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I am almost a beginner in C and I want to allocate a 2 dimensional array, change it, reallocate it and print it. Both of the answers with the code were useful.Now the code is:

    main()
    {
     int i, j, L , **lp ;
      scanf("%i" , &L );
      lp = calloc(L , sizeof(*lp) );
      for(i=0 ; i<L ; i++)
      lp[i] = calloc( L , sizeof( *(lp[i])) );

      for(i=0 ; i<L ; i++)
      {
          for(j=0 ; j<L ; j++ )
          {
           lp[i][j]=0;
           printf("%i\t" , lp[i][j] );
          }
       printf("\n");
      }
       free( lp );
       return(0);
     }
share|improve this question
    
What is pl and lp?? –  Steve Robinson Nov 9 '12 at 8:25
    
man for each of the functions giving warning and include corresponding header files in your program. –  CCoder Nov 9 '12 at 9:09

3 Answers 3

A lot of things are wrong.

1. The for loop

{   for(j=0 , j<0 , j++ )


for (initialization_expression;loop_condition;increment_expression){..}

If any of them is missing, leave them blank, but you do need the semicolons.

Even then j=0;j<0 makes no sense as a condition.

2. Misspelling

You misspelled lp as pl within the second for-loop.

3. main

You did not specify a return type for main. This isn't being reported but is the old-style and shouldn't be used anymore.

4. Dynamic allocation

That isn't the way to allocate a 2-D array dynamically.

share|improve this answer
    
Is the allocation correct? –  irrelephant Nov 9 '12 at 8:09
    
For a 2D array, no. Too many things wrong.. I give up. –  Anirudh Ramanathan Nov 9 '12 at 8:14
    
I have corrected the mistakes about the loop. –  fb.researcher Nov 9 '12 at 8:31

Many errors here, but as for the allocation you should do like this :

int main()
{
int i = 0;
int j = 0;
int L = 0;
int **lp = NULL;

scanf("%i", &L);
if (!(lp = calloc(L, sizeof(*lp)))) //allocate 1st dimension
    return (0);
for (i = 0; i < L; i++)
{
    lp[i] = calloc(L, sizeof(*(lp[i]))); //all 2nd dimensions
}
return (0);

}

And don't cast the return of malloc...

share|improve this answer

First of all correct the errors in the for loop. The syntax is wrong. Check variable spellings.

Now for the allocation part. You have allocated memory only for a single dimensional array in your code. The following procedure is to be followed for allocating a 2 dimensional array.

First we need to allocate an array of pointers. And the size of the array is the number of rows. Then we allocate memory for each row of the 2D array. And we assign address of each row (which is essentially a 1D array, hence a pointer) to the pointers we allocated already.

Thus we need a pointer to pointer array initially. And for each pointer to pointer in this array, we assign an array that corresponds to a row in the 2D Array.

You can do is as follows.

int **a;
int size,x;

//--- Obtain size of array in size;

a = calloc(size,sizeof(int *));  //Allocating a row of pointers and assigning to **a 

//for each *a in *a[] (i.e **a), we assign an array of ints.
for(x = 0; x < size; x ++) 
{
  a[x] = calloc(size,sizeof(int)); 
}

Now you can access this array like this:

for(i=0;i<size;i++)
  for(j=0;j<size;j++)
  {
    //do something with a[i][j]
  }
share|improve this answer
    
The redundant casts on the pointer returned by calloc are potentially dangerous. –  Paul R Nov 9 '12 at 8:31
    
excuse me,what is **a?Is this C syntax? and another question,normally we use a type like int as argument,you say that I should use a pointer of to type int? –  fb.researcher Nov 9 '12 at 8:37
    
I really think you need to get your C Basics right before asking questions here. And yes it is C Syntax. What makes you think it isnt? –  Steve Robinson Nov 9 '12 at 18:42

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