is_convertible
cannot be instantiated for non-convertible typesSection: 21.3.7 [meta.rel] Status: C++11 Submitter: Daniel Krügler Opened: 2009-01-25 Last modified: 2016-01-28
Priority: Not Prioritized
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Discussion:
Addresses UK 206
Related to 1114.
The current specification of std::is_convertible
(reference is draft
N2798)
is basically defined by 21.3.7 [meta.rel] p.4:
In order to instantiate the template
is_convertible<From, To>
, the following code shall be well formed:template <class T> typename add_rvalue_reference<T>::type create(); To test() { return create<From>(); }[Note: This requirement gives well defined results for reference types, void types, array types, and function types. — end note]
The first sentence can be interpreted, that e.g. the expression
std::is_convertible<double, int*>::value
is ill-formed because std::is_convertible<double, int*>
could not be
instantiated, or in more general terms: The wording requires that
std::is_convertible<X, Y>
cannot be instantiated for otherwise valid
argument types X
and Y
if X
is not convertible to Y
.
This semantic is both unpractical and in contradiction to what the last type traits paper N2255 proposed:
If the following
test
function is well formed codeb
istrue
, else it isfalse
.template <class T> typename add_rvalue_reference<T>::type create(); To test() { return create<From>(); }[Note: This definition gives well defined results for
reference
types,void
types, array types, and function types. — end note]
[ Post Summit: ]
Jens: Checking that code is well-formed and then returning
true
/false
sounds like speculative compilation. John Spicer would really dislike this. Please find another wording suggesting speculative compilation.Recommend Open.
[ Post Summit, Howard adds: ]
John finds the following wording clearer:
Template Condition Comments template <class From, class To>
struct is_convertible;see below From
andTo
shall be complete types, arrays of unknown bound, or (possibly cv-qualified)void
types.Given the following function prototype:
template <class T> typename add_rvalue_reference<T>::type create();
is_convertible<From, To>::value
shall betrue
if the return expression in the following code would be well-formed, including any implicit conversions to the return type of the function, elseis_convertible<From, To>::value
shall befalse
.To test() { return create<From>(); }
Original proposed wording:
In 21.3.7 [meta.rel]/4 change:
In order to instantiate the templateIf the following code is well formedis_convertible<From, To>
, the following code shall be well formedis_convertible<From, To>::value
istrue
, otherwisefalse
:[..]
Revision 2
In 21.3.7 [meta.rel] change:
Template Condition Comments ... ... ... template <class From, class To>
struct is_convertible;The code set out below shall be well formed.see belowFrom
andTo
shall be complete types, arrays of unknown bound, or (possibly cv-qualified)void
types.-4-
In order to instantiate the templateGiven the following function prototype:is_convertible<From, To>
, the following code shall be well formed:template <class T> typename add_rvalue_reference<T>::type create();
is_convertible<From, To>::value
inherits either directly or indirectly fromtrue_type
if the return expression in the following code would be well-formed, including any implicit conversions to the return type of the function, elseis_convertible<From, To>::value
inherits either directly or indirectly fromfalse_type
.To test() { return create<From>(); }[Note: This requirement gives well defined results for reference types, void types, array types, and function types. -- end note]
[ Batavia (2009-05): ]
We agree with the proposed resolution. Move to Tentatively Ready.
Proposed resolution:
In 21.3.7 [meta.rel] change:
Template Condition Comments ... ... ... template <class From, class To>
struct is_convertible;The code set out below shall be well formed.see belowFrom
andTo
shall be complete types, arrays of unknown bound, or (possibly cv-qualified)void
types.-4-
In order to instantiate the templateGiven the following function prototype:is_convertible<From, To>
, the following code shall be well formed:template <class T> typename add_rvalue_reference<T>::type create();the predicate condition for a template specialization
is_convertible<From, To>
shall be satisfied, if and only if the return expression in the following code would be well-formed, including any implicit conversions to the return type of the function.To test() { return create<From>(); }[Note: This requirement gives well defined results for reference types, void types, array types, and function types. — end note]