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What will be the output of the following code?

#include<stdio.h>
int main()
{
    int a[4]={4096,2,3,4};
    char *p;
    p=a;
    printf("\n %d",(int)*(++p));
    return 0;
}

sizeof int = sizeof(void*) = 4 bytes

According to me the output should be 16 on a little endian machine and 0 on a big endian machine. Am I right?

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it should be a compiler warning....:P –  Jon Nov 22 '10 at 12:58
    
Why would you think those are going to be the output? –  Pablo Santa Cruz Nov 22 '10 at 12:58
    
On this machine, what is the size of an int? (see stackoverflow.com/questions/589575/c-size-of-int-long-etc) Did you mean to cast the input to printf to an int first? Using (int)*(++p) or *((int *)++p)? –  sje397 Nov 22 '10 at 12:59
    
Sizeof int is 4 bytes and sizeof void* is also 4 bytes –  rodrigues Nov 22 '10 at 13:01
    
@sje397: technically I think it doesn't matter, at least with CHAR_BIT==8. A char varargs argument is promoted either to int or to unsigned int (6.5.2.2/7), and it's valid to read it as either, since the values "16" and "0" are representable in either (7.15.1.1/2). Might as well put it in, though... –  Steve Jessop Nov 22 '10 at 13:16

2 Answers 2

up vote 1 down vote accepted

4096 is 0x1000, so (once you get it to compile) you'd expect 16 with a little-endian representation, and 0 with a big-endian representation unless int is 24 bits wide (that would give 16).

All this assuming CHAR_BIT == 8, and no funny-business with padding bits. The edit with sizeof(int) == 4 also rules out the 24 bit int under those assumptions.

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4096 (hex 0x1000) will be represented in memory (assuming 8-bit bytes, which is quite common nowadays) as either:

[0x00, 0x00, 0x10, 0x00] (big-endian)

or

[0x00, 0x10, 0x00, 0x00] (little-endian)

Since you're printing it out using %d, which expects integers, but passing a dereferenced character pointer value (i.e., a char) and incrementing the pointer before dereferencing it, you will print either 0x00 or 0x10, which is 16 in decimal. You will probably need to add some cast to allow the p = a statement, since you're mixing types rather freely.

So yes, I think you're right.

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You forgot middle-endian, [0x00, 0x00, 0x00, 0x10] –  Christoffer Nov 22 '10 at 13:17
    
@Christoffer: You also forgot another middle-endian: [0x10, 0x00, 0x00, 0x00] :-) –  Vovanium Nov 22 '10 at 15:04

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