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I am implementing a two dimensional array dynamic memory allocation . While compiling the program i got an error . The code is as follows :-

   # include<iostream>
   # include<stdio.h>
   # include<conio.h>
   # include<stdlib.h>
   # define COLS 5
   using namespace std;

   typedef int Rowarray[COLS];
   int main()
   {
      Rowarray *rptr;
      int nrows=3;
      int row,col;
      rptr=(int**)malloc(nrows * COLS * sizeof(int)) ; // Error Line
      for(row=0;row<nrows;row++)
      { static int i=0;
        for(col=0;col <COLS;col++,i++)
        {
          rptr[row][col]=i;
        }
      }  
      for(row=0;row<nrows;row++)
      { 
        for(col=0;col <COLS;col++)
        {
          cout << "\n" << rptr[row][col];
        }
      }     
     getch();  
     return 0;
   }

The error i am getting is cannot convert int**' toint (*)[5]' in assignment `

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1  
Why are you using malloc instead of new? –  Cameron Feb 26 '12 at 19:13
    
@camron i can use new but just want to learn how to typecast these in case of malloc –  Invictus Feb 26 '12 at 19:15
    
i guess malloc(nrows * COLS * sizeof(int)) will return me just void* which i am trying to forcefully convert to int** as the left hand side of equal to operator has a int** type . Is that the error ? –  Invictus Feb 26 '12 at 19:18
    
use a simple one dimensional array –  Karoly Horvath Feb 26 '12 at 19:19

3 Answers 3

up vote 1 down vote accepted

Try removing the cast (parentheses) to the left of malloc. If that doesn't work replace them with (Rowarray *).

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Mine is an old compiler so it does not have latest ANSI feature , so i had to typecast that and it worked with your fix :) –  Invictus Feb 26 '12 at 19:23

If you replace your ugly malloc with normal new

rptr= new Rowarray[nrows];

your program compiles and even runs. And don't forget to delete [] rptr;.

But why not use vectors?

#include <vector>
//...
std::vector<std::vector<int> >rptr;
share|improve this answer

Your syntax is wrong, and C/C++ doesn't let you cast to an array type anyway.

Your Rowarray should probably be a typedef of int**, so you can say:

rptr=(int**)malloc(nrows * COLS * sizeof(int)) ; 

More generally, unless you have requirements imposed upon you because of homework or something, you're doing this is an overly hard way. Instead of using malloc and raw pointers, you can easily create a dynamic 2d array with std::vector<std::vector<int> >

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(int**) doesnot work here. I tried that :) . but i got it fixed through david answer –  Invictus Feb 26 '12 at 19:21
    
Yes it does. You need to change your typedef statement to typedef int** Rowarray; –  Charles Salvia Feb 26 '12 at 19:23
    
yeah it will in that case :) –  Invictus Feb 26 '12 at 19:24
    
@Charles: An int** is a different type of 2D array than an array of arrays. The former is an array of pointers, the latter is a big block of memory. –  David Grayson Feb 26 '12 at 20:40

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