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What is the purpose of the statement “(void)c;”?

class ArgString : public Arg::Base
{
public:
    ...
    bool CanConvertToInt() const
    {
        const char *cstr = mValue.c_str();
        char *result = 0;
        long d = strtol(cstr, &result, 10);
        (void) d; // what is the usage of this line?
        return result != cstr;
    }

private:
    std::string mValue;
};

Can someone tell me what the purpose of the following line is?

(void) d;

Thank you

// Update //

As some people pointed out, the purpose of the line is to suppress the compilation warning. To me, that is very strange. Because this is much severe warning

    warning C4996: 'sprintf': This function or variable may be unsafe. Consider using sprintf_s instead. To disable deprecation, use
_CRT_SECURE_NO_WARNINGS. See online help for details.

Why we ignore this big warning and ONLY address the smaller one.

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marked as duplicate by Nim, therefromhere, dasblinkenlight, Loki Astari, mkb Dec 13 '11 at 17:02

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I dont know what the purpose is, but it IMHO the statement doesnt produce any effects ;-) –  emesx Dec 13 '11 at 16:59
    
Note this is code you have control over, please comment the answer after it. –  111111 Dec 13 '11 at 16:59
    
The warning about sprintf is issued by a Microsoft compiler. sprintf is a standard C function, and it can be used safely if you're careful. But that's a separate question; there was no sprintf call in the code you showed us. –  Keith Thompson Dec 13 '11 at 17:14
    
The warning about sprintf just appeared within the last couple of years, the code in question was probably older than that and did not generate a warning until you upgraded your compiler. It's a good idea to eliminate all warnings so that when a new one appears, you'll notice it and take action. –  Mark Ransom Dec 13 '11 at 17:39
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4 Answers

up vote 4 down vote accepted

The pattern (void)d is typically done to tell a code analyzer that you are explicitly ignoring the return value of a function. Many C analyzers consider it an error to ignore a return value as it could result in ignoring a failure. This is a way of saying "I meant to do that"

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The only time I've seen something like that is to prevent a warning about an unused variable. Casting something to (void) does absolutely nothing, but it counts as a usage of the variable.

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Right it doesnt even invoke a operator void even tho gcc does so incorrectly –  Johannes Schaub - litb Dec 13 '11 at 17:19
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It avoids an unused variable warning. I've seen this used in assert macros so that in release you don't get unused variable warnings. It evaluates to a no-op.

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There are a few common cases where developers feel like casting a variable of type T to void, among them are the following:

  • (void)x; get rid of compilation warnings saying that a variable is unused
  • (void)0; a statement that often is used to express a "NOP" (ie. No Operation)
  • (void)func(); tell future developers (or yourself) reading your code that you know that func returns a value, but that you are ignoring. (mostly old school C-programmers care about this)

A sample use of (void)0 found in gcc's 'assert.h', as you can tell if e evaluates to true, (void)0 will be "returned" (ie. a NOP)

#define assert(e)  \
    ((void) ((e) ? 0 : __assert (#e, __FILE__, __LINE__)))
#define __assert(e, file, line) \
    ((void)printf ("%s:%u: failed assertion `%s'\n", file, line, e), abort())
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