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I am trying to write a C program. I need the address of variable "recq". Can someone pls help me figure that out?

typedef struct {  
    int recq;  
} dd;  


struct test {  
    dd a;  
};

main(){  
    struct test *mm;  
    mm=(struct test *) malloc (sizeof (struct test));    
    ss=&(mm->a.recq);    
    printf("%p",ss);    

}      
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closed as too localized by casperOne Jan 17 '13 at 14:50

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Other than a missing declaration of 'ss', the code you've provided will get the address of a member of a structure. Can you provide more detail on what isn't working for you? –  Andrew Edgecombe May 5 '11 at 6:21
    
Extermely sorry, was doing a very silly error. While making the last correction, I realised it. Its working now. The code pasted above in question works! :) Sorry again. –  Pkp May 5 '11 at 6:29

4 Answers 4

What you have looks good except you need to declare the ss variable:

int *ss;
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If I remember my C correctly, the pointer to the struct points to the first variable of the struct. So in this case the pointer to the struct and pointer to recq are the same.

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In my case actually its a nth variable in the structure. So I cannot follow your rule. –  Pkp May 5 '11 at 6:22
    
You can follow the rule still, you'll just have to add the size of all the variables declared before the variable you want. –  Byte56 May 5 '11 at 6:25

Your required program is,

#include<stdio.h>

typedef struct {
    int recq;  
} dd;  

struct test {  
    dd a;  
};

void main(void){
    struct test mm;
    printf("%p", &mm.a.recq);
} 
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First of all, you need to declare ss as "int * " , or use cast whatever the rest of your code is right, I think.

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