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If I Execute the below code I am getting a warning like this :

warning: incompatible implicit declaration of built-in function âmemsetâ [enabled by default]

void transform(int **a, int m, int n)
{
 int *row = malloc(m*sizeof(int));
 int *col = malloc(n*sizeof(int));
 int i,j;
 memset(row, 0, sizeof(row));
 memset(col, 0, sizeof(col));
 for(i=0;i<m;i++)
  for(j=0;j<n;j++)
  {
   if(a[i][j]==0)
    row[i] = col[j] = 1;
  }

 for(i=0;i<m;i++)
  for(j=0;j<n;j++)
  {
   if(row[i] || col[j])
    a[i][j]=0;
  }
}
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sizeof(row) is whatever pointer size is on your platform. I.e. 4 in 32 bit env.. more correct thing would be memset (raw, 0, m*sizeof(int)) - just a note :) –  artapet Oct 19 '12 at 0:57
    
A p=malloc(x*y) followed by a memset(p,0,x*y) is the same as one call to p=calloc(x,y). –  alk Oct 19 '12 at 5:27

1 Answer 1

When in doubt, look at the man page:

$ man memset

MEMSET(3)                BSD Library Functions Manual                MEMSET(3)

NAME
     memset -- fill a byte string with a byte value

LIBRARY
     Standard C Library (libc, -lc)

SYNOPSIS
     #include <string.h>
     ^^^^^^^^^^^^^^^^^^^

This tells you that you need #include <string.h> in order for the compiler to see the function prototype for memset.

Note also that you have a bug in your code - you need to change:

memset(row, 0, sizeof(row));
memset(col, 0, sizeof(col));

to:

memset(row, 0, m * sizeof(*m));
memset(col, 0, n * sizeof(*n));
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