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I cannot find what's wrong in this simple array initialization. The program crashes with a segfault on field[x][y] = ' ';, x and y at 0 (I use Code::Blocks debugger)

/* init data structures */
char **field;
int field_width=5,field_height=5;
field = malloc(sizeof(char*)*field_width);
for(x=0;x<field_width;x++)
{
    field[x] = malloc(sizeof(char)*field_height);
    for(y=0;y<field_height;y++)
    {
        field[x][y] = ' ';
    }
}

Any idea of what I am doing wrong ?

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1  
This code snippet doesn't crash for me. –  Neil Oct 12 '12 at 23:21
    
Looks good to me –  Joseph Quinsey Oct 12 '12 at 23:21
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4 Answers

Before you initialized field_width, it probably contained random data. Using field_width in the malloc statement then triggered undefined behavior. The compiler could do whatever it wanted, from skipping the malloc to using whatever garbage happened to be stored in field_width, or even worse/stranger things!. Regardless, you were unlikely to get the malloc call you wanted, and either if it didn't run or returned NULL (e.g. if field_width contained a value that was too large to be malloced), the resulting value of field was unlikely to point to valid memory. This would then cause a segfault when you dereference field in the loop. You were fortunate that you got such a clear sign that something was wrong -- memory errors aren't always so blatant.

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up vote 1 down vote accepted

I actually simplified the code snippet. field_width was not initialzed. I'm surprised this did not raise a warning during the build. And I don't really know why it generates a segfault when x=0.

But my problem is solved. Thank you all and sorry for the conveniance...

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With an uninitialised field_width, that could have happened to have a large value, so that the malloc failed. Did you check the return value of malloc in the real code? –  Daniel Fischer Oct 13 '12 at 11:16
    
I didn't check. Following your advice I did, and indeed, that is what failed. Thanks for the advice. Another good habit I have to remember! –  Cyctemic Oct 14 '12 at 21:50
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Shouldn't it be this?

field = (char**)malloc(sizeof(char*)*field_width);

Edit

malloc can return null, so it would pay to check that field[x] = malloc(sizeof(char)*field_height); block of memory is valid.

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1  
Unlike C++, you don't need to explicitly cast from void* to another pointer in C. –  Neil Oct 12 '12 at 23:23
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field = (char*) malloc(sizeof(char*)*field_width);

The char* cast maybe?

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1  
In (ANSI) C, there is no need to cast the result of malloc. See stackoverflow.com/questions/605845/… –  reima Oct 12 '12 at 23:23
1  
Unlike C++, you don't need to explicitly cast from void* to another pointer in C. –  Neil Oct 12 '12 at 23:23
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