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typedef struct _lnode{
    struct _lnode *next;
    size_t row;
    size_t column;
    short data;
}lnode;

typedef struct _matrix{

    size_t width;
    size_t height;
    size_t k;

    int **data;

}matrix;

matrix* make_matrix(size_t width, size_t height, size_t k){

    matrix *m= malloc(sizeof(matrix));
    //matrix *m= malloc(sizeof(*matrix)); DOES NOT WORK
    if(m==NULL) return NULL;

    m->width = width;
    m->height = height;

    /*
    Since m->data is a int **, it points to int *, 
    so I have to allocate a number of int *-sized objects to store in it.
    */
    m->data = malloc(sizeof(int *)*height);
    if(m->data == NULL){
        free(m);
        return NULL;
    }

    for(size_t i=0; i < height; i++){
        m->data[i] = malloc(sizeof(int)*width);
        if(m->data[i] == NULL){
            for(size_t j = 0; j < i; j++) free(m->data[j]);
            free(m->data);
            free(m);
            return 0;
        }

        for(size_t j = 0; j < width; j++)
            m->data[i][j] = 0;
    }

    return m;
}


lnode* make_node(size_t row, size_t column, short data){
    lnode *newNode = malloc(sizeof(*newNode));

    if(newNode==NULL) return NULL;

    newNode->row = row;
    newNode->column = column;
    newNode->data = data;

    return newNode;
}

These two functions work fine. In the make_matrix function, I first tried this

 matrix *m= malloc(sizeof(*matrix)); 

instead of

 matrix *m= malloc(sizeof(matrix));

Then it only works for the first iteration in the for loop and falls into the if statement

if(m->data[i] == NULL){
                for(size_t j = 0; j < i; j++) free(m->data[j]);
                free(m->data);
                free(m);
                return 0;
            }

I know that sizeof(pointer) will return a size of the pointer. In make_node function I am doing lnode *newNode = malloc(sizeof(*newNode)); and it worked fine. I am trying to do the same thing in make_matrix function. It doesn't work this time...

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2  
It works fine (as it should) with ` matrix *m= malloc(sizeof(matrix));`? If so, what is the question? –  MAK Mar 25 '11 at 6:15

3 Answers 3

up vote 2 down vote accepted

newNode is a variable, so sizeof *newnode returns the size of thing it wants to point to. The equivalent in make_matrix() would be sizeof *m, not sizeof *matrix.

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2  
I may just be tired, but I'm not even sure what sizeof(*matrix) means to the compiler. matrix is a typedef, so *matrix shouldn't be meaningful (the correct syntax would be (matrix *)). –  geekosaur Mar 25 '11 at 6:19

If I understand your question correctly you are saying that your code fails because m->data[i] is not null?

malloc will not initialize your variable, the contents of what you get is unpredictable. Use calloc to initialize to all bits zero, or even better if you have a standard conforming compiler use something like

*m = (matrix){ 0 };

to initialize all fields to 0.

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You say "I know that sizeof(pointer) will return a size of the pointer"

But I don't think you do.

You need to do:

matrix *m = malloc(sizeof(matrix));

Otherwise you get 4 bytes (or 8, if your machine is using 64bit pointers).

"It works" with what you're doing is not correct. The behavior is undefined. You just got lucky.

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