What is meant by this C++ statement?
vector<int>::size_type x;
And, what is the use of the scope operator :: here? In other words, how do we read this statement in English?
For example, for X::x(){...}, we say that x() is a member function of class X.
size_type is a (static) member type of the type vector<int>. Usually, it is a typedef for std::size_t, which itself is usually a typedef for unsigned int or unsigned long long.
unsigned long for size_t on x86_64 platform.
I would read it as "declare x as a variable of a type suitable for holding the size of a vector". The vector defines its own type for its length, and it's always cleanest to use that if possible, rather than "guessing" and using int, unsigned int, long, unsigned long or size_t etc directly as you'd otherwise need to do.
vector<int>? How can we define x as the size_type the vector defines for itself? Thanks
Jan 31, 2011 at 10:20
vector<std::string>::size_type, wouldn't the size be an int? when you say that the size_type may be different in this case, what do you mean by that? Thanks
Jan 31, 2011 at 10:37
declare x as a variable of a type suitable for holding the size of a vector, can we say of a type suitable for holding the size of the largest object in the C++ application? Thanks
Jan 31, 2011 at 10:44
vector is a template
so the vector type templated with int has a member typedef called size_type. x is defined as a variable of that type.
Different implementations use different types to represent sizes, so we cannot write the appropriate type directly and remain implementation-independent. For that reason, it is good programming practice to use the size_type that the library defines to represent container sizes.
- Accelerated C++ by Andrew Koenig and Barbara E. Moo
