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This is something that should be easy to answer, but is more difficult for me to find a particular right answer on Google or in K&R. I could totally be overlooking this, too, and if so please set me straight!

The pertinent code is below:

int main(){
    char tokens[100][100];
    char *str = "This is my string";
    tokenize(str, tokens);
    for(int i = 0; i < 100; i++){
        printf("%s is a token\n", tokens[i]);
    }
}
void tokenize(char *str, char tokens[][]){
    int i,j; //and other such declarations
    //do stuff with string and tokens, putting
    //chars into the token array like so:
    tokens[i][j] = <A CHAR>
}

So I realize that I can't have char tokens[][] in my tokenize function, but if I put in char **tokens instead, I get a compiler warning. Also, when I try to put a char into my char array with tokens[i][j] = <A CHAR>, I segfault.

Where am I going wrong? (And in how many ways... and how can I fix it?)

Thanks so much!

share|improve this question
    
What is <A CHAR>? Is it just a generic character? –  John May 4 '10 at 22:25
    
@Daniel, that won't help - he has a two-dimensional array, not an array of pointers. –  Carl Norum May 4 '10 at 22:26
    
@John - yes, I wasn't sure how else to say that :) I have a lot going on in the function, but it's not too important to my question! –  Isaac May 4 '10 at 22:26
    
@Carl, does it matter? Whether he has a 2d array or an array of pointers, isn't the expression the same? –  John May 4 '10 at 22:27
    
@John, no, a 2-dimensional array is an array of arrays, not an array of pointers. The memory layout is different. The segfault in the OP's post is because of that. –  Carl Norum May 4 '10 at 22:30

2 Answers 2

up vote 5 down vote accepted

You would need to specify the size of the second dimension of the array:

#define SIZE 100
void tokenize(char *str, char tokens[][SIZE]);

This way, the compiler knows that when you say tokens[2][5] that it needs to do something like:

  1. Find the address of tokens
  2. Move 2 * SIZE bytes past the start
  3. Move 5 more bytes past that address
  4. ???
  5. Profit!

As it stands, without the second dimension specified, if you said tokens[2][5] how would it know where to go?

share|improve this answer
    
Haha, appreciate the final notes: I should have been more explicit and careful there: I do have i, j declared and do have tokens spelled correctly, and the str is an example I effed up: editing my post now. Thanks! –  Isaac May 4 '10 at 23:00
    
When you say SIZE, are you saying I should tell the function how long the second array is to be (100 in my example) or tell the function what the data-type's size is going to be? (sizeof(char) in my example) –  Isaac May 4 '10 at 23:05
    
@Isaac: Sorry, SIZE as I was using it was meant as in #define SIZE 100. –  Mark Rushakoff May 4 '10 at 23:06
    
Ah, so of course, when I declare tokens it gives me 100*100 bytes (assuming a char is a byte on the system) in a row. So if I declared char tokens[100] it would gives me 100 * (sizeof(char)) bytes in a row. Splendid. Makes total sense! Thanks! –  Isaac May 4 '10 at 23:08

You're close. Arrays and pointers aren't the same thing, even though it sometimes seems like they are. You can either make your two-dimensional array out of pointers:

 char **tokens = malloc(100 * sizeof(char *));
 for (i = 0; i < 100; i++)
     tokens[i] = malloc(100);

And then use:

void tokenize(char *str, char **tokens)

or you can specify the size of the array in your tokenize() function:

void tokenize(char *str, char tokens[][100])
share|improve this answer

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