Questions tagged [return-type-deduction]

Return-type deduction is a C++11 feature for lambda expressions and trailing return-types, that also applies to normal functions in C++14.

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7
votes
1answer
183 views

auto return type not deducing reference

I have the following code: #include <iostream> struct C { int a; int& get() { return a; } }; struct D { int a; int get() { return a; } }; template <typename T> auto ...
2
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1answer
105 views

Function declaration with auto using new C++11 syntax but with auto& and without ->

consider the function definition below: auto& Fnc1() { return someNonLocalVariable; } Return type is not explicitly specified by -> in this case. But there is the & after auto keyword. Does ...
7
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2answers
406 views

Legitimate uses of the trailing return type syntax as of C++14

Is there actually any reason to use the following syntax anymore : template<typename T> auto access(T& t, int i) -> decltype(t[i]) { return t[i]; } Now that we can use : ...
3
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3answers
114 views

Deducing the return type of an inline static member function in class definition

I'm trying to create an alias to a return type after an inline function definition to store a member variable. I simplified my situation below (the real type I want to alias is much uglier to type ...
1
vote
2answers
72 views

check return type from templated method

I am working on c++11 application: There I have some templated methods: template <class P, class T> void copyMemberToDocument(const P &childClass std::string (T::*...
10
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1answer
436 views

Why does “return (str);” deduce a different type than “return str;”? [duplicate]

Case 1: #include <iostream> decltype(auto) fun() { std::string str = "In fun"; return str; } int main() { std::cout << fun() << std::endl; } Here, program ...
3
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2answers
201 views

How to make lambdas work with std::nullopt

Background I have a series of lambdas that perform different checks on the captured variables and return std::nullopt if the check failed. return std::nullopt is the first return statement. Then, if ...
18
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1answer
625 views

Call operator with auto return type being chosen instead of constructor when using std::function

The following snippet: #include <functional> struct X { X(std::function<double(double)> fn); // (1) X(double, double); // (2) template <class T> ...
2
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0answers
172 views

What is the return type of a function returning a range?

This function can be compiled as is. auto works well here. But what would the explicit return type of such a function be? auto rangeTest() { static const std::vector<int> vi{1,2,3,4,...
7
votes
2answers
173 views

Is the type of a function parameter deducible?

I have a class which uses return code: class MyClass { // ... public: // ValueType get_value() const; // usual code ErrorCode get_value(ValueType& value) const; // ...
0
votes
1answer
48 views

Function result auto&&

I know the meaning of return type auto and decltype(auto). Also I know auto&& for variable declarations. So I tried auto&& as return type: template <class X, class Y> auto a(X &...
2
votes
1answer
164 views

Why type deduction of decltype(auto) from element of rvalue int vector is int&?

The following code results 0100 (complied with CLang, GNU++14). I would expect 0001, because func takes rvalue vector as parameter, then forward(c)[0] is const reference of int, so type deduction of ...
22
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1answer
317 views

decltype deducted result of in-class defined function

Why does struct MyStruct { auto foo () { return 1; } auto bar () { return foo(); } }; compile, but when using a trailing return type like so: struct MyStruct { auto foo () { return 1; } ...
2
votes
2answers
162 views

Return type deduction into a template parameter

Is there a way one can do this? As far as I know there isn't since the language does not support it but I wanted to confirm template <typename Something> ConceptCheck<auto> ...
1
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2answers
71 views

Scala, why do I not need to import deduced types

I feel like I should preface this with the fact that I'm building my projects with sbt. My problem is that, if at compile time a method returns something of an unimported type, in the file where I ...
0
votes
1answer
369 views

Why sometimes std::cout is not enough and using namespace std is required?

I used the following code to test if my compiler was c++14 compliant: #include <iostream> #include <string> using namespace std; auto add([](auto a, auto b){ return a+b ;}); auto main() -&...
18
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3answers
2k views

How to typedef the return type of a method from a template class?

I have a templated class Helper which looks like this: template< typename Mapper > class Helper { public: using mappedType = ... ; }; I would need mappedType to be the type returned by ...
5
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3answers
241 views

Why lambda removes cv and ref?

Given a lambda: auto f = [](const T& var){ return var; }; Why return type of f is T (not const T&)? Where is this in the Standard?
4
votes
2answers
389 views

Why does decltype return type fail for recursive template, while return type deduction works just fine?

While working on a C++11 type-set, I tried to implement this function (stripped down to the minimum): constexpr auto test() -> bool; template <typename T, typename... Rest> constexpr auto ...
28
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2answers
667 views

Is void{} legal or not?

This is a follow-up up of this question. In the comments and in the answer it is said more than once that void{} is neither a valid type-id nor a valid expression. That was fine, it made sense and ...
32
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5answers
2k views

Why can the return type of main not be deduced?

As expected, the following fails in C++11 because that language does not have return type deduction for bog standard functions: auto main() { return 0; } However, C++14 does, so I cannot explain ...
38
votes
1answer
1k views

Why does auto return type deduction work with not fully defined types?

Consider the following: template<typename Der> struct Base { // NOTE: if I replace the decltype(...) below with auto, code compiles decltype(&Der::operator()) getCallOperator() ...
1
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1answer
178 views

Can we use the decltype of a member function in the parameter list of another member function?

Please consider the following code snippet: template<class Tuple> class vector { public: auto size() const noexcept(noexcept(m_elements.size())) { return m_elements.size(); } ...
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2answers
109 views

C++11 Avoiding Redundant Return Type in specific Situation

Ok, thanks everyone who has looked at this. I've recreated the exact scenario for easy viewing at the link below, so I'll just comment out the original text I had as it wasn't clear. http://cpp.sh/...
8
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3answers
1k views

Why do I get a type deduction error for a lambda returning lambda with multiple return paths?

I have the following code: int main() { auto f = [] { if (1) return [] { return 1; }; else return [] { return 2; }; }; return f()(); } which raises the following compiler ...
2
votes
2answers
601 views

Functionality of a pure virtual function with variable return type - workaround/design?

I'm working on a very, very simple data access layer (DAL) featuring two classes: DataTransferObject (DTO) and DataAccessObject (DAO). Both classes are abstract base classes and need to be inherited ...
34
votes
2answers
2k views

Does auto return type deduction force multiple functions to have the same return type?

Consider the below snippet: struct A { auto foo(), bar(); }; auto A::foo() { return 1; } auto A::bar() { return 'a'; } int main() { } It compiles fine in Clang++ 3.7.0. It fails in G++ 5.2.0: ...
2
votes
1answer
49 views

Type deduction in C++14 if you don't have the source [duplicate]

With the new return type deduction in C++14, you can write code like: auto almostPi (void) { return 3.14159; } and the function itself will use the return value to decide the actual return type for ...
1
vote
1answer
420 views

Template function to return tuple values (different types) via ENUM lookup

the following code produces "error: invalid operands of types '' and 'const size_t {aka const long unsigned int}' to binary 'operator<'" (gcc-4.9.1) I just want a lookup function for default ...
6
votes
1answer
265 views

Why decltype is used in trailing return types?

consider the following codes: template< class T1 , class T2> auto calc( T1 a , T2 b ) { return a + b ; } template< class T1 , class T2> auto calc( T1 a , T2 b ) -> decltype( a + b ...
4
votes
4answers
655 views

Deduce template return type in C++

Currently I try to write a function retrieveKeys() which gives me the keys of a std::map and stores it in some std::container. The function shall be generic in two ways: Accept std::map and std::...
1
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2answers
303 views

Template function return type deduction in C++03

I would like to implement the following in C++03: template <typename T1, typename T2> T1 convert(bool condition, T2& value) { return condition ? value : conversionFunction(value); } ...
7
votes
3answers
810 views

Variadic template recursive return type deduction compilation error

Why the code below does not compile? template <typename T> T sum(T t){ return t; } template <typename T, typename ...U> auto sum(T t, U... u) -> decltype(t + sum(u...)) { ...
27
votes
3answers
3k views

What is the return type of a lambda expression if an item of a vector is returned?

Consider the following snippet: #include <iostream> #include <vector> #include <functional> int main() { std::vector<int>v = {0,1,2,3,4,5,6}; std::function<const ...
9
votes
1answer
385 views

Template friend function and return type deduction

Note: This question is really close to Return type deduction for in-class friend functions, but I did not find the answer to my problem there. Tested with clang 3.4 with std=c++1y and clang 3.5 with ...
0
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0answers
977 views

return type deduction and function declarations

How can I declare a function in a class that uses return type deduction? This is fine: auto foo() { return 5; } But this does not work: class Test { auto foo(); }; auto Test::foo() { ...
3
votes
2answers
2k views

C++ function with variable return type using 'auto'

I'm trying to write a function that returns various types depending on the if-statement. auto parseParameterValue(QString aParameterValueString, int aParameterType) { if(aParameterType == 0) {...
3
votes
1answer
218 views

Using functions that return placeholder types defined in another translation unit

I'm having some trouble understanding how the C++14 extension of the auto type-specifier described in N3638 can possibly be implemented, and what, exactly, is allowed. Specifically, one of the ...
24
votes
1answer
1k views

Why does auto return type change the overload resolution?

Thanks to decltype as a return type, C++11 made it extremely easy to introduce decorators. For instance, consider this class: struct base { void fun(unsigned) {} }; I want to decorate it with ...
11
votes
2answers
2k views

How to get the return type of a member function from within a class?

The following program yields a compilation error with clang, though it passes on other compilers: #include <utility> struct foo { auto bar() -> decltype(0) { return 0; } using ...
6
votes
1answer
355 views

Is it always safe to use C++14's auto function type return deduction in place of std::common_type?

I'm upgrading part of my codebase from C++11 to C++14. I have several math utility functions that take multiple input arguments and return a single value of type std::common_type_t<...>. I'm ...
12
votes
1answer
400 views

Is it possible to ignore the trailing return type feature of c++11 in favor of the function return type deduction feature of c++14?

When I skip the return type of an expression The following code in C++11: auto function(X x, Y y) -> decltype(x + y) { return x + y; } Is equal to the following code in C++14: decltype(auto)...
1
vote
1answer
72 views

passing a function as template type and deducting its types in c++

double f(const int& i) { return 1.5 * i; } template< typename _out, typename _in, _out (*__f)(const _in&)> class X {}; // template <... __f> class X {}; int main()...
6
votes
2answers
338 views

Does a placeholder in a trailing-return-type override an initial placeholder?

g++ appears to accept any combination of auto and decltype(auto) as initial and trailing return types: int a; auto f() { return (a); } // int auto g() -> auto { return (...
128
votes
2answers
44k views

What are some uses of decltype(auto)?

In c++14 the decltype(auto) idiom is introduced. Typically its use is to allow auto declarations to use the decltype rules on the given expression. Searching for examples of "good" usage of the ...
0
votes
2answers
153 views

How to deduce the return type of a function which takes a reference as parameter

I am trying to deduce the return type of a function and use it as return type of a member function. For this I am using a decltype expression. But all my attempts fail to compile if the given function ...
4
votes
1answer
586 views

C++1y return type inference

Programming languages with some variant of Hindley-Milner type inference can easily infer the type of expressions such as let rec fix f x = f (fix f) x whereas the return type inference in C++1y ...
5
votes
1answer
880 views

Constexpr class template member function with deduced void return type?

Consider the following simple class X and class template Y<T> that each define four constexpr members, three of which have their return types deduced (new C++1y feature), and another subset of ...
4
votes
0answers
273 views

Is there any IDE that support “return type deduction” in gcc 4.8(C++1y/C++14) and autocomplete for it? [closed]

Like auto test(){ string a= "123"; return a; } .... test().<autocomplete> I found that Netbeans 7.4 and Eclipse 4.2 didn't support this feature yet.
13
votes
4answers
6k views

How do I deduce auto before a function is called?

while experimenting with function return type deduction auto func(); int main() { func(); } auto func() { return 0; } error: use of ‘auto func()’ before deduction of ‘auto’ Is there a way to use ...