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I have a basic question in C.

I need to print the contents of a char pointer. The contents are binary and therefore I use hex format to see the contents.

Would detecting a null still work?

unsigned char *input = "������";
printf("input =");
int count = 0;
while(*input != '\0'){
    printf("%02x", *input);
            input++;
}
printf("\n");

Now what happens if I have to copy the pointer to a char array? How can I assign the size of the char array? I understand sizeof returns only the size of datatype that char points to. But is there any way?

unsigned char copyInput[size??];
strcpy(copyInput, input);
for (i=0, i <size?, i++)
{
printf("copyInput[%d]= %02x", i, copyInput[i]);
}

Thanks in advance!

share|improve this question

1) To the extent that C has strings at all, they are defined as "an arbitrary contiguous sequence of nonzero bytes, terminated with a zero byte". Therefore, if your binary data is guaranteed never to contain bytes whose value is zero, you can safely treat it as a C string (use the str* functions with it, etc). But if your binary data might have zero bytes somewhere in the middle, you need to track the length separately and operate on it with the mem* functions instead.

2) You use strlen to find the length of the string (without the terminating zero byte). However, in standard C89 you can't use the result of strlen to set the size of a char[] variable, because the size has to be known at compile time. If you're using C99 or GNU extensions, you can define the size of an array at runtime:

size_t n = strlen(s1);
char s2[n+1];
memcpy(s2, s1, n);

The n+1 is necessary, or you won't have space for the terminating NUL. If you can't use C99 nor GNU extensions, your only option is to allocate space on the heap:

size_t n = strlen(s1);
char *s2 = malloc(n+1);
memcpy(s2, s1, n);

or, with a common library extension, just

char *s2 = strdup(s1);

Either way, don't forget to free(s2) later. By the way, this is a case where it would have been safe to use strcpy, because you know by construction that the destination buffer is big enough. I used memcpy because it may be slightly more efficient and it means human readers won't see "strcpy" and start worrying.

share|improve this answer
    
Do you say I could still use null termination to detect end of a binary string as I have used? Is size_t the right way to assign lengths? I get a "conflicting type" warning when I tried your code :( – pimmling Apr 13 '11 at 15:30
    
You can still use null termination to detect the end of a binary string as long as the binary data is guaranteed to contain no zero bytes. If any byte of the actual data might be all-bits-zero, you need to store the length separately. I'll clarify my part 1. Re size_t, yes, that is supposed to be the correct type. I'd need to see the exact error message and know which line of code it didn't like, to figure out what's going wrong. – zwol Apr 13 '11 at 15:37
    
size_t ncount = strlen(text); char s2[ncount+1]; memcpy(s2, text, ncount); printf("s2 ="); for(i = 0; i < ncount; i++){ printf("%x", s2[i]); } Returns a warning that "pointer targets in passing argument 1 of 'strlen' differ in signedness" Also, s2 has some ffffextra characters :( – pimmling Apr 13 '11 at 15:43
    
Ah, that has nothing to do with size_t; the pointer you passed to strlen has type unsigned char * rather than char *. If this only comes up in a few places, silence the warning with a cast; if you have this problem in many places, I would add an inline wrapper function ustrlen(unsigned char *) that does the cast, so you will still get told when you pass completely the wrong type. I don't know what's with the extra characters. – zwol Apr 13 '11 at 16:09

If it's a bunch of chars terminated with a 0, just use strlen() since that is C's definition of a string. It doesn't matter than some (or most) of the characters might be unprintable, as long as 0 is the terminator.

share|improve this answer

You will have problems if any of the input bytes are 0. In this case the loop will stop at that character. Otherwise, you can treat it as a string.

Treating it as a string, you can use strlen() to get the input's size and then dynamically allocate memory to your copy. The copy can be made with strcpy as you did, but it is safer to use strncpy.

char *input = "input binary array";
int count = strlen(input)+1; // plus '\0'
char *copy = (char *) malloc(count*sizeof(char));
strncpy(copy, input, count+1);
share|improve this answer
    
but I want to copy it to a char array and print it. How would that be? – pimmling Apr 13 '11 at 15:38
    
The copy is a dynamic allocated char array. You can print the values the same way you did with copyInput in your explanation. – Thiago Figueredo Cardoso Apr 13 '11 at 16:42

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