134

Short of (the obvious) building a C style string first then using that to create a std::string, is there a quicker/alternative/"better" way to initialize a string from a vector of chars?

1
  • 6
    Can this be done without copying? In other words something which does the same thing as std::vector<char> v2(std::move(v)) but with a std::string as the new object.
    – tobi_s
    Oct 2, 2018 at 3:17

7 Answers 7

Reset to default
226

Well, the best way is to use the following constructor:

template<class InputIterator> string (InputIterator begin, InputIterator end);

which would lead to something like:

std::vector<char> v;
std::string str(v.begin(), v.end());
48

I think you can just do

std::string s( MyVector.begin(), MyVector.end() );

where MyVector is your std::vector.

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  • 2
    Except in VS2013 which asserts at runtime about invalid iterators, unless you set _ITERATOR_DEBUG_LEVEL=1 (in which case it seems to work fine).
    – Cameron
    Sep 23, 2014 at 22:39
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With C++11, you can do std::string(v.data()) or, if your vector does not contain a '\0' at the end, std::string(v.data(), v.size()).

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  • Even with C++98, I believe you can do std::string(&v[0]). This, of course, is if the vector is null-terminated.
    – Jamie
    Apr 16, 2016 at 0:48
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    @Jamie: By the way, in C++98, string(&v[0], v.size()) should work also, but only after assert(not v.empty());, since if the vector is empty, both v[0] and v.front() would invoke undefined behavior. That, aside from the syntactic simplicity of not having to use the address-of operator, is the real benefit of C++11's data() function, which works even on an empty vector.
    – Adam H. Peterson
    Apr 25, 2016 at 19:46
  • Very true. Unfortunately, my project is stuck on Visual Studio 2008 for the foreseeable future. Right about checking vector length first.
    – Jamie
    May 2, 2016 at 17:51
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    If vector does not contain a '\0', std::string(v.data()) might lead a longer string. So do not use this way.
    – heLomaN
    Nov 20, 2018 at 12:53
  • @heLomaN: What's wrong with std::string(v.data(), v.size()), which was explicitly mentioned in the answer for that exact reason?
    – Sz.
    Aug 13, 2019 at 11:50
12 
std::string s(v.begin(), v.end());

Where v is pretty much anything iterable. (Specifically begin() and end() must return InputIterators.)

7

I like Stefan’s answer (Sep 11 ’13) but would like to make it a bit stronger:

If the vector ends with a null terminator, you should not use (v.begin(), v.end()): you should use v.data() (or &v[0] for those prior to C++17).

If v does not have a null terminator, you should use (v.begin(), v.end()).

If you use begin() and end() and the vector does have a terminating zero, you’ll end up with a string "abc\0" for example, that is of length 4, but should really be only "abc".

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  • Very good point on the null terminator, I fell into that trap.
    – Armut
    Aug 27, 2020 at 21:02
  • Is there a performance difference between (v.begin(), v.end()) and (v.data())? Will the latter be O(n)?
    – 김선달
    Nov 30, 2020 at 4:34
3

Just for completeness, another way is std::string(&v[0]) (although you need to ensure your string is null-terminated and std::string(v.data()) is generally to be preferred.

The difference is that you can use the former technique to pass the vector to functions that want to modify the buffer, which you cannot do with .data().

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  • Why can't you use data() to modify the buffer? It looks to me like if you call data() on a non-const vector, it will return a T * (and if your vector is const, 'v[0]` would return a T const & anyway).
    – Adam H. Peterson
    Apr 25, 2016 at 19:42
  • @AdamH.Peterson it seems to be an oversight in the standard. Std::vector's data has both const and non-const functions, whereas in the current standard, std::string has only a const function: en.cppreference.com/w/cpp/string/basic_string/data Note that C++17 adds a non-const version, so this may not be the case indefinitely - however, the current standard states "Modifying the character array accessed through data has undefined behavior."
    – Riot
    Apr 26, 2016 at 16:48
  • That would be true if v were a string, but the target type is a string and v is a vector. (But it is nice to see that C++17 will give strings parity with vector.)
    – Adam H. Peterson
    Apr 26, 2016 at 16:51
  • @AdamH.Peterson you're right of course. The question was answered a while ago, I'd assumed the whole question was about strings exclusively without checking.
    – Riot
    Apr 26, 2016 at 17:44
0 
vector<char> vec;
//fill the vector;
std::string s(vec.begin(), vec.end());
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  • Could you add some explanations as well as the code?
    – Paul Floyd
    May 13, 2020 at 14:46
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    C++11 string library template goes as follows default (1) string(); copy (2) string (const string& str); substring (3) string (const string& str, size_t pos, size_t len = npos); from c-string (4) string (const char* s); from buffer (5) string (const char* s, size_t n); fill (6) string (size_t n, char c); range (7) template <class InputIterator> string (InputIterator first, InputIterator last); initializer list (8) string (initializer_list<char> il); move (9) string (string&& str) noexcept; we are following 7th template.
    – TechCat
    May 13, 2020 at 15:27
  • Hi @TechCat! Please read up on writing a good answer before answering your next question. Enjoy your stay at SO!
    – Diggy.
    May 13, 2020 at 15:49
  • Could you edit your answer with the description please?
    – Paul Floyd
    May 13, 2020 at 18:41
  • Not sure why this was down voted, this is a perfectly acceptable answer.
    – Jamie Nicholl-Shelley
    Jan 4 at 0:57

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