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marked as duplicate by Greg Hewgill, Oliver Charlesworth, Charles Bailey, Omnifarious, ChrisF Jan 23 '11 at 20:08

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4 Answers 4

Apparently I was wrong in my initial cut at an answer. They are roughly equivalent. And while compound type names like long long or void * can use functional syntax directly (i.e. long long(val) doesn't work), using typedef can get around this issue.

Both cast notations are very bad and should be avoided. For example:

const char c = 'a';
void *fred = (void *)(&c);

works, and it shouldn't.

Both the C-style cast notation will sometimes behave like static_cast, sometimes like const_cast, sometimes like reinterpret_cast, or even a combination of the two depending on the exact situation in which it's used. These semantics are rather complex and it's not always easy to tell exactly what's happening in any given situation.

I have gone to using mostly C++ static_cast<type>(val) style casts, and never use C-style casts. Based on my research for this question I'm going to also stop using function-style casts for anything. The question "C++ cast syntax styles" has an excellent answer (the accepted one) that details why.

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2  
This is completely false. class A { operator int() const; }; int test( A a ) { return int(a); } works perfectly even though int has no constructor. A function style cast with a single parameter has exactly the same effect as the equivalent C-style cast. –  Charles Bailey Jan 23 '11 at 19:19
    
@Charles Bailey - I read more and found out I was wrong. :-) I fixed my answer. –  Omnifarious Jan 23 '11 at 19:21
    
Functional style cast with pointers: typedef void * voidp; voidp fred = voidp(&c); –  Benjamin Lindley Jan 23 '11 at 19:24
    
@PigBen - Oh, you're right. sigh Fixed my answer yet again. I hate when people use typedefs to obscure the fact a type is a pointer. :-( –  Omnifarious Jan 23 '11 at 19:31
    
@Omnifarious: I do too. I was just showing a way the cast could be done. –  Benjamin Lindley Jan 23 '11 at 19:34

There's hardly any difference. Officially, the first tells the compiler that the value is an integer. This probably doesn't generate any extra code at all. The function call is an actual call that internally performs the other typecast. A smart compiler will optimize this, so they are actually the same.

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There is no difference. It is a matter of preference. These are old-style casts

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-1 This is false information. –  Omnifarious Jan 23 '11 at 19:09
    
@Charles Bailey - I made a mistake. It's too late now to fix it. I'm sorry @user384706. –  Omnifarious Jan 23 '11 at 19:23

It depends where you use it and how. Ie if you have values or pointers (or pointers of pointers).

With c++ you should read up on *_cast<> and use them instead.

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