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My book says this:

Lambdas with function bodies that contain anything other than a single return statement that do not specify a return type return void.

but this:

auto f = []{
  int i=0; i++;
  return std::string("foo");
};
std::cout << f() << std::endl;

actually compiles and prints out "foo", but that lambda expr has more than just a single return statement so it should return void, because it does not manually specify "-> std::string" as a return type.

What's going on here?

I'm using Apple's compiler in the latest Xcode 4.6, based on Clang 3.2 it seems:

clang --version

Apple LLVM version 4.2 (clang-425.0.24) (based on LLVM 3.2svn) Target: x86_64-apple-darwin12.2.0 Thread model: posix

share|improve this question
1  
This example has only a single return statement. – Johnsyweb Feb 6 '13 at 20:42
3  
@Johnsyweb: It contains several statements besides the single return statement, however. – Ben Voigt Feb 6 '13 at 20:50
    
What compiler are you using? – GManNickG Feb 6 '13 at 20:51
    
@GManNickG updated with compiler info – user2015453 Feb 6 '13 at 20:55
    
Short answer: The book is correct and your compiler is wrong. (Long answers already provided by BenVoigt and dribeas.) – aschepler Feb 6 '13 at 20:56
up vote 6 down vote accepted

The book accurately reflects the rules in draft n3290 of the Standard. Perhaps your compiler implemented a different draft.

In section 5.1.2p4, the draft reads

If a lambda-expression does not include a trailing-return-type, it is as if the trailing-return-type denotes the following type:

  • if the compound-statement is of the form { attribute-specifier-seqopt return expression ; } the type of the returned expression after lvalue-to-rvalue conversion, array-to-pointer conversion, and function-to-pointer conversion;
  • otherwise, void.

The syntactic construct attribute-specifier-seq may be alignas or the double-bracketed attributes. Not variable declarations.

Draft n3485, which followed publication of C++11 (i.e. it is work in progress toward C++1y), contains the same wording. I don't know if there was a different rule in some draft earlier than n3290.

share|improve this answer
    
Also there is a proposition to eliminate the requirement for only one statement for return-type deduction in the future. – Seth Carnegie Feb 6 '13 at 21:00
    
It's not from a different version of the spec, it's a compiler extension. – bames53 Feb 10 '13 at 21:10

If you use popular compilers (gcc, Visual Studio), you usually don't need to specify return type as long as the compiler is able to determine it unambiguously - like in your example.

The following example shows a lambda, which requires explicit return type information:

auto lambda = [](bool b) -> float
    { 
        if (b) 
            return 5.0f; 
        else 
            return 6.0; 
    };

I asked Bjarne Stroustrup regarding this matter, his comment:

I do not know if C++11 allows the deduction of the return type is there are several return statements with identical return type. If not, that's planned for C++14.

share|improve this answer
4  
According to the standard even the lambda in the original question requires the return type. – David Rodríguez - dribeas Feb 6 '13 at 20:47
    
Indeed, but both Visual Studio and GCC compiles the original code without warnings. It's quite logical - in most situations compiler is able to clearly determine the return type - even, if the lambda's body is not of the form return sth. I sent an email to Bjarne Stroustrup about this matter, if he replies, I'll modify my answer. – Spook Feb 6 '13 at 21:27
    
@Spook : Compiling without warnings doesn't mean much – if they don't implement this extension, then you're merely invoking UB, which does not require a warning. – ildjarn Feb 8 '13 at 0:24
    
Standard speaks nothing of undefined behavior here. Note, that we're talking about return type, what affects the whole compilation process. Undefined behavior would require an 'undefined type', which would pass through all assignment-type checks, parameter-pass checks etc. In this particular case, if it compiles, one should rather assume, that compiler implements the extended syntax rather than undefined behavior will occur. – Spook Feb 12 '13 at 8:22
    
@Spook : You're right, I was erroneously thinking of the reverse scenario of having no return statement in a function with a non-void return type. Apologies for the noise. – ildjarn Feb 15 '13 at 1:02

I am not sure of what to make from the quote in the question, but here is what the C++11 standard says about lambdas without declarator or return type:

If a lambda-expression does not include a lambda-declarator, it is as if the lambda-declarator were (). If a lambda-expression does not include a trailing-return-type, it is as if the trailing-return-type denotes the following type (5.1.2p4):

— if the compound-statement is of the form { attribute-specifier-seqopt return expression ; } the type of the returned expression after lvalue-to-rvalue conversion (4.1), array-to-pointer conversion (4.2), and function-to-pointer conversion (4.3);

— otherwise, void.

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1  
That means in fact that the lambda may contain nothing but a return statement. The code of the OP is ill-formed - attempting to return a value from a void lambda. – JoergB Feb 6 '13 at 20:46
    
@JoergB: Not really, it means that the return type will be void if there is anything other than a single return statement. But the lambda can have as much code as you want. That is, this is a valid lambda: [](int i){std::cout << i; std::cout << i*i; .... somemorecode(); } – David Rodríguez - dribeas Feb 6 '13 at 20:48
    
The OP lambda is ill-formed not because it doesn't have a return type, but because of 6.6.3 "A return statement with an expression of non-void type can be used only in functions returning a value." – aschepler Feb 6 '13 at 20:54
1  
@David Rodriguez: No. As quoted, it states that the entire compound-statement that makes up the body of the lambda, must be a single return statement. – JoergB Feb 6 '13 at 20:56
1  
Sure, but it seems, that all of them (or at least most of them) does that. It's weird, this restriction seems to be unnecessary - and IMO should be left implementation-specific (eg. in case of multiple statements). Compilers obviously can deduce the returned type in many situations, why does the standard restrict that to a single return statement? – Spook Feb 6 '13 at 21:37

Clang implements the proposed resolution to C++ core issue 975. That allows an arbitrary body for a lambda, with any number of return statements, and deduces the return value from the returned expression under the proviso that they must all produce the same type.

In C++14, this support is generalized further by N3638, which was voted into the working draft for the standard at the Bristol meeting of WG21.

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Draft n3485 indicates that if the compiler can unambiguously determine the return type it will allow for the lambda to not specify it.

share|improve this answer
    
I just downloaded it from github.com/cplusplus/draft and the wording hasn't changed. – Ben Voigt Feb 6 '13 at 20:54
    
I'm reading this draft now and I cannot find the informations you're citing. Can you provide page or section number? – Spook Feb 6 '13 at 20:54
    
See section 5.1.2.4. Did I misunderstand what the text says, perhaps? – Camilo Bravo Valdés Feb 6 '13 at 20:57
    
Can you cite the fragment? I found only the text cited by DavidRodriguez and it states, that compiler may deduce the returned type only if the lambda's body is a single return statement (otherwise, void return type is assumed). – Spook Feb 6 '13 at 21:32
    
I see... I apologize then for all the fuss... – Camilo Bravo Valdés Feb 6 '13 at 21:37

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