forked from OSchip/llvm-project
265 lines
8.1 KiB
C++
265 lines
8.1 KiB
C++
// RUN: clang-cc -fsyntax-only -verify %s
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template<typename T>
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struct is_pointer {
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static const bool value = false;
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};
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template<typename T>
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struct is_pointer<T*> {
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static const bool value = true;
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};
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template<typename T>
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struct is_pointer<const T*> {
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static const bool value = true;
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};
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int array0[is_pointer<int>::value? -1 : 1];
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int array1[is_pointer<int*>::value? 1 : -1];
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int array2[is_pointer<const int*>::value? 1 : -1]; // expected-error{{partial ordering}} \
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// expected-error{{negative}}
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template<typename T>
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struct is_lvalue_reference {
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static const bool value = false;
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};
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template<typename T>
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struct is_lvalue_reference<T&> {
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static const bool value = true;
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};
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int lvalue_ref0[is_lvalue_reference<int>::value? -1 : 1];
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int lvalue_ref1[is_lvalue_reference<const int&>::value? 1 : -1];
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template<typename T, typename U>
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struct is_same {
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static const bool value = false;
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};
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template<typename T>
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struct is_same<T, T> {
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static const bool value = true;
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};
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typedef int INT;
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typedef INT* int_ptr;
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int is_same0[is_same<int, int>::value? 1 : -1];
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int is_same1[is_same<int, INT>::value? 1 : -1];
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int is_same2[is_same<const int, int>::value? -1 : 1];
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int is_same3[is_same<int_ptr, int>::value? -1 : 1];
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template<typename T>
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struct remove_reference {
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typedef T type;
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};
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template<typename T>
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struct remove_reference<T&> {
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typedef T type;
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};
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int remove_ref0[is_same<remove_reference<int>::type, int>::value? 1 : -1];
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int remove_ref1[is_same<remove_reference<int&>::type, int>::value? 1 : -1];
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template<typename T>
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struct is_incomplete_array {
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static const bool value = false;
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};
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template<typename T>
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struct is_incomplete_array<T[]> {
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static const bool value = true;
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};
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int incomplete_array0[is_incomplete_array<int>::value ? -1 : 1];
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int incomplete_array1[is_incomplete_array<int[1]>::value ? -1 : 1];
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int incomplete_array2[is_incomplete_array<bool[]>::value ? 1 : -1];
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int incomplete_array3[is_incomplete_array<int[]>::value ? 1 : -1];
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template<typename T>
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struct is_array_with_4_elements {
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static const bool value = false;
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};
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template<typename T>
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struct is_array_with_4_elements<T[4]> {
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static const bool value = true;
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};
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int array_with_4_elements0[is_array_with_4_elements<int[]>::value ? -1 : 1];
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int array_with_4_elements1[is_array_with_4_elements<int[1]>::value ? -1 : 1];
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int array_with_4_elements2[is_array_with_4_elements<int[4]>::value ? 1 : -1];
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int array_with_4_elements3[is_array_with_4_elements<int[4][2]>::value ? 1 : -1];
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template<typename T>
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struct get_array_size;
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template<typename T, unsigned N>
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struct get_array_size<T[N]> {
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static const unsigned value = N;
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};
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int array_size0[get_array_size<int[12]>::value == 12? 1 : -1];
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template<typename T>
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struct is_unary_function {
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static const bool value = false;
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};
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template<typename T, typename U>
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struct is_unary_function<T (*)(U)> {
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static const bool value = true;
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};
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int is_unary_function0[is_unary_function<int>::value ? -1 : 1];
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int is_unary_function1[is_unary_function<int (*)()>::value ? -1 : 1];
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int is_unary_function2[is_unary_function<int (*)(int, bool)>::value ? -1 : 1];
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int is_unary_function3[is_unary_function<int (*)(bool)>::value ? 1 : -1];
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int is_unary_function4[is_unary_function<int (*)(int)>::value ? 1 : -1];
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template<typename T>
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struct is_unary_function_with_same_return_type_as_argument_type {
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static const bool value = false;
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};
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template<typename T>
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struct is_unary_function_with_same_return_type_as_argument_type<T (*)(T)> {
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static const bool value = true;
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};
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int is_unary_function5[is_unary_function_with_same_return_type_as_argument_type<int>::value ? -1 : 1];
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int is_unary_function6[is_unary_function_with_same_return_type_as_argument_type<int (*)()>::value ? -1 : 1];
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int is_unary_function7[is_unary_function_with_same_return_type_as_argument_type<int (*)(int, bool)>::value ? -1 : 1];
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int is_unary_function8[is_unary_function_with_same_return_type_as_argument_type<int (*)(bool)>::value ? -1 : 1];
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int is_unary_function9[is_unary_function_with_same_return_type_as_argument_type<int (*)(int)>::value ? 1 : -1];
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int is_unary_function10[is_unary_function_with_same_return_type_as_argument_type<int (*)(int, ...)>::value ? -1 : 1];
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int is_unary_function11[is_unary_function_with_same_return_type_as_argument_type<int (* const)(int)>::value ? -1 : 1];
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template<typename T>
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struct is_binary_function {
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static const bool value = false;
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};
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template<typename R, typename T1, typename T2>
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struct is_binary_function<R(T1, T2)> {
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static const bool value = true;
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};
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int is_binary_function0[is_binary_function<int(float, double)>::value? 1 : -1];
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template<typename T>
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struct is_member_pointer {
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static const bool value = false;
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};
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template<typename T, typename Class>
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struct is_member_pointer<T Class::*> {
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static const bool value = true;
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};
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struct X { };
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int is_member_pointer0[is_member_pointer<int X::*>::value? 1 : -1];
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int is_member_pointer1[is_member_pointer<const int X::*>::value? 1 : -1];
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int is_member_pointer2[is_member_pointer<int (X::*)()>::value? 1 : -1];
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int is_member_pointer3[is_member_pointer<int (X::*)(int) const>::value? 1 : -1];
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int is_member_pointer4[is_member_pointer<int (X::**)(int) const>::value? -1 : 1];
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int is_member_pointer5[is_member_pointer<int>::value? -1 : 1];
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template<typename T>
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struct is_member_function_pointer {
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static const bool value = false;
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};
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template<typename T, typename Class>
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struct is_member_function_pointer<T (Class::*)()> {
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static const bool value = true;
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};
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template<typename T, typename Class>
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struct is_member_function_pointer<T (Class::*)() const> {
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static const bool value = true;
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};
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template<typename T, typename Class>
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struct is_member_function_pointer<T (Class::*)() volatile> {
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static const bool value = true;
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};
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template<typename T, typename Class>
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struct is_member_function_pointer<T (Class::*)() const volatile> {
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static const bool value = true;
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};
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template<typename T, typename Class, typename A1>
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struct is_member_function_pointer<T (Class::*)(A1)> {
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static const bool value = true;
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};
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template<typename T, typename Class, typename A1>
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struct is_member_function_pointer<T (Class::*)(A1) const> {
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static const bool value = true;
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};
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template<typename T, typename Class, typename A1>
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struct is_member_function_pointer<T (Class::*)(A1) volatile> {
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static const bool value = true;
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};
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template<typename T, typename Class, typename A1>
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struct is_member_function_pointer<T (Class::*)(A1) const volatile> {
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static const bool value = true;
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};
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int is_member_function_pointer0[
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is_member_function_pointer<int X::*>::value? -1 : 1];
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int is_member_function_pointer1[
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is_member_function_pointer<int (X::*)()>::value? 1 : -1];
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int is_member_function_pointer2[
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is_member_function_pointer<X (X::*)(X&)>::value? 1 : -1];
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int is_member_function_pointer3[
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is_member_function_pointer<int (X::*)() const>::value? 1 : -1];
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int is_member_function_pointer4[
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is_member_function_pointer<int (X::*)(float) const>::value? 1 : -1];
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// Test substitution of non-dependent arguments back into the template
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// argument list of the class template partial specialization.
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template<typename T, typename ValueType = T>
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struct is_nested_value_type_identity {
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static const bool value = false;
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};
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template<typename T>
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struct is_nested_value_type_identity<T, typename T::value_type> {
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static const bool value = true;
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};
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template<typename T>
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struct HasValueType {
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typedef T value_type;
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};
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struct HasIdentityValueType {
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typedef HasIdentityValueType value_type;
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};
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struct NoValueType { };
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int is_nested_value_type_identity0[
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is_nested_value_type_identity<HasValueType<int> >::value? -1 : 1];
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int is_nested_value_type_identity1[
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is_nested_value_type_identity<HasIdentityValueType>::value? 1 : -1];
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// FIXME: Enable when we have SFINAE support
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//int is_nested_value_type_identity2[
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// is_nested_value_type_identity<NoValueType>::value? -1 : 1];
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// C++ [temp.class.spec]p4:
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template<class T1, class T2, int I> class A { }; //#1
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template<class T, int I> class A<T, T*, I> { }; //#2
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template<class T1, class T2, int I> class A<T1*, T2, I> { }; //#3
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template<class T> class A<int, T*, 5> { }; //#4
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template<class T1, class T2, int I> class A<T1, T2*, I> { }; //#5
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