59

Would it be possible to initialize a vector array of strings.

for example:

static std::vector<std::string> v; //declared as a class member

I used static just to initialize and fill it with strings. Or should i just fill it in constructor if it can't be initialized like we do regular arrays.

  • Initialize it with what, exactly? There are of course a myriad of ways to initialize it. – Benjamin Lindley Nov 24 '10 at 16:15
  • static doesn't "fill it with strings". The std::vector is a dynamic data structure and is created empty. – Blastfurnace Nov 24 '10 at 16:15
  • static in this context means multiple instances of your class all share the same v, is that what you really want? – wkl Nov 24 '10 at 16:15
63

Sort of:

class some_class {
    static std::vector<std::string> v; // declaration
};

const char *vinit[] = {"one", "two", "three"};

std::vector<std::string> some_class::v(vinit, end(vinit)); // definition

end is just so I don't have to write vinit+3 and keep it up to date if the length changes later. Define it as:

template<typename T, size_t N>
T * end(T (&ra)[N]) {
    return ra + N;
}
  • 2
    eh damn, I didn't include a clever template to do end :) – Moo-Juice Nov 24 '10 at 16:17
  • can i just use int numElements = sizeof(vinit)/4; – cpx Nov 24 '10 at 16:39
  • @cpx: if sizeof(char*) is 4, yes. Not so much on a 64bit machine. I just got bored of typing a bunch of sizeof stuff every time I iterate an array. My end function has the same effect for arrays as std::end in C++0x does. – Steve Jessop Nov 24 '10 at 16:46
  • In case it isn't obvious, when I say "my" end function, I mean the function template in my answer, in contrast with C++0x's std::end. I don't claim to have invented it! – Steve Jessop Nov 24 '10 at 17:26
  • 1
    @RoozbehG: N is deduced as 3 from the type of the argument vinit, which is const char* [3]. For that matter, T is also deduced as const char * from that same type. So writing end(vinit) is like writing end<const char*, 3>(vinit) thanks to template parameter deduction. – Steve Jessop Oct 20 '14 at 11:30
27

If you are using cpp11 (enable with the -std=c++0x flag if needed), then you can simply initialize the vector like this:

// static std::vector<std::string> v;
v = {"haha", "hehe"};
21

It is 2017, but this thread is top in my search engine, today the following methods are preferred (initializer lists)

std::vector<std::string> v = { "xyzzy", "plugh", "abracadabra" };
std::vector<std::string> v({ "xyzzy", "plugh", "abracadabra" });
std::vector<std::string> v{ "xyzzy", "plugh", "abracadabra" }; 

From https://en.wikipedia.org/wiki/C%2B%2B11#Initializer_lists

15
 const char* args[] = {"01", "02", "03", "04"};
 std::vector<std::string> v(args, args + 4);

And in C++0x, you can take advantage of std::initializer_list<>:

http://en.wikipedia.org/wiki/C%2B%2B0x#Initializer_lists

  • 1
    +1 for mentioning easy way in C++0x, too bad MSVC 2010 doesn't support this behavior yet :( – rubenvb Nov 24 '10 at 16:45
10

MSVC 2010 solution, since it doesn't support std::initializer_list<> for vectors but it does support std::end

const char *args[] = {"hello", "world!"};
std::vector<std::string> v(args, std::end(args));
5

same as @Moo-Juice:

const char* args[] = {"01", "02", "03", "04"};
std::vector<std::string> v(args, args + sizeof(args)/sizeof(args[0])); //get array size
  • 1
    doesn't this assume all args[] in the init list are the same size? – jwillis0720 Mar 19 '15 at 7:09
  • 1
    @jwillis0720: all args[n] are actually of the same size, sizeof(char*) to be precise. The reason is that args stores a pointer (char*) to the "thing", not the "thing" itself. – Jürgen Schwietering Jun 13 '15 at 14:14
2

Take a look at boost::assign.

1

In C++0x you will be able to initialize containers just like arrays

http://www2.research.att.com/~bs/C++0xFAQ.html#init-list

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