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int main() {  
  int my array[3][3] =
    10, 23, 42,    
    1, 654, 0,  
    40652, 22, 0  
  };  

  printf("%d\n", my_array[3][3]);  
  return 0;
}

I am not able to get the array to print.. Any ideas why? I am a beginning programmer so any words of advice are appreciated.

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Is some of the code missing? It looks like you're missing an opening bracket on the array, as well as an _ in the my_array declaration –  Austin Brunkhorst Mar 15 '12 at 19:41
    
just one word of advice: you should specify the language you are coding in so as to better identify a proper solution :) –  zero Mar 15 '12 at 19:42
    
Oh, and you should tell us the error you get, because there's a lot of room for errors in that code ;) –  Niklas B. Mar 15 '12 at 19:43
    
Big hint: Array indexes start at 0. my_array[3][3] is trying to get the 4th cell in the 4th row of your array. What's wrong with this picture? –  cHao Mar 15 '12 at 19:43

3 Answers 3

up vote 4 down vote accepted

What you are doing is printing the value in the array at spot [3][3], which is invalid for a 3by3 array, you need to loop over all the spots and print them.

for(int i = 0; i < 3; i++) {
    for(int j = 0; j < 3; j++) {
        printf("%d ", array[i][j]);
    }
    printf("\n");
} 

This will print it in the following format

10 23 42
1 654 0
40652 22 0

if you want more exact formatting you'll have to change how the printf is formatted.

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If you are programming in c++ you can also use cout instead of printf –  trev9065 Mar 15 '12 at 19:46
    
@trev9065 true but he used printf and didn't have a language stated when I answered so I stuck with printf. –  twain249 Mar 15 '12 at 19:47
    
Thanks, that helped, I forgot that I needed to use a loop to display all of the elements.. :/ –  Shankar Kumar Mar 15 '12 at 19:53
    
@ShankarKumar you're welcome. –  twain249 Mar 15 '12 at 19:54

There is no .length property in C. The .length property can only be applied to arrays in object oriented programming (OOP) languages. The .length property is inherited from the object class; the class all other classes & objects inherit from in an OOP language. Also, one would use .length-1 to return the number of the last index in an array; using just the .length will return the total length of the array.

I would suggest something like this:

int index;
int jdex;
for( index = 0; index < (sizeof( my_array ) / sizeof( my_array[0] )); index++){
   for( jdex = 0; jdex < (sizeof( my_array ) / sizeof( my_array[0] )); jdex++){
        printf( "%d", my_array[index][jdex] );
        printf( "\n" );
   }
}

The line (sizeof( my_array ) / sizeof( my_array[0] )) will give you the size of the array in question. The sizeof property will return the length in bytes, so one must divide the total size of the array in bytes by how many bytes make up each element, each element takes up 4 bytes because each element is of type int, respectively. The array is of total size 16 bytes and each element is of 4 bytes so 16/4 yields 4 the total number of elements in your array because indexing starts at 0 and not 1.

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This wouldn't work if the array is not square since jdex is looping using the size of the outer array and not the inner one. –  JaviMerino May 14 at 18:04

It looks like you have a typo on your array, it should read:

int my_array[3][3] = {...

You don't have the _ or the {.

Also my_array[3][3] is an invalid location. Since computers begin counting at 0, you are accessing position 4. (Arrays are weird like that).

If you want just the last element:

printf("%d\n", my_array[2][2]);

If you want the entire array:

for(int i = 0; i < my_array.length; i++) {
  for(int j = 0; j < my_array[i].length; j++)
    printf("%d ", my_array[i][j]);
  printf("\n");
}
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