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I am trying to copy certain parts of a string into other, new strings, but when i try to do it and print the results it gives me weird output.. I really hope someone can help. I have a feeling that it is something about missing pointers.. Here is my source;

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

void getData(char code[], char ware[], char prod[], char qual[])
{
    printf("Bar code: %s\n", code);

    /* Copy warehouse name from barcode */
    strncpy(ware, &code[0], 3);
    ware[4] = "\0";

    strncpy(prod, &code[3], 4);
    prod[5] = "\0";

    strncpy(qual, &code[7], 3);
    qual[4] = "\0";
}

int main(){

    /* allocate and initialize strings */
    char barcode[] = "ATL1203S14";
    char warehouse[4];
    char product[5];
    char qualifier[4];

    getData(&barcode, &warehouse, &product, &qualifier);

    /* print it */
    printf("Warehouse: %s\nID: %s\nQualifier: %s", warehouse, product, qualifier);

    return 0;
 }

EDIT:

The wierd output is:

Bar code: ATL1203S14
Warehouse: ATL
ID: ♫203(♫>
Qualifier: S14u♫203(♫>
share|improve this question
    
And what is the "weird output"? – jpalecek Nov 3 '11 at 17:11
    
This is not the cause of your problem but instead of getData(&barcode, &warehouse, &product, &qualifier);, it would be more usual to write getData(barcode, warehouse, product, qualifier); – Pascal Cuoq Nov 3 '11 at 17:14
    
Sorry I wasn't thinking straight. I will add the wierd output now! – C K Nov 3 '11 at 17:15
up vote 6 down vote accepted

I think you meant '\0' instead of "\0" and 3 instead of 4:

ware[4] = "\0";

Try:

ware[3] = 0;

Also the & in getData(&barcode, &warehouse...) are useless. Just use getData(barcode, warehouse...);.

share|improve this answer
    
Thanks for all of you guys help. I finally got it fixed.. Thanks again – C K Nov 3 '11 at 17:34
    
It's good to explain a bit why this is the correct answer, so other people and who post the question learn about it. You need to use ware[3] = 0; because 0 act as end-of-string character, and always remember that the array starts at 0 position, that's why its index 3 and not 4. The other problem, the call to getData() function is wrong because you need to pass pointers to it and char[] declares a pointer to a char array, so '&' is useless. – webbi Nov 3 '11 at 17:56

You're writing past the end of the chars in your getData() function. You've defined char product[5], which allocates 5 bytes of memory. That gives you array indexes 0,1,2,3,4. In getData, you write the product's null terminator to index 5, which is past the end of product, and will overwrite the next var's first character.

The same applies for barecode, warehouse, and qualifier.

share|improve this answer
    
Not to mention the fact that he isn't writing a null terminator, he's writing the address of a string that contains a null terminator. – Paul Tomblin Nov 3 '11 at 17:14
    
How do I write a null terminator? – C K Nov 3 '11 at 17:19
    
x = \0 is proper, x = "\0" isn't. – Marc B Nov 3 '11 at 17:28
    
@MarcB I think you meant either x = '\0' or x = 0, which would be equivalent. x = \0 will cause a compilation error. – Aaron Dufour Nov 3 '11 at 17:33

Arrays in C and C++ are zero-based. The last index is one less than the length. You're setting a value in the memory after the array, for each of the arrays ware, prod and qual.

For example, instead of

 char warehouse[4];
 ware[4] = "\0";

you'd want:

 char warehouse[4];
 ware[3] = "\0";
share|improve this answer
getData(&barcode, &warehouse, &product, &qualifier);

This is not the way you should call getData. getData takes pointers, arrays are automatically converted to pointers, so theres no need to use the address-of operator &.

You should use

getData(barcode, warehouse, product, qualifier);
share|improve this answer
    
But at the same time, this is not the cause of the problem, just a stylistic issue. – Pascal Cuoq Nov 3 '11 at 17:15
1  
@PascalCuoq: It's not a "stylistic issue", since it is a type error. Yet you are right, it doesn't cause OP's problems. – jpalecek Nov 3 '11 at 17:18

The sizes of the strings inside main() don't include a place for the sentinel.

You need to have:

char warehouse[5];
char product[6];
char qualifier[5];

Also, You are assigning a pointer to the string "\0" into a character, where you should be assigning the character '\0' itself.

share|improve this answer

I think I'd do things a bit differently. In particular, strncpy is almost never really useful (I'm reasonably certain it was invented for file names in the original Unix FS, and while it fits their specific requirements quite nicely, those requirements are sufficiently unusual that it's rarely good for much of anything else).

Instead, I'd use sscanf: sscanf(code, "%4c%5c%4c", ware, prod, qual);

Your question does not make it clear whether this is really correct. As others have pointed out, you're writing past the ends of the space you've allocated. Above, I've assumed you specified the number of characters you want to copy, so you'd have to expand each of the allocations by one character to make room for the terminator. Alternative, if you've already left room for the terminator and want one fewer character copied, you'd have to reduce each of the lengths above by one so the format string would be "%3c%4c%3c".

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