oct 6 '12 at 1:55

2 Answers 2

Absolutely, you can. Here's an example:

struct MyStruct_t {
    char *charPointer;
    int number;
};

void myFunction(MyStruct_t myStructAsParam) {

    printf("String: %s, Number: %i", myStructAsParam.charPointer, myStructAsParam.number);
    // Your stuff here.
}
share|improve this answer
    
Your myStructAsParam is a pointer, but you are using the '.' operator, what's the correct thing ? To be clear, I'm looking for passing myStructAsParam as a value, not a pointer (codepad.org/H4Az2uKK). –  Maël Nison Oct 6 '12 at 2:07
    
Oops, force of habit :P –  Simon Germain Oct 6 '12 at 2:09

You can do this.

You can figure out what the LLVM code is for sample C by copying and pasting the C code into LLVM's online demo at http://llvm.org/demo/index.cgi.

If you copy and paste the code at codepad.org in, you'll see that LLVM generates the following for myFunction:

define void @_Z10myFunction10MyStruct_t(i8* %myStructAsParam.coerce0, i32     %myStructAsParam.coerce1) nounwind uwtable {
  %1 = tail call i32 (i8*, ...)* @printf(i8* getelementptr inbounds ([23 x i8]* @.str, i64 0, i64 0), i8* %myStructAsParam.coerce0, i32 %myStructAsParam.coerce1)
  ret void
}

Of course, if you look at the call you'll notice that no copy is being made. It's up to the calling function to do that. If we write a small C function:

void myCallingFunction(MyStruct_t *foobar)
{
  myFunction(*foobar);
}

We can see that the LLVM bitcode generated for myCallingFunction is:

define void @_Z17myCallingFunctionP10MyStruct_t(%struct.MyStruct_t* nocapture %foobar)   nounwind uwtable {
  %foobar.0 = getelementptr inbounds %struct.MyStruct_t* %foobar, i64 0, i32 0
  %tmp = load i8** %foobar.0, align 8
  %foobar.1 = getelementptr inbounds %struct.MyStruct_t* %foobar, i64 0, i32 1
  %tmp1 = load i32* %foobar.1, align 8
  %1 = tail call i32 (i8*, ...)* @printf(i8* getelementptr inbounds ([23 x i8]* @.str, i64 0, i64 0), i8* %tmp, i32 %tmp1) nounwind
  ret void
}

The calling function makes a copy of the struct, and then passes in the address of the copy.

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.