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I am unable to access member of a structure

The code is as follows :

int main()
{

      typedef struct tempA
       {
         int a;
        }tempa;


      typedef struct tempB
      {
        tempa **tA;
       }tempb;

     tempb.(*tA)->a =5;
     printf("\n Value of a : %d",tempb.(*tA)->a);

}

I tried to access it using tempb.(*tA)->a; but I am getting syntax error:

error: expected identifier before ‘(’ token 

What is the correct syntax to access int a?

Thanks in advance

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Your code contains multiple errors, including: missing parameter list for main(), missing return (unless you're using a C99 compiler), and more importantly, there is no variable named tempb. Please post code that actually compiles, unless the question is "why does this code not compile". –  DES Mar 15 '11 at 16:56
    
I read too quickly, the question is indeed "why does this not compile" - but you are still trying to access a variable which does not exist. –  DES Mar 15 '11 at 17:03

1 Answer 1

The right syntax is (*tempb.tA)->a. You want to dereference tempb.tA to get a pointer to a tempA, then dereference that pointer to access the a member.

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Thank you It worked –  Totie Mar 15 '11 at 15:50
    
Hi, What if I try to access te same thing with a pointer to tempb What will be the syntax tempb *tB tB->(*tA)->a I tried but its not working –  Totie Mar 15 '11 at 15:58
    
Then it's (*tempb->tA)->a - you dereference tempb to access the tA member, and from there on it's the same as before. If you prefer, you could also write that as (*(tempb->tA))->a, but since the dereferencing operator * is applied after . and ->, it's not actually necessary. –  Michael Madsen Mar 15 '11 at 16:02
    
Thank you it helped will try to learn the concept Cheers :-) –  Totie Mar 15 '11 at 16:14

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