1

I have this simple part of my code:

int pch = name.find("#");
if(pch == name.npos) continue;

When in name.find doesn't find "#", pch is equal to -1. name.npos instead, if I print it, is 4294967295. Why is it that in this case, when pch is -1 and name.npos is 4294967295, the program enters the if condition?

  • What type does name.find return? What type is name.npos? – Sam Estep Jul 6 '15 at 13:14
  • 1
    Why would you expect them to be different? Are you aware that arithmetic of 32 bits number is done modulus 2 power 32? – Basile Starynkevitch Jul 6 '15 at 13:15
  • 4
    How do you print it? – nouney Jul 6 '15 at 13:15
  • 3
    4294967295 is not the "highest number at 32 bit", it is the highest unsigned int. That value (0xFFFFFFFF) is -1 when the variable is int. – Weather Vane Jul 6 '15 at 13:19
  • 1
    See Using -1 as a flag value for unsigned (size_t) types ... -1 will always convert to the max unsigned value. – Shafik Yaghmour Jul 6 '15 at 13:24
8
  • string::npos denotes that the position is not found. It is usually represented by a constant value of -1.

Reference

This constant is defined with a value of -1, which because size_t is an unsigned integral type, it is the largest possible representable value for this type.

  • In case, find is unsuccessful, it returns -1.

So, both are equal, in your case and the if is satisfied.

Now, to answer

name.npos instead, if I print it, is 4294967295

because, string::npos is of type size_t which is usually typedef to unsigned type. The -1,which is used to initialize an unsigned type will be stored as and printing the maximum possible unsigned value.

  • 4
    An interesting specification given that officially platforms can use one's complement, two's complement or signed magnitude and the conversion of signed to unsigned is undefined.. Only in two's complement is the bit-pattern for -1 also the greatest unsigned value. – Persixty Jul 6 '15 at 13:25
4

Because of the internal representation of negative numbers. This is called the two's complement.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.