1 // RUN: %clang_cc1 -DCHECK -verify -fopenmp -x c++ -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -emit-llvm %s -o - | FileCheck %s --check-prefix CHECK --check-prefix CHECK-64
2 // RUN: %clang_cc1 -DCHECK -fopenmp -x c++ -std=c++11 -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -emit-pch -o %t %s
3 // RUN: %clang_cc1 -DCHECK -fopenmp -x c++ -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -std=c++11 -include-pch %t -verify %s -emit-llvm -o - | FileCheck %s --check-prefix CHECK --check-prefix CHECK-64
4 // RUN: %clang_cc1 -DCHECK -verify -fopenmp -x c++ -triple i386-unknown-unknown -fopenmp-targets=i386-pc-linux-gnu -emit-llvm %s -o - | FileCheck %s --check-prefix CHECK --check-prefix CHECK-32
5 // RUN: %clang_cc1 -DCHECK -fopenmp -x c++ -std=c++11 -triple i386-unknown-unknown -fopenmp-targets=i386-pc-linux-gnu -emit-pch -o %t %s
6 // RUN: %clang_cc1 -DCHECK -fopenmp -x c++ -triple i386-unknown-unknown -fopenmp-targets=i386-pc-linux-gnu -std=c++11 -include-pch %t -verify %s -emit-llvm -o - | FileCheck %s --check-prefix CHECK --check-prefix CHECK-32
7 
8 // RUN: %clang_cc1 -DLAMBDA -verify -fopenmp -x c++ -std=c++11 -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -emit-llvm %s -o - | FileCheck %s --check-prefix LAMBDA --check-prefix LAMBDA-64
9 // RUN: %clang_cc1 -DLAMBDA -fopenmp -x c++ -std=c++11 -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -emit-pch -o %t %s
10 // RUN: %clang_cc1 -DLAMBDA -fopenmp -x c++  -std=c++11 -triple powerpc64le-unknown-unknown -fopenmp-targets=powerpc64le-ibm-linux-gnu -std=c++11 -include-pch %t -verify %s -emit-llvm -o - | FileCheck %s --check-prefix LAMBDA --check-prefix LAMBDA-64
11 
12 // expected-no-diagnostics
13 #ifndef HEADER
14 #define HEADER
15 
16 struct St {
17   int a, b;
18   St() : a(0), b(0) {}
19   St(const St &st) : a(st.a + st.b), b(0) {}
20   ~St() {}
21 };
22 
23 volatile int g = 1212;
24 volatile int &g1 = g;
25 
26 template <class T>
27 struct S {
28   T f;
29   S(T a) : f(a + g) {}
30   S() : f(g) {}
31   S(const S &s, St t = St()) : f(s.f + t.a) {}
32   operator T() { return T(); }
33   ~S() {}
34 };
35 
36 // CHECK-DAG: [[S_FLOAT_TY:%.+]] = type { float }
37 // CHECK-DAG: [[S_INT_TY:%.+]] = type { i{{[0-9]+}} }
38 
39 template <typename T>
40 T tmain() {
41   S<T> test;
42   T t_var = T();
43   T vec[] = {1, 2};
44   S<T> s_arr[] = {1, 2};
45   S<T> &var = test;
46 #pragma omp target
47 #pragma omp teams distribute parallel for private(t_var, vec, s_arr, var)
48   for (int i = 0; i < 2; ++i) {
49     vec[i] = t_var;
50     s_arr[i] = var;
51   }
52   return T();
53 }
54 
55 // CHECK-DAG: [[TEST:@.+]] = global [[S_FLOAT_TY]] zeroinitializer,
56 S<float> test;
57 // CHECK-DAG: [[T_VAR:@.+]] = global i{{[0-9]+}} 333,
58 int t_var = 333;
59 // CHECK-DAG: [[VEC:@.+]] = global [2 x i{{[0-9]+}}] [i{{[0-9]+}} 1, i{{[0-9]+}} 2],
60 int vec[] = {1, 2};
61 // CHECK-DAG: [[S_ARR:@.+]] = global [2 x [[S_FLOAT_TY]]] zeroinitializer,
62 S<float> s_arr[] = {1, 2};
63 // CHECK-DAG: [[VAR:@.+]] = global [[S_FLOAT_TY]] zeroinitializer,
64 S<float> var(3);
65 // CHECK-DAG: [[SIVAR:@.+]] = internal global i{{[0-9]+}} 0,
66 
67 int main() {
68   static int sivar;
69 #ifdef LAMBDA
70   // LAMBDA: [[G:@.+]] = global i{{[0-9]+}} 1212,
71   // LAMBDA-LABEL: @main
72   // LAMBDA: call void [[OUTER_LAMBDA:@.+]](
73   [&]() {
74     // LAMBDA: define{{.*}} internal{{.*}} void [[OUTER_LAMBDA]](
75     // LAMBDA: call i32 @__tgt_target_teams(i64 -1, i8* @{{[^,]+}}, i32 1, i8** %{{[^,]+}}, i8** %{{[^,]+}}, i{{64|32}}* {{.+}}@{{[^,]+}}, i32 0, i32 0), i64* {{.+}}@{{[^,]+}}, i32 0, i32 0), i32 0, i32 0)
76     // LAMBDA: call void @[[LOFFL1:.+]](
77     // LAMBDA:  ret
78 #pragma omp target
79 #pragma omp teams distribute parallel for private(g, g1, sivar)
80   for (int i = 0; i < 2; ++i) {
81     // LAMBDA: define{{.*}} internal{{.*}} void @[[LOFFL1]](i{{64|32}} {{%.+}})
82     // LAMBDA: call void {{.+}} @__kmpc_fork_teams({{.+}}, i32 0, {{.+}} @[[LOUTL1:.+]] to {{.+}})
83     // LAMBDA: ret void
84 
85     // LAMBDA: define internal void @[[LOUTL1]]({{.+}})
86     // Skip global, bound tid and loop vars
87     // LAMBDA: {{.+}} = alloca i32*,
88     // LAMBDA: {{.+}} = alloca i32*,
89     // LAMBDA: alloca i32,
90     // LAMBDA: alloca i32,
91     // LAMBDA: alloca i32,
92     // LAMBDA: alloca i32,
93     // LAMBDA: alloca i32,
94     // LAMBDA: alloca i32,
95     // LAMBDA: [[G_PRIV:%.+]] = alloca i{{[0-9]+}},
96     // LAMBDA: [[G1_PRIV:%.+]] = alloca i{{[0-9]+}}
97     // LAMBDA: [[TMP:%.+]] = alloca i{{[0-9]+}}*,
98     // LAMBDA: [[SIVAR_PRIV:%.+]] = alloca i{{[0-9]+}},
99     // LAMBDA: store{{.+}} [[G1_PRIV]], {{.+}} [[TMP]],
100 
101     g = 1;
102     g1 = 1;
103     sivar = 2;
104     // LAMBDA: call void @__kmpc_for_static_init_4(
105     // LAMBDA: call void {{.+}} @__kmpc_fork_call({{.+}}, {{.+}}, {{.+}} @[[LPAR_OUTL:.+]] to
106     // LAMBDA: call void @__kmpc_for_static_fini(
107     // LAMBDA: ret void
108 
109     // LAMBDA: define internal void @[[LPAR_OUTL]]({{.+}})
110     // Skip global, bound tid and loop vars
111     // LAMBDA: {{.+}} = alloca i32*,
112     // LAMBDA: {{.+}} = alloca i32*,
113     // LAMBDA: alloca i{{[0-9]+}},
114     // LAMBDA: alloca i{{[0-9]+}},
115     // LAMBDA: alloca i32,
116     // LAMBDA: alloca i32,
117     // LAMBDA: alloca i32,
118     // LAMBDA: alloca i32,
119     // LAMBDA: alloca i32,
120     // LAMBDA: alloca i32,
121     // LAMBDA: [[G_PRIV:%.+]] = alloca i{{[0-9]+}},
122     // LAMBDA: [[G1_PRIV:%.+]] = alloca i{{[0-9]+}}
123     // LAMBDA: [[TMP:%.+]] = alloca i{{[0-9]+}}*,
124     // LAMBDA: [[SIVAR_PRIV:%.+]] = alloca i{{[0-9]+}},
125     // LAMBDA: store{{.+}} [[G1_PRIV]], {{.+}} [[TMP]],
126     // LAMBDA-DAG: store{{.+}} 1, {{.+}} [[G_PRIV]],
127     // LAMBDA-DAG: store{{.+}} 2, {{.+}} [[SIVAR_PRIV]],
128     // LAMBDA-DAG: [[G1_REF:%.+]] = load{{.+}}, {{.+}} [[TMP]],
129     // LAMBDA-DAG: store{{.+}} 1, {{.+}} [[G1_REF]],
130     // LAMBDA: call void [[INNER_LAMBDA:@.+]](
131     // LAMBDA: call void @__kmpc_for_static_fini(
132     // LAMBDA: ret void
133     [&]() {
134       // LAMBDA: define {{.+}} void [[INNER_LAMBDA]](%{{.+}}* [[ARG_PTR:%.+]])
135       // LAMBDA: store %{{.+}}* [[ARG_PTR]], %{{.+}}** [[ARG_PTR_REF:%.+]],
136       g = 2;
137       g1 = 2;
138       sivar = 4;
139       // LAMBDA: [[ARG_PTR:%.+]] = load %{{.+}}*, %{{.+}}** [[ARG_PTR_REF]]
140 
141       // LAMBDA: [[G_PTR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG_PTR]], i{{[0-9]+}} 0, i{{[0-9]+}} 0
142       // LAMBDA: [[G_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[G_PTR_REF]]
143       // LAMBDA: store i{{[0-9]+}} 2, i{{[0-9]+}}* [[G_REF]]
144       // LAMBDA: [[G1_PTR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG_PTR]], i{{[0-9]+}} 0, i{{[0-9]+}} 1
145       // LAMBDA: [[G1_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[G1_PTR_REF]]
146       // LAMBDA: store i{{[0-9]+}} 2, i{{[0-9]+}}* [[G1_REF]]
147       // LAMBDA: [[SIVAR_PTR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG_PTR]], i{{[0-9]+}} 0, i{{[0-9]+}} 2
148       // LAMBDA: [[SIVAR_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[SIVAR_PTR_REF]]
149       // LAMBDA: store i{{[0-9]+}} 4, i{{[0-9]+}}* [[SIVAR_REF]]
150     }();
151   }
152   }();
153   return 0;
154 #else
155 #pragma omp target
156 #pragma omp teams distribute parallel for private(t_var, vec, s_arr, var, sivar)
157   for (int i = 0; i < 2; ++i) {
158     vec[i] = t_var;
159     s_arr[i] = var;
160     sivar += i;
161   }
162   return tmain<int>();
163 #endif
164 }
165 
166 // CHECK: define {{.*}}i{{[0-9]+}} @main()
167 // CHECK: call i32 @__tgt_target_teams(i64 -1, i8* @{{[^,]+}}, i32 0, i8** null, i8** null, i{{64|32}}* null, i64* null, i32 0, i32 0)
168 // CHECK: call void @[[OFFL1:.+]]()
169 // CHECK: {{%.+}} = call{{.*}} i32 @[[TMAIN_INT:.+]]()
170 // CHECK:  ret
171 
172 // CHECK: define{{.*}} void @[[OFFL1]]()
173 // CHECK: call void {{.+}} @__kmpc_fork_teams({{.+}}, i32 0, {{.+}} @[[OUTL1:.+]] to {{.+}})
174 // CHECK: ret void
175 
176 // CHECK: define internal void @[[OUTL1]]({{.+}})
177 // Skip global, bound tid and loop vars
178 // CHECK: {{.+}} = alloca i32*,
179 // CHECK: {{.+}} = alloca i32*,
180 // CHECK: {{.+}} = alloca i32,
181 // CHECK: {{.+}} = alloca i32,
182 // CHECK: {{.+}} = alloca i32,
183 // CHECK: {{.+}} = alloca i32,
184 // CHECK: {{.+}} = alloca i32,
185 // CHECK-DAG: [[T_VAR_PRIV:%.+]] = alloca i{{[0-9]+}},
186 // CHECK-DAG: [[VEC_PRIV:%.+]] = alloca [2 x i{{[0-9]+}}],
187 // CHECK-DAG: [[S_ARR_PRIV:%.+]] = alloca [2 x [[S_FLOAT_TY]]],
188 // CHECK-DAG: [[VAR_PRIV:%.+]] = alloca [[S_FLOAT_TY]],
189 // CHECK-DAG: [[SIVAR_PRIV:%.+]] = alloca i{{[0-9]+}},
190 // CHECK: alloca i32,
191 
192 // private(s_arr)
193 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_FLOAT_TY]]], [2 x [[S_FLOAT_TY]]]* [[S_ARR_PRIV]],
194 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
195 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
196 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
197 
198 // private(var)
199 // CHECK-DAG: call void @{{.+}}({{.+}} [[VAR_PRIV]])
200 
201 // CHECK: call void @__kmpc_for_static_init_4(
202 // CHECK: call void {{.+}} @__kmpc_fork_call({{.+}}, {{.+}}, {{.+}} @[[PAR_OUTL1:.+]] to
203 // CHECK: call void @__kmpc_for_static_fini(
204 // CHECK: ret void
205 
206 // CHECK: define internal void @[[PAR_OUTL1]]({{.+}})
207 // Skip global, bound tid and loop vars
208 // CHECK: {{.+}} = alloca i32*,
209 // CHECK: {{.+}} = alloca i32*,
210 // CHECK: {{.+}} = alloca i{{[0-9]+}},
211 // CHECK: {{.+}} = alloca i{{[0-9]+}},
212 // CHECK: {{.+}} = alloca i32,
213 // CHECK: {{.+}} = alloca i32,
214 // CHECK: {{.+}} = alloca i32,
215 // CHECK: {{.+}} = alloca i32,
216 // CHECK: {{.+}} = alloca i32,
217 // CHECK: {{.+}} = alloca i32,
218 // CHECK-DAG: [[T_VAR_PRIV:%.+]] = alloca i{{[0-9]+}},
219 // CHECK-DAG: [[VEC_PRIV:%.+]] = alloca [2 x i{{[0-9]+}}],
220 // CHECK-DAG: [[S_ARR_PRIV:%.+]] = alloca [2 x [[S_FLOAT_TY]]],
221 // CHECK-DAG: [[VAR_PRIV:%.+]] = alloca [[S_FLOAT_TY]],
222 // CHECK-DAG: [[SIVAR_PRIV:%.+]] = alloca i{{[0-9]+}},
223 // CHECK: alloca i32,
224 
225 // private(s_arr)
226 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_FLOAT_TY]]], [2 x [[S_FLOAT_TY]]]* [[S_ARR_PRIV]],
227 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
228 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
229 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
230 
231 // private(var)
232 // CHECK-DAG: call void @{{.+}}({{.+}} [[VAR_PRIV]])
233 
234 // CHECK: call void @__kmpc_for_static_init_4(
235 // CHECK-DAG: {{.+}} = {{.+}} [[T_VAR_PRIV]]
236 // CHECK-DAG: {{.+}} = {{.+}} [[VEC_PRIV]]
237 // CHECK-DAG: {{.+}} = {{.+}} [[S_ARR_PRIV]]
238 // CHECK-DAG: {{.+}} = {{.+}} [[VAR_PRIV]]
239 // CHECK-DAG: {{.+}} = {{.+}} [[SIVAR_PRIV]]
240 // CHECK: call void @__kmpc_for_static_fini(
241 // CHECK: ret void
242 
243 // CHECK: define{{.*}} i{{[0-9]+}} @[[TMAIN_INT]]()
244 // CHECK: call i32 @__tgt_target_teams(i64 -1, i8* @{{[^,]+}}, i32 0,
245 // CHECK: call void @[[TOFFL1:.+]]()
246 // CHECK:  ret
247 
248 // CHECK: define {{.*}}void @[[TOFFL1]]()
249 // CHECK: call void {{.+}} @__kmpc_fork_teams({{.+}}, i32 0, {{.+}} @[[TOUTL1:.+]] to {{.+}})
250 // CHECK: ret void
251 
252 // CHECK: define internal void @[[TOUTL1]]({{.+}})
253 // Skip global, bound tid and loop vars
254 // CHECK: {{.+}} = alloca i32*,
255 // CHECK: {{.+}} = alloca i32*,
256 // CHECK: alloca i{{[0-9]+}},
257 // CHECK: alloca i{{[0-9]+}},
258 // CHECK: alloca i{{[0-9]+}},
259 // CHECK: alloca i{{[0-9]+}},
260 // CHECK: alloca i{{[0-9]+}},
261 // CHECK: alloca i32,
262 // CHECK: [[T_VAR_PRIV:%.+]] = alloca i{{[0-9]+}},
263 // CHECK: [[VEC_PRIV:%.+]] = alloca [2 x i{{[0-9]+}}],
264 // CHECK: [[S_ARR_PRIV:%.+]] = alloca [2 x [[S_INT_TY]]],
265 // CHECK: [[VAR_PRIV:%.+]] = alloca [[S_INT_TY]],
266 // CHECK: [[TMP:%.+]] = alloca [[S_INT_TY]]*,
267 
268 // private(s_arr)
269 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_INT_TY]]], [2 x [[S_INT_TY]]]* [[S_ARR_PRIV]],
270 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
271 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
272 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
273 
274 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_INT_TY]]], [2 x [[S_INT_TY]]]* [[S_ARR_PRIV]],
275 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
276 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
277 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
278 
279 // private(var)
280 // CHECK-DAG: call void @{{.+}}({{.+}} [[VAR_PRIV]])
281 // CHECK-DAG: store{{.+}} [[VAR_PRIV]], {{.+}} [[TMP]]
282 
283 // CHECK: call void @__kmpc_for_static_init_4(
284 // CHECK: call void {{.+}} @__kmpc_fork_call({{.+}}, {{.+}}, {{.+}} @[[TPAR_OUTL1:.+]] to
285 // CHECK: call void @__kmpc_for_static_fini(
286 // CHECK: ret void
287 
288 // CHECK: define internal void @[[TPAR_OUTL1]]({{.+}})
289 // Skip global, bound tid and loop vars
290 // CHECK: {{.+}} = alloca i32*,
291 // CHECK: {{.+}} = alloca i32*,
292 // prev lb and ub
293 // CHECK: alloca i{{[0-9]+}},
294 // CHECK: alloca i{{[0-9]+}},
295 // iter variables
296 // CHECK: alloca i{{[0-9]+}},
297 // CHECK: alloca i{{[0-9]+}},
298 // CHECK: alloca i{{[0-9]+}},
299 // CHECK: alloca i{{[0-9]+}},
300 // CHECK: alloca i{{[0-9]+}},
301 // CHECK: alloca i32,
302 // CHECK: [[T_VAR_PRIV:%.+]] = alloca i{{[0-9]+}},
303 // CHECK: [[VEC_PRIV:%.+]] = alloca [2 x i{{[0-9]+}}],
304 // CHECK: [[S_ARR_PRIV:%.+]] = alloca [2 x [[S_INT_TY]]],
305 // CHECK: [[VAR_PRIV:%.+]] = alloca [[S_INT_TY]],
306 // CHECK: [[TMP:%.+]] = alloca [[S_INT_TY]]*,
307 
308 // private(s_arr)
309 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_INT_TY]]], [2 x [[S_INT_TY]]]* [[S_ARR_PRIV]],
310 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
311 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
312 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
313 
314 // CHECK-DAG: [[S_ARR_PRIV_BGN:%.+]] = getelementptr{{.*}} [2 x [[S_INT_TY]]], [2 x [[S_INT_TY]]]* [[S_ARR_PRIV]],
315 // CHECK-DAG: [[S_ARR_PTR_ALLOC:%.+]] = phi{{.+}} [ [[S_ARR_PRIV_BGN]], {{.+}} ], [ [[S_ARR_NEXT:%.+]], {{.+}} ]
316 // CHECK-DAG: call void @{{.+}}({{.+}} [[S_ARR_PTR_ALLOC]])
317 // CHECK-DAG: [[S_ARR_NEXT]] = getelementptr {{.+}} [[S_ARR_PTR_ALLOC]],
318 
319 // private(var)
320 // CHECK-DAG: call void @{{.+}}({{.+}} [[VAR_PRIV]])
321 // CHECK-DAG: store{{.+}} [[VAR_PRIV]], {{.+}} [[TMP]]
322 
323 // CHECK: call void @__kmpc_for_static_init_4(
324 // CHECK-DAG: {{.+}} = {{.+}} [[T_VAR_PRIV]]
325 // CHECK-DAG: {{.+}} = {{.+}} [[VEC_PRIV]]
326 // CHECK-DAG: {{.+}} = {{.+}} [[S_ARR_PRIV]]
327 // CHECK-DAG: {{.+}} = {{.+}} [[TMP]]
328 // CHECK: call void @__kmpc_for_static_fini(
329 // CHECK: ret void
330 
331 
332 #endif
333