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I want these two print functions to do the same thing:

    unsigned int Arraye[] = {0xffff,0xefef,65,66,67,68,69,0};
            char Arrage[] = {0xffff,0xefef,65,66,67,68,69,0};
    printf("%s", (char*)(2+ Arraye));
    printf("%s", (char*)(2+ Arrage));

where Array is an unsigned int. Normally, I would change the type but, the problem is that most of the array is numbers, although the particular section should be printed as ASCII. Currently, the unsigned array prints as "A" and the char array prints as the desired "ABCDE".

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2  
Why does your "byte" contains 16 bits? – kennytm Apr 12 '10 at 7:34
    
I want 0xffff<<1 to be 0xfffe and its the canonical representation of my data – Mikhail Apr 12 '10 at 7:35
    
(unsigned int) 0xffff is 0x0000ffff in memory. C strings are null terminated, it won't give what you have expected. – J-16 SDiZ Apr 12 '10 at 7:42
1  
@Kenny, a byte is not 8 bits, it's defined in the standard as the size of the char types. And for @J16, you're assuming unsigned ints are 32 bit, never a portable assumption. – paxdiablo Apr 12 '10 at 7:43
2  
@Michael, not in the ISO C standard. A byte is as many bits as it takes to store the character. Standards tends to use the term octet for an 8-bit value. – paxdiablo Apr 12 '10 at 11:57
up vote 1 down vote accepted

This is how the unsigned int version will be arranged in memory, assuming 32-bit big endian integers.

00 00 ff ff 00 00 ef ef 00 00 00 41 00 00 00 42
00 00 00 43 00 00 00 44 00 00 00 45 00 00 00 00

This is how the char version will be arranged in memory, assuming 8-bit characters. Note that 0xffff does not fit in a char.

ff ef 41 42 43 44 45 00

So you can see, casting is not enough. You'll need to actually convert the data.

If you know that your system uses 32-bit wchar_t, you can use the l length modifier for printf.

printf("%ls", 2 + Arraye);

This is NOT portable. The alternative is to copy the unsigned int array into a char array by hand, something like this:

void print_istr(unsigned int const *s)
{
    unsigned int const *p;
    char *s2, *p2;
    for (p = s; *p; p++);
    s2 = xmalloc(p - s + 1);
    for (p = s, p2 = s2; *p2 = *p; p2++, p++);
    fputs(s2, stdout);
    free(s2);
}
share|improve this answer
    
Thanks for the clarification, I ended up doing something like this. – Mikhail Apr 12 '10 at 8:16
    
I suggested another solution because I do not like functions that allocate memory for temporaries. – Patrick Schlüter Jun 19 '10 at 19:49

As Dietrich said, a simple cast will not do, but you don't need a complicated conversion either. Simply loop over your array.

uint_t Arraye[] = {0xffff,0xefef,65,66,67,68,69,0};
  char Arrage[] = {0xffff,0xefef,65,66,67,68,69,0};

uint_t *p;
for(p = Arraye+2; p; p++)
  printf("%c", p);

printf("%s", (char*)(2+ Arrage));
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