12

Suppose

  long long b = 5*1024*1024*1024; // 5 gigs, small enough for 64 bits
  printf ("%lu\n",sizeof(long long)); // prints 8 (bytes) = 64 bits

but the compiler complains:

  warning: integer overflow in expression [-Woverflow]

Why does it overflow, what am I missing?

1 Answer 1

20

Because the numbers on the right hand side are of type int, not long long, so int arithmetic is performed in the expression, leading to an overflow.

If you add LL to one of them, it'll promote them all.

4
  • darn, you're right. One always thinks of appending f or (casting) floats... but never longs :( Appreciate it. Apr 12, 2013 at 0:07
  • @DervinThunk - it's easy to forget with constants.
    – teppic
    Apr 12, 2013 at 0:19
  • 1
    More precisely, the constants are of type int ("integer" is a more general term, covering everything from char to long long and possibly more). And if you apply the LL to the right-most 1024, you could still get an overflow; given 5*1024*1024*1024LL, 5*1024*1024 is still evaluated as an int -- which can legally be as narrow as 16 bits. The most robust solution is probably to write 5LL*1024LL*1024LL*1024LL -- or 5LL * (1LL<<30). Apr 12, 2013 at 0:30
  • 1
    @KeithThompson ... or just 5LL<<30.
    – Ruslan
    Feb 26, 2021 at 8:17

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