1

For example, can I take

int array[12];

and cast it to a char[48] simply by casting the pointer, and given the assumption that int is 4 bytes on my machine? What would be the proper syntax for this, and would it apply generally?

I understand that the size of the new array wouldn't be explicit, i.e. I'd have to do the division myself, again, knowing that on my machine int is 4 bytes.

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  • I wanted to serialize an integer array to a string (or c-string) without using any library like boost::serialization. It's for a coding exercise. I know I can do it the "naive" way, but wondered about this. – Andrew Cheong Feb 24 '17 at 21:42
  • Casting pointers may or may not cause any problems. That doesn't indicate anything about whether there will be problems downstream. That depends on how you use the pointers – R Sahu Feb 24 '17 at 21:46
  • Do you really want to cast int array[12] (48 bytes on your platform) to char array[3] (3 bytes)? Or did you mix up the array bounds? – IInspectable Feb 24 '17 at 23:16
  • @IInspectable - I just did the math backwards in my example. Correcting, thanks. – Andrew Cheong Feb 25 '17 at 23:51
4

The proper C++ way is with reinterpret_cast :

int array[12];
char* pChar = reinterpret_cast<char*>(array);

You should note that sizeof(array) will be 12*sizeof(int) which is equal to 12 * (sizeof(int) / sizeof(char)), which in most (if not any) machine is larger than sizeof(char[3]) since sizeof(char) is usually a quarter of sizeof(int).

So int array[12]; can be interpeted as char array[12*4];

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  • An int is larger than a char on any platform (int is at least 16 bits wide). – IInspectable Feb 24 '17 at 23:18
1

You can cast most pointer types to most other pointer types using reinterpret_cast.

Usage to : auto ptr = reinterpret_cast<char*>(array);.

Rather than rely on the fact that int is 4 bytes on your system, you can use sizeof(int) as a constant instead. The wording of your question makes it seem like you may be confused about the "size" of the array when cast to char*. int is sizeof(int) times larger than char. If sizeof(int) == 4 then your ints take up 4 * 12 = 48 bytes in your array, not 3.

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0
 int array[12];
 char * p = (char *) array;
 // do what you want with p

Of course, p doesn't have the type char[3], but this probably doesn't matter to you.

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