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I have some doubts in basic C programming.

I have a char array and I have to copy it to a char pointer. So I did the following:

char a[] = {0x3f, 0x4d};
char *p = a;     
printf("a = %s\n",a);
printf("p = %s\n",p);
unsigned char str[] = {0x3b, 0x4b};
unsigned char *pstr =str;
memcpy(pstr, str, sizeof str);
printf("str = %s\n",str);
printf("pstr = %s\n",pstr);

My printf statements for pstr and str get appended with the data "a". If I remove memcpy I get junk. Can some C Guru enlighten me?

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You don't "copy an array to a pointer". You're obtaining a pointer to the first element of an existing array. No copying. –  Lightness Races in Orbit Apr 12 '11 at 9:30
    
I don't see where anything gets "appended". –  Lightness Races in Orbit Apr 12 '11 at 9:31

5 Answers 5

up vote 2 down vote accepted

Add a null terminator, cause that's what you printf expects:

char a[] = {0x3f, 0x4d, '\0'};
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Firstly, C strings (the %s in printf) are expected to be NUL-terminated. You're missing the terminators. Try char a[] = {0x3f, 0x4d, 0} (same goes for str).

Secondly, pstr and str point to the same memory, so your memcpy is a no-op. This is a minor point compared to the first one.

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The standard way C strings are represented is that in memory, they are a sequence of non-zero bytes representing the characters, followed by a zero (or NULL) byte. You should declare:

char a[] = {0x3f, 0x4d, 0};

When you assign a string pointer (as in unsigned char *pstr = str;) both pointers point to the same memory area, and thus the same characters. There is no need to copy the characters.

When you do need to copy characters, you should be using strlen(), the sizeof() operator returns the number of bytes its argument uses in memory. sizeof(pointer) is the number of bytes the pointer uses, not the length of the string. You find the length of a string (i.e. the number of bytes it occupies in memory) with the strlen() function. Also, there are standard functions to copy C strings. You should rely on those to do the right thing:

strcpy(pstr, str);
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printf's %s expects a 0-terminated string, your strings aren't. The uninitialized memory following your arrays may however happen to start with a 0-byte, in which case your code will appear to be correct - it still isn't.

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You're declaring an array "str", then pointing to it with pstr. Note that you have no null-terminating character, so after using memcpy you copy the block to itself with no null terminator, as a string requires. Thus, printf can't find the end of the string and continues printing until it finds a 0 (or '\0' in character terms)

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Thanks to all of you. Ok so I remove memcpy since it means nothing here as pstr points to the location. Would this mean that if I do computations on the pstr, it would still be alright( I mean like pass this to some function to read the string stored etc) without null termination, since it was the problem with printf not finding it? I mean as long as I dont print the string,i neednt use null char at the end or?? –  pimmling Apr 12 '11 at 9:34
    
if you don't null-terminate the string, however, how do you expect to find the end of it? in this example, sure, you know the end is 0x4d, but what if the user was inputting a string? it's good practice to nullterminate it in any case, so you really should be doing so –  Ben Stott Apr 12 '11 at 9:40
    
ok I shall certainly shall then. Thanks for all your elaborate commets. –  pimmling Apr 12 '11 at 9:44
    
no worries. feel free to mark the answer you believe best answers your question, that way other users can know that this question has been solved –  Ben Stott Apr 12 '11 at 9:45

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