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I've created a 2-D Array, but fails and I get "Unhandled exception at 0x77a415de in lab10.exe: 0xC0000374: A heap has been corrupted." Not sure where to go from here or how to debug. I believe it has something to do with the size of my arrays or using malloc(). Thank you so much for the help in advance!

//Get the number of Columns from the user
printf("Enter the number of rows and columns:\n");
scanf("%d", &dimension);

//Allocate 1-D Array of Pointers, Array 'a'
a = (int** ) malloc( sizeof(int)*dimension);
if(a == NULL)
{
    printf("\nError Allocating Memory");
    exit(1);
}

//Allocate Rows for 2-D Array; Array 'a'
for(r = 0; r < dimension; r++)
{
    a[r] = (int*) malloc( sizeof(int) * dimension);
    if (a[r] == NULL)
    {
        for(i = 0; i< r; i++)
            free(a[i]);
        printf("\nError Allocating Memory");
        exit(1);
    }
}

There is more, but I do this 4 different times from the same integer 'dimension'. Thank you!

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i think you should add 'c' as a tag for your question –  Raul Otaño Nov 8 '12 at 20:33
    
Thank you! Been added! –  jfrankum Nov 8 '12 at 20:50
    
I don't see anything particularly wrong with your allocations. It seems more likely something is overrunning one or more of the arrays at another point - you might need to show some of how you use those arrays once you have them allocated... –  twalberg Nov 8 '12 at 21:04
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5 Answers 5

up vote 0 down vote accepted

I take a time and i compile your first example and it runs fine, i thing that the error then could be that a must be of type int **a. Also i have to add the types to r and i variables. If this dosen't works, then i think that you must specify the line of the error, and also add the variables declarations, and the #includes. Hope this could helps...

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I applied your suggested changes, but it appears I get the same fault! I do see what you're saying though! –  jfrankum Nov 8 '12 at 20:37
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This line is wrong:

a = (int** ) malloc( sizeof(int)*dimension);

You're allocating enough space for an array of dimension elements of type int, but then you're using it as an array of int*. If you're compiling a 64-bit program, then sizeof(int*) is 8 but sizeof(int) is 4, so you're not allocating enough space. You need to use sizeof(int*):

a = (int** ) malloc( sizeof(int*)*dimension);
//                          ^^^^^
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In the snippet

//Allocate 1-D Array of Pointers, Array 'a'
a = (int** ) malloc( sizeof(int)*dimension);

the comment does not match the actual code. In the code, you are allocating room for dimension integers, not pointers.

As a pointer is likely larger than an int, the loop allocating the rows goes outside the allocated memory.

The initial allocation should read

a = malloc( sizeof(int*)*dimension);

or

a = malloc( dimension * sizeof *a);

The second form has the advantage that it is always correct for allocating any array of size dimension.

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First:

a = (int** ) malloc( sizeof(int)*dimension);

You are allocating array of pointers and therefore you want:

a = (int** ) malloc( sizeof(int*)*dimension);

The size of int and int* is not guaranteed to be the same!

Second:

if (a[r] == NULL)
{
    for(i = 0; i< r; i++)
        free(a[i]);
    printf("\nError Allocating Memory");
    exit(1);
}

You free memory of all rows, but you don't free memory of "a" itself.

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I have found my error! It was an infinite for loop that was located in one of my other 'for' loops! Also, as stated by many people above, I should have been multipling by (int*) not just (int)! Thank you so much!

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