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This is a construct of string:

string s {"Hello world!"};

And string class has the following constructor that I think might be bound to:

From char pointer/array:

string (const char* s);

From initializer_list:

string (initializer_list<char> il);

At first I thought it will be calling initializer_list because the parameters are braced. Then I saw the initializer_list takes an argument of char but that was a string.

Then I realize the {""} can be implicitly converted to char[] thus it might call the first constructor... In this case, is a pair of parentheses automatically added around the list(e.g. like ({""}))?

So which constructor does it actually call?


How about this:

double d1 (100);
double d2 {100};

Are they the same?

Assume string also has a constructor like string(initializer_list<string>), then which one will it call?

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This has been asked a lot, but it's uniform initialization of the first constructor. –  Rapptz Aug 2 '13 at 21:15
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You could've tried yourself: Ideone. –  jrok Aug 2 '13 at 21:16
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To invoke the constructor taking an initializer_list<char> type you need to use this - std::string s{'a', 'b', 'c'}; –  Captain Obvlious Aug 2 '13 at 21:27
    
I just realized it actually may call string(string&& s) by C++11... –  texasbruce Aug 2 '13 at 21:49
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2 Answers

up vote 5 down vote accepted
string(const char*)

The {} syntax does not necessarily imply std::initializer_list.

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Can you please look at my appended edit? –  texasbruce Aug 2 '13 at 21:19
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@texasbruce The answer is the same. It's uniform initialization. –  Rapptz Aug 2 '13 at 21:20
    
If a class (assume string) also has a constructor of string(initializer_list<string&&>), which one will it call? –  texasbruce Aug 2 '13 at 21:22
    
@texasbruce it'll call T(initializer_list<string>) then. Edit: you can't have list of rvalue references. –  jrok Aug 2 '13 at 21:29
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You didn't pass a temporary, you passed a string literal. Yes, there's a temporary somewhere when converting to std::string, but that has little to do with template parameter. There's some compiler magic behind initializer_list, in particular, it's not specified how and where the elements are stored. –  jrok Aug 2 '13 at 21:36
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In C++11, curly braces {} are used for uniform initialization. Any object that can be initialized can be initialized with curly braces. Preference is given to constructors that take initializer_list<T>, so if a curly-brace initialization could match more than one constructor and one of them takes an initializer_list, that will be selected. However, if no initializer_list constructors match, the other constructors are also considered.

For example:

vector<int> two_elems{5,10}; // A vector containing two elements
vector<int> five_elems(5,10); // A vector containing five elements
vector<int> five_elems_also{10,10,10,10,10}; // Equivalent to the above

In your example, you're initializing a string with a char const[13]. This would match initializer_list<char const*>, if string had such a constructor, but it doesn't match initializer_list<char>. So the parameter is instead matched against the other constructors, and the constructor taking char const* is the best match.

Note that because of the ambiguity, it's probably best not to initialize containers (such as vector, set, list, or even string) using brace initialization unless you intend to use the initializer_list constructors. For example, there's no way to call vector<size_t>'s constructor that takes size_t, T using brace-initialization, since that argument list will also match the initializer_list constructor. As another example:

vector<char const*> vec_of_strs{ 5, 0 }; // Creates a vector holding *5* nullptrs
vector<unsigned> vec_of_nums{ 5, 0 }; // Creates a vector holding *2* numbers

It's not immediately obvious that the two lines above are calling very different constructors, and if the type of one were changed to the other during maintenance (or the code occurred in a template), programmers may be very surprised at the sudden behavior change.

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Thanks for the answer... It is rude to change the right answer so I upvoted :) 10 points and 15 points are close... –  texasbruce Aug 2 '13 at 21:47
    
@texasbruce It's not rude at all. If you feel it deserves the tick, by all means, change it. –  jrok Aug 2 '13 at 21:48
    
@jrok, I put "5" in on purpose. –  Adam H. Peterson Aug 2 '13 at 21:49
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@Adam sorry, rolled back. I saw parentheses there for some reason. –  jrok Aug 2 '13 at 21:50
    
@jrok Well honestly David's answer is more direct to my question so I won't change it lol. But this is a good answer too –  texasbruce Aug 2 '13 at 21:50
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