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hi all i just wanted to know whether we can declare variable name as structure name.

for example

typedef struct
{
  char c;
}t;

then in some function can i use

fun()
{
  t t;
}

is this valid? if so then how compiler differentiate between them?

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You can always compile it... I think the compiler will be able to differentiate, since you can tell when a variable/object is being declared vs being read/written/etc to. –  muntoo Nov 11 '10 at 4:30
1  
@muntoo, you can compile it, but that doesn't tell you whether it's valid, just whether it works in your compiler. –  Matthew Flaschen Nov 11 '10 at 4:33
    
Of course, if a psychopath was the next guy who looked at your code... –  muntoo Nov 11 '10 at 4:41
    
Google for lvalue and rvalue. –  leppie Nov 11 '10 at 5:03

5 Answers 5

Yes, it is valid. If you do that, then the structure type is hidden in the enclosing scope and t refers only to the declared variable.

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Yes, but why would you want to? If you want bugs and errors to thrive in your project, then go right ahead and name variables after types.

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2  
Bravo, just because something is valid, that doesn't make it a good idea. –  paxdiablo Nov 11 '10 at 4:54

fun() { t t; }

is this valid ?

No it is not. Return type of fun() is missing and implicit int return type is deprecated.

However void fun(){ t t ;} is syntactically valid.

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parser first gets the data type and maintains a different table and later part as the variable name. So it works absolutely.

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yes because each thing lives in a different place in the compilers understanding.

t t;

The compiler is expecting a type when it encounters the first t and it has a type called t.

Edit: To address comments.

I'm not talking about scope.

But since I've not written a compiler (only interpreters) I don't know the term. The compiler is expecting a token at the first t to be a type, it also knows what type have been declared up to that point. Since it see a name that refers to a type it's happy. Whereas if a token that wasn't a type was found there then it would rightly signal an error.

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-1 because your are giving the wrong reason. typedef and variable names are in the same scope. –  Jens Gustedt Nov 11 '10 at 8:43
    
The terminology is that they are different types of token. –  Praxeolitic Sep 4 at 4:12

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