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I have an array of strings which when I iterate through and print its elements gives me unexpected results.

char currencies[][3] = {"EUR", "GBP", "USD", "JPY", "CNY"};

void show_currencies()
{
    int i;
    for(i=0; i<5; i++)
    {
        printf("%s - ", currencies[i]);
    }
}

when I call show_currencies() I get this on output.

EURGBPUSDJPYCNY - GBPUSDJPYCNY - USDJPYCNY - JPYCNY - CNY -

Can anyone explain this behaviour.

Thank you

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any decent compiler should give error or at least warning for this –  chappar Mar 2 '10 at 17:44
1  
@chapper, @martani: I don't have a copy of the c standard near to hand, but I think that silently dropping the NUL byte in this case is explicitly allowed by the standard. At least at one time, there would have been a reasonable amount of code that used this technique to initialize fix-size char arrays, because it's much more concise than simply listing the char values one by one. –  Dale Hagglund Mar 3 '10 at 9:41

6 Answers 6

up vote 14 down vote accepted

You are missing the nul terminators the strings are actually 4 characters long. Each string is then over writing the previous string's null terminator*. Try instead:

char currencies[][4] = {"EUR", "GBP", "USD", "JPY", "CNY"}; 

*As pointed out by caf it is not "over writing the previous string's null terminator" as the null terminator is never copied into the array. It is a fluke that the string is does not have garbled output after the final '-'.

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Yep - that'll be it... You have to allow space in your array for the null terminator as well as the actual content... –  Martin Milan Mar 2 '10 at 17:05
    
damn, took me so long to find how to declare string arrays, then I missed the length of each string :D thanx for the help –  0xFF Mar 2 '10 at 17:06
    
ephemient, that doesn't work (it's a compile-time error). You must declare the size of all but the left-most dimension (the compiler has to know how long a row is to handle indexing). –  Matthew Flaschen Mar 2 '10 at 18:07
1  
This is right, except that each string isn't "overwriting the previous string's null terminator" - the nul terminators are never written at all, because the arrays being initialised only have 3 chars each. (It was a complete fluke that the last array happened to be followed by a terminator at all). –  caf Mar 2 '10 at 23:18
    
Thanks caf corrected above. –  Charles Beattie Mar 3 '10 at 9:35

You're declaring it wrong. This will work. It just lets the compiler set up an array of pointers-to-const-chars:

const char *currencies[] = {"EUR", "GBP", "USD", "JPY", "CNY"};

EDIT: Making it a two-dimension array, like Charles Beattie's answer, works too, provided you allocate space for the null. Also, specify that chars are const, per Christoph.

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actually, both work (if you leave space for the terminating zero in the original code), but your version might be better as compilers will have an easier time to optimize this; in both cases, you should add const qualifiers, though –  Christoph Mar 2 '10 at 17:09
    
both the declarations are different. In OP's case, he is declaring a double char array, where as your declaration is a array of const char pointers. So, in your case he cannot modify the contents of the array, i mean he cannot do things like currencies[0][1] = 'x'; –  chappar Mar 2 '10 at 17:51
    
That's right, chappar. It does not look like he's intending to modify it. –  Matthew Flaschen Mar 2 '10 at 17:59

You don't have an array of strings but an array of array-of-char. You could use:

char* currencies[] = {"EUR", "GBP", "USD", "JPY", "CNY"};  // untested

to allow for strings of different lengths.

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+1 from me for a way of avoiding counting.. –  Charles Beattie Mar 2 '10 at 17:12

Change

char currencies[][3]

to

char currencies[][4]

strings in C are NULL terminated, to make their handling (in printing, copying etc) easier. example: char str[] = "ABC"; will declare a string of 4 char with \0 as the last char (index 3).

As a tip whenever on printing a char array you get unexpected results you might wanna check to see if the char array is NULL terminated or not.

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Sure. "EUR" is four characters long - three for the letters, one for the terminating null character. Since you're explicitly specifying three-character arrays, the compiler is truncating, and so your data is strung together. You're lucky there is apparently a zero character at the end of the array, or you could get all sorts of garbage. Change your declaration to char currencies[][4].

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My C is quite rusty, but try:

char currencies[][3] = {"EUR\0", "GBP\0", "USD\0", "JPY\0", "CNY\0"};

I'm just curious to know what happens

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1  
The compiler should issue a warning. –  ezpz Mar 2 '10 at 17:09
2  
The same will hapen as your strings are 5 characters long. "EUR\0" is equiv {'E','U','R','\0','\0'} –  Charles Beattie Mar 2 '10 at 17:09

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