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1 // RUN: %clang_cc1 -std=c++0x -fsyntax-only -verify %s
2 
3 // Example bind implementation from the variadic templates proposal,
4 // ISO C++ committee document number N2080.
5 
6 // Helper type traits
7 template<typename T>
8 struct add_reference {
9   typedef T &type;
10 };
11 
12 template<typename T>
13 struct add_reference<T&> {
14   typedef T &type;
15 };
16 
17 template<typename T>
18 struct add_const_reference {
19   typedef T const &type;
20 };
21 
22 template<typename T>
23 struct add_const_reference<T&> {
24   typedef T &type;
25 };
26 
27 template<typename T, typename U>
28 struct is_same {
29   static const bool value = false;
30 };
31 
32 template<typename T>
33 struct is_same<T, T> {
34   static const bool value = true;
35 };
36 
37 template<typename T>
38 class reference_wrapper {
39   T *ptr;
40 
41 public:
reference_wrapper(T & t)42   reference_wrapper(T& t) : ptr(&t) { }
operator T&() const43   operator T&() const { return *ptr; }
44 };
45 
ref(T & t)46 template<typename T> reference_wrapper<T> ref(T& t) {
47   return reference_wrapper<T>(t);
48 }
cref(const T & t)49 template<typename T> reference_wrapper<const T> cref(const T& t) {
50   return reference_wrapper<const T>(t);
51 }
52 
53 template<typename... Values> class tuple;
54 
55 // Basis case: zero-length tuple
56 template<> class tuple<> { };
57 
58 template<typename Head, typename... Tail>
59 class tuple<Head, Tail...> : private tuple<Tail...> {
60   typedef tuple<Tail...> inherited;
61 
62 public:
tuple()63   tuple() { }
64   // implicit copy-constructor is okay
65 
66   // Construct tuple from separate arguments.
tuple(typename add_const_reference<Head>::type v,typename add_const_reference<Tail>::type...vtail)67   tuple(typename add_const_reference<Head>::type v,
68         typename add_const_reference<Tail>::type... vtail)
69     : m_head(v), inherited(vtail...) { }
70 
71   // Construct tuple from another tuple.
tuple(const tuple<VValues...> & other)72   template<typename... VValues> tuple(const tuple<VValues...>& other)
73     : m_head(other.head()), inherited(other.tail()) { }
74 
75   template<typename... VValues> tuple&
operator =(const tuple<VValues...> & other)76   operator=(const tuple<VValues...>& other) {
77     m_head = other.head();
78     tail() = other.tail();
79     return *this;
80   }
81 
head()82   typename add_reference<Head>::type head() { return m_head; }
head() const83   typename add_reference<const Head>::type head() const { return m_head; }
tail()84   inherited& tail() { return *this; }
tail() const85   const inherited& tail() const { return *this; }
86 
87 protected:
88   Head m_head;
89 };
90 
91 // Creation functions
92 template<typename T>
93 struct make_tuple_result {
94   typedef T type;
95 };
96 
97 template<typename T>
98 struct make_tuple_result<reference_wrapper<T> > {
99   typedef T& type;
100 };
101 
102 template<typename... Values>
103 tuple<typename make_tuple_result<Values>::type...>
make_tuple(const Values &...values)104 make_tuple(const Values&... values) {
105   return tuple<typename make_tuple_result<Values>::type...>(values...);
106 }
107 
108 template<typename... Values>
tie(Values &...values)109 tuple<Values&...> tie(Values&... values) {
110   return tuple<Values&...>(values...);
111 }
112 
113 // Helper classes
114 template<typename Tuple> struct tuple_size;
115 
116 template<typename... Values> struct tuple_size<tuple<Values...> > {
117   static const int value = sizeof...(Values);
118 };
119 
120 template<int I, typename Tuple> struct tuple_element;
121 
122 template<int I, typename Head, typename... Tail>
123 struct tuple_element<I, tuple<Head, Tail...> > {
124   typedef typename tuple_element<I-1, tuple<Tail...> >::type type;
125 };
126 
127 template<typename Head, typename... Tail>
128 struct tuple_element<0, tuple<Head, Tail...> > {
129   typedef Head type;
130 };
131 
132 // Element access
133 template<int I, typename Tuple> class get_impl;
134 template<int I, typename Head, typename... Values>
135 class get_impl<I, tuple<Head, Values...> > {
136   typedef typename tuple_element<I-1, tuple<Values...> >::type Element;
137   typedef typename add_reference<Element>::type RJ;
138   typedef typename add_const_reference<Element>::type PJ;
139   typedef get_impl<I-1, tuple<Values...> > Next;
140 public:
get(tuple<Head,Values...> & t)141   static RJ get(tuple<Head, Values...>& t) { return Next::get(t.tail()); }
get(const tuple<Head,Values...> & t)142   static PJ get(const tuple<Head, Values...>& t) { return Next::get(t.tail()); }
143 };
144 
145 template<typename Head, typename... Values>
146 class get_impl<0, tuple<Head, Values...> > {
147   typedef typename add_reference<Head>::type RJ;
148   typedef typename add_const_reference<Head>::type PJ;
149 public:
get(tuple<Head,Values...> & t)150   static RJ get(tuple<Head, Values...>& t) { return t.head(); }
get(const tuple<Head,Values...> & t)151   static PJ get(const tuple<Head, Values...>& t) { return t.head(); }
152 };
153 
154 template<int I, typename... Values> typename add_reference<
155 typename tuple_element<I, tuple<Values...> >::type >::type
get(tuple<Values...> & t)156 get(tuple<Values...>& t) {
157   return get_impl<I, tuple<Values...> >::get(t);
158 }
159 
160 template<int I, typename... Values> typename add_const_reference<
161 typename tuple_element<I, tuple<Values...> >::type >::type
get(const tuple<Values...> & t)162 get(const tuple<Values...>& t) {
163   return get_impl<I, tuple<Values...> >::get(t);
164 }
165 
166 // Relational operators
operator ==(const tuple<> &,const tuple<> &)167 inline bool operator==(const tuple<>&, const tuple<>&) { return true; }
168 
169 template<typename T, typename... TTail, typename U, typename... UTail>
operator ==(const tuple<T,TTail...> & t,const tuple<U,UTail...> & u)170 bool operator==(const tuple<T, TTail...>& t, const tuple<U, UTail...>& u) {
171   return t.head() == u.head() && t.tail() == u.tail();
172 }
173 
174 template<typename... TValues, typename... UValues>
operator !=(const tuple<TValues...> & t,const tuple<UValues...> & u)175 bool operator!=(const tuple<TValues...>& t, const tuple<UValues...>& u) {
176   return !(t == u);
177 }
178 
operator <(const tuple<> &,const tuple<> &)179 inline bool operator<(const tuple<>&, const tuple<>&) { return false; }
180 
181 template<typename T, typename... TTail, typename U, typename... UTail>
operator <(const tuple<T,TTail...> & t,const tuple<U,UTail...> & u)182 bool operator<(const tuple<T, TTail...>& t, const tuple<U, UTail...>& u) {
183   return (t.head() < u.head() || (!(t.head() < u.head()) && t.tail() < u.tail()));
184 }
185 
186 template<typename... TValues, typename... UValues>
operator >(const tuple<TValues...> & t,const tuple<UValues...> & u)187 bool operator>(const tuple<TValues...>& t, const tuple<UValues...>& u) {
188   return u < t;
189 }
190 
191 template<typename... TValues, typename... UValues>
operator <=(const tuple<TValues...> & t,const tuple<UValues...> & u)192 bool operator<=(const tuple<TValues...>& t, const tuple<UValues...>& u) {
193   return !(u < t);
194 }
195 
196 template<typename... TValues, typename... UValues>
operator >=(const tuple<TValues...> & t,const tuple<UValues...> & u)197 bool operator>=(const tuple<TValues...>& t, const tuple<UValues...>& u) {
198   return !(t < u);
199 }
200 
201 // make_indices helper
202 template<int...> struct int_tuple {};
203 // make_indexes impl is a helper for make_indexes
204 template<int I, typename IntTuple, typename... Types> struct make_indexes_impl;
205 
206 template<int I, int... Indexes, typename T, typename... Types>
207 struct make_indexes_impl<I, int_tuple<Indexes...>, T, Types...> {
208   typedef typename make_indexes_impl<I+1, int_tuple<Indexes..., I>, Types...>::type type;
209 };
210 
211 template<int I, int... Indexes>
212 struct make_indexes_impl<I, int_tuple<Indexes...> > {
213   typedef int_tuple<Indexes...> type;
214 };
215 
216 template<typename... Types>
217 struct make_indexes : make_indexes_impl<0, int_tuple<>, Types...> {
218 };
219 
220 // Bind
221 template<typename T> struct is_bind_expression {
222   static const bool value = false;
223 };
224 
225 template<typename T> struct is_placeholder {
226   static const int value = 0;
227 };
228 
229 
230 template<typename F, typename... BoundArgs> class bound_functor {
231   typedef typename make_indexes<BoundArgs...>::type indexes;
232 public:
233   typedef typename F::result_type result_type;
bound_functor(const F & f,const BoundArgs &...bound_args)234   explicit bound_functor(const F& f, const BoundArgs&... bound_args)
235     : f(f), bound_args(bound_args...) { } template<typename... Args>
236   typename F::result_type operator()(Args&... args);
237 private: F f;
238   tuple<BoundArgs...> bound_args;
239 };
240 
241 template<typename F, typename... BoundArgs>
bind(const F & f,const BoundArgs &...bound_args)242 inline bound_functor<F, BoundArgs...> bind(const F& f, const BoundArgs&... bound_args) {
243   return bound_functor<F, BoundArgs...>(f, bound_args...);
244 }
245 
246 template<typename F, typename ...BoundArgs>
247 struct is_bind_expression<bound_functor<F, BoundArgs...> > {
248   static const bool value = true;
249 };
250 
251 // enable_if helper
252 template<bool Cond, typename T = void>
253 struct enable_if;
254 
255 template<typename T>
256 struct enable_if<true, T> {
257   typedef T type;
258 };
259 
260 template<typename T>
261 struct enable_if<false, T> { };
262 
263 // safe_tuple_element helper
264 template<int I, typename Tuple, typename = void>
265 struct safe_tuple_element { };
266 
267 template<int I, typename... Values>
268 struct safe_tuple_element<I, tuple<Values...>,
269                           typename enable_if<(I >= 0 && I < tuple_size<tuple<Values...> >::value)>::type> {
270    typedef typename tuple_element<I, tuple<Values...> >::type type;
271 };
272 
273 // mu
274 template<typename Bound, typename... Args>
275 inline typename safe_tuple_element<is_placeholder<Bound>::value -1,
276                                    tuple<Args...> >::type
mu(Bound & bound_arg,const tuple<Args &...> & args)277 mu(Bound& bound_arg, const tuple<Args&...>& args) {
278   return get<is_placeholder<Bound>::value-1>(args);
279 }
280 
281 template<typename T, typename... Args>
mu(reference_wrapper<T> & bound_arg,const tuple<Args &...> &)282 inline T& mu(reference_wrapper<T>& bound_arg, const tuple<Args&...>&) {
283   return bound_arg.get();
284 }
285 
286 template<typename F, int... Indexes, typename... Args>
287 inline typename F::result_type
unwrap_and_forward(F & f,int_tuple<Indexes...>,const tuple<Args &...> & args)288 unwrap_and_forward(F& f, int_tuple<Indexes...>, const tuple<Args&...>& args) {
289   return f(get<Indexes>(args)...);
290 }
291 
292 template<typename Bound, typename... Args>
293 inline typename enable_if<is_bind_expression<Bound>::value,
294                           typename Bound::result_type>::type
mu(Bound & bound_arg,const tuple<Args &...> & args)295 mu(Bound& bound_arg, const tuple<Args&...>& args) {
296   typedef typename make_indexes<Args...>::type Indexes;
297   return unwrap_and_forward(bound_arg, Indexes(), args);
298 }
299 
300 template<typename T>
301 struct is_reference_wrapper {
302   static const bool value = false;
303 };
304 
305 template<typename T>
306 struct is_reference_wrapper<reference_wrapper<T>> {
307   static const bool value = true;
308 };
309 
310 template<typename Bound, typename... Args>
311 inline typename enable_if<(!is_bind_expression<Bound>::value
312                            && !is_placeholder<Bound>::value
313                            && !is_reference_wrapper<Bound>::value),
314                            Bound&>::type
mu(Bound & bound_arg,const tuple<Args &...> &)315 mu(Bound& bound_arg, const tuple<Args&...>&) {
316   return bound_arg;
317 }
318 
319 template<typename F, typename... BoundArgs, int... Indexes, typename... Args>
apply_functor(F & f,tuple<BoundArgs...> & bound_args,int_tuple<Indexes...>,const tuple<Args &...> & args)320 typename F::result_type apply_functor(F& f, tuple<BoundArgs...>& bound_args,
321                                       int_tuple<Indexes...>,
322                                       const tuple<Args&...>& args) {
323   return f(mu(get<Indexes>(bound_args), args)...);
324 }
325 
326 template<typename F, typename... BoundArgs>
327 template<typename... Args>
operator ()(Args &...args)328 typename F::result_type bound_functor<F, BoundArgs...>::operator()(Args&... args) {
329   return apply_functor(f, bound_args, indexes(), tie(args...));
330 }
331 
332 template<int N> struct placeholder { };
333 template<int N>
334 struct is_placeholder<placeholder<N>> {
335   static const int value = N;
336 };
337 
338 template<typename T>
339 struct plus {
340   typedef T result_type;
341 
operator ()plus342   T operator()(T x, T y) { return x + y; }
343 };
344 
345 placeholder<1> _1;
346 
347 // Test bind
test_bind()348 void test_bind() {
349   int x = 17;
350   int y = 25;
351   bind(plus<int>(), x, _1)(y);
352 }
353