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How do you pass two dimensional arrays into a function?
When I pass it, it shows up in the visual studio debugger as a single dimensional array. The problem was that when I index sel_col[i], it gets the next character, instead of the next word.

Here is my function prototype:

void print_row(char sel_col[MAX_IDENT_LEN][MAX_IDENT_LEN]);

And here is the definition of my 2d array, and where I call it:

char sel_col[MAX_NUM_COL][MAX_IDENT_LEN];
print_row(sel_col); 

Solution 1: Remove the first size identifier. Didn't work.

void print_row(char sel_col[][MAX_IDENT_LEN]);

Solution 2: Pass it by reference into the function. Didn't work.

    print_row(&sel_col); 

Solution 3: Use double pointers. I don't want to go this route, since I would rewrite most of my code.

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Edited. Sorry about that. –  chustar May 1 '11 at 4:26
    
Un-tagged C++ as this question is in C. –  Puppy May 1 '11 at 6:17

1 Answer 1

up vote 1 down vote accepted

In C, two-dimensional arrays look like one dimensional arrays; a char[3][3] is really a single-dimension array just 9 elements long, and the compiler performs some math to turn two smaller indices into one bigger one. Your function prototype looks correct. What was the problem? Were you getting a compiler error?

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The problem was that when I index sel_col[i], it gets the next character, instead of the next word. –  chustar May 1 '11 at 4:28
    
You can either try a char* array[SIZE] or show us the definition of the array you're passing. –  Seth Carnegie May 1 '11 at 4:29
    
@chustar This small program works for me: codepad.org/gdcd1WKR It prints abc def ghi... on seperate lines, like you'd think it would. –  Seth Carnegie May 1 '11 at 4:32
    
I feel stupid now. I forgot to check the size of the array for situations where the passed array is less than my theoretical max. –  chustar May 1 '11 at 5:03
    
@chustar Yeah, usually almost any time you pass an array to a function, a rule of thumb is that if you don't see the length of the array being passed to that function also, something's probably wrong. There are notable exceptions though, such as most char*s of course, but you get the idea. –  Seth Carnegie May 1 '11 at 13:32

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