5

Possible Duplicate:
In C arrays why is this true? a[5] == 5[a]

How is it possible that this is valid C++?

void main()
{
  int x = 1["WTF?"];
}

On VC++10 this compiles and in debug mode the value of x is 84 after the statement.

What's going on?

marked as duplicate by utnapistim, dasblinkenlight, WhozCraig, Rudi, fresskoma Jan 17 '13 at 12:48

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  • 5
    This must be a duplicate of a few dozen questions... – dasblinkenlight Jan 17 '13 at 12:02
  • have a look here – Default Jan 17 '13 at 12:02
  • A better question is for some user defined types that overload the operator [](int) would this work: 5[myType()] – paul23 Jan 17 '13 at 12:07
  • 1
    @paul23 the intrinsic scalers are short-cut by the compiler. So not directly. However... never say never. Check out this useless piece of code which has a cast-operator for int*. It does exactly what you think it might. Good times. – WhozCraig Jan 17 '13 at 12:28
  • 1
    I sometimes to this with index variables just to see the double take on peer-programmers faces. you know, a complicated for-loop and buried in the middle of it: i++[arName] and such. Keeps them on their toes =P – WhozCraig Jan 17 '13 at 12:37
9

Array subscript operator is commutative. It's equivalent to int x = "WTF?"[1]; Here, "WTF?" is an array of 5 chars (it includes null terminator), and [1] gives us the second char, which is 'T' - implicitly converted to int it gives value 84.

Offtopic: The code snippet isn't valid C++, actually - main must return int.

You can read more in-depth discussion here: In C arrays why is this true? a[5] == 5[a]

  • 3
    +1 for the main must return int :) – Default Jan 17 '13 at 12:07
  • ok it's valid Microsoft C++ in that it compiles :) – ehremo Jan 17 '13 at 12:14
3
int x = 1["WTF?"];

equals to

int x = "WTF?"[1];

84 is "T" ascii code

1

The reason why this works is that when the built-in operator [] is applied to a pointer and an int, a[b] is equivalent to *(a+b). Which (addition being commutative) is equivalent to *(b+a), which, by definition of [], is equivalent to b[a].

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