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Let us assume I have declared the variable 'i' of certain datatype (might be int, char, float or double) ...

NOTE: Simply consider that 'i' is declared and dont bother if it is an int or char or float or double datatype. Since I want a generic solution I am simply mentioning that variable 'i' can be of any one of the datatypes namely int, char, float or double.

Now can I find the size of the variable 'i' without sizeof operator?

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5  
why don't you want to use sizeof() ? – chrmue Sep 8 '09 at 11:12
2  
Found a similar question. stackoverflow.com/questions/1219199/… – rahul Sep 8 '09 at 11:15
    
A similar question is here, by the way: stackoverflow.com/questions/1219199/… – Dunya Degirmenci Sep 8 '09 at 11:16
    
Meh, ninja'd... – Dunya Degirmenci Sep 8 '09 at 11:17
1  
This sounds like an interview question..... – hopia Apr 6 '11 at 16:58

10 Answers 10

up vote 19 down vote accepted

You can use the following macro, taken from here:

#define sizeof_var( var ) ((size_t)(&(var)+1)-(size_t)(&(var)))

The idea is to use pointer arithmetic ((&(var)+1)) to determine the offset of the variable, and then subtract the original address of the variable, yielding its size. For example, if you have an int16_t i variable located at 0x0002, you would be subtracting 0x0002 from 0x0006, thereby obtaining 0x4 or 4 bytes.

However, I don't really see a valid reason not to use sizeof, but I'm sure you must have one.

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Darn ... trying it and getting the syntax right for my first C code in ages made me slow ;-) – Joachim Sauer Sep 8 '09 at 11:17
    
I think this logic would be helpful to find the size of a datatype but how about a variable of unknown datatype – codingfreak Sep 8 '09 at 11:23
    
What do you mean by unknown, how would you declare it ? If you have a variable like, say, int i, sizeof_var(i) will give you its size. – João Silva Sep 8 '09 at 11:26
    
Let us suppose you have simply forgot for what datatype you have declared the variable 'i'. What I mean to say is irrespective of the datatype to which it has been declared we should still be able to find the size of the variable 'i' – codingfreak Sep 8 '09 at 11:33
    
Responding to your edit, the macro works independently of the type of var. You can have either char i or long i, and sizeof_var(i) will return the correct result on both counts. – João Silva Sep 8 '09 at 11:53

It's been ages since I wrote any C code and I was never good at it, but this looks about right:

int i = 1;
size_t size = (char*)(&i+1)-(char*)(&i);
printf("%zi\n", size);

I'm sure someone can tell me plenty of reasons why this is wrong, but it prints a reasonable value for me.

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1  
The only thing you need to fix is change void * to char * - you're not supposed to do pointer arithmetic with void *. – caf Sep 8 '09 at 11:25
1  
I checked, it's OK with padding sizeof does the same and includes padding in the size of var. Hence it woks exactly the same. – kriss Sep 8 '09 at 11:46
3  
Using (char*) instead of (void*) would avoid compiler warnings about void* arithmetic and does give the same result because a char has always size 1. – hirschhornsalz Sep 8 '09 at 11:57
2  
This will work on processors that have byte addressable memory. I am not sure whether this would work on the DSP56300 series processors where char and int are both stored in individual 24 bit wide memory locations. The processor does not have byte addressing so the difference between the pointer values for successive chars or ints will both be 1. – ʎəʞo uɐɪ Sep 8 '09 at 13:44
1  
@Ian: irrelevant. sizeof is defined in terms of char units, so the result will be correct. If your implementation uses 24 bit chars but artificially restricts them to 8-bit range, then it's not C. C mandates that char does not have padding bits. – R.. Oct 6 '10 at 7:20

Look up the documentation for the compiler.

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int *a, *b,c,d;/* one must remove the declaration of c from here*/
int c=10;
a=&c;
b=a;
a++;
d=(int)a-(int)b;
printf("size is %d",d);
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an accompanying explanation would be nice. – Kirk Woll Apr 6 '11 at 16:56
    
explanation will be nice. – katta Apr 27 '13 at 16:06

This works..

int main() {
    int a; //try changing this to char/double/float etc each time//
    char *p1, *p2;
    p1 = &a;
    p2 = (&a) + 1;
    printf("size of variable is:%d\n", p2 - p1);
}
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p2 - p1 should be (int)(p2 - p1) to match the format specifier %d – M.M Dec 15 '15 at 20:05

Try this,

#define sizeof_type( type )  ((size_t)((type*)1000 + 1 )-(size_t)((type*)1000))

For the following user-defined datatype,

struct x
{
    char c;
    int i;
};

sizeof_type(x)          = 8
(size_t)((x*)1000 + 1 ) = 1008
(size_t)((x*)1000)      = 1000
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#include<stdio.h>

#include<conio.h>

struct size1


  {
int a;
char b;
float c;
};

void main()
{
struct size1 *sptr=0;  //declared one pointer to struct and initialise it to zero//
sptr++;                 
printf("size:%d\n",*sptr);
getch();
}
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I am wondering if using an array would work better. since 2 locations in array are almost cirtainly contigious.

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This should give you the size of your variable

#define mySizeof(type) ((uint)((type *)0+1))
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This causes undefined behaviour (although so does the topvoted solution) – M.M Dec 15 '15 at 20:06

Program to find Size of the variable without using sizeof operator

#include<stdio.h>
int main()
  {
  int *p,*q;
  int no;
  p=&no;
   printf("Address at p=%u\n",p);
  q=((&no)+1);
  printf("Address at q=%u\n",q);
  printf("Size of int 'no': %d Bytes\n",(int)q-(int)p);

  char *cp,*cq;
    char ch;
  cp=&ch;
  printf("\nAddress at cp=%u\n",cp);
  cq=cp+1;
  printf("Address at cq=%u\n",cq);
  printf("Size of Char=%u Byte\n",(int)cq-(int)cp);

  float *fp,*fq;
  float f;
  fp=&f;
 printf("\nAddress at fp=%u\n",fp);
  fq=fp+1;
  printf("Address at fq=%u\n",fq);
  printf("Size of Float=%u Bytes\n",(int)fq-(int)fp);

  return 0;
}
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