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I'm trying to create a structure that can be interacted with as if it were an int. However, when I try to assign a value to it, it throws the following error upon compiling:

Invalid conversion from `int` to `int32*`

Why does it throw that error, even though I made it's = operator to handle setting an int32 to a const int value?

Here's the source code for my best attempt at int32:

struct int32
{
  int32_t val;

  int32(int val=0)
    : val(val)
  {
  }

  int32& operator=(const int value) // ex. int32 *i = 42;
  {
    val=value;
    return *this;
  }
  int32 operator+(const int32& value) const
  {
    return int32(value.val+val);
  }
  int32 operator-(const int32& value) const
  {
    return int32(value.val-val);
  }
  int32 operator*(const int32& value) const
  {
    return int32(value.val*val);
  }
  int32 operator/(const int32& value) const
  {
    return int32(value.val/val);
  }
  int32 operator%(const int32& value) const
  {
    return int32(value.val%val);
  }
  bool operator==(const int32& value) const
  {
    return (val == value.val);
  }
  bool operator!=(const int32& value) const
  {
    return (val != value.val);
  }
}

Also, please don't just recommend I use int32_t; I'm making my own struct for a reason (otherwise I'd have just used int32_t to begin with ;)

6
  • 2
    Avoid pointers. int32* is the source of trouble (not shown here)
    – user2249683
    Oct 3, 2016 at 21:58
  • 1
    Any reason you're using int32* and not int32? Oct 3, 2016 at 21:59
  • You need to post the code that causes the error.
    – Galik
    Oct 3, 2016 at 22:01
  • @templatetypedef I'm using pointers because I'm integrating this code with my personal garbage collector (I've not gotten to test this struct with it, because I haven't even gotten the struct itself to work properly) Oct 3, 2016 at 22:02
  • Did you mean to write int32 i = 42; instead of int32 *i = 42;?
    – user253751
    Oct 3, 2016 at 22:23

2 Answers 2

4

Judging by your comments, you're doing this:

int32 *i = 42;

You're trying to assign the value 42 to a pointer, which won't work here. Drop the * and call your constructor instead:

int32 i(42);

If you need a pointer to that object, you can then simply take its address:

int32 my_int32(42);
int32 *i = &my_int32;

If you have a pointer to an existing int32 object, and want to assign a new value to the object, you can dereference the pointer:

int32 *i = ...;
*i = 42;
6
  • I tried replacing int32 *i = 42; with int32 *i; &i = 42; and it still won't work. New error: lvalue required as left operand of assignment Oct 3, 2016 at 22:03
  • 4
    @JosephCaruso I think you need to lean about pointers then come back to this problem.
    – Galik
    Oct 3, 2016 at 22:07
  • @EldarDordzhiev I was trying to avoid using the new operator (I wanted the int32 "i" to die with the stack as a normal int would, but I guess I can modify the garbage collector to handle that. Oct 3, 2016 at 22:14
  • Ohhh well there's my problem, I went stupid and put &i instead of *i to deterrence i... (Facepalm) Oct 3, 2016 at 22:22
  • 1
    @JosephCaruso int32 *i; *i = 42; will not work either. If you want the int32 to be on the stack, then just put it on the stack instead of messing around with pointers. int32 i = 42;. Done.
    – user253751
    Oct 3, 2016 at 22:24
2
int32 *i = 42;

is a problem since you are trying to initialize a int32* with the number 42.

Perhaps you meant to use:

int32 i = 42;

However, that would invoke the constructor, not the assignment operator.

To invoke the assignment operator, use:

int32 i;
i = 42;
3
  • It specifically needs to be an int32 *... Would this require I edit int32? Oct 3, 2016 at 22:07
  • @JosephCaruso If you need a pointer, just construct it normally and take its address: int32 my_int32(42); int32 *i = &my_int32;
    – Riot
    Oct 3, 2016 at 22:11
  • @JosephCaruso You'll notice that int *i = 42; doesn't work either. How would you do whatever you're trying to do if you were using a normal int instead of an int32?
    – user253751
    Oct 3, 2016 at 22:25

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