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I've the following code:

void funcA(void*   pArg)
    STRUCTA abc;
    . // Some processing here

    if (pArg)
       (STRUCTA *)pArg = abc;

the problem is, this code is throwing up the following warning: warning: target of assignment not really an lvalue; this will be a hard error in the future

Without the cast, I'll get another warning that I'm trying to dereference a void pointer...

As warnings are being treated as errors, I can't use this code - But I really can't use any other pointer type than void* as the argument. Is there an elegant solution I'm missing ?

Is there any way to make this work ?

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4 Answers 4

up vote 4 down vote accepted

You are assigning a STRUCTA to a pointer to STRUCTA.

Rather do:

*((STRUCTA *)pArg) = abc;
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(STRUCTA *)pArg is of pointer type, while abc isn't. You need to dereference the pointer:

*(STRUCTA *)pArg = abc;
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Thanks for the succinct reply...but Benoit had answered 2 mins earlier with the exact same explanation, so had to mark him as the right answer ! – TCSGrad Dec 3 '10 at 9:54

Try this:

memcpy(pArg, &abc, sizeof(abc));

However you must make sure that pArg points to sizeof(abc) bytes of allocated memory.

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The accepted answer is much more elegant, and points out the mistake I'd been making... – TCSGrad Dec 3 '10 at 9:56
Still, memcpy is probably the way to go here. Anything that does *(..) = .. is not elegant in my eyes. – buddhabrot Dec 3 '10 at 13:35

Maybe pArg = (void *) abc; ?


pArg = (void *) (&abc); ?

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Casting a struct to a pointer makes no sense. – Marcelo Cantos Dec 3 '10 at 8:32
@Marcelo - you are absolutely right. I missed the fact that abc was not a pointer to begin with. – ysap Dec 3 '10 at 8:34
This is really a comment, not an answer to the question. Please use "add comment" to leave feedback for the author. – Conner Aug 18 '12 at 1:22

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