1 // RUN: %clang_cc1 -verify -fopenmp -x c++ -triple x86_64-apple-darwin10 -emit-llvm %s -o - | FileCheck %s
2 // RUN: %clang_cc1 -fopenmp -x c++ -std=c++11 -triple x86_64-apple-darwin10 -emit-pch -o %t %s
3 // RUN: %clang_cc1 -fopenmp -x c++ -triple x86_64-apple-darwin10 -std=c++11 -include-pch %t -verify %s -emit-llvm -o - | FileCheck %s
4 // RUN: %clang_cc1 -verify -fopenmp -x c++ -std=c++11 -DLAMBDA -triple x86_64-apple-darwin10 -emit-llvm %s -o - | FileCheck -check-prefix=LAMBDA %s
5 // RUN: %clang_cc1 -verify -fopenmp -x c++ -fblocks -DBLOCKS -triple x86_64-apple-darwin10 -emit-llvm %s -o - | FileCheck -check-prefix=BLOCKS %s
6 // expected-no-diagnostics
7 #ifndef HEADER
8 #define HEADER
9 
10 template <class T>
11 struct S {
12   T f;
13   S(T a) : f(a) {}
14   S() : f() {}
15   S<T> &operator=(const S<T> &);
16   operator T() { return T(); }
17   ~S() {}
18 };
19 
20 volatile int g = 1212;
21 
22 // CHECK: [[S_FLOAT_TY:%.+]] = type { float }
23 // CHECK [[CAP_MAIN_TY:%.+]] = type { i{{[0-9]+}}*, [2 x i{{[0-9]+}}]*, [2 x [[S_FLOAT_TY]]]*, [[S_FLOAT_TY]]*, i{{[0-9]+}}* }
24 // CHECK: [[S_INT_TY:%.+]] = type { i32 }
25 // CHECK-DAG: [[SECTIONS_BARRIER_LOC:@.+]] = private unnamed_addr constant %{{.+}} { i32 0, i32 194, i32 0, i32 0, i8*
26 // CHECK-DAG: [[X:@.+]] = global double 0.0
27 template <typename T>
28 T tmain() {
29   S<T> test;
30   T t_var = T();
31   T vec[] = {1, 2};
32   S<T> s_arr[] = {1, 2};
33   S<T> var(3);
34 #pragma omp parallel
35 #pragma omp sections lastprivate(t_var, vec, s_arr, var)
36   {
37     vec[0] = t_var;
38 #pragma omp section
39     s_arr[0] = var;
40   }
41   return T();
42 }
43 
44 namespace A {
45 double x;
46 }
47 namespace B {
48 using A::x;
49 }
50 
51 int main() {
52   static int sivar;
53 #ifdef LAMBDA
54   // LAMBDA: [[G:@.+]] = global i{{[0-9]+}} 1212,
55   // LAMBDA-LABEL: @main
56   // LAMBDA: call void [[OUTER_LAMBDA:@.+]](
57   [&]() {
58   // LAMBDA: define{{.*}} internal{{.*}} void [[OUTER_LAMBDA]](
59   // LAMBDA: call void {{.+}} @__kmpc_fork_call({{.+}}, i32 1, {{.+}}* [[OMP_REGION:@.+]] to {{.+}})
60 #pragma omp parallel
61 #pragma omp sections lastprivate(g, sivar)
62   {
63     // LAMBDA: define{{.*}} internal{{.*}} void [[OMP_REGION]](i32* noalias [[GTID:%.+]], i32* noalias %{{.+}}, i32* dereferenceable(4) [[SIVAR_REF:%.+]])
64     // LAMBDA: alloca i{{[0-9]+}},
65     // LAMBDA: alloca i{{[0-9]+}},
66     // LAMBDA: alloca i{{[0-9]+}},
67     // LAMBDA: alloca i{{[0-9]+}},
68     // LAMBDA: alloca i{{[0-9]+}},
69     // LAMBDA: [[G_PRIVATE_ADDR:%.+]] = alloca i{{[0-9]+}},
70     // LAMBDA: [[SIVAR1_PRIVATE_ADDR:%.+]] = alloca i{{[0-9]+}},
71 
72     // LAMBDA: store i{{[0-9]+}}* [[SIVAR_REF]], i{{[0-9]+}}** %{{.+}},
73     // LAMBDA: [[SIVAR_REF_ADDR:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** %{{.+}},
74 
75     // LAMBDA: [[GTID_ADDR:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** %{{.+}}, align 8
76     // LAMBDA: [[GTID_ADDR_REF:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[GTID_ADDR]], align 4
77 
78     // LAMBDA: call {{.+}} @__kmpc_for_static_init_4(%{{.+}}* @{{.+}}, i32 [[GTID_ADDR_REF]], i32 34, i32* [[IS_LAST_ADDR:%.+]], i32* %{{.+}}, i32* %{{.+}}, i32* %{{.+}}, i32 1, i32 1)
79     // LAMBDA: store i{{[0-9]+}} 1, i{{[0-9]+}}* [[G_PRIVATE_ADDR]],
80     // LAMBDA: store i{{[0-9]+}} 13, i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]],
81     // LAMBDA: [[G_PRIVATE_ADDR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG:%.+]], i{{[0-9]+}} 0, i{{[0-9]+}} 0
82     // LAMBDA: store i{{[0-9]+}}* [[G_PRIVATE_ADDR]], i{{[0-9]+}}** [[G_PRIVATE_ADDR_REF]]
83     // LAMBDA: [[SIVAR_PRIVATE_ADDR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG:%.+]], i{{[0-9]+}} 0, i{{[0-9]+}} 1
84     // LAMBDA: store i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]], i{{[0-9]+}}** [[SIVAR_PRIVATE_ADDR_REF]]
85     // LAMBDA: call void [[INNER_LAMBDA:@.+]](%{{.+}}* [[ARG]])
86     // LAMBDA: call void @__kmpc_for_static_fini(%{{.+}}* @{{.+}}, i32 [[GTID_ADDR_REF]])
87     {
88       g = 1;
89       sivar = 13;
90     }
91     // Check for final copying of private values back to original vars.
92     // LAMBDA: [[IS_LAST_VAL:%.+]] = load i32, i32* [[IS_LAST_ADDR]],
93     // LAMBDA: [[IS_LAST_ITER:%.+]] = icmp ne i32 [[IS_LAST_VAL]], 0
94     // LAMBDA: br i1 [[IS_LAST_ITER:%.+]], label %[[LAST_THEN:.+]], label %[[LAST_DONE:.+]]
95     // LAMBDA: [[LAST_THEN]]
96     // Actual copying.
97 
98     // original g=private_g;
99     // LAMBDA: [[G_VAL:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[G_PRIVATE_ADDR]],
100     // LAMBDA: store volatile i{{[0-9]+}} [[G_VAL]], i{{[0-9]+}}* [[G]],
101 
102     // original sivar = private sivar;
103     // LAMBDA: [[SIVAR1_VAL:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]],
104     // LAMBDA: store i{{[0-9]+}} [[SIVAR1_VAL]], i{{[0-9]+}}* [[SIVAR_REF_ADDR]],
105     // LAMBDA: br label %[[LAST_DONE]]
106     // LAMBDA: [[LAST_DONE]]
107     // LAMBDA: call void @__kmpc_barrier(%{{.+}}* @{{.+}}, i{{[0-9]+}} [[GTID_ADDR_REF]])
108 #pragma omp section
109     [&]() {
110       // LAMBDA: define {{.+}} void [[INNER_LAMBDA]](%{{.+}}* [[ARG_PTR:%.+]])
111       // LAMBDA: store %{{.+}}* [[ARG_PTR]], %{{.+}}** [[ARG_PTR_REF:%.+]],
112       g = 2;
113       sivar = 23;
114       // LAMBDA: [[ARG_PTR:%.+]] = load %{{.+}}*, %{{.+}}** [[ARG_PTR_REF]]
115       // LAMBDA: [[G_PTR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG_PTR]], i{{[0-9]+}} 0, i{{[0-9]+}} 0
116       // LAMBDA: [[G_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[G_PTR_REF]]
117       // LAMBDA: store i{{[0-9]+}} 2, i{{[0-9]+}}* [[G_REF]]
118       // LAMBDA: [[SIVAR_PTR_REF:%.+]] = getelementptr inbounds %{{.+}}, %{{.+}}* [[ARG_PTR]], i{{[0-9]+}} 0, i{{[0-9]+}} 1
119       // LAMBDA: [[SIVAR_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[SIVAR_PTR_REF]]
120       // LAMBDA: store i{{[0-9]+}} 23, i{{[0-9]+}}* [[SIVAR_REF]]
121     }();
122   }
123   }();
124   return 0;
125 #elif defined(BLOCKS)
126   // BLOCKS: [[G:@.+]] = global i{{[0-9]+}} 1212,
127   // BLOCKS-LABEL: @main
128   // BLOCKS: call void {{%.+}}(i8
129   ^{
130   // BLOCKS: define{{.*}} internal{{.*}} void {{.+}}(i8*
131   // BLOCKS: call void {{.+}} @__kmpc_fork_call({{.+}}, i32 1, {{.+}}* [[OMP_REGION:@.+]] to {{.+}})
132 #pragma omp parallel
133 #pragma omp sections lastprivate(g, sivar)
134   {
135     // BLOCKS: define{{.*}} internal{{.*}} void [[OMP_REGION]](i32* noalias [[GTID:%.+]], i32* noalias %{{.+}}, i32* dereferenceable(4) [[SIVAR:%.+]])
136     // BLOCKS: alloca i{{[0-9]+}},
137     // BLOCKS: alloca i{{[0-9]+}},
138     // BLOCKS: alloca i{{[0-9]+}},
139     // BLOCKS: alloca i{{[0-9]+}},
140     // BLOCKS: alloca i{{[0-9]+}},
141     // BLOCKS: [[G_PRIVATE_ADDR:%.+]] = alloca i{{[0-9]+}},
142     // BLOCKS: [[SIVAR1_PRIVATE_ADDR:%.+]] = alloca i{{[0-9]+}},
143 
144     // BLOCKS: store i{{[0-9]+}}* [[SIVAR]], i{{[0-9]+}}** [[SIVAR_ADDR:%.+]],
145     // BLOCKS: [[SIVAR_REF_ADDR:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[SIVAR_ADDR]],
146 
147     // BLOCKS: [[GTID_ADDR:%.+]] = load i32*, i32** [[GTID:%.+]], align 8
148     // BLOCKS: [[GTID_ADDR_REF:%.+]] = load i32, i32* [[GTID_ADDR]], align 4
149     // BLOCKS: call {{.+}} @__kmpc_for_static_init_4(%{{.+}}* @{{.+}}, i32 [[GTID_ADDR_REF]], i32 34, i32* [[IS_LAST_ADDR:%.+]], i32* %{{.+}}, i32* %{{.+}}, i32* %{{.+}}, i32 1, i32 1)
150     // BLOCKS: store i{{[0-9]+}} 1, i{{[0-9]+}}* [[G_PRIVATE_ADDR]],
151     // BLOCKS: store i{{[0-9]+}} 17, i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]],
152     // BLOCKS-NOT: [[G]]{{[[^:word:]]}}
153     // BLOCKS: i{{[0-9]+}}* [[G_PRIVATE_ADDR]]
154     // BLOCKS-NOT: [[G]]{{[[^:word:]]}}
155     // BLOCKS-NOT: [[SIVAR]]{{[[^:word:]]}}
156     // BLOCKS: i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]]
157     // BLOCKS-NOT: [[SIVAR]]{{[[^:word:]]}}
158     // BLOCKS: call void {{%.+}}(i8
159     // BLOCKS: call void @__kmpc_for_static_fini(%{{.+}}* @{{.+}}, i32 [[GTID_ADDR_REF]])
160     {
161       g = 1;
162       sivar = 17;
163     }
164     // Check for final copying of private values back to original vars.
165     // BLOCKS: [[IS_LAST_VAL:%.+]] = load i32, i32* [[IS_LAST_ADDR]],
166     // BLOCKS: [[IS_LAST_ITER:%.+]] = icmp ne i32 [[IS_LAST_VAL]], 0
167     // BLOCKS: br i1 [[IS_LAST_ITER:%.+]], label %[[LAST_THEN:.+]], label %[[LAST_DONE:.+]]
168     // BLOCKS: [[LAST_THEN]]
169     // Actual copying.
170 
171     // original g=private_g;
172     // BLOCKS: [[G_VAL:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[G_PRIVATE_ADDR]],
173     // BLOCKS: store volatile i{{[0-9]+}} [[G_VAL]], i{{[0-9]+}}* [[G]],
174 
175     // original sivar = private sivar;
176     // BLOCKS: [[SIVAR1_VAL:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[SIVAR1_PRIVATE_ADDR]],
177     // BLOCKS: store i{{[0-9]+}} [[SIVAR1_VAL]], i{{[0-9]+}}* [[SIVAR_REF_ADDR]],
178     // BLOCKS: br label %[[LAST_DONE]]
179     // BLOCKS: [[LAST_DONE]]
180     // BLOCKS: call void @__kmpc_barrier(%{{.+}}* @{{.+}}, i{{[0-9]+}} [[GTID_ADDR_REF]])
181 #pragma omp section
182     ^{
183       // BLOCKS: define {{.+}} void {{@.+}}(i8*
184       g = 2;
185       sivar = 29;
186       // BLOCKS-NOT: [[G]]{{[[^:word:]]}}
187       // BLOCKS: store i{{[0-9]+}} 2, i{{[0-9]+}}*
188       // BLOCKS-NOT: [[G]]{{[[^:word:]]}}
189       // BLOCKS-NOT: [[SIVAR]]{{[[^:word:]]}}
190       // BLOCKS: store i{{[0-9]+}} 29, i{{[0-9]+}}*
191       // BLOCKS-NOT: [[SIVAR]]{{[[^:word:]]}}
192       // BLOCKS: ret
193     }();
194   }
195   }();
196   return 0;
197 #else
198   S<float> test;
199   int t_var = 0;
200   int vec[] = {1, 2};
201   S<float> s_arr[] = {1, 2};
202   S<float> var(3);
203 #pragma omp parallel
204 #pragma omp sections lastprivate(t_var, vec, s_arr, var, sivar)
205   {
206     {
207     vec[0] = t_var;
208     s_arr[0] = var;
209     sivar = 31;
210     }
211   }
212 #pragma omp parallel
213 #pragma omp sections lastprivate(A::x, B::x)
214   {
215     A::x++;
216 #pragma omp section
217     ;
218   }
219   return tmain<int>();
220 #endif
221 }
222 
223 // CHECK: define i{{[0-9]+}} @main()
224 // CHECK: [[TEST:%.+]] = alloca [[S_FLOAT_TY]],
225 // CHECK: call {{.*}} [[S_FLOAT_TY_DEF_CONSTR:@.+]]([[S_FLOAT_TY]]* [[TEST]])
226 
227 // CHECK: call void (%{{.+}}*, i{{[0-9]+}}, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)*, ...) @__kmpc_fork_call(%{{.+}}* @{{.+}}, i{{[0-9]+}} 5, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)* bitcast (void (i{{[0-9]+}}*, i{{[0-9]+}}*, i32*, [2 x i32]*, [2 x [[S_FLOAT_TY]]]*, [[S_FLOAT_TY]]*, i{{[0-9]+}}*)* [[MAIN_MICROTASK:@.+]] to void
228 
229 // CHECK: call void (%{{.+}}*, i{{[0-9]+}}, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)*, ...) @__kmpc_fork_call(%{{.+}}* @{{.+}}, i{{[0-9]+}} 0, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)* bitcast (void (i{{[0-9]+}}*, i{{[0-9]+}}*)* [[MAIN_MICROTASK1:@.+]] to void
230 // CHECK: = call {{.+}} [[TMAIN_INT:@.+]]()
231 // CHECK: call void [[S_FLOAT_TY_DESTR:@.+]]([[S_FLOAT_TY]]*
232 // CHECK: ret
233 
234 // CHECK: define internal void [[MAIN_MICROTASK]](i{{[0-9]+}}* noalias [[GTID_ADDR:%.+]], i{{[0-9]+}}* noalias %{{.+}},
235 // CHECK: alloca i{{[0-9]+}},
236 // CHECK: alloca i{{[0-9]+}},
237 // CHECK: alloca i{{[0-9]+}},
238 // CHECK: alloca i{{[0-9]+}},
239 // CHECK: alloca i{{[0-9]+}},
240 // CHECK: alloca i{{[0-9]+}},
241 // CHECK: alloca [2 x i{{[0-9]+}}],
242 // CHECK: alloca [2 x [[S_FLOAT_TY]]],
243 // CHECK: alloca [[S_FLOAT_TY]],
244 // CHECK: alloca i{{[0-9]+}},
245 // CHECK: store i{{[0-9]+}}* [[GTID_ADDR]], i{{[0-9]+}}** [[GTID_ADDR_REF:%.+]]
246 
247 // CHECK: [[GTID_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[GTID_ADDR_REF]]
248 // CHECK: [[GTID:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[GTID_REF]]
249 
250 // CHECK: call void @__kmpc_for_static_init_4(
251 // <Skip loop body>
252 // CHECK: call void @__kmpc_for_static_fini(
253 
254 // CHECK-DAG: call {{.*}} [[S_FLOAT_TY_DESTR]]([[S_FLOAT_TY]]*
255 // CHECK-DAG: call {{.*}} [[S_FLOAT_TY_DESTR]]([[S_FLOAT_TY]]*
256 
257 // CHECK: call void @__kmpc_barrier(
258 // CHECK: ret void
259 
260 //
261 // CHECK: define internal void [[MAIN_MICROTASK1]](i{{[0-9]+}}* noalias [[GTID_ADDR:%.+]], i{{[0-9]+}}* noalias %{{.+}})
262 // CHECK: [[X_PRIV:%.+]] = alloca double,
263 // CHECK-NOT: alloca double
264 
265 // Check for default initialization.
266 // CHECK-NOT: [[X_PRIV]]
267 
268 // CHECK: [[GTID_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[GTID_ADDR_REF]]
269 // CHECK: [[GTID:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[GTID_REF]]
270 // CHECK: call void @__kmpc_for_static_init_4(%{{.+}}* @{{.+}}, i32 [[GTID]], i32 34, i32* [[IS_LAST_ADDR:%.+]], i32* %{{.+}}, i32* %{{.+}}, i32* %{{.+}}, i32 1, i32 1)
271 // <Skip loop body>
272 // CHECK: call void @__kmpc_for_static_fini(%{{.+}}* @{{.+}}, i32 [[GTID]])
273 
274 // Check for final copying of private values back to original vars.
275 // CHECK: [[IS_LAST_VAL:%.+]] = load i32, i32* [[IS_LAST_ADDR]],
276 // CHECK: [[IS_LAST_ITER:%.+]] = icmp ne i32 [[IS_LAST_VAL]], 0
277 // CHECK: br i1 [[IS_LAST_ITER:%.+]], label %[[LAST_THEN:.+]], label %[[LAST_DONE:.+]]
278 // CHECK: [[LAST_THEN]]
279 // Actual copying.
280 
281 // original x=private_x;
282 // CHECK: [[X_VAL:%.+]] = load double, double* [[X_PRIV]],
283 // CHECK: store double [[X_VAL]], double* [[X]],
284 // CHECK-NEXT: br label %[[LAST_DONE]]
285 // CHECK: [[LAST_DONE]]
286 
287 // CHECK: call void @__kmpc_barrier(%{{.+}}* [[SECTIONS_BARRIER_LOC]], i{{[0-9]+}} [[GTID]])
288 // CHECK: ret void
289 
290 // CHECK: define {{.*}} i{{[0-9]+}} [[TMAIN_INT]]()
291 // CHECK: [[TEST:%.+]] = alloca [[S_INT_TY]],
292 // CHECK: call {{.*}} [[S_INT_TY_DEF_CONSTR:@.+]]([[S_INT_TY]]* [[TEST]])
293 // CHECK: call void (%{{.+}}*, i{{[0-9]+}}, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)*, ...) @__kmpc_fork_call(%{{.+}}* @{{.+}}, i{{[0-9]+}} 4, void (i{{[0-9]+}}*, i{{[0-9]+}}*, ...)* bitcast (void (i{{[0-9]+}}*, i{{[0-9]+}}*, i32*, [2 x i32]*, [2 x [[S_INT_TY]]]*, [[S_INT_TY]]*)* [[TMAIN_MICROTASK:@.+]] to void
294 // CHECK: call void [[S_INT_TY_DESTR:@.+]]([[S_INT_TY]]*
295 // CHECK: ret
296 //
297 // CHECK: define internal void [[TMAIN_MICROTASK]](i{{[0-9]+}}* noalias [[GTID_ADDR:%.+]], i{{[0-9]+}}* noalias %{{.+}},
298 // CHECK: alloca i{{[0-9]+}},
299 // CHECK: alloca i{{[0-9]+}},
300 // CHECK: alloca i{{[0-9]+}},
301 // CHECK: alloca i{{[0-9]+}},
302 // CHECK: alloca i{{[0-9]+}},
303 // CHECK: [[T_VAR_PRIV:%.+]] = alloca i{{[0-9]+}},
304 // CHECK: [[VEC_PRIV:%.+]] = alloca [2 x i{{[0-9]+}}],
305 // CHECK: [[S_ARR_PRIV:%.+]] = alloca [2 x [[S_INT_TY]]],
306 // CHECK: [[VAR_PRIV:%.+]] = alloca [[S_INT_TY]],
307 // CHECK: store i{{[0-9]+}}* [[GTID_ADDR]], i{{[0-9]+}}** [[GTID_ADDR_REF:%.+]]
308 
309 // CHECK: [[T_VAR_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** %
310 // CHECK: [[VEC_REF:%.+]] = load [2 x i{{[0-9]+}}]*, [2 x i{{[0-9]+}}]** %
311 // CHECK: [[S_ARR_REF:%.+]] = load [2 x [[S_INT_TY]]]*, [2 x [[S_INT_TY]]]** %
312 // CHECK: [[VAR_REF:%.+]] = load [[S_INT_TY]]*, [[S_INT_TY]]** %
313 
314 // Check for default initialization.
315 // CHECK-NOT: [[T_VAR_PRIV]]
316 // CHECK-NOT: [[VEC_PRIV]]
317 // CHECK: [[S_ARR_PRIV_ITEM:%.+]] = phi [[S_INT_TY]]*
318 // CHECK: call {{.*}} [[S_INT_TY_DEF_CONSTR]]([[S_INT_TY]]* [[S_ARR_PRIV_ITEM]])
319 // CHECK: call {{.*}} [[S_INT_TY_DEF_CONSTR]]([[S_INT_TY]]* [[VAR_PRIV]])
320 // CHECK: call {{.+}} @__kmpc_for_static_init_4(%{{.+}}* @{{.+}}, i32 %{{.+}}, i32 34, i32* [[IS_LAST_ADDR:%.+]], i32* %{{.+}}, i32* %{{.+}}, i32* %{{.+}}, i32 1, i32 1)
321 // <Skip loop body>
322 // CHECK: call void @__kmpc_for_static_fini(%{{.+}}* @{{.+}}, i32 %{{.+}})
323 
324 // Check for final copying of private values back to original vars.
325 // CHECK: [[IS_LAST_VAL:%.+]] = load i32, i32* [[IS_LAST_ADDR]],
326 // CHECK: [[IS_LAST_ITER:%.+]] = icmp ne i32 [[IS_LAST_VAL]], 0
327 // CHECK: br i1 [[IS_LAST_ITER:%.+]], label %[[LAST_THEN:.+]], label %[[LAST_DONE:.+]]
328 // CHECK: [[LAST_THEN]]
329 // Actual copying.
330 
331 // original t_var=private_t_var;
332 // CHECK: [[T_VAR_VAL:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[T_VAR_PRIV]],
333 // CHECK: store i{{[0-9]+}} [[T_VAR_VAL]], i{{[0-9]+}}* [[T_VAR_REF]],
334 
335 // original vec[]=private_vec[];
336 // CHECK: [[VEC_DEST:%.+]] = bitcast [2 x i{{[0-9]+}}]* [[VEC_REF]] to i8*
337 // CHECK: [[VEC_SRC:%.+]] = bitcast [2 x i{{[0-9]+}}]* [[VEC_PRIV]] to i8*
338 // CHECK: call void @llvm.memcpy.{{.+}}(i8* [[VEC_DEST]], i8* [[VEC_SRC]],
339 
340 // original s_arr[]=private_s_arr[];
341 // CHECK: [[S_ARR_BEGIN:%.+]] = getelementptr inbounds [2 x [[S_INT_TY]]], [2 x [[S_INT_TY]]]* [[S_ARR_REF]], i{{[0-9]+}} 0, i{{[0-9]+}} 0
342 // CHECK: [[S_ARR_PRIV_BEGIN:%.+]] = bitcast [2 x [[S_INT_TY]]]* [[S_ARR_PRIV]] to [[S_INT_TY]]*
343 // CHECK: [[S_ARR_END:%.+]] = getelementptr [[S_INT_TY]], [[S_INT_TY]]* [[S_ARR_BEGIN]], i{{[0-9]+}} 2
344 
345 // CHK: [[SIVAR_REF:%.+]] = getelementptr [[S_INT_TY]], [[S_INT_TY]]* [[S_ARR_BEGIN]], i{{[0-9]+}} 4
346 // CHK: store i{{[0-9]+}}* [[SIVAR]], i{{[0-9]+}} [[SIVAR_REF]]
347 
348 // CHECK: [[IS_EMPTY:%.+]] = icmp eq [[S_INT_TY]]* [[S_ARR_BEGIN]], [[S_ARR_END]]
349 // CHECK: br i1 [[IS_EMPTY]], label %[[S_ARR_BODY_DONE:.+]], label %[[S_ARR_BODY:.+]]
350 // CHECK: [[S_ARR_BODY]]
351 // CHECK: call {{.*}} [[S_INT_TY_COPY_ASSIGN:@.+]]([[S_INT_TY]]* {{.+}}, [[S_INT_TY]]* {{.+}})
352 // CHECK: br i1 {{.+}}, label %[[S_ARR_BODY_DONE]], label %[[S_ARR_BODY]]
353 // CHECK: [[S_ARR_BODY_DONE]]
354 
355 // original var=private_var;
356 // CHECK: call {{.*}} [[S_INT_TY_COPY_ASSIGN:@.+]]([[S_INT_TY]]* [[VAR_REF]], [[S_INT_TY]]* {{.*}} [[VAR_PRIV]])
357 // CHECK: br label %[[LAST_DONE]]
358 // CHECK: [[LAST_DONE]]
359 // CHECK-DAG: call void [[S_INT_TY_DESTR]]([[S_INT_TY]]* [[VAR_PRIV]])
360 // CHECK-DAG: call void [[S_INT_TY_DESTR]]([[S_INT_TY]]*
361 // CHECK: [[GTID_REF:%.+]] = load i{{[0-9]+}}*, i{{[0-9]+}}** [[GTID_ADDR_REF]]
362 // CHECK: [[GTID:%.+]] = load i{{[0-9]+}}, i{{[0-9]+}}* [[GTID_REF]]
363 // CHECK: call void @__kmpc_barrier(%{{.+}}* [[SECTIONS_BARRIER_LOC]], i{{[0-9]+}} [[GTID]])
364 // CHECK: ret void
365 #endif
366 
367