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I came across an expression in C like

typeof((c) + 1) _tmp = c;

What exactly does this mean?

Thanks for the reply.

Just one doubt? What if the type of c is struct instead of the primitive types, then what will +1 do?

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gcc.gnu.org/onlinedocs/gcc/Typeof.html –  Goz Dec 14 '10 at 7:41
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How is c declared? –  SiegeX Dec 14 '10 at 7:44
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nice question :-) –  Anycorn Dec 14 '10 at 7:57
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really nice question! I learned something new today –  uʍop ǝpısdn Dec 14 '10 at 8:14
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@SiegeX - Probably as #define MACRO(..., c, ...) –  Chris Lutz Dec 14 '10 at 9:16

7 Answers 7

The typeof operator in plain C (not C++) is a GCC addition to the standard. It tells the compiler you want to use the type of the expression enclosed in parenthesis.

Using typeof as above, you can declare variables of types unknown to you or in that context, using another variable's type as reference. It can also be used for casting.

Edit: the + operation inside typeof has a different meaning. typeof((c) + 1) means "the type of c, or the type of 1, whichever would remain after promotion". Remember that, for example, chars are promoted to ints when used in operations involving ints, ints are promoted to floats, floats to doubles, etc.

Note that only the compiler can resolve this: typeof doesn't evaluate, it has no value, nothing happens at run-time.

The full description of typeof can be found here.

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@Santiago Lezica:what is the type of 1? Sorry I did not get that –  Cratylus Dec 14 '10 at 8:07
    
@user* hmm let's say that when you write 1 in your code, the compiler assumes that's an integer with value 1. The type of 1 is int. –  uʍop ǝpısdn Dec 14 '10 at 8:08
    
@Santiago Lezica:So it is compiler specific what is the type? –  Cratylus Dec 14 '10 at 8:24
    
@user* well, you can safely bet it'll be int mostly anywhere, but as I said, typeof is a GNU C Compiler (GCC) feature anyway, it's not standard in C. –  uʍop ǝpısdn Dec 14 '10 at 8:26
    
What if the type of c here is a struct, then what will + 1 do?? –  zombie Dec 14 '10 at 8:57

It is not standard C. C has no such thing as typeof (unless you are dealing with something user-defined).

typeof is normally a compiler extension (GCC compiler most likely). You can read about it here

http://gcc.gnu.org/onlinedocs/gcc/Typeof.html

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This really doesn't explain what the +1 is doing –  SiegeX Dec 14 '10 at 7:46
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@SiegeX: This also doesn't explain what = is doing and what ; is doing. When such a broad question as "what's it doing?" is asked, it is up to the person making the answer to decide what to say and what not to say. I decided that the above is sufficient. –  AndreyT Dec 14 '10 at 18:04
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congrats on your decision. However, I, and many others (look at other comments on other answers) felt an explanation of what the +1 was doing was in order as it is not intuitive within the scope of typeof. –  SiegeX Dec 14 '10 at 18:17

create var _tmp st _tmp is of type upcast (max) of c or int and set it to value of c.

eg

char c -> int _tmp // char(c) + 1 is int
float c -> float _tmp // float(c) + 1 is float
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What will +1 do? I understand the use of typeof, but fail to understand what will + 1 in typeof do –  zombie Dec 14 '10 at 7:44
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@zom force tmp to become int if c is "smaller" then int –  Anycorn Dec 14 '10 at 7:45
    
Where does the +1 come into play? –  SiegeX Dec 14 '10 at 7:46
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+1 brings the type int to the expression –  Stilgar Dec 14 '10 at 7:50
    
@Stilgar is that due to integer promotion? –  SiegeX Dec 14 '10 at 7:51

Compare the code,

typeof((c) + 1) _tmp = c;

with

typeof(c) _tmp = c;

typeof allows arguments of types or variables. Now consider c as,

  • struct { int a; int b }
  • a pointer to struct { int a; int b }
  • the actual text int.

As well as promoting charas per uʍop ǝpısdn, the macro protects against a struct assignment. So the following code will not compile,

struct { int a; int b } c;
typeof((c)+1) _tmp = c;

People may wish to forbid struct assignments for efficiency and code size reasons, especially with-in a generic macro.

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In addition to the other answer, the + here is quite subtle. It allows for c to be either an expression or a type.

  • If it is an expression then, as said, c is promoted to int (at least) and the type of the whole expression has at least integer rank of int.
  • If it is a type expression the parenthesis surrounding c make it a cast of the value +1. So then the resulting type is just c.

For both kinds of acrobatic it is important that c is of arithmetic type and it is also to note that this trick here might loose the signedness of c. So this use of the typeof extension is not so useful as it might look like. In most cases using uintmax_t or intmax_t would be sufficient.

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Typeof returns a type, and is evaluated at compile time.

The whole statement means declare a variable tmp with the same type as c (usually).

It might declare a related or different type, since the type of c+1 can be different to c. (this is more likely in c++).

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Even in C, if c is char or short and int is bigger then the type of the expression c+1 will by int. If c is a larger integral type or is a float or double, then the type of the expression is the type of c. It doesn't require C++ to get some confusion about types... –  RBerteig Dec 14 '10 at 8:25
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What if the type of c here is a struct, then what will + 1 do?? –  zombie Dec 14 '10 at 8:53

In my opinion, only for pointer, typeof((c) + 1) = typeof(c); so this maybe assure the passing parameter is pointer

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