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I saw this in some code I try to recompile for VC++ 2013:

std::string str;
str = {}

VC++ 2013 complains about that:

error C2593: 'operator =' is ambiguous

So I am trying to understanding what it specifically does.

So why use str = {} instead of str = ""? What are the differences if any?

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It looks like someone wanted to assign an empty char array to str. But I guess it could be interpreted as, for example, an int array as well. –  Arjen Nov 9 '13 at 8:20
So is it safe to change it to str = ""? –  Korchkidu Nov 9 '13 at 8:46
I'd prefer str.clear() –  Blastfurnace Nov 9 '13 at 8:49
I guess it's safe, but I am not completely sure. Try it, or as Blastfurnace mentioned, try str.clear(). –  Arjen Nov 9 '13 at 8:52
The code compiles just fine both with gcc 4.7.2 and clang 3.4 trunk. –  Ali Nov 9 '13 at 12:14

2 Answers 2

up vote 3 down vote accepted

I believe it is a bug in MSVC. What it means: it assigns empty initializer_list<char> to your str variable. You can fix this by using explicit creation:str = std::string{}; it will preserve original meaning and will work with MSVC. I'd recommend to file a bug report to MS connect.

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I'm not entirely sure this is a bug. basic_string has several operator=, and the overload resolution using a list-initialization is described in [over.ics.list]. As far as I can see, three of the overloads should be ranked as Exact Matches. –  dyp Nov 9 '13 at 10:25
@DyP, look at [dcl.init.list] especially at 1 and 3 points. –  ixSci Nov 9 '13 at 10:36
@DyP The code compiles just fine both with gcc 4.7.2 and clang 3.4 trunk. –  Ali Nov 9 '13 at 12:13
The expression str = {} is neither an assignment (in the sense of the built-in assignment) nor an initialization. Therefore, list-initialization doesn't apply directly to it. Similarly, you have overload resolution in void foo(int); void foo(double); foo( {} );. That the left hand side of str = {} is a string doesn't care. Here's a live example of how it can go wrong. The selected std::string::operator= in the OP's example btw. is not the copy-assignment, but std::string::operator=(std::initializer_list<char>). –  dyp Nov 9 '13 at 13:13
str = {""}

Works well and preserves original meaning of bracket assignment.

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