summaryrefslogtreecommitdiffstats
path: root/include/clang/AST/Expr.h
blob: ce86458ed4f4d8e3f6b79a5d3f15833cdb375b25 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
669
670
671
672
673
674
675
676
677
678
679
680
681
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
724
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
821
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
872
873
874
875
876
877
878
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
911
912
913
914
915
916
917
918
919
920
921
922
923
924
925
926
927
928
929
930
931
932
933
934
935
936
937
938
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
956
957
958
959
960
961
962
963
964
965
966
967
968
969
970
971
972
973
974
975
976
977
978
979
980
981
982
983
984
985
986
987
988
989
990
991
992
993
994
995
996
997
998
999
1000
1001
1002
1003
1004
1005
1006
1007
1008
1009
1010
1011
1012
1013
1014
1015
1016
1017
1018
1019
1020
1021
1022
1023
1024
1025
1026
1027
1028
1029
1030
1031
1032
1033
1034
1035
1036
1037
1038
1039
1040
1041
1042
1043
1044
1045
1046
1047
1048
1049
1050
1051
1052
1053
1054
1055
1056
1057
1058
1059
1060
1061
1062
1063
1064
1065
1066
1067
1068
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
1079
1080
1081
1082
1083
1084
1085
1086
1087
1088
1089
1090
1091
1092
1093
1094
1095
1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
1108
1109
1110
1111
1112
1113
1114
1115
1116
1117
1118
1119
1120
1121
1122
1123
1124
1125
1126
1127
1128
1129
1130
1131
1132
1133
1134
1135
1136
1137
1138
1139
1140
1141
1142
1143
1144
1145
1146
1147
1148
1149
1150
1151
1152
1153
1154
1155
1156
1157
1158
1159
1160
1161
1162
1163
1164
1165
1166
1167
1168
1169
1170
1171
1172
1173
1174
1175
1176
1177
1178
1179
1180
1181
1182
1183
1184
1185
1186
1187
1188
1189
1190
1191
1192
1193
1194
1195
1196
1197
1198
1199
1200
1201
1202
1203
1204
1205
1206
1207
1208
1209
1210
1211
1212
1213
1214
1215
1216
1217
1218
1219
1220
1221
1222
1223
1224
1225
1226
1227
1228
1229
1230
1231
1232
1233
1234
1235
1236
1237
1238
1239
1240
1241
1242
1243
1244
1245
1246
1247
1248
1249
1250
1251
1252
1253
1254
1255
1256
1257
1258
1259
1260
1261
1262
1263
1264
1265
1266
1267
1268
1269
1270
1271
1272
1273
1274
1275
1276
1277
1278
1279
1280
1281
1282
1283
1284
1285
1286
1287
1288
1289
1290
1291
1292
1293
1294
1295
1296
1297
1298
1299
1300
1301
1302
1303
1304
1305
1306
1307
1308
1309
1310
1311
1312
1313
1314
1315
1316
1317
1318
1319
1320
1321
1322
1323
1324
1325
1326
1327
1328
1329
1330
1331
1332
1333
1334
1335
1336
1337
1338
1339
1340
1341
1342
1343
1344
1345
1346
1347
1348
1349
1350
1351
1352
1353
1354
1355
1356
1357
1358
1359
1360
1361
1362
1363
1364
1365
1366
1367
1368
1369
1370
1371
1372
1373
1374
1375
1376
1377
1378
1379
1380
1381
1382
1383
1384
1385
1386
1387
1388
1389
1390
1391
1392
1393
1394
1395
1396
1397
1398
1399
1400
1401
1402
1403
1404
1405
1406
1407
1408
1409
1410
1411
1412
1413
1414
1415
1416
1417
1418
1419
1420
1421
1422
1423
1424
1425
1426
1427
1428
1429
1430
1431
1432
1433
1434
1435
1436
1437
1438
1439
1440
1441
1442
1443
1444
1445
1446
1447
1448
1449
1450
1451
1452
1453
1454
1455
1456
1457
1458
1459
1460
1461
1462
1463
1464
1465
1466
1467
1468
1469
1470
1471
1472
1473
1474
1475
1476
1477
1478
1479
1480
1481
1482
1483
1484
1485
1486
1487
1488
1489
1490
1491
1492
1493
1494
1495
1496
1497
1498
1499
1500
1501
1502
1503
1504
1505
1506
1507
1508
1509
1510
1511
1512
1513
1514
1515
1516
1517
1518
1519
1520
1521
1522
1523
1524
1525
1526
1527
1528
1529
1530
1531
1532
1533
1534
1535
1536
1537
1538
1539
1540
1541
1542
1543
1544
1545
1546
1547
1548
1549
1550
1551
1552
1553
1554
1555
1556
1557
1558
1559
1560
1561
1562
1563
1564
1565
1566
1567
1568
1569
1570
1571
1572
1573
1574
1575
1576
1577
1578
1579
1580
1581
1582
1583
1584
1585
1586
1587
1588
1589
1590
1591
1592
1593
1594
1595
1596
1597
1598
1599
1600
1601
1602
1603
1604
1605
1606
1607
1608
1609
1610
1611
1612
1613
1614
1615
1616
1617
1618
1619
1620
1621
1622
1623
1624
1625
1626
1627
1628
1629
1630
1631
1632
1633
1634
1635
1636
1637
1638
1639
1640
1641
1642
1643
1644
1645
1646
1647
1648
1649
1650
1651
1652
1653
1654
1655
1656
1657
1658
1659
1660
1661
1662
1663
1664
1665
1666
1667
1668
1669
1670
1671
1672
1673
1674
1675
1676
1677
1678
1679
1680
1681
1682
1683
1684
1685
1686
1687
1688
1689
1690
1691
1692
1693
1694
1695
1696
1697
1698
1699
1700
1701
1702
1703
1704
1705
1706
1707
1708
1709
1710
1711
1712
1713
1714
1715
1716
1717
1718
1719
1720
1721
1722
1723
1724
1725
1726
1727
1728
1729
1730
1731
1732
1733
1734
1735
1736
1737
1738
1739
1740
1741
1742
1743
1744
1745
1746
1747
1748
1749
1750
1751
1752
1753
1754
1755
1756
1757
1758
1759
1760
1761
1762
1763
1764
1765
1766
1767
1768
1769
1770
1771
1772
1773
1774
1775
1776
1777
1778
1779
1780
1781
1782
1783
1784
1785
1786
1787
1788
1789
1790
1791
1792
1793
1794
1795
1796
1797
1798
1799
1800
1801
1802
1803
1804
1805
1806
1807
1808
1809
1810
1811
1812
1813
1814
1815
1816
1817
1818
1819
1820
1821
1822
1823
1824
1825
1826
1827
1828
1829
1830
1831
1832
1833
1834
1835
1836
1837
1838
1839
1840
1841
1842
1843
1844
1845
1846
1847
1848
1849
1850
1851
1852
1853
1854
1855
1856
1857
1858
1859
1860
1861
1862
1863
1864
1865
1866
1867
1868
1869
1870
1871
1872
1873
1874
1875
1876
1877
1878
1879
1880
1881
1882
1883
1884
1885
1886
1887
1888
1889
1890
1891
1892
1893
1894
1895
1896
1897
1898
1899
1900
1901
1902
1903
1904
1905
1906
1907
1908
1909
1910
1911
1912
1913
1914
1915
1916
1917
1918
1919
1920
1921
1922
1923
1924
1925
1926
1927
1928
1929
1930
1931
1932
1933
1934
1935
1936
1937
1938
1939
1940
1941
1942
1943
1944
1945
1946
1947
1948
1949
1950
1951
1952
1953
1954
1955
1956
1957
1958
1959
1960
1961
1962
1963
1964
1965
1966
1967
1968
1969
1970
1971
1972
1973
1974
1975
1976
1977
1978
1979
1980
1981
1982
1983
1984
1985
1986
1987
1988
1989
1990
1991
1992
1993
1994
1995
1996
1997
1998
1999
2000
2001
2002
2003
2004
2005
2006
2007
2008
2009
2010
2011
2012
2013
2014
2015
2016
2017
2018
2019
2020
2021
2022
2023
2024
2025
2026
2027
2028
2029
2030
2031
2032
2033
2034
2035
2036
2037
2038
2039
2040
2041
2042
2043
2044
2045
2046
2047
2048
2049
2050
2051
2052
2053
2054
2055
2056
2057
2058
2059
2060
2061
2062
2063
2064
2065
2066
2067
2068
2069
2070
2071
2072
2073
2074
2075
2076
2077
2078
2079
2080
2081
2082
2083
2084
2085
2086
2087
2088
2089
2090
2091
2092
2093
2094
2095
2096
2097
2098
2099
2100
2101
2102
2103
2104
2105
2106
2107
2108
2109
2110
2111
2112
2113
2114
2115
2116
2117
2118
2119
2120
2121
2122
2123
2124
2125
2126
2127
2128
2129
2130
2131
2132
2133
2134
2135
2136
2137
2138
2139
2140
2141
2142
2143
2144
2145
2146
2147
2148
2149
2150
2151
2152
2153
2154
2155
2156
2157
2158
2159
2160
2161
2162
2163
2164
2165
2166
2167
2168
2169
2170
2171
2172
2173
2174
2175
2176
2177
2178
2179
2180
2181
2182
2183
2184
2185
2186
2187
2188
2189
2190
2191
2192
2193
2194
2195
2196
2197
2198
2199
2200
2201
2202
2203
2204
2205
2206
2207
2208
2209
2210
2211
2212
2213
2214
2215
2216
2217
2218
2219
2220
2221
2222
2223
2224
2225
2226
2227
2228
2229
2230
2231
2232
2233
2234
2235
2236
2237
2238
2239
2240
2241
2242
2243
2244
2245
2246
2247
2248
2249
2250
2251
2252
2253
2254
2255
2256
2257
2258
2259
2260
2261
2262
2263
2264
2265
2266
2267
2268
2269
2270
2271
2272
2273
2274
2275
2276
2277
2278
2279
2280
2281
2282
2283
2284
2285
2286
2287
2288
2289
2290
2291
2292
2293
2294
2295
2296
2297
2298
2299
2300
2301
2302
2303
2304
2305
2306
2307
2308
2309
2310
2311
2312
2313
2314
2315
2316
2317
2318
2319
2320
2321
2322
2323
2324
2325
2326
2327
2328
2329
2330
2331
2332
2333
2334
2335
2336
2337
2338
2339
2340
2341
2342
2343
2344
2345
2346
2347
2348
2349
2350
2351
2352
2353
2354
2355
2356
2357
2358
2359
2360
2361
2362
2363
2364
2365
2366
2367
2368
2369
2370
2371
2372
2373
2374
2375
2376
2377
2378
2379
2380
2381
2382
2383
2384
2385
2386
2387
2388
2389
2390
2391
2392
2393
2394
2395
2396
2397
2398
2399
2400
2401
2402
2403
2404
2405
2406
2407
2408
2409
2410
2411
2412
2413
2414
2415
2416
2417
2418
2419
2420
2421
2422
2423
2424
2425
2426
2427
2428
2429
2430
2431
2432
2433
2434
2435
2436
2437
2438
2439
2440
2441
2442
2443
2444
2445
2446
2447
2448
2449
2450
2451
2452
2453
2454
2455
2456
2457
2458
2459
2460
2461
2462
2463
2464
2465
2466
2467
2468
2469
2470
2471
2472
2473
2474
2475
2476
2477
2478
2479
2480
2481
2482
2483
2484
2485
2486
2487
2488
2489
2490
2491
2492
2493
2494
2495
2496
2497
2498
2499
2500
2501
2502
2503
2504
2505
2506
2507
2508
2509
2510
2511
2512
2513
2514
2515
2516
2517
2518
2519
2520
2521
2522
2523
2524
2525
2526
2527
2528
2529
2530
2531
2532
2533
2534
2535
2536
2537
2538
2539
2540
2541
2542
2543
2544
2545
2546
2547
2548
2549
2550
2551
2552
2553
2554
2555
2556
2557
2558
2559
2560
2561
2562
2563
2564
2565
2566
2567
2568
2569
2570
2571
2572
2573
2574
2575
2576
2577
2578
2579
2580
2581
2582
2583
2584
2585
2586
2587
2588
2589
2590
2591
2592
2593
2594
2595
2596
2597
2598
2599
2600
2601
2602
2603
2604
2605
2606
2607
2608
2609
2610
2611
2612
2613
2614
2615
2616
2617
2618
2619
2620
2621
2622
2623
2624
2625
2626
2627
2628
2629
2630
2631
2632
2633
2634
2635
2636
2637
2638
2639
2640
2641
2642
2643
2644
2645
2646
2647
2648
2649
2650
2651
2652
2653
2654
2655
2656
2657
2658
2659
2660
2661
2662
2663
2664
2665
2666
2667
2668
2669
2670
2671
2672
2673
2674
2675
2676
2677
2678
2679
2680
2681
2682
2683
2684
2685
2686
2687
2688
2689
2690
2691
2692
2693
2694
2695
2696
2697
2698
2699
2700
2701
2702
2703
2704
2705
2706
2707
2708
2709
2710
2711
2712
2713
2714
2715
2716
2717
2718
2719
2720
2721
2722
2723
2724
2725
2726
2727
2728
2729
2730
2731
2732
2733
2734
2735
2736
2737
2738
2739
2740
2741
2742
2743
2744
2745
2746
2747
2748
2749
2750
2751
2752
2753
2754
2755
2756
2757
2758
2759
2760
2761
2762
2763
2764
2765
2766
2767
2768
2769
2770
2771
2772
2773
2774
2775
2776
2777
2778
2779
2780
2781
2782
2783
2784
2785
2786
2787
2788
2789
2790
2791
2792
2793
2794
2795
2796
2797
2798
2799
2800
2801
2802
2803
2804
2805
2806
2807
2808
2809
2810
2811
2812
2813
2814
2815
2816
2817
2818
2819
2820
2821
2822
2823
2824
2825
2826
2827
2828
2829
2830
2831
2832
2833
2834
2835
2836
2837
2838
2839
2840
2841
2842
2843
2844
2845
2846
2847
2848
2849
2850
2851
2852
2853
2854
2855
2856
2857
2858
2859
2860
2861
2862
2863
2864
2865
2866
2867
2868
2869
2870
2871
2872
2873
2874
2875
2876
2877
2878
2879
2880
2881
2882
2883
2884
2885
2886
2887
2888
2889
2890
2891
2892
2893
2894
2895
2896
2897
2898
2899
2900
2901
2902
2903
2904
2905
2906
2907
2908
2909
2910
2911
2912
2913
2914
2915
2916
2917
2918
2919
2920
2921
2922
2923
2924
2925
2926
2927
2928
2929
2930
2931
2932
2933
2934
2935
2936
2937
2938
2939
2940
2941
2942
2943
2944
2945
2946
2947
2948
2949
2950
2951
2952
2953
2954
2955
2956
2957
2958
2959
2960
2961
2962
2963
2964
2965
2966
2967
2968
2969
2970
2971
2972
2973
2974
2975
2976
2977
2978
2979
2980
2981
2982
2983
2984
2985
2986
2987
2988
2989
2990
2991
2992
2993
2994
2995
2996
2997
2998
2999
3000
3001
3002
3003
3004
3005
3006
3007
3008
3009
3010
3011
3012
3013
3014
3015
3016
3017
3018
3019
3020
3021
3022
3023
3024
3025
3026
3027
3028
3029
3030
3031
3032
3033
3034
3035
3036
3037
3038
3039
3040
3041
3042
3043
3044
3045
3046
3047
3048
3049
3050
3051
3052
3053
3054
3055
3056
3057
3058
3059
3060
3061
3062
3063
3064
3065
3066
3067
3068
3069
3070
3071
3072
3073
3074
3075
3076
3077
3078
3079
3080
3081
3082
3083
3084
3085
3086
3087
3088
3089
3090
3091
3092
3093
3094
3095
3096
3097
3098
3099
3100
3101
3102
3103
3104
3105
3106
3107
3108
3109
3110
3111
3112
3113
3114
3115
3116
3117
3118
3119
3120
3121
3122
3123
3124
3125
3126
3127
3128
3129
3130
3131
3132
3133
3134
3135
3136
3137
3138
3139
3140
3141
3142
3143
3144
3145
3146
3147
3148
3149
3150
3151
3152
3153
3154
3155
3156
3157
3158
3159
3160
3161
3162
3163
3164
3165
3166
3167
3168
3169
3170
3171
3172
3173
3174
3175
3176
3177
3178
3179
3180
3181
3182
3183
3184
3185
3186
3187
3188
3189
3190
3191
3192
3193
3194
3195
3196
3197
3198
3199
3200
3201
3202
3203
3204
3205
3206
3207
3208
3209
3210
3211
3212
3213
3214
3215
3216
3217
3218
3219
3220
3221
3222
3223
3224
3225
3226
3227
3228
3229
3230
3231
3232
3233
3234
3235
3236
3237
3238
3239
3240
3241
3242
3243
3244
3245
3246
3247
3248
3249
3250
3251
3252
3253
3254
3255
3256
3257
3258
3259
3260
3261
3262
3263
3264
3265
3266
3267
3268
3269
3270
3271
3272
3273
3274
3275
3276
3277
3278
3279
3280
3281
3282
3283
3284
3285
3286
3287
3288
3289
3290
3291
3292
3293
3294
3295
3296
3297
3298
3299
3300
3301
3302
3303
3304
3305
3306
3307
3308
3309
3310
3311
3312
3313
3314
3315
3316
3317
3318
3319
3320
3321
3322
3323
3324
3325
3326
3327
3328
3329
3330
3331
3332
3333
3334
3335
3336
3337
3338
3339
3340
3341
3342
3343
3344
3345
3346
3347
3348
3349
3350
3351
3352
3353
3354
3355
3356
3357
3358
3359
3360
3361
3362
3363
3364
3365
3366
3367
3368
3369
3370
3371
3372
3373
3374
3375
3376
3377
3378
3379
3380
3381
3382
3383
3384
3385
3386
3387
3388
3389
3390
3391
3392
3393
3394
3395
3396
3397
3398
3399
3400
3401
3402
3403
3404
3405
3406
3407
3408
3409
3410
3411
3412
3413
3414
3415
3416
3417
3418
3419
3420
3421
3422
3423
3424
3425
3426
3427
3428
3429
3430
3431
3432
3433
3434
3435
3436
3437
3438
3439
3440
3441
3442
3443
3444
3445
3446
3447
3448
3449
3450
3451
3452
3453
3454
3455
3456
3457
3458
3459
3460
3461
3462
3463
3464
3465
3466
3467
3468
3469
3470
3471
3472
3473
3474
3475
3476
3477
3478
3479
3480
3481
3482
3483
3484
3485
3486
3487
3488
3489
3490
3491
3492
3493
3494
3495
3496
3497
3498
3499
3500
3501
3502
3503
3504
3505
3506
3507
3508
3509
3510
3511
3512
3513
3514
3515
3516
3517
3518
3519
3520
3521
3522
3523
3524
3525
3526
3527
3528
3529
3530
3531
3532
3533
3534
3535
3536
3537
3538
3539
3540
3541
3542
3543
3544
3545
3546
3547
3548
3549
3550
3551
3552
3553
3554
3555
3556
3557
3558
3559
3560
3561
3562
3563
3564
3565
3566
3567
3568
3569
3570
3571
3572
3573
3574
3575
3576
3577
3578
3579
3580
3581
3582
3583
3584
3585
3586
3587
3588
3589
3590
3591
3592
3593
3594
3595
3596
3597
3598
3599
3600
3601
3602
3603
3604
3605
3606
3607
3608
3609
3610
3611
3612
3613
3614
3615
3616
3617
3618
3619
3620
3621
3622
3623
3624
3625
3626
3627
3628
3629
3630
3631
3632
3633
3634
3635
3636
3637
3638
3639
3640
3641
3642
3643
3644
3645
3646
3647
3648
3649
3650
3651
3652
3653
3654
3655
3656
3657
3658
3659
3660
3661
3662
3663
3664
3665
3666
3667
3668
3669
3670
3671
3672
3673
3674
3675
3676
3677
3678
3679
3680
3681
3682
3683
3684
3685
3686
3687
3688
3689
3690
3691
3692
3693
3694
3695
3696
3697
3698
3699
3700
3701
3702
3703
3704
3705
3706
3707
3708
3709
3710
3711
3712
3713
3714
3715
3716
3717
3718
3719
3720
3721
3722
3723
3724
3725
3726
3727
3728
3729
3730
3731
3732
3733
3734
3735
3736
3737
3738
3739
3740
3741
3742
3743
3744
3745
3746
3747
3748
3749
3750
3751
3752
3753
3754
3755
3756
3757
3758
3759
3760
3761
3762
3763
3764
3765
3766
3767
3768
3769
3770
3771
3772
3773
3774
3775
3776
3777
3778
3779
3780
3781
3782
3783
3784
3785
3786
3787
3788
3789
3790
3791
3792
3793
3794
3795
3796
3797
3798
3799
3800
3801
3802
3803
3804
3805
3806
3807
3808
3809
3810
3811
3812
3813
3814
3815
3816
3817
3818
3819
3820
3821
3822
3823
3824
3825
3826
3827
3828
3829
3830
3831
3832
3833
3834
3835
3836
3837
3838
3839
3840
3841
3842
3843
3844
3845
3846
3847
3848
3849
3850
3851
3852
3853
3854
3855
3856
3857
3858
3859
3860
3861
3862
3863
3864
3865
3866
3867
3868
3869
3870
3871
3872
3873
3874
3875
3876
3877
3878
3879
3880
3881
3882
3883
3884
3885
3886
3887
3888
3889
3890
3891
3892
3893
3894
3895
3896
3897
3898
3899
3900
3901
3902
3903
3904
3905
3906
3907
3908
3909
3910
3911
3912
3913
3914
3915
3916
3917
3918
3919
3920
3921
3922
3923
3924
3925
3926
3927
3928
3929
3930
3931
3932
3933
3934
3935
3936
3937
3938
3939
3940
3941
3942
3943
3944
3945
3946
3947
3948
3949
3950
3951
3952
3953
3954
3955
3956
3957
3958
3959
3960
3961
3962
3963
3964
3965
3966
3967
3968
3969
3970
3971
3972
3973
3974
3975
3976
3977
3978
3979
3980
3981
3982
3983
3984
3985
3986
3987
3988
3989
3990
3991
3992
3993
3994
3995
3996
3997
3998
3999
4000
4001
4002
4003
4004
4005
4006
4007
4008
4009
4010
4011
4012
4013
4014
4015
4016
4017
4018
4019
4020
4021
4022
4023
4024
4025
4026
4027
4028
4029
4030
4031
4032
4033
4034
4035
4036
4037
4038
4039
4040
4041
4042
4043
4044
4045
4046
4047
4048
4049
4050
4051
4052
4053
4054
4055
4056
4057
4058
4059
4060
4061
4062
4063
4064
4065
4066
4067
4068
4069
4070
4071
4072
4073
4074
4075
//===--- Expr.h - Classes for representing expressions ----------*- C++ -*-===//
//
//                     The LLVM Compiler Infrastructure
//
// This file is distributed under the University of Illinois Open Source
// License. See LICENSE.TXT for details.
//
//===----------------------------------------------------------------------===//
//
//  This file defines the Expr interface and subclasses.
//
//===----------------------------------------------------------------------===//

#ifndef LLVM_CLANG_AST_EXPR_H
#define LLVM_CLANG_AST_EXPR_H

#include "clang/AST/APValue.h"
#include "clang/AST/Stmt.h"
#include "clang/AST/Type.h"
#include "clang/AST/DeclAccessPair.h"
#include "clang/AST/OperationKinds.h"
#include "clang/AST/ASTVector.h"
#include "clang/AST/UsuallyTinyPtrVector.h"
#include "clang/Basic/TypeTraits.h"
#include "llvm/ADT/APSInt.h"
#include "llvm/ADT/APFloat.h"
#include "llvm/ADT/SmallVector.h"
#include "llvm/ADT/StringRef.h"
#include <cctype>

namespace clang {
  class ASTContext;
  class APValue;
  class Decl;
  class IdentifierInfo;
  class ParmVarDecl;
  class NamedDecl;
  class ValueDecl;
  class BlockDecl;
  class CXXBaseSpecifier;
  class CXXOperatorCallExpr;
  class CXXMemberCallExpr;
  class ObjCPropertyRefExpr;
  class TemplateArgumentLoc;
  class TemplateArgumentListInfo;
  class OpaqueValueExpr;

/// \brief A simple array of base specifiers.
typedef llvm::SmallVector<CXXBaseSpecifier*, 4> CXXCastPath;

/// Expr - This represents one expression.  Note that Expr's are subclasses of
/// Stmt.  This allows an expression to be transparently used any place a Stmt
/// is required.
///
class Expr : public Stmt {
  QualType TR;

protected:
  Expr(StmtClass SC, QualType T, ExprValueKind VK, ExprObjectKind OK,
       bool TD, bool VD, bool ContainsUnexpandedParameterPack) : Stmt(SC) {
    ExprBits.TypeDependent = TD;
    ExprBits.ValueDependent = VD;
    ExprBits.ValueKind = VK;
    ExprBits.ObjectKind = OK;
    ExprBits.ContainsUnexpandedParameterPack = ContainsUnexpandedParameterPack;
    setType(T);
  }

  /// \brief Construct an empty expression.
  explicit Expr(StmtClass SC, EmptyShell) : Stmt(SC) { }

public:
  QualType getType() const { return TR; }
  void setType(QualType t) {
    // In C++, the type of an expression is always adjusted so that it
    // will not have reference type an expression will never have
    // reference type (C++ [expr]p6). Use
    // QualType::getNonReferenceType() to retrieve the non-reference
    // type. Additionally, inspect Expr::isLvalue to determine whether
    // an expression that is adjusted in this manner should be
    // considered an lvalue.
    assert((t.isNull() || !t->isReferenceType()) &&
           "Expressions can't have reference type");

    TR = t;
  }

  /// isValueDependent - Determines whether this expression is
  /// value-dependent (C++ [temp.dep.constexpr]). For example, the
  /// array bound of "Chars" in the following example is
  /// value-dependent.
  /// @code
  /// template<int Size, char (&Chars)[Size]> struct meta_string;
  /// @endcode
  bool isValueDependent() const { return ExprBits.ValueDependent; }

  /// \brief Set whether this expression is value-dependent or not.
  void setValueDependent(bool VD) { ExprBits.ValueDependent = VD; }

  /// isTypeDependent - Determines whether this expression is
  /// type-dependent (C++ [temp.dep.expr]), which means that its type
  /// could change from one template instantiation to the next. For
  /// example, the expressions "x" and "x + y" are type-dependent in
  /// the following code, but "y" is not type-dependent:
  /// @code
  /// template<typename T>
  /// void add(T x, int y) {
  ///   x + y;
  /// }
  /// @endcode
  bool isTypeDependent() const { return ExprBits.TypeDependent; }

  /// \brief Set whether this expression is type-dependent or not.
  void setTypeDependent(bool TD) { ExprBits.TypeDependent = TD; }

  /// \brief Whether this expression contains an unexpanded parameter
  /// pack (for C++0x variadic templates).
  ///
  /// Given the following function template:
  ///
  /// \code
  /// template<typename F, typename ...Types>
  /// void forward(const F &f, Types &&...args) {
  ///   f(static_cast<Types&&>(args)...);
  /// }
  /// \endcode
  ///
  /// The expressions \c args and \c static_cast<Types&&>(args) both
  /// contain parameter packs.
  bool containsUnexpandedParameterPack() const { 
    return ExprBits.ContainsUnexpandedParameterPack; 
  }

  /// \brief Set the bit that describes whether this expression
  /// contains an unexpanded parameter pack.
  void setContainsUnexpandedParameterPack(bool PP = true) {
    ExprBits.ContainsUnexpandedParameterPack = PP;
  }

  /// getExprLoc - Return the preferred location for the arrow when diagnosing
  /// a problem with a generic expression.
  SourceLocation getExprLoc() const;

  /// isUnusedResultAWarning - Return true if this immediate expression should
  /// be warned about if the result is unused.  If so, fill in Loc and Ranges
  /// with location to warn on and the source range[s] to report with the
  /// warning.
  bool isUnusedResultAWarning(SourceLocation &Loc, SourceRange &R1,
                              SourceRange &R2, ASTContext &Ctx) const;

  /// isLValue - True if this expression is an "l-value" according to
  /// the rules of the current language.  C and C++ give somewhat
  /// different rules for this concept, but in general, the result of
  /// an l-value expression identifies a specific object whereas the
  /// result of an r-value expression is a value detached from any
  /// specific storage.
  ///
  /// C++0x divides the concept of "r-value" into pure r-values
  /// ("pr-values") and so-called expiring values ("x-values"), which
  /// identify specific objects that can be safely cannibalized for
  /// their resources.  This is an unfortunate abuse of terminology on
  /// the part of the C++ committee.  In Clang, when we say "r-value",
  /// we generally mean a pr-value.
  bool isLValue() const { return getValueKind() == VK_LValue; }
  bool isRValue() const { return getValueKind() == VK_RValue; }
  bool isXValue() const { return getValueKind() == VK_XValue; }
  bool isGLValue() const { return getValueKind() != VK_RValue; }

  enum LValueClassification {
    LV_Valid,
    LV_NotObjectType,
    LV_IncompleteVoidType,
    LV_DuplicateVectorComponents,
    LV_InvalidExpression,
    LV_InvalidMessageExpression,
    LV_MemberFunction,
    LV_SubObjCPropertySetting,
    LV_ClassTemporary
  };
  /// Reasons why an expression might not be an l-value.
  LValueClassification ClassifyLValue(ASTContext &Ctx) const;

  /// isModifiableLvalue - C99 6.3.2.1: an lvalue that does not have array type,
  /// does not have an incomplete type, does not have a const-qualified type,
  /// and if it is a structure or union, does not have any member (including,
  /// recursively, any member or element of all contained aggregates or unions)
  /// with a const-qualified type.
  ///
  /// \param Loc [in] [out] - A source location which *may* be filled
  /// in with the location of the expression making this a
  /// non-modifiable lvalue, if specified.
  enum isModifiableLvalueResult {
    MLV_Valid,
    MLV_NotObjectType,
    MLV_IncompleteVoidType,
    MLV_DuplicateVectorComponents,
    MLV_InvalidExpression,
    MLV_LValueCast,           // Specialized form of MLV_InvalidExpression.
    MLV_IncompleteType,
    MLV_ConstQualified,
    MLV_ArrayType,
    MLV_NotBlockQualified,
    MLV_ReadonlyProperty,
    MLV_NoSetterProperty,
    MLV_MemberFunction,
    MLV_SubObjCPropertySetting,
    MLV_InvalidMessageExpression,
    MLV_ClassTemporary
  };
  isModifiableLvalueResult isModifiableLvalue(ASTContext &Ctx,
                                              SourceLocation *Loc = 0) const;

  /// \brief The return type of classify(). Represents the C++0x expression
  ///        taxonomy.
  class Classification {
  public:
    /// \brief The various classification results. Most of these mean prvalue.
    enum Kinds {
      CL_LValue,
      CL_XValue,
      CL_Function, // Functions cannot be lvalues in C.
      CL_Void, // Void cannot be an lvalue in C.
      CL_AddressableVoid, // Void expression whose address can be taken in C.
      CL_DuplicateVectorComponents, // A vector shuffle with dupes.
      CL_MemberFunction, // An expression referring to a member function
      CL_SubObjCPropertySetting,
      CL_ClassTemporary, // A prvalue of class type
      CL_ObjCMessageRValue, // ObjC message is an rvalue
      CL_PRValue // A prvalue for any other reason, of any other type
    };
    /// \brief The results of modification testing.
    enum ModifiableType {
      CM_Untested, // testModifiable was false.
      CM_Modifiable,
      CM_RValue, // Not modifiable because it's an rvalue
      CM_Function, // Not modifiable because it's a function; C++ only
      CM_LValueCast, // Same as CM_RValue, but indicates GCC cast-as-lvalue ext
      CM_NotBlockQualified, // Not captured in the closure
      CM_NoSetterProperty,// Implicit assignment to ObjC property without setter
      CM_ConstQualified,
      CM_ArrayType,
      CM_IncompleteType
    };

  private:
    friend class Expr;

    unsigned short Kind;
    unsigned short Modifiable;

    explicit Classification(Kinds k, ModifiableType m)
      : Kind(k), Modifiable(m)
    {}

  public:
    Classification() {}

    Kinds getKind() const { return static_cast<Kinds>(Kind); }
    ModifiableType getModifiable() const {
      assert(Modifiable != CM_Untested && "Did not test for modifiability.");
      return static_cast<ModifiableType>(Modifiable);
    }
    bool isLValue() const { return Kind == CL_LValue; }
    bool isXValue() const { return Kind == CL_XValue; }
    bool isGLValue() const { return Kind <= CL_XValue; }
    bool isPRValue() const { return Kind >= CL_Function; }
    bool isRValue() const { return Kind >= CL_XValue; }
    bool isModifiable() const { return getModifiable() == CM_Modifiable; }
    
    /// \brief Create a simple, modifiably lvalue
    static Classification makeSimpleLValue() {
      return Classification(CL_LValue, CM_Modifiable);
    }
    
  };
  /// \brief Classify - Classify this expression according to the C++0x
  ///        expression taxonomy.
  ///
  /// C++0x defines ([basic.lval]) a new taxonomy of expressions to replace the
  /// old lvalue vs rvalue. This function determines the type of expression this
  /// is. There are three expression types:
  /// - lvalues are classical lvalues as in C++03.
  /// - prvalues are equivalent to rvalues in C++03.
  /// - xvalues are expressions yielding unnamed rvalue references, e.g. a
  ///   function returning an rvalue reference.
  /// lvalues and xvalues are collectively referred to as glvalues, while
  /// prvalues and xvalues together form rvalues.
  Classification Classify(ASTContext &Ctx) const {
    return ClassifyImpl(Ctx, 0);
  }

  /// \brief ClassifyModifiable - Classify this expression according to the
  ///        C++0x expression taxonomy, and see if it is valid on the left side
  ///        of an assignment.
  ///
  /// This function extends classify in that it also tests whether the
  /// expression is modifiable (C99 6.3.2.1p1).
  /// \param Loc A source location that might be filled with a relevant location
  ///            if the expression is not modifiable.
  Classification ClassifyModifiable(ASTContext &Ctx, SourceLocation &Loc) const{
    return ClassifyImpl(Ctx, &Loc);
  }

  /// getValueKindForType - Given a formal return or parameter type,
  /// give its value kind.
  static ExprValueKind getValueKindForType(QualType T) {
    if (const ReferenceType *RT = T->getAs<ReferenceType>())
      return (isa<LValueReferenceType>(RT)
                ? VK_LValue
                : (RT->getPointeeType()->isFunctionType()
                     ? VK_LValue : VK_XValue));
    return VK_RValue;
  }

  /// getValueKind - The value kind that this expression produces.
  ExprValueKind getValueKind() const {
    return static_cast<ExprValueKind>(ExprBits.ValueKind);
  }

  /// getObjectKind - The object kind that this expression produces.
  /// Object kinds are meaningful only for expressions that yield an
  /// l-value or x-value.
  ExprObjectKind getObjectKind() const {
    return static_cast<ExprObjectKind>(ExprBits.ObjectKind);
  }

  bool isOrdinaryOrBitFieldObject() const {
    ExprObjectKind OK = getObjectKind();
    return (OK == OK_Ordinary || OK == OK_BitField);
  }

  /// setValueKind - Set the value kind produced by this expression.
  void setValueKind(ExprValueKind Cat) { ExprBits.ValueKind = Cat; }

  /// setObjectKind - Set the object kind produced by this expression.
  void setObjectKind(ExprObjectKind Cat) { ExprBits.ObjectKind = Cat; }

private:
  Classification ClassifyImpl(ASTContext &Ctx, SourceLocation *Loc) const;

public:

  /// \brief If this expression refers to a bit-field, retrieve the
  /// declaration of that bit-field.
  FieldDecl *getBitField();

  const FieldDecl *getBitField() const {
    return const_cast<Expr*>(this)->getBitField();
  }

  /// \brief If this expression is an l-value for an Objective C
  /// property, find the underlying property reference expression.
  const ObjCPropertyRefExpr *getObjCProperty() const;

  /// \brief Returns whether this expression refers to a vector element.
  bool refersToVectorElement() const;
  
  /// isKnownToHaveBooleanValue - Return true if this is an integer expression
  /// that is known to return 0 or 1.  This happens for _Bool/bool expressions
  /// but also int expressions which are produced by things like comparisons in
  /// C.
  bool isKnownToHaveBooleanValue() const;
  
  /// isIntegerConstantExpr - Return true if this expression is a valid integer
  /// constant expression, and, if so, return its value in Result.  If not a
  /// valid i-c-e, return false and fill in Loc (if specified) with the location
  /// of the invalid expression.
  bool isIntegerConstantExpr(llvm::APSInt &Result, ASTContext &Ctx,
                             SourceLocation *Loc = 0,
                             bool isEvaluated = true) const;
  bool isIntegerConstantExpr(ASTContext &Ctx, SourceLocation *Loc = 0) const {
    llvm::APSInt X;
    return isIntegerConstantExpr(X, Ctx, Loc);
  }
  /// isConstantInitializer - Returns true if this expression is a constant
  /// initializer, which can be emitted at compile-time.
  bool isConstantInitializer(ASTContext &Ctx, bool ForRef) const;

  /// EvalResult is a struct with detailed info about an evaluated expression.
  struct EvalResult {
    /// Val - This is the value the expression can be folded to.
    APValue Val;

    /// HasSideEffects - Whether the evaluated expression has side effects.
    /// For example, (f() && 0) can be folded, but it still has side effects.
    bool HasSideEffects;

    /// Diag - If the expression is unfoldable, then Diag contains a note
    /// diagnostic indicating why it's not foldable. DiagLoc indicates a caret
    /// position for the error, and DiagExpr is the expression that caused
    /// the error.
    /// If the expression is foldable, but not an integer constant expression,
    /// Diag contains a note diagnostic that describes why it isn't an integer
    /// constant expression. If the expression *is* an integer constant
    /// expression, then Diag will be zero.
    unsigned Diag;
    const Expr *DiagExpr;
    SourceLocation DiagLoc;

    EvalResult() : HasSideEffects(false), Diag(0), DiagExpr(0) {}

    // isGlobalLValue - Return true if the evaluated lvalue expression
    // is global.
    bool isGlobalLValue() const;
    // hasSideEffects - Return true if the evaluated expression has
    // side effects.
    bool hasSideEffects() const {
      return HasSideEffects;
    }
  };

  /// Evaluate - Return true if this is a constant which we can fold using
  /// any crazy technique (that has nothing to do with language standards) that
  /// we want to.  If this function returns true, it returns the folded constant
  /// in Result.
  bool Evaluate(EvalResult &Result, const ASTContext &Ctx) const;

  /// EvaluateAsBooleanCondition - Return true if this is a constant
  /// which we we can fold and convert to a boolean condition using
  /// any crazy technique that we want to.
  bool EvaluateAsBooleanCondition(bool &Result, const ASTContext &Ctx) const;

  /// isEvaluatable - Call Evaluate to see if this expression can be constant
  /// folded, but discard the result.
  bool isEvaluatable(const ASTContext &Ctx) const;

  /// HasSideEffects - This routine returns true for all those expressions
  /// which must be evaluated each time and must not be optimized away 
  /// or evaluated at compile time. Example is a function call, volatile
  /// variable read.
  bool HasSideEffects(const ASTContext &Ctx) const;
  
  /// EvaluateAsInt - Call Evaluate and return the folded integer. This
  /// must be called on an expression that constant folds to an integer.
  llvm::APSInt EvaluateAsInt(const ASTContext &Ctx) const;

  /// EvaluateAsLValue - Evaluate an expression to see if it's a lvalue
  /// with link time known address.
  bool EvaluateAsLValue(EvalResult &Result, const ASTContext &Ctx) const;

  /// EvaluateAsLValue - Evaluate an expression to see if it's a lvalue.
  bool EvaluateAsAnyLValue(EvalResult &Result, const ASTContext &Ctx) const;

  /// \brief Enumeration used to describe the kind of Null pointer constant
  /// returned from \c isNullPointerConstant().
  enum NullPointerConstantKind {
    /// \brief Expression is not a Null pointer constant.
    NPCK_NotNull = 0,

    /// \brief Expression is a Null pointer constant built from a zero integer.
    NPCK_ZeroInteger,

    /// \brief Expression is a C++0X nullptr.
    NPCK_CXX0X_nullptr,

    /// \brief Expression is a GNU-style __null constant.
    NPCK_GNUNull
  };

  /// \brief Enumeration used to describe how \c isNullPointerConstant()
  /// should cope with value-dependent expressions.
  enum NullPointerConstantValueDependence {
    /// \brief Specifies that the expression should never be value-dependent.
    NPC_NeverValueDependent = 0,
    
    /// \brief Specifies that a value-dependent expression of integral or
    /// dependent type should be considered a null pointer constant.
    NPC_ValueDependentIsNull,
    
    /// \brief Specifies that a value-dependent expression should be considered
    /// to never be a null pointer constant.
    NPC_ValueDependentIsNotNull
  };
  
  /// isNullPointerConstant - C99 6.3.2.3p3 - Test if this reduces down to
  /// a Null pointer constant. The return value can further distinguish the
  /// kind of NULL pointer constant that was detected.
  NullPointerConstantKind isNullPointerConstant(
      ASTContext &Ctx,
      NullPointerConstantValueDependence NPC) const;

  /// isOBJCGCCandidate - Return true if this expression may be used in a read/
  /// write barrier.
  bool isOBJCGCCandidate(ASTContext &Ctx) const;

  /// \brief Returns true if this expression is a bound member function.
  bool isBoundMemberFunction(ASTContext &Ctx) const;

  /// \brief Given an expression of bound-member type, find the type
  /// of the member.  Returns null if this is an *overloaded* bound
  /// member expression.
  static QualType findBoundMemberType(const Expr *expr);

  /// \brief Result type of CanThrow().
  enum CanThrowResult {
    CT_Cannot,
    CT_Dependent,
    CT_Can
  };
  /// \brief Test if this expression, if evaluated, might throw, according to
  ///        the rules of C++ [expr.unary.noexcept].
  CanThrowResult CanThrow(ASTContext &C) const;

  /// IgnoreParens - Ignore parentheses.  If this Expr is a ParenExpr, return
  ///  its subexpression.  If that subexpression is also a ParenExpr,
  ///  then this method recursively returns its subexpression, and so forth.
  ///  Otherwise, the method returns the current Expr.
  Expr *IgnoreParens();

  /// IgnoreParenCasts - Ignore parentheses and casts.  Strip off any ParenExpr
  /// or CastExprs, returning their operand.
  Expr *IgnoreParenCasts();

  /// IgnoreParenImpCasts - Ignore parentheses and implicit casts.  Strip off any
  /// ParenExpr or ImplicitCastExprs, returning their operand.
  Expr *IgnoreParenImpCasts();

  /// IgnoreConversionOperator - Ignore conversion operator. If this Expr is a
  /// call to a conversion operator, return the argument.
  Expr *IgnoreConversionOperator();

  const Expr *IgnoreConversionOperator() const {
    return const_cast<Expr*>(this)->IgnoreConversionOperator();
  }

  const Expr *IgnoreParenImpCasts() const {
    return const_cast<Expr*>(this)->IgnoreParenImpCasts();
  }
  
  /// Ignore parentheses and lvalue casts.  Strip off any ParenExpr and
  /// CastExprs that represent lvalue casts, returning their operand.
  Expr *IgnoreParenLValueCasts();
  
  const Expr *IgnoreParenLValueCasts() const {
    return const_cast<Expr*>(this)->IgnoreParenLValueCasts();
  }

  /// IgnoreParenNoopCasts - Ignore parentheses and casts that do not change the
  /// value (including ptr->int casts of the same size).  Strip off any
  /// ParenExpr or CastExprs, returning their operand.
  Expr *IgnoreParenNoopCasts(ASTContext &Ctx);

  /// \brief Determine whether this expression is a default function argument.
  ///
  /// Default arguments are implicitly generated in the abstract syntax tree
  /// by semantic analysis for function calls, object constructions, etc. in 
  /// C++. Default arguments are represented by \c CXXDefaultArgExpr nodes;
  /// this routine also looks through any implicit casts to determine whether
  /// the expression is a default argument.
  bool isDefaultArgument() const;
  
  /// \brief Determine whether the result of this expression is a
  /// temporary object of the given class type.
  bool isTemporaryObject(ASTContext &Ctx, const CXXRecordDecl *TempTy) const;

  /// \brief Whether this expression is an implicit reference to 'this' in C++.
  bool isImplicitCXXThis() const;
  
  const Expr *IgnoreParens() const {
    return const_cast<Expr*>(this)->IgnoreParens();
  }
  const Expr *IgnoreParenCasts() const {
    return const_cast<Expr*>(this)->IgnoreParenCasts();
  }
  const Expr *IgnoreParenNoopCasts(ASTContext &Ctx) const {
    return const_cast<Expr*>(this)->IgnoreParenNoopCasts(Ctx);
  }

  static bool hasAnyTypeDependentArguments(Expr** Exprs, unsigned NumExprs);
  static bool hasAnyValueDependentArguments(Expr** Exprs, unsigned NumExprs);

  static bool classof(const Stmt *T) {
    return T->getStmtClass() >= firstExprConstant &&
           T->getStmtClass() <= lastExprConstant;
  }
  static bool classof(const Expr *) { return true; }
};


//===----------------------------------------------------------------------===//
// Primary Expressions.
//===----------------------------------------------------------------------===//

/// OpaqueValueExpr - An expression referring to an opaque object of a
/// fixed type and value class.  These don't correspond to concrete
/// syntax; instead they're used to express operations (usually copy
/// operations) on values whose source is generally obvious from
/// context.
class OpaqueValueExpr : public Expr {
  friend class ASTStmtReader;
  Expr *SourceExpr;
  SourceLocation Loc;
  
public:
  OpaqueValueExpr(SourceLocation Loc, QualType T, ExprValueKind VK, 
                  ExprObjectKind OK = OK_Ordinary)
    : Expr(OpaqueValueExprClass, T, VK, OK,
           T->isDependentType(), T->isDependentType(), false), 
      SourceExpr(0), Loc(Loc) {
  }

  /// Given an expression which invokes a copy constructor --- i.e.  a
  /// CXXConstructExpr, possibly wrapped in an ExprWithCleanups ---
  /// find the OpaqueValueExpr that's the source of the construction.
  static const OpaqueValueExpr *findInCopyConstruct(const Expr *expr);

  explicit OpaqueValueExpr(EmptyShell Empty)
    : Expr(OpaqueValueExprClass, Empty) { }

  /// \brief Retrieve the location of this expression.
  SourceLocation getLocation() const { return Loc; }
  
  SourceRange getSourceRange() const {
    if (SourceExpr) return SourceExpr->getSourceRange();
    return Loc;
  }
  SourceLocation getExprLoc() const {
    if (SourceExpr) return SourceExpr->getExprLoc();
    return Loc;
  }

  child_range children() { return child_range(); }

  /// The source expression of an opaque value expression is the
  /// expression which originally generated the value.  This is
  /// provided as a convenience for analyses that don't wish to
  /// precisely model the execution behavior of the program.
  ///
  /// The source expression is typically set when building the
  /// expression which binds the opaque value expression in the first
  /// place.
  Expr *getSourceExpr() const { return SourceExpr; }
  void setSourceExpr(Expr *e) { SourceExpr = e; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == OpaqueValueExprClass;
  }
  static bool classof(const OpaqueValueExpr *) { return true; }
};

/// \brief Represents an explicit template argument list in C++, e.g.,
/// the "<int>" in "sort<int>".
struct ExplicitTemplateArgumentList {
  /// \brief The source location of the left angle bracket ('<');
  SourceLocation LAngleLoc;
  
  /// \brief The source location of the right angle bracket ('>');
  SourceLocation RAngleLoc;
  
  /// \brief The number of template arguments in TemplateArgs.
  /// The actual template arguments (if any) are stored after the
  /// ExplicitTemplateArgumentList structure.
  unsigned NumTemplateArgs;
  
  /// \brief Retrieve the template arguments
  TemplateArgumentLoc *getTemplateArgs() {
    return reinterpret_cast<TemplateArgumentLoc *> (this + 1);
  }
  
  /// \brief Retrieve the template arguments
  const TemplateArgumentLoc *getTemplateArgs() const {
    return reinterpret_cast<const TemplateArgumentLoc *> (this + 1);
  }

  void initializeFrom(const TemplateArgumentListInfo &List);
  void initializeFrom(const TemplateArgumentListInfo &List,
                      bool &Dependent, bool &ContainsUnexpandedParameterPack);
  void copyInto(TemplateArgumentListInfo &List) const;
  static std::size_t sizeFor(unsigned NumTemplateArgs);
  static std::size_t sizeFor(const TemplateArgumentListInfo &List);
};

/// \brief A reference to a declared variable, function, enum, etc.
/// [C99 6.5.1p2]
///
/// This encodes all the information about how a declaration is referenced
/// within an expression.
///
/// There are several optional constructs attached to DeclRefExprs only when
/// they apply in order to conserve memory. These are laid out past the end of
/// the object, and flags in the DeclRefExprBitfield track whether they exist:
///
///   DeclRefExprBits.HasQualifier:
///       Specifies when this declaration reference expression has a C++
///       nested-name-specifier.
///   DeclRefExprBits.HasFoundDecl:
///       Specifies when this declaration reference expression has a record of
///       a NamedDecl (different from the referenced ValueDecl) which was found
///       during name lookup and/or overload resolution.
///   DeclRefExprBits.HasExplicitTemplateArgs:
///       Specifies when this declaration reference expression has an explicit
///       C++ template argument list.
class DeclRefExpr : public Expr {
  /// \brief The declaration that we are referencing.
  ValueDecl *D;

  /// \brief The location of the declaration name itself.
  SourceLocation Loc;

  /// \brief Provides source/type location info for the declaration name
  /// embedded in D.
  DeclarationNameLoc DNLoc;

  /// \brief Helper to retrieve the optional NestedNameSpecifierLoc.
  NestedNameSpecifierLoc &getInternalQualifierLoc() {
    assert(hasQualifier());
    return *reinterpret_cast<NestedNameSpecifierLoc *>(this + 1);
  }

  /// \brief Helper to retrieve the optional NestedNameSpecifierLoc.
  const NestedNameSpecifierLoc &getInternalQualifierLoc() const {
    return const_cast<DeclRefExpr *>(this)->getInternalQualifierLoc();
  }

  /// \brief Test whether there is a distinct FoundDecl attached to the end of
  /// this DRE.
  bool hasFoundDecl() const { return DeclRefExprBits.HasFoundDecl; }

  /// \brief Helper to retrieve the optional NamedDecl through which this
  /// reference occured.
  NamedDecl *&getInternalFoundDecl() {
    assert(hasFoundDecl());
    if (hasQualifier())
      return *reinterpret_cast<NamedDecl **>(&getInternalQualifierLoc() + 1);
    return *reinterpret_cast<NamedDecl **>(this + 1);
  }

  /// \brief Helper to retrieve the optional NamedDecl through which this
  /// reference occured.
  NamedDecl *getInternalFoundDecl() const {
    return const_cast<DeclRefExpr *>(this)->getInternalFoundDecl();
  }

  DeclRefExpr(NestedNameSpecifierLoc QualifierLoc,
              ValueDecl *D, const DeclarationNameInfo &NameInfo,
              NamedDecl *FoundD,
              const TemplateArgumentListInfo *TemplateArgs,
              QualType T, ExprValueKind VK);

  /// \brief Construct an empty declaration reference expression.
  explicit DeclRefExpr(EmptyShell Empty)
    : Expr(DeclRefExprClass, Empty) { }

  /// \brief Computes the type- and value-dependence flags for this
  /// declaration reference expression.
  void computeDependence();

public:
  DeclRefExpr(ValueDecl *D, QualType T, ExprValueKind VK, SourceLocation L)
    : Expr(DeclRefExprClass, T, VK, OK_Ordinary, false, false, false),
      D(D), Loc(L) {
    DeclRefExprBits.HasQualifier = 0;
    DeclRefExprBits.HasExplicitTemplateArgs = 0;
    DeclRefExprBits.HasFoundDecl = 0;
    computeDependence();
  }

  static DeclRefExpr *Create(ASTContext &Context,
                             NestedNameSpecifierLoc QualifierLoc,
                             ValueDecl *D,
                             SourceLocation NameLoc,
                             QualType T, ExprValueKind VK,
                             NamedDecl *FoundD = 0,
                             const TemplateArgumentListInfo *TemplateArgs = 0);

  static DeclRefExpr *Create(ASTContext &Context,
                             NestedNameSpecifierLoc QualifierLoc,
                             ValueDecl *D,
                             const DeclarationNameInfo &NameInfo,
                             QualType T, ExprValueKind VK,
                             NamedDecl *FoundD = 0,
                             const TemplateArgumentListInfo *TemplateArgs = 0);

  /// \brief Construct an empty declaration reference expression.
  static DeclRefExpr *CreateEmpty(ASTContext &Context,
                                  bool HasQualifier,
                                  bool HasFoundDecl,
                                  bool HasExplicitTemplateArgs,
                                  unsigned NumTemplateArgs);

  ValueDecl *getDecl() { return D; }
  const ValueDecl *getDecl() const { return D; }
  void setDecl(ValueDecl *NewD) { D = NewD; }

  DeclarationNameInfo getNameInfo() const {
    return DeclarationNameInfo(getDecl()->getDeclName(), Loc, DNLoc);
  }

  SourceLocation getLocation() const { return Loc; }
  void setLocation(SourceLocation L) { Loc = L; }
  SourceRange getSourceRange() const;

  /// \brief Determine whether this declaration reference was preceded by a
  /// C++ nested-name-specifier, e.g., \c N::foo.
  bool hasQualifier() const { return DeclRefExprBits.HasQualifier; }

  /// \brief If the name was qualified, retrieves the nested-name-specifier
  /// that precedes the name. Otherwise, returns NULL.
  NestedNameSpecifier *getQualifier() const {
    if (!hasQualifier())
      return 0;

    return getInternalQualifierLoc().getNestedNameSpecifier();
  }

  /// \brief If the name was qualified, retrieves the nested-name-specifier
  /// that precedes the name, with source-location information.
  NestedNameSpecifierLoc getQualifierLoc() const {
    if (!hasQualifier())
      return NestedNameSpecifierLoc();

    return getInternalQualifierLoc();
  }

  /// \brief Get the NamedDecl through which this reference occured.
  ///
  /// This Decl may be different from the ValueDecl actually referred to in the
  /// presence of using declarations, etc. It always returns non-NULL, and may
  /// simple return the ValueDecl when appropriate.
  NamedDecl *getFoundDecl() {
    return hasFoundDecl() ? getInternalFoundDecl() : D;
  }

  /// \brief Get the NamedDecl through which this reference occurred.
  /// See non-const variant.
  const NamedDecl *getFoundDecl() const {
    return hasFoundDecl() ? getInternalFoundDecl() : D;
  }

  /// \brief Determines whether this declaration reference was followed by an
  /// explict template argument list.
  bool hasExplicitTemplateArgs() const {
    return DeclRefExprBits.HasExplicitTemplateArgs;
  }

  /// \brief Retrieve the explicit template argument list that followed the
  /// member template name.
  ExplicitTemplateArgumentList &getExplicitTemplateArgs() {
    assert(hasExplicitTemplateArgs());
    if (hasFoundDecl())
      return *reinterpret_cast<ExplicitTemplateArgumentList *>(
        &getInternalFoundDecl() + 1);

    if (hasQualifier())
      return *reinterpret_cast<ExplicitTemplateArgumentList *>(
        &getInternalQualifierLoc() + 1);

    return *reinterpret_cast<ExplicitTemplateArgumentList *>(this + 1);
  }

  /// \brief Retrieve the explicit template argument list that followed the
  /// member template name.
  const ExplicitTemplateArgumentList &getExplicitTemplateArgs() const {
    return const_cast<DeclRefExpr *>(this)->getExplicitTemplateArgs();
  }

  /// \brief Retrieves the optional explicit template arguments.
  /// This points to the same data as getExplicitTemplateArgs(), but
  /// returns null if there are no explicit template arguments.
  const ExplicitTemplateArgumentList *getExplicitTemplateArgsOpt() const {
    if (!hasExplicitTemplateArgs()) return 0;
    return &getExplicitTemplateArgs();
  }

  /// \brief Copies the template arguments (if present) into the given
  /// structure.
  void copyTemplateArgumentsInto(TemplateArgumentListInfo &List) const {
    if (hasExplicitTemplateArgs())
      getExplicitTemplateArgs().copyInto(List);
  }

  /// \brief Retrieve the location of the left angle bracket following the
  /// member name ('<'), if any.
  SourceLocation getLAngleLoc() const {
    if (!hasExplicitTemplateArgs())
      return SourceLocation();

    return getExplicitTemplateArgs().LAngleLoc;
  }

  /// \brief Retrieve the template arguments provided as part of this
  /// template-id.
  const TemplateArgumentLoc *getTemplateArgs() const {
    if (!hasExplicitTemplateArgs())
      return 0;

    return getExplicitTemplateArgs().getTemplateArgs();
  }

  /// \brief Retrieve the number of template arguments provided as part of this
  /// template-id.
  unsigned getNumTemplateArgs() const {
    if (!hasExplicitTemplateArgs())
      return 0;

    return getExplicitTemplateArgs().NumTemplateArgs;
  }

  /// \brief Retrieve the location of the right angle bracket following the
  /// template arguments ('>').
  SourceLocation getRAngleLoc() const {
    if (!hasExplicitTemplateArgs())
      return SourceLocation();

    return getExplicitTemplateArgs().RAngleLoc;
  }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == DeclRefExprClass;
  }
  static bool classof(const DeclRefExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }

  friend class ASTStmtReader;
  friend class ASTStmtWriter;
};

/// PredefinedExpr - [C99 6.4.2.2] - A predefined identifier such as __func__.
class PredefinedExpr : public Expr {
public:
  enum IdentType {
    Func,
    Function,
    PrettyFunction,
    /// PrettyFunctionNoVirtual - The same as PrettyFunction, except that the
    /// 'virtual' keyword is omitted for virtual member functions.
    PrettyFunctionNoVirtual
  };

private:
  SourceLocation Loc;
  IdentType Type;
public:
  PredefinedExpr(SourceLocation l, QualType type, IdentType IT)
    : Expr(PredefinedExprClass, type, VK_LValue, OK_Ordinary,
           type->isDependentType(), type->isDependentType(), 
           /*ContainsUnexpandedParameterPack=*/false),
      Loc(l), Type(IT) {}

  /// \brief Construct an empty predefined expression.
  explicit PredefinedExpr(EmptyShell Empty)
    : Expr(PredefinedExprClass, Empty) { }

  IdentType getIdentType() const { return Type; }
  void setIdentType(IdentType IT) { Type = IT; }

  SourceLocation getLocation() const { return Loc; }
  void setLocation(SourceLocation L) { Loc = L; }

  static std::string ComputeName(IdentType IT, const Decl *CurrentDecl);

  SourceRange getSourceRange() const { return SourceRange(Loc); }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == PredefinedExprClass;
  }
  static bool classof(const PredefinedExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// \brief Used by IntegerLiteral/FloatingLiteral to store the numeric without
/// leaking memory.
///
/// For large floats/integers, APFloat/APInt will allocate memory from the heap
/// to represent these numbers.  Unfortunately, when we use a BumpPtrAllocator
/// to allocate IntegerLiteral/FloatingLiteral nodes the memory associated with
/// the APFloat/APInt values will never get freed. APNumericStorage uses
/// ASTContext's allocator for memory allocation.
class APNumericStorage {
  unsigned BitWidth;
  union {
    uint64_t VAL;    ///< Used to store the <= 64 bits integer value.
    uint64_t *pVal;  ///< Used to store the >64 bits integer value.
  };

  bool hasAllocation() const { return llvm::APInt::getNumWords(BitWidth) > 1; }

  APNumericStorage(const APNumericStorage&); // do not implement
  APNumericStorage& operator=(const APNumericStorage&); // do not implement

protected:
  APNumericStorage() : BitWidth(0), VAL(0) { }

  llvm::APInt getIntValue() const {
    unsigned NumWords = llvm::APInt::getNumWords(BitWidth);
    if (NumWords > 1)
      return llvm::APInt(BitWidth, NumWords, pVal);
    else
      return llvm::APInt(BitWidth, VAL);
  }
  void setIntValue(ASTContext &C, const llvm::APInt &Val);
};

class APIntStorage : public APNumericStorage {
public:  
  llvm::APInt getValue() const { return getIntValue(); } 
  void setValue(ASTContext &C, const llvm::APInt &Val) { setIntValue(C, Val); }
};

class APFloatStorage : public APNumericStorage {
public:  
  llvm::APFloat getValue() const { return llvm::APFloat(getIntValue()); } 
  void setValue(ASTContext &C, const llvm::APFloat &Val) {
    setIntValue(C, Val.bitcastToAPInt());
  }
};

class IntegerLiteral : public Expr {
  APIntStorage Num;
  SourceLocation Loc;

  /// \brief Construct an empty integer literal.
  explicit IntegerLiteral(EmptyShell Empty)
    : Expr(IntegerLiteralClass, Empty) { }

public:
  // type should be IntTy, LongTy, LongLongTy, UnsignedIntTy, UnsignedLongTy,
  // or UnsignedLongLongTy
  IntegerLiteral(ASTContext &C, const llvm::APInt &V,
                 QualType type, SourceLocation l)
    : Expr(IntegerLiteralClass, type, VK_RValue, OK_Ordinary, false, false,
           false),
      Loc(l) {
    assert(type->isIntegerType() && "Illegal type in IntegerLiteral");
    assert(V.getBitWidth() == C.getIntWidth(type) &&
           "Integer type is not the correct size for constant.");
    setValue(C, V);
  }

  /// \brief Returns a new integer literal with value 'V' and type 'type'.
  /// \param type - either IntTy, LongTy, LongLongTy, UnsignedIntTy,
  /// UnsignedLongTy, or UnsignedLongLongTy which should match the size of V
  /// \param V - the value that the returned integer literal contains.
  static IntegerLiteral *Create(ASTContext &C, const llvm::APInt &V,
                                QualType type, SourceLocation l);
  /// \brief Returns a new empty integer literal.
  static IntegerLiteral *Create(ASTContext &C, EmptyShell Empty);

  llvm::APInt getValue() const { return Num.getValue(); }
  SourceRange getSourceRange() const { return SourceRange(Loc); }

  /// \brief Retrieve the location of the literal.
  SourceLocation getLocation() const { return Loc; }

  void setValue(ASTContext &C, const llvm::APInt &Val) { Num.setValue(C, Val); }
  void setLocation(SourceLocation Location) { Loc = Location; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == IntegerLiteralClass;
  }
  static bool classof(const IntegerLiteral *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

class CharacterLiteral : public Expr {
  unsigned Value;
  SourceLocation Loc;
  bool IsWide;
public:
  // type should be IntTy
  CharacterLiteral(unsigned value, bool iswide, QualType type, SourceLocation l)
    : Expr(CharacterLiteralClass, type, VK_RValue, OK_Ordinary, false, false,
           false),
      Value(value), Loc(l), IsWide(iswide) {
  }

  /// \brief Construct an empty character literal.
  CharacterLiteral(EmptyShell Empty) : Expr(CharacterLiteralClass, Empty) { }

  SourceLocation getLocation() const { return Loc; }
  bool isWide() const { return IsWide; }

  SourceRange getSourceRange() const { return SourceRange(Loc); }

  unsigned getValue() const { return Value; }

  void setLocation(SourceLocation Location) { Loc = Location; }
  void setWide(bool W) { IsWide = W; }
  void setValue(unsigned Val) { Value = Val; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == CharacterLiteralClass;
  }
  static bool classof(const CharacterLiteral *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

class FloatingLiteral : public Expr {
  APFloatStorage Num;
  bool IsExact : 1;
  SourceLocation Loc;

  FloatingLiteral(ASTContext &C, const llvm::APFloat &V, bool isexact,
                  QualType Type, SourceLocation L)
    : Expr(FloatingLiteralClass, Type, VK_RValue, OK_Ordinary, false, false,
           false),
      IsExact(isexact), Loc(L) {
    setValue(C, V);
  }

  /// \brief Construct an empty floating-point literal.
  explicit FloatingLiteral(EmptyShell Empty)
    : Expr(FloatingLiteralClass, Empty), IsExact(false) { }

public:
  static FloatingLiteral *Create(ASTContext &C, const llvm::APFloat &V,
                                 bool isexact, QualType Type, SourceLocation L);
  static FloatingLiteral *Create(ASTContext &C, EmptyShell Empty);

  llvm::APFloat getValue() const { return Num.getValue(); }
  void setValue(ASTContext &C, const llvm::APFloat &Val) {
    Num.setValue(C, Val);
  }

  bool isExact() const { return IsExact; }
  void setExact(bool E) { IsExact = E; }

  /// getValueAsApproximateDouble - This returns the value as an inaccurate
  /// double.  Note that this may cause loss of precision, but is useful for
  /// debugging dumps, etc.
  double getValueAsApproximateDouble() const;

  SourceLocation getLocation() const { return Loc; }
  void setLocation(SourceLocation L) { Loc = L; }

  SourceRange getSourceRange() const { return SourceRange(Loc); }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == FloatingLiteralClass;
  }
  static bool classof(const FloatingLiteral *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// ImaginaryLiteral - We support imaginary integer and floating point literals,
/// like "1.0i".  We represent these as a wrapper around FloatingLiteral and
/// IntegerLiteral classes.  Instances of this class always have a Complex type
/// whose element type matches the subexpression.
///
class ImaginaryLiteral : public Expr {
  Stmt *Val;
public:
  ImaginaryLiteral(Expr *val, QualType Ty)
    : Expr(ImaginaryLiteralClass, Ty, VK_RValue, OK_Ordinary, false, false,
           false),
      Val(val) {}

  /// \brief Build an empty imaginary literal.
  explicit ImaginaryLiteral(EmptyShell Empty)
    : Expr(ImaginaryLiteralClass, Empty) { }

  const Expr *getSubExpr() const { return cast<Expr>(Val); }
  Expr *getSubExpr() { return cast<Expr>(Val); }
  void setSubExpr(Expr *E) { Val = E; }

  SourceRange getSourceRange() const { return Val->getSourceRange(); }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ImaginaryLiteralClass;
  }
  static bool classof(const ImaginaryLiteral *) { return true; }

  // Iterators
  child_range children() { return child_range(&Val, &Val+1); }
};

/// StringLiteral - This represents a string literal expression, e.g. "foo"
/// or L"bar" (wide strings).  The actual string is returned by getStrData()
/// is NOT null-terminated, and the length of the string is determined by
/// calling getByteLength().  The C type for a string is always a
/// ConstantArrayType.  In C++, the char type is const qualified, in C it is
/// not.
///
/// Note that strings in C can be formed by concatenation of multiple string
/// literal pptokens in translation phase #6.  This keeps track of the locations
/// of each of these pieces.
///
/// Strings in C can also be truncated and extended by assigning into arrays,
/// e.g. with constructs like:
///   char X[2] = "foobar";
/// In this case, getByteLength() will return 6, but the string literal will
/// have type "char[2]".
class StringLiteral : public Expr {
  friend class ASTStmtReader;

  const char *StrData;
  unsigned ByteLength;
  bool IsWide;
  bool IsPascal;
  unsigned NumConcatenated;
  SourceLocation TokLocs[1];

  StringLiteral(QualType Ty) :
    Expr(StringLiteralClass, Ty, VK_LValue, OK_Ordinary, false, false, false) {}

public:
  /// This is the "fully general" constructor that allows representation of
  /// strings formed from multiple concatenated tokens.
  static StringLiteral *Create(ASTContext &C, const char *StrData,
                               unsigned ByteLength, bool Wide, bool Pascal,
                               QualType Ty,
                               const SourceLocation *Loc, unsigned NumStrs);

  /// Simple constructor for string literals made from one token.
  static StringLiteral *Create(ASTContext &C, const char *StrData,
                               unsigned ByteLength, bool Wide, 
                               bool Pascal, QualType Ty, SourceLocation Loc) {
    return Create(C, StrData, ByteLength, Wide, Pascal, Ty, &Loc, 1);
  }

  /// \brief Construct an empty string literal.
  static StringLiteral *CreateEmpty(ASTContext &C, unsigned NumStrs);

  llvm::StringRef getString() const {
    return llvm::StringRef(StrData, ByteLength);
  }

  unsigned getByteLength() const { return ByteLength; }

  /// \brief Sets the string data to the given string data.
  void setString(ASTContext &C, llvm::StringRef Str);

  bool isWide() const { return IsWide; }
  bool isPascal() const { return IsPascal; }
  
  bool containsNonAsciiOrNull() const {
    llvm::StringRef Str = getString();
    for (unsigned i = 0, e = Str.size(); i != e; ++i)
      if (!isascii(Str[i]) || !Str[i])
        return true;
    return false;
  }
  /// getNumConcatenated - Get the number of string literal tokens that were
  /// concatenated in translation phase #6 to form this string literal.
  unsigned getNumConcatenated() const { return NumConcatenated; }

  SourceLocation getStrTokenLoc(unsigned TokNum) const {
    assert(TokNum < NumConcatenated && "Invalid tok number");
    return TokLocs[TokNum];
  }
  void setStrTokenLoc(unsigned TokNum, SourceLocation L) {
    assert(TokNum < NumConcatenated && "Invalid tok number");
    TokLocs[TokNum] = L;
  }
  
  /// getLocationOfByte - Return a source location that points to the specified
  /// byte of this string literal.
  ///
  /// Strings are amazingly complex.  They can be formed from multiple tokens
  /// and can have escape sequences in them in addition to the usual trigraph
  /// and escaped newline business.  This routine handles this complexity.
  ///
  SourceLocation getLocationOfByte(unsigned ByteNo, const SourceManager &SM,
                                   const LangOptions &Features,
                                   const TargetInfo &Target) const;

  typedef const SourceLocation *tokloc_iterator;
  tokloc_iterator tokloc_begin() const { return TokLocs; }
  tokloc_iterator tokloc_end() const { return TokLocs+NumConcatenated; }

  SourceRange getSourceRange() const {
    return SourceRange(TokLocs[0], TokLocs[NumConcatenated-1]);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == StringLiteralClass;
  }
  static bool classof(const StringLiteral *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// ParenExpr - This represents a parethesized expression, e.g. "(1)".  This
/// AST node is only formed if full location information is requested.
class ParenExpr : public Expr {
  SourceLocation L, R;
  Stmt *Val;
public:
  ParenExpr(SourceLocation l, SourceLocation r, Expr *val)
    : Expr(ParenExprClass, val->getType(),
           val->getValueKind(), val->getObjectKind(),
           val->isTypeDependent(), val->isValueDependent(),
           val->containsUnexpandedParameterPack()),
      L(l), R(r), Val(val) {}

  /// \brief Construct an empty parenthesized expression.
  explicit ParenExpr(EmptyShell Empty)
    : Expr(ParenExprClass, Empty) { }

  const Expr *getSubExpr() const { return cast<Expr>(Val); }
  Expr *getSubExpr() { return cast<Expr>(Val); }
  void setSubExpr(Expr *E) { Val = E; }

  SourceRange getSourceRange() const { return SourceRange(L, R); }

  /// \brief Get the location of the left parentheses '('.
  SourceLocation getLParen() const { return L; }
  void setLParen(SourceLocation Loc) { L = Loc; }

  /// \brief Get the location of the right parentheses ')'.
  SourceLocation getRParen() const { return R; }
  void setRParen(SourceLocation Loc) { R = Loc; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ParenExprClass;
  }
  static bool classof(const ParenExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Val, &Val+1); }
};


/// UnaryOperator - This represents the unary-expression's (except sizeof and
/// alignof), the postinc/postdec operators from postfix-expression, and various
/// extensions.
///
/// Notes on various nodes:
///
/// Real/Imag - These return the real/imag part of a complex operand.  If
///   applied to a non-complex value, the former returns its operand and the
///   later returns zero in the type of the operand.
///
class UnaryOperator : public Expr {
public:
  typedef UnaryOperatorKind Opcode;

private:
  unsigned Opc : 5;
  SourceLocation Loc;
  Stmt *Val;
public:

  UnaryOperator(Expr *input, Opcode opc, QualType type,
                ExprValueKind VK, ExprObjectKind OK, SourceLocation l)
    : Expr(UnaryOperatorClass, type, VK, OK,
           input->isTypeDependent() || type->isDependentType(),
           input->isValueDependent(),
           input->containsUnexpandedParameterPack()),
      Opc(opc), Loc(l), Val(input) {}

  /// \brief Build an empty unary operator.
  explicit UnaryOperator(EmptyShell Empty)
    : Expr(UnaryOperatorClass, Empty), Opc(UO_AddrOf) { }

  Opcode getOpcode() const { return static_cast<Opcode>(Opc); }
  void setOpcode(Opcode O) { Opc = O; }

  Expr *getSubExpr() const { return cast<Expr>(Val); }
  void setSubExpr(Expr *E) { Val = E; }

  /// getOperatorLoc - Return the location of the operator.
  SourceLocation getOperatorLoc() const { return Loc; }
  void setOperatorLoc(SourceLocation L) { Loc = L; }

  /// isPostfix - Return true if this is a postfix operation, like x++.
  static bool isPostfix(Opcode Op) {
    return Op == UO_PostInc || Op == UO_PostDec;
  }

  /// isPrefix - Return true if this is a prefix operation, like --x.
  static bool isPrefix(Opcode Op) {
    return Op == UO_PreInc || Op == UO_PreDec;
  }

  bool isPrefix() const { return isPrefix(getOpcode()); }
  bool isPostfix() const { return isPostfix(getOpcode()); }
  bool isIncrementOp() const {
    return Opc == UO_PreInc || Opc == UO_PostInc;
  }
  bool isIncrementDecrementOp() const {
    return Opc <= UO_PreDec;
  }
  static bool isArithmeticOp(Opcode Op) {
    return Op >= UO_Plus && Op <= UO_LNot;
  }
  bool isArithmeticOp() const { return isArithmeticOp(getOpcode()); }

  /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
  /// corresponds to, e.g. "sizeof" or "[pre]++"
  static const char *getOpcodeStr(Opcode Op);

  /// \brief Retrieve the unary opcode that corresponds to the given
  /// overloaded operator.
  static Opcode getOverloadedOpcode(OverloadedOperatorKind OO, bool Postfix);

  /// \brief Retrieve the overloaded operator kind that corresponds to
  /// the given unary opcode.
  static OverloadedOperatorKind getOverloadedOperator(Opcode Opc);

  SourceRange getSourceRange() const {
    if (isPostfix())
      return SourceRange(Val->getLocStart(), Loc);
    else
      return SourceRange(Loc, Val->getLocEnd());
  }
  SourceLocation getExprLoc() const { return Loc; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == UnaryOperatorClass;
  }
  static bool classof(const UnaryOperator *) { return true; }

  // Iterators
  child_range children() { return child_range(&Val, &Val+1); }
};

/// OffsetOfExpr - [C99 7.17] - This represents an expression of the form
/// offsetof(record-type, member-designator). For example, given:
/// @code
/// struct S {
///   float f;
///   double d;    
/// };
/// struct T {
///   int i;
///   struct S s[10];
/// };
/// @endcode
/// we can represent and evaluate the expression @c offsetof(struct T, s[2].d). 

class OffsetOfExpr : public Expr {
public:
  // __builtin_offsetof(type, identifier(.identifier|[expr])*)
  class OffsetOfNode {
  public:
    /// \brief The kind of offsetof node we have.
    enum Kind {
      /// \brief An index into an array.
      Array = 0x00,
      /// \brief A field.
      Field = 0x01,
      /// \brief A field in a dependent type, known only by its name.
      Identifier = 0x02,
      /// \brief An implicit indirection through a C++ base class, when the
      /// field found is in a base class.
      Base = 0x03
    };

  private:
    enum { MaskBits = 2, Mask = 0x03 };
    
    /// \brief The source range that covers this part of the designator.
    SourceRange Range;
    
    /// \brief The data describing the designator, which comes in three
    /// different forms, depending on the lower two bits.
    ///   - An unsigned index into the array of Expr*'s stored after this node 
    ///     in memory, for [constant-expression] designators.
    ///   - A FieldDecl*, for references to a known field.
    ///   - An IdentifierInfo*, for references to a field with a given name
    ///     when the class type is dependent.
    ///   - A CXXBaseSpecifier*, for references that look at a field in a 
    ///     base class.
    uintptr_t Data;
    
  public:
    /// \brief Create an offsetof node that refers to an array element.
    OffsetOfNode(SourceLocation LBracketLoc, unsigned Index, 
                 SourceLocation RBracketLoc)
      : Range(LBracketLoc, RBracketLoc), Data((Index << 2) | Array) { }
    
    /// \brief Create an offsetof node that refers to a field.
    OffsetOfNode(SourceLocation DotLoc, FieldDecl *Field, 
                 SourceLocation NameLoc)
      : Range(DotLoc.isValid()? DotLoc : NameLoc, NameLoc), 
        Data(reinterpret_cast<uintptr_t>(Field) | OffsetOfNode::Field) { }
    
    /// \brief Create an offsetof node that refers to an identifier.
    OffsetOfNode(SourceLocation DotLoc, IdentifierInfo *Name,
                 SourceLocation NameLoc)
      : Range(DotLoc.isValid()? DotLoc : NameLoc, NameLoc), 
        Data(reinterpret_cast<uintptr_t>(Name) | Identifier) { }

    /// \brief Create an offsetof node that refers into a C++ base class.
    explicit OffsetOfNode(const CXXBaseSpecifier *Base)
      : Range(), Data(reinterpret_cast<uintptr_t>(Base) | OffsetOfNode::Base) {}
    
    /// \brief Determine what kind of offsetof node this is.
    Kind getKind() const { 
      return static_cast<Kind>(Data & Mask);
    }
    
    /// \brief For an array element node, returns the index into the array
    /// of expressions.
    unsigned getArrayExprIndex() const {
      assert(getKind() == Array);
      return Data >> 2;
    }

    /// \brief For a field offsetof node, returns the field.
    FieldDecl *getField() const {
      assert(getKind() == Field);
      return reinterpret_cast<FieldDecl *>(Data & ~(uintptr_t)Mask);
    }
    
    /// \brief For a field or identifier offsetof node, returns the name of
    /// the field.
    IdentifierInfo *getFieldName() const;
    
    /// \brief For a base class node, returns the base specifier.
    CXXBaseSpecifier *getBase() const {
      assert(getKind() == Base);
      return reinterpret_cast<CXXBaseSpecifier *>(Data & ~(uintptr_t)Mask);      
    }
    
    /// \brief Retrieve the source range that covers this offsetof node.
    ///
    /// For an array element node, the source range contains the locations of
    /// the square brackets. For a field or identifier node, the source range
    /// contains the location of the period (if there is one) and the 
    /// identifier.
    SourceRange getSourceRange() const { return Range; }
  };

private:
  
  SourceLocation OperatorLoc, RParenLoc;
  // Base type;
  TypeSourceInfo *TSInfo;
  // Number of sub-components (i.e. instances of OffsetOfNode).
  unsigned NumComps;
  // Number of sub-expressions (i.e. array subscript expressions).
  unsigned NumExprs;
  
  OffsetOfExpr(ASTContext &C, QualType type, 
               SourceLocation OperatorLoc, TypeSourceInfo *tsi,
               OffsetOfNode* compsPtr, unsigned numComps, 
               Expr** exprsPtr, unsigned numExprs,
               SourceLocation RParenLoc);

  explicit OffsetOfExpr(unsigned numComps, unsigned numExprs)
    : Expr(OffsetOfExprClass, EmptyShell()),
      TSInfo(0), NumComps(numComps), NumExprs(numExprs) {}  

public:
  
  static OffsetOfExpr *Create(ASTContext &C, QualType type, 
                              SourceLocation OperatorLoc, TypeSourceInfo *tsi, 
                              OffsetOfNode* compsPtr, unsigned numComps, 
                              Expr** exprsPtr, unsigned numExprs,
                              SourceLocation RParenLoc);

  static OffsetOfExpr *CreateEmpty(ASTContext &C, 
                                   unsigned NumComps, unsigned NumExprs);

  /// getOperatorLoc - Return the location of the operator.
  SourceLocation getOperatorLoc() const { return OperatorLoc; }
  void setOperatorLoc(SourceLocation L) { OperatorLoc = L; }

  /// \brief Return the location of the right parentheses.
  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation R) { RParenLoc = R; }
  
  TypeSourceInfo *getTypeSourceInfo() const {
    return TSInfo;
  }
  void setTypeSourceInfo(TypeSourceInfo *tsi) {
    TSInfo = tsi;
  }
  
  const OffsetOfNode &getComponent(unsigned Idx) const {
    assert(Idx < NumComps && "Subscript out of range");
    return reinterpret_cast<const OffsetOfNode *> (this + 1)[Idx];
  }

  void setComponent(unsigned Idx, OffsetOfNode ON) {
    assert(Idx < NumComps && "Subscript out of range");
    reinterpret_cast<OffsetOfNode *> (this + 1)[Idx] = ON;
  }
  
  unsigned getNumComponents() const {
    return NumComps;
  }

  Expr* getIndexExpr(unsigned Idx) {
    assert(Idx < NumExprs && "Subscript out of range");
    return reinterpret_cast<Expr **>(
                    reinterpret_cast<OffsetOfNode *>(this+1) + NumComps)[Idx];
  }
  const Expr *getIndexExpr(unsigned Idx) const {
    return const_cast<OffsetOfExpr*>(this)->getIndexExpr(Idx);
  }

  void setIndexExpr(unsigned Idx, Expr* E) {
    assert(Idx < NumComps && "Subscript out of range");
    reinterpret_cast<Expr **>(
                reinterpret_cast<OffsetOfNode *>(this+1) + NumComps)[Idx] = E;
  }
  
  unsigned getNumExpressions() const {
    return NumExprs;
  }

  SourceRange getSourceRange() const {
    return SourceRange(OperatorLoc, RParenLoc);
  }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == OffsetOfExprClass;
  }

  static bool classof(const OffsetOfExpr *) { return true; }

  // Iterators
  child_range children() {
    Stmt **begin =
      reinterpret_cast<Stmt**>(reinterpret_cast<OffsetOfNode*>(this + 1)
                               + NumComps);
    return child_range(begin, begin + NumExprs);
  }
};

/// UnaryExprOrTypeTraitExpr - expression with either a type or (unevaluated)
/// expression operand.  Used for sizeof/alignof (C99 6.5.3.4) and
/// vec_step (OpenCL 1.1 6.11.12).
class UnaryExprOrTypeTraitExpr : public Expr {
  unsigned Kind : 2;
  bool isType : 1;    // true if operand is a type, false if an expression
  union {
    TypeSourceInfo *Ty;
    Stmt *Ex;
  } Argument;
  SourceLocation OpLoc, RParenLoc;

public:
  UnaryExprOrTypeTraitExpr(UnaryExprOrTypeTrait ExprKind, TypeSourceInfo *TInfo,
                           QualType resultType, SourceLocation op,
                           SourceLocation rp) :
      Expr(UnaryExprOrTypeTraitExprClass, resultType, VK_RValue, OK_Ordinary,
           false, // Never type-dependent (C++ [temp.dep.expr]p3).
           // Value-dependent if the argument is type-dependent.
           TInfo->getType()->isDependentType(),
           TInfo->getType()->containsUnexpandedParameterPack()),
      Kind(ExprKind), isType(true), OpLoc(op), RParenLoc(rp) {
    Argument.Ty = TInfo;
  }

  UnaryExprOrTypeTraitExpr(UnaryExprOrTypeTrait ExprKind, Expr *E,
                           QualType resultType, SourceLocation op,
                           SourceLocation rp) :
      Expr(UnaryExprOrTypeTraitExprClass, resultType, VK_RValue, OK_Ordinary,
           false, // Never type-dependent (C++ [temp.dep.expr]p3).
           // Value-dependent if the argument is type-dependent.
           E->isTypeDependent(),
           E->containsUnexpandedParameterPack()),
      Kind(ExprKind), isType(false), OpLoc(op), RParenLoc(rp) {
    Argument.Ex = E;
  }

  /// \brief Construct an empty sizeof/alignof expression.
  explicit UnaryExprOrTypeTraitExpr(EmptyShell Empty)
    : Expr(UnaryExprOrTypeTraitExprClass, Empty) { }

  UnaryExprOrTypeTrait getKind() const {
    return static_cast<UnaryExprOrTypeTrait>(Kind);
  }
  void setKind(UnaryExprOrTypeTrait K) { Kind = K; }

  bool isArgumentType() const { return isType; }
  QualType getArgumentType() const {
    return getArgumentTypeInfo()->getType();
  }
  TypeSourceInfo *getArgumentTypeInfo() const {
    assert(isArgumentType() && "calling getArgumentType() when arg is expr");
    return Argument.Ty;
  }
  Expr *getArgumentExpr() {
    assert(!isArgumentType() && "calling getArgumentExpr() when arg is type");
    return static_cast<Expr*>(Argument.Ex);
  }
  const Expr *getArgumentExpr() const {
    return const_cast<UnaryExprOrTypeTraitExpr*>(this)->getArgumentExpr();
  }

  void setArgument(Expr *E) { Argument.Ex = E; isType = false; }
  void setArgument(TypeSourceInfo *TInfo) {
    Argument.Ty = TInfo;
    isType = true;
  }

  /// Gets the argument type, or the type of the argument expression, whichever
  /// is appropriate.
  QualType getTypeOfArgument() const {
    return isArgumentType() ? getArgumentType() : getArgumentExpr()->getType();
  }

  SourceLocation getOperatorLoc() const { return OpLoc; }
  void setOperatorLoc(SourceLocation L) { OpLoc = L; }

  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(OpLoc, RParenLoc);
  }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == UnaryExprOrTypeTraitExprClass;
  }
  static bool classof(const UnaryExprOrTypeTraitExpr *) { return true; }

  // Iterators
  child_range children();
};

//===----------------------------------------------------------------------===//
// Postfix Operators.
//===----------------------------------------------------------------------===//

/// ArraySubscriptExpr - [C99 6.5.2.1] Array Subscripting.
class ArraySubscriptExpr : public Expr {
  enum { LHS, RHS, END_EXPR=2 };
  Stmt* SubExprs[END_EXPR];
  SourceLocation RBracketLoc;
public:
  ArraySubscriptExpr(Expr *lhs, Expr *rhs, QualType t,
                     ExprValueKind VK, ExprObjectKind OK,
                     SourceLocation rbracketloc)
  : Expr(ArraySubscriptExprClass, t, VK, OK,
         lhs->isTypeDependent() || rhs->isTypeDependent(),
         lhs->isValueDependent() || rhs->isValueDependent(),
         (lhs->containsUnexpandedParameterPack() ||
          rhs->containsUnexpandedParameterPack())),
    RBracketLoc(rbracketloc) {
    SubExprs[LHS] = lhs;
    SubExprs[RHS] = rhs;
  }

  /// \brief Create an empty array subscript expression.
  explicit ArraySubscriptExpr(EmptyShell Shell)
    : Expr(ArraySubscriptExprClass, Shell) { }

  /// An array access can be written A[4] or 4[A] (both are equivalent).
  /// - getBase() and getIdx() always present the normalized view: A[4].
  ///    In this case getBase() returns "A" and getIdx() returns "4".
  /// - getLHS() and getRHS() present the syntactic view. e.g. for
  ///    4[A] getLHS() returns "4".
  /// Note: Because vector element access is also written A[4] we must
  /// predicate the format conversion in getBase and getIdx only on the
  /// the type of the RHS, as it is possible for the LHS to be a vector of
  /// integer type
  Expr *getLHS() { return cast<Expr>(SubExprs[LHS]); }
  const Expr *getLHS() const { return cast<Expr>(SubExprs[LHS]); }
  void setLHS(Expr *E) { SubExprs[LHS] = E; }

  Expr *getRHS() { return cast<Expr>(SubExprs[RHS]); }
  const Expr *getRHS() const { return cast<Expr>(SubExprs[RHS]); }
  void setRHS(Expr *E) { SubExprs[RHS] = E; }

  Expr *getBase() {
    return cast<Expr>(getRHS()->getType()->isIntegerType() ? getLHS():getRHS());
  }

  const Expr *getBase() const {
    return cast<Expr>(getRHS()->getType()->isIntegerType() ? getLHS():getRHS());
  }

  Expr *getIdx() {
    return cast<Expr>(getRHS()->getType()->isIntegerType() ? getRHS():getLHS());
  }

  const Expr *getIdx() const {
    return cast<Expr>(getRHS()->getType()->isIntegerType() ? getRHS():getLHS());
  }

  SourceRange getSourceRange() const {
    return SourceRange(getLHS()->getLocStart(), RBracketLoc);
  }

  SourceLocation getRBracketLoc() const { return RBracketLoc; }
  void setRBracketLoc(SourceLocation L) { RBracketLoc = L; }

  SourceLocation getExprLoc() const { return getBase()->getExprLoc(); }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ArraySubscriptExprClass;
  }
  static bool classof(const ArraySubscriptExpr *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0], &SubExprs[0]+END_EXPR);
  }
};


/// CallExpr - Represents a function call (C99 6.5.2.2, C++ [expr.call]).
/// CallExpr itself represents a normal function call, e.g., "f(x, 2)",
/// while its subclasses may represent alternative syntax that (semantically)
/// results in a function call. For example, CXXOperatorCallExpr is
/// a subclass for overloaded operator calls that use operator syntax, e.g.,
/// "str1 + str2" to resolve to a function call.
class CallExpr : public Expr {
  enum { FN=0, PREARGS_START=1 };
  Stmt **SubExprs;
  unsigned NumArgs;
  SourceLocation RParenLoc;

protected:
  // These versions of the constructor are for derived classes.
  CallExpr(ASTContext& C, StmtClass SC, Expr *fn, unsigned NumPreArgs,
           Expr **args, unsigned numargs, QualType t, ExprValueKind VK,
           SourceLocation rparenloc);
  CallExpr(ASTContext &C, StmtClass SC, unsigned NumPreArgs, EmptyShell Empty);

  Stmt *getPreArg(unsigned i) {
    assert(i < getNumPreArgs() && "Prearg access out of range!");
    return SubExprs[PREARGS_START+i];
  }
  const Stmt *getPreArg(unsigned i) const {
    assert(i < getNumPreArgs() && "Prearg access out of range!");
    return SubExprs[PREARGS_START+i];
  }
  void setPreArg(unsigned i, Stmt *PreArg) {
    assert(i < getNumPreArgs() && "Prearg access out of range!");
    SubExprs[PREARGS_START+i] = PreArg;
  }

  unsigned getNumPreArgs() const { return CallExprBits.NumPreArgs; }

public:
  CallExpr(ASTContext& C, Expr *fn, Expr **args, unsigned numargs, QualType t,
           ExprValueKind VK, SourceLocation rparenloc);

  /// \brief Build an empty call expression.
  CallExpr(ASTContext &C, StmtClass SC, EmptyShell Empty);

  const Expr *getCallee() const { return cast<Expr>(SubExprs[FN]); }
  Expr *getCallee() { return cast<Expr>(SubExprs[FN]); }
  void setCallee(Expr *F) { SubExprs[FN] = F; }

  Decl *getCalleeDecl();
  const Decl *getCalleeDecl() const {
    return const_cast<CallExpr*>(this)->getCalleeDecl();
  }

  /// \brief If the callee is a FunctionDecl, return it. Otherwise return 0.
  FunctionDecl *getDirectCallee();
  const FunctionDecl *getDirectCallee() const {
    return const_cast<CallExpr*>(this)->getDirectCallee();
  }

  /// getNumArgs - Return the number of actual arguments to this call.
  ///
  unsigned getNumArgs() const { return NumArgs; }

  /// \brief Retrieve the call arguments.
  Expr **getArgs() {
    return reinterpret_cast<Expr **>(SubExprs+getNumPreArgs()+PREARGS_START);
  }
  
  /// getArg - Return the specified argument.
  Expr *getArg(unsigned Arg) {
    assert(Arg < NumArgs && "Arg access out of range!");
    return cast<Expr>(SubExprs[Arg+getNumPreArgs()+PREARGS_START]);
  }
  const Expr *getArg(unsigned Arg) const {
    assert(Arg < NumArgs && "Arg access out of range!");
    return cast<Expr>(SubExprs[Arg+getNumPreArgs()+PREARGS_START]);
  }

  /// setArg - Set the specified argument.
  void setArg(unsigned Arg, Expr *ArgExpr) {
    assert(Arg < NumArgs && "Arg access out of range!");
    SubExprs[Arg+getNumPreArgs()+PREARGS_START] = ArgExpr;
  }

  /// setNumArgs - This changes the number of arguments present in this call.
  /// Any orphaned expressions are deleted by this, and any new operands are set
  /// to null.
  void setNumArgs(ASTContext& C, unsigned NumArgs);

  typedef ExprIterator arg_iterator;
  typedef ConstExprIterator const_arg_iterator;

  arg_iterator arg_begin() { return SubExprs+PREARGS_START+getNumPreArgs(); }
  arg_iterator arg_end() {
    return SubExprs+PREARGS_START+getNumPreArgs()+getNumArgs();
  }
  const_arg_iterator arg_begin() const {
    return SubExprs+PREARGS_START+getNumPreArgs();
  }
  const_arg_iterator arg_end() const {
    return SubExprs+PREARGS_START+getNumPreArgs()+getNumArgs();
  }

  /// getNumCommas - Return the number of commas that must have been present in
  /// this function call.
  unsigned getNumCommas() const { return NumArgs ? NumArgs - 1 : 0; }

  /// isBuiltinCall - If this is a call to a builtin, return the builtin ID.  If
  /// not, return 0.
  unsigned isBuiltinCall(const ASTContext &Context) const;

  /// getCallReturnType - Get the return type of the call expr. This is not
  /// always the type of the expr itself, if the return type is a reference
  /// type.
  QualType getCallReturnType() const;

  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  SourceRange getSourceRange() const;

  static bool classof(const Stmt *T) {
    return T->getStmtClass() >= firstCallExprConstant &&
           T->getStmtClass() <= lastCallExprConstant;
  }
  static bool classof(const CallExpr *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0],
                       &SubExprs[0]+NumArgs+getNumPreArgs()+PREARGS_START);
  }
};

/// MemberExpr - [C99 6.5.2.3] Structure and Union Members.  X->F and X.F.
///
class MemberExpr : public Expr {
  /// Extra data stored in some member expressions.
  struct MemberNameQualifier {
    /// \brief The nested-name-specifier that qualifies the name, including
    /// source-location information.
    NestedNameSpecifierLoc QualifierLoc;

    /// \brief The DeclAccessPair through which the MemberDecl was found due to
    /// name qualifiers.
    DeclAccessPair FoundDecl;
  };

  /// Base - the expression for the base pointer or structure references.  In
  /// X.F, this is "X".
  Stmt *Base;

  /// MemberDecl - This is the decl being referenced by the field/member name.
  /// In X.F, this is the decl referenced by F.
  ValueDecl *MemberDecl;

  /// MemberLoc - This is the location of the member name.
  SourceLocation MemberLoc;

  /// MemberDNLoc - Provides source/type location info for the
  /// declaration name embedded in MemberDecl.
  DeclarationNameLoc MemberDNLoc;

  /// IsArrow - True if this is "X->F", false if this is "X.F".
  bool IsArrow : 1;

  /// \brief True if this member expression used a nested-name-specifier to
  /// refer to the member, e.g., "x->Base::f", or found its member via a using
  /// declaration.  When true, a MemberNameQualifier
  /// structure is allocated immediately after the MemberExpr.
  bool HasQualifierOrFoundDecl : 1;

  /// \brief True if this member expression specified a template argument list
  /// explicitly, e.g., x->f<int>. When true, an ExplicitTemplateArgumentList
  /// structure (and its TemplateArguments) are allocated immediately after
  /// the MemberExpr or, if the member expression also has a qualifier, after
  /// the MemberNameQualifier structure.
  bool HasExplicitTemplateArgumentList : 1;

  /// \brief Retrieve the qualifier that preceded the member name, if any.
  MemberNameQualifier *getMemberQualifier() {
    assert(HasQualifierOrFoundDecl);
    return reinterpret_cast<MemberNameQualifier *> (this + 1);
  }

  /// \brief Retrieve the qualifier that preceded the member name, if any.
  const MemberNameQualifier *getMemberQualifier() const {
    return const_cast<MemberExpr *>(this)->getMemberQualifier();
  }

public:
  MemberExpr(Expr *base, bool isarrow, ValueDecl *memberdecl,
             const DeclarationNameInfo &NameInfo, QualType ty,
             ExprValueKind VK, ExprObjectKind OK)
    : Expr(MemberExprClass, ty, VK, OK,
           base->isTypeDependent(), base->isValueDependent(),
           base->containsUnexpandedParameterPack()),
      Base(base), MemberDecl(memberdecl), MemberLoc(NameInfo.getLoc()),
      MemberDNLoc(NameInfo.getInfo()), IsArrow(isarrow),
      HasQualifierOrFoundDecl(false), HasExplicitTemplateArgumentList(false) {
    assert(memberdecl->getDeclName() == NameInfo.getName());
  }

  // NOTE: this constructor should be used only when it is known that
  // the member name can not provide additional syntactic info
  // (i.e., source locations for C++ operator names or type source info
  // for constructors, destructors and conversion oeprators).
  MemberExpr(Expr *base, bool isarrow, ValueDecl *memberdecl,
             SourceLocation l, QualType ty,
             ExprValueKind VK, ExprObjectKind OK)
    : Expr(MemberExprClass, ty, VK, OK,
           base->isTypeDependent(), base->isValueDependent(),
           base->containsUnexpandedParameterPack()),
      Base(base), MemberDecl(memberdecl), MemberLoc(l), MemberDNLoc(),
      IsArrow(isarrow),
      HasQualifierOrFoundDecl(false), HasExplicitTemplateArgumentList(false) {}

  static MemberExpr *Create(ASTContext &C, Expr *base, bool isarrow,
                            NestedNameSpecifierLoc QualifierLoc,
                            ValueDecl *memberdecl, DeclAccessPair founddecl,
                            DeclarationNameInfo MemberNameInfo,
                            const TemplateArgumentListInfo *targs,
                            QualType ty, ExprValueKind VK, ExprObjectKind OK);

  void setBase(Expr *E) { Base = E; }
  Expr *getBase() const { return cast<Expr>(Base); }

  /// \brief Retrieve the member declaration to which this expression refers.
  ///
  /// The returned declaration will either be a FieldDecl or (in C++)
  /// a CXXMethodDecl.
  ValueDecl *getMemberDecl() const { return MemberDecl; }
  void setMemberDecl(ValueDecl *D) { MemberDecl = D; }

  /// \brief Retrieves the declaration found by lookup.
  DeclAccessPair getFoundDecl() const {
    if (!HasQualifierOrFoundDecl)
      return DeclAccessPair::make(getMemberDecl(),
                                  getMemberDecl()->getAccess());
    return getMemberQualifier()->FoundDecl;
  }

  /// \brief Determines whether this member expression actually had
  /// a C++ nested-name-specifier prior to the name of the member, e.g.,
  /// x->Base::foo.
  bool hasQualifier() const { return getQualifier() != 0; }

  /// \brief If the member name was qualified, retrieves the
  /// nested-name-specifier that precedes the member name. Otherwise, returns
  /// NULL.
  NestedNameSpecifier *getQualifier() const {
    if (!HasQualifierOrFoundDecl)
      return 0;

    return getMemberQualifier()->QualifierLoc.getNestedNameSpecifier();
  }

  /// \brief If the member name was qualified, retrieves the 
  /// nested-name-specifier that precedes the member name, with source-location
  /// information.
  NestedNameSpecifierLoc getQualifierLoc() const {
    if (!hasQualifier())
      return NestedNameSpecifierLoc();
    
    return getMemberQualifier()->QualifierLoc;
  }

  /// \brief Determines whether this member expression actually had a C++
  /// template argument list explicitly specified, e.g., x.f<int>.
  bool hasExplicitTemplateArgs() const {
    return HasExplicitTemplateArgumentList;
  }

  /// \brief Copies the template arguments (if present) into the given
  /// structure.
  void copyTemplateArgumentsInto(TemplateArgumentListInfo &List) const {
    if (hasExplicitTemplateArgs())
      getExplicitTemplateArgs().copyInto(List);
  }

  /// \brief Retrieve the explicit template argument list that
  /// follow the member template name.  This must only be called on an
  /// expression with explicit template arguments.
  ExplicitTemplateArgumentList &getExplicitTemplateArgs() {
    assert(HasExplicitTemplateArgumentList);
    if (!HasQualifierOrFoundDecl)
      return *reinterpret_cast<ExplicitTemplateArgumentList *>(this + 1);

    return *reinterpret_cast<ExplicitTemplateArgumentList *>(
                                                      getMemberQualifier() + 1);
  }

  /// \brief Retrieve the explicit template argument list that
  /// followed the member template name.  This must only be called on
  /// an expression with explicit template arguments.
  const ExplicitTemplateArgumentList &getExplicitTemplateArgs() const {
    return const_cast<MemberExpr *>(this)->getExplicitTemplateArgs();
  }

  /// \brief Retrieves the optional explicit template arguments.
  /// This points to the same data as getExplicitTemplateArgs(), but
  /// returns null if there are no explicit template arguments.
  const ExplicitTemplateArgumentList *getOptionalExplicitTemplateArgs() const {
    if (!hasExplicitTemplateArgs()) return 0;
    return &getExplicitTemplateArgs();
  }
  
  /// \brief Retrieve the location of the left angle bracket following the
  /// member name ('<'), if any.
  SourceLocation getLAngleLoc() const {
    if (!HasExplicitTemplateArgumentList)
      return SourceLocation();

    return getExplicitTemplateArgs().LAngleLoc;
  }

  /// \brief Retrieve the template arguments provided as part of this
  /// template-id.
  const TemplateArgumentLoc *getTemplateArgs() const {
    if (!HasExplicitTemplateArgumentList)
      return 0;

    return getExplicitTemplateArgs().getTemplateArgs();
  }

  /// \brief Retrieve the number of template arguments provided as part of this
  /// template-id.
  unsigned getNumTemplateArgs() const {
    if (!HasExplicitTemplateArgumentList)
      return 0;

    return getExplicitTemplateArgs().NumTemplateArgs;
  }

  /// \brief Retrieve the location of the right angle bracket following the
  /// template arguments ('>').
  SourceLocation getRAngleLoc() const {
    if (!HasExplicitTemplateArgumentList)
      return SourceLocation();

    return getExplicitTemplateArgs().RAngleLoc;
  }

  /// \brief Retrieve the member declaration name info.
  DeclarationNameInfo getMemberNameInfo() const {
    return DeclarationNameInfo(MemberDecl->getDeclName(),
                               MemberLoc, MemberDNLoc);
  }

  bool isArrow() const { return IsArrow; }
  void setArrow(bool A) { IsArrow = A; }

  /// getMemberLoc - Return the location of the "member", in X->F, it is the
  /// location of 'F'.
  SourceLocation getMemberLoc() const { return MemberLoc; }
  void setMemberLoc(SourceLocation L) { MemberLoc = L; }

  SourceRange getSourceRange() const;
  
  SourceLocation getExprLoc() const { return MemberLoc; }

  /// \brief Determine whether the base of this explicit is implicit.
  bool isImplicitAccess() const {
    return getBase() && getBase()->isImplicitCXXThis();
  }
  
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == MemberExprClass;
  }
  static bool classof(const MemberExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Base, &Base+1); }

  friend class ASTReader;
  friend class ASTStmtWriter;
};

/// CompoundLiteralExpr - [C99 6.5.2.5]
///
class CompoundLiteralExpr : public Expr {
  /// LParenLoc - If non-null, this is the location of the left paren in a
  /// compound literal like "(int){4}".  This can be null if this is a
  /// synthesized compound expression.
  SourceLocation LParenLoc;

  /// The type as written.  This can be an incomplete array type, in
  /// which case the actual expression type will be different.
  TypeSourceInfo *TInfo;
  Stmt *Init;
  bool FileScope;
public:
  CompoundLiteralExpr(SourceLocation lparenloc, TypeSourceInfo *tinfo,
                      QualType T, ExprValueKind VK, Expr *init, bool fileScope)
    : Expr(CompoundLiteralExprClass, T, VK, OK_Ordinary,
           tinfo->getType()->isDependentType(), 
           init->isValueDependent(),
           init->containsUnexpandedParameterPack()),
      LParenLoc(lparenloc), TInfo(tinfo), Init(init), FileScope(fileScope) {}

  /// \brief Construct an empty compound literal.
  explicit CompoundLiteralExpr(EmptyShell Empty)
    : Expr(CompoundLiteralExprClass, Empty) { }

  const Expr *getInitializer() const { return cast<Expr>(Init); }
  Expr *getInitializer() { return cast<Expr>(Init); }
  void setInitializer(Expr *E) { Init = E; }

  bool isFileScope() const { return FileScope; }
  void setFileScope(bool FS) { FileScope = FS; }

  SourceLocation getLParenLoc() const { return LParenLoc; }
  void setLParenLoc(SourceLocation L) { LParenLoc = L; }

  TypeSourceInfo *getTypeSourceInfo() const { return TInfo; }
  void setTypeSourceInfo(TypeSourceInfo* tinfo) { TInfo = tinfo; }

  SourceRange getSourceRange() const {
    // FIXME: Init should never be null.
    if (!Init)
      return SourceRange();
    if (LParenLoc.isInvalid())
      return Init->getSourceRange();
    return SourceRange(LParenLoc, Init->getLocEnd());
  }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == CompoundLiteralExprClass;
  }
  static bool classof(const CompoundLiteralExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Init, &Init+1); }
};

/// CastExpr - Base class for type casts, including both implicit
/// casts (ImplicitCastExpr) and explicit casts that have some
/// representation in the source code (ExplicitCastExpr's derived
/// classes).
class CastExpr : public Expr {
public:
  typedef clang::CastKind CastKind;

private:
  Stmt *Op;

  void CheckCastConsistency() const {
#ifndef NDEBUG
    switch (getCastKind()) {
    case CK_DerivedToBase:
    case CK_UncheckedDerivedToBase:
    case CK_DerivedToBaseMemberPointer:
    case CK_BaseToDerived:
    case CK_BaseToDerivedMemberPointer:
      assert(!path_empty() && "Cast kind should have a base path!");
      break;

    // These should not have an inheritance path.
    case CK_BitCast:
    case CK_Dynamic:
    case CK_ToUnion:
    case CK_ArrayToPointerDecay:
    case CK_FunctionToPointerDecay:
    case CK_NullToMemberPointer:
    case CK_NullToPointer:
    case CK_ConstructorConversion:
    case CK_IntegralToPointer:
    case CK_PointerToIntegral:
    case CK_ToVoid:
    case CK_VectorSplat:
    case CK_IntegralCast:
    case CK_IntegralToFloating:
    case CK_FloatingToIntegral:
    case CK_FloatingCast:
    case CK_AnyPointerToObjCPointerCast:
    case CK_AnyPointerToBlockPointerCast:
    case CK_ObjCObjectLValueCast:
    case CK_FloatingRealToComplex:
    case CK_FloatingComplexToReal:
    case CK_FloatingComplexCast:
    case CK_FloatingComplexToIntegralComplex:
    case CK_IntegralRealToComplex:
    case CK_IntegralComplexToReal:
    case CK_IntegralComplexCast:
    case CK_IntegralComplexToFloatingComplex:
      assert(!getType()->isBooleanType() && "unheralded conversion to bool");
      // fallthrough to check for null base path

    case CK_Dependent:
    case CK_LValueToRValue:
    case CK_GetObjCProperty:
    case CK_NoOp:
    case CK_PointerToBoolean:
    case CK_IntegralToBoolean:
    case CK_FloatingToBoolean:
    case CK_MemberPointerToBoolean:
    case CK_FloatingComplexToBoolean:
    case CK_IntegralComplexToBoolean:
    case CK_LValueBitCast:            // -> bool&
    case CK_UserDefinedConversion:    // operator bool()
      assert(path_empty() && "Cast kind should not have a base path!");
      break;
    }
#endif
  }

  const CXXBaseSpecifier * const *path_buffer() const {
    return const_cast<CastExpr*>(this)->path_buffer();
  }
  CXXBaseSpecifier **path_buffer();

  void setBasePathSize(unsigned basePathSize) {
    CastExprBits.BasePathSize = basePathSize;
    assert(CastExprBits.BasePathSize == basePathSize &&
           "basePathSize doesn't fit in bits of CastExprBits.BasePathSize!");
  }

protected:
  CastExpr(StmtClass SC, QualType ty, ExprValueKind VK,
           const CastKind kind, Expr *op, unsigned BasePathSize) :
    Expr(SC, ty, VK, OK_Ordinary,
         // Cast expressions are type-dependent if the type is
         // dependent (C++ [temp.dep.expr]p3).
         ty->isDependentType(),
         // Cast expressions are value-dependent if the type is
         // dependent or if the subexpression is value-dependent.
         ty->isDependentType() || (op && op->isValueDependent()),
         (ty->containsUnexpandedParameterPack() ||
          op->containsUnexpandedParameterPack())),
    Op(op) {
    assert(kind != CK_Invalid && "creating cast with invalid cast kind");
    CastExprBits.Kind = kind;
    setBasePathSize(BasePathSize);
    CheckCastConsistency();
  }

  /// \brief Construct an empty cast.
  CastExpr(StmtClass SC, EmptyShell Empty, unsigned BasePathSize)
    : Expr(SC, Empty) {
    setBasePathSize(BasePathSize);
  }

public:
  CastKind getCastKind() const { return (CastKind) CastExprBits.Kind; }
  void setCastKind(CastKind K) { CastExprBits.Kind = K; }
  const char *getCastKindName() const;

  Expr *getSubExpr() { return cast<Expr>(Op); }
  const Expr *getSubExpr() const { return cast<Expr>(Op); }
  void setSubExpr(Expr *E) { Op = E; }

  /// \brief Retrieve the cast subexpression as it was written in the source
  /// code, looking through any implicit casts or other intermediate nodes
  /// introduced by semantic analysis.
  Expr *getSubExprAsWritten();
  const Expr *getSubExprAsWritten() const {
    return const_cast<CastExpr *>(this)->getSubExprAsWritten();
  }

  typedef CXXBaseSpecifier **path_iterator;
  typedef const CXXBaseSpecifier * const *path_const_iterator;
  bool path_empty() const { return CastExprBits.BasePathSize == 0; }
  unsigned path_size() const { return CastExprBits.BasePathSize; }
  path_iterator path_begin() { return path_buffer(); }
  path_iterator path_end() { return path_buffer() + path_size(); }
  path_const_iterator path_begin() const { return path_buffer(); }
  path_const_iterator path_end() const { return path_buffer() + path_size(); }

  void setCastPath(const CXXCastPath &Path);

  static bool classof(const Stmt *T) {
    return T->getStmtClass() >= firstCastExprConstant &&
           T->getStmtClass() <= lastCastExprConstant;
  }
  static bool classof(const CastExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Op, &Op+1); }
};

/// ImplicitCastExpr - Allows us to explicitly represent implicit type
/// conversions, which have no direct representation in the original
/// source code. For example: converting T[]->T*, void f()->void
/// (*f)(), float->double, short->int, etc.
///
/// In C, implicit casts always produce rvalues. However, in C++, an
/// implicit cast whose result is being bound to a reference will be
/// an lvalue or xvalue. For example:
///
/// @code
/// class Base { };
/// class Derived : public Base { };
/// Derived &&ref();
/// void f(Derived d) {
///   Base& b = d; // initializer is an ImplicitCastExpr
///                // to an lvalue of type Base
///   Base&& r = ref(); // initializer is an ImplicitCastExpr
///                     // to an xvalue of type Base
/// }
/// @endcode
class ImplicitCastExpr : public CastExpr {
private:
  ImplicitCastExpr(QualType ty, CastKind kind, Expr *op,
                   unsigned BasePathLength, ExprValueKind VK)
    : CastExpr(ImplicitCastExprClass, ty, VK, kind, op, BasePathLength) {
  }

  /// \brief Construct an empty implicit cast.
  explicit ImplicitCastExpr(EmptyShell Shell, unsigned PathSize)
    : CastExpr(ImplicitCastExprClass, Shell, PathSize) { }

public:
  enum OnStack_t { OnStack };
  ImplicitCastExpr(OnStack_t _, QualType ty, CastKind kind, Expr *op,
                   ExprValueKind VK)
    : CastExpr(ImplicitCastExprClass, ty, VK, kind, op, 0) {
  }

  static ImplicitCastExpr *Create(ASTContext &Context, QualType T,
                                  CastKind Kind, Expr *Operand,
                                  const CXXCastPath *BasePath,
                                  ExprValueKind Cat);

  static ImplicitCastExpr *CreateEmpty(ASTContext &Context, unsigned PathSize);

  SourceRange getSourceRange() const {
    return getSubExpr()->getSourceRange();
  }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ImplicitCastExprClass;
  }
  static bool classof(const ImplicitCastExpr *) { return true; }
};

/// ExplicitCastExpr - An explicit cast written in the source
/// code.
///
/// This class is effectively an abstract class, because it provides
/// the basic representation of an explicitly-written cast without
/// specifying which kind of cast (C cast, functional cast, static
/// cast, etc.) was written; specific derived classes represent the
/// particular style of cast and its location information.
///
/// Unlike implicit casts, explicit cast nodes have two different
/// types: the type that was written into the source code, and the
/// actual type of the expression as determined by semantic
/// analysis. These types may differ slightly. For example, in C++ one
/// can cast to a reference type, which indicates that the resulting
/// expression will be an lvalue or xvalue. The reference type, however,
/// will not be used as the type of the expression.
class ExplicitCastExpr : public CastExpr {
  /// TInfo - Source type info for the (written) type
  /// this expression is casting to.
  TypeSourceInfo *TInfo;

protected:
  ExplicitCastExpr(StmtClass SC, QualType exprTy, ExprValueKind VK,
                   CastKind kind, Expr *op, unsigned PathSize,
                   TypeSourceInfo *writtenTy)
    : CastExpr(SC, exprTy, VK, kind, op, PathSize), TInfo(writtenTy) {}

  /// \brief Construct an empty explicit cast.
  ExplicitCastExpr(StmtClass SC, EmptyShell Shell, unsigned PathSize)
    : CastExpr(SC, Shell, PathSize) { }

public:
  /// getTypeInfoAsWritten - Returns the type source info for the type
  /// that this expression is casting to.
  TypeSourceInfo *getTypeInfoAsWritten() const { return TInfo; }
  void setTypeInfoAsWritten(TypeSourceInfo *writtenTy) { TInfo = writtenTy; }

  /// getTypeAsWritten - Returns the type that this expression is
  /// casting to, as written in the source code.
  QualType getTypeAsWritten() const { return TInfo->getType(); }

  static bool classof(const Stmt *T) {
     return T->getStmtClass() >= firstExplicitCastExprConstant &&
            T->getStmtClass() <= lastExplicitCastExprConstant;
  }
  static bool classof(const ExplicitCastExpr *) { return true; }
};

/// CStyleCastExpr - An explicit cast in C (C99 6.5.4) or a C-style
/// cast in C++ (C++ [expr.cast]), which uses the syntax
/// (Type)expr. For example: @c (int)f.
class CStyleCastExpr : public ExplicitCastExpr {
  SourceLocation LPLoc; // the location of the left paren
  SourceLocation RPLoc; // the location of the right paren

  CStyleCastExpr(QualType exprTy, ExprValueKind vk, CastKind kind, Expr *op,
                 unsigned PathSize, TypeSourceInfo *writtenTy,
                 SourceLocation l, SourceLocation r)
    : ExplicitCastExpr(CStyleCastExprClass, exprTy, vk, kind, op, PathSize,
                       writtenTy), LPLoc(l), RPLoc(r) {}

  /// \brief Construct an empty C-style explicit cast.
  explicit CStyleCastExpr(EmptyShell Shell, unsigned PathSize)
    : ExplicitCastExpr(CStyleCastExprClass, Shell, PathSize) { }

public:
  static CStyleCastExpr *Create(ASTContext &Context, QualType T,
                                ExprValueKind VK, CastKind K,
                                Expr *Op, const CXXCastPath *BasePath,
                                TypeSourceInfo *WrittenTy, SourceLocation L,
                                SourceLocation R);

  static CStyleCastExpr *CreateEmpty(ASTContext &Context, unsigned PathSize);

  SourceLocation getLParenLoc() const { return LPLoc; }
  void setLParenLoc(SourceLocation L) { LPLoc = L; }

  SourceLocation getRParenLoc() const { return RPLoc; }
  void setRParenLoc(SourceLocation L) { RPLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(LPLoc, getSubExpr()->getSourceRange().getEnd());
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == CStyleCastExprClass;
  }
  static bool classof(const CStyleCastExpr *) { return true; }
};

/// \brief A builtin binary operation expression such as "x + y" or "x <= y".
///
/// This expression node kind describes a builtin binary operation,
/// such as "x + y" for integer values "x" and "y". The operands will
/// already have been converted to appropriate types (e.g., by
/// performing promotions or conversions).
///
/// In C++, where operators may be overloaded, a different kind of
/// expression node (CXXOperatorCallExpr) is used to express the
/// invocation of an overloaded operator with operator syntax. Within
/// a C++ template, whether BinaryOperator or CXXOperatorCallExpr is
/// used to store an expression "x + y" depends on the subexpressions
/// for x and y. If neither x or y is type-dependent, and the "+"
/// operator resolves to a built-in operation, BinaryOperator will be
/// used to express the computation (x and y may still be
/// value-dependent). If either x or y is type-dependent, or if the
/// "+" resolves to an overloaded operator, CXXOperatorCallExpr will
/// be used to express the computation.
class BinaryOperator : public Expr {
public:
  typedef BinaryOperatorKind Opcode;

private:
  unsigned Opc : 6;
  SourceLocation OpLoc;

  enum { LHS, RHS, END_EXPR };
  Stmt* SubExprs[END_EXPR];
public:

  BinaryOperator(Expr *lhs, Expr *rhs, Opcode opc, QualType ResTy,
                 ExprValueKind VK, ExprObjectKind OK,
                 SourceLocation opLoc)
    : Expr(BinaryOperatorClass, ResTy, VK, OK,
           lhs->isTypeDependent() || rhs->isTypeDependent(),
           lhs->isValueDependent() || rhs->isValueDependent(),
           (lhs->containsUnexpandedParameterPack() ||
            rhs->containsUnexpandedParameterPack())),
      Opc(opc), OpLoc(opLoc) {
    SubExprs[LHS] = lhs;
    SubExprs[RHS] = rhs;
    assert(!isCompoundAssignmentOp() &&
           "Use ArithAssignBinaryOperator for compound assignments");
  }

  /// \brief Construct an empty binary operator.
  explicit BinaryOperator(EmptyShell Empty)
    : Expr(BinaryOperatorClass, Empty), Opc(BO_Comma) { }

  SourceLocation getOperatorLoc() const { return OpLoc; }
  void setOperatorLoc(SourceLocation L) { OpLoc = L; }

  Opcode getOpcode() const { return static_cast<Opcode>(Opc); }
  void setOpcode(Opcode O) { Opc = O; }

  Expr *getLHS() const { return cast<Expr>(SubExprs[LHS]); }
  void setLHS(Expr *E) { SubExprs[LHS] = E; }
  Expr *getRHS() const { return cast<Expr>(SubExprs[RHS]); }
  void setRHS(Expr *E) { SubExprs[RHS] = E; }

  SourceRange getSourceRange() const {
    return SourceRange(getLHS()->getLocStart(), getRHS()->getLocEnd());
  }

  /// getOpcodeStr - Turn an Opcode enum value into the punctuation char it
  /// corresponds to, e.g. "<<=".
  static const char *getOpcodeStr(Opcode Op);

  const char *getOpcodeStr() const { return getOpcodeStr(getOpcode()); }

  /// \brief Retrieve the binary opcode that corresponds to the given
  /// overloaded operator.
  static Opcode getOverloadedOpcode(OverloadedOperatorKind OO);

  /// \brief Retrieve the overloaded operator kind that corresponds to
  /// the given binary opcode.
  static OverloadedOperatorKind getOverloadedOperator(Opcode Opc);

  /// predicates to categorize the respective opcodes.
  bool isPtrMemOp() const { return Opc == BO_PtrMemD || Opc == BO_PtrMemI; }
  bool isMultiplicativeOp() const { return Opc >= BO_Mul && Opc <= BO_Rem; }
  static bool isAdditiveOp(Opcode Opc) { return Opc == BO_Add || Opc==BO_Sub; }
  bool isAdditiveOp() const { return isAdditiveOp(getOpcode()); }
  static bool isShiftOp(Opcode Opc) { return Opc == BO_Shl || Opc == BO_Shr; }
  bool isShiftOp() const { return isShiftOp(getOpcode()); }

  static bool isBitwiseOp(Opcode Opc) { return Opc >= BO_And && Opc <= BO_Or; }
  bool isBitwiseOp() const { return isBitwiseOp(getOpcode()); }

  static bool isRelationalOp(Opcode Opc) { return Opc >= BO_LT && Opc<=BO_GE; }
  bool isRelationalOp() const { return isRelationalOp(getOpcode()); }

  static bool isEqualityOp(Opcode Opc) { return Opc == BO_EQ || Opc == BO_NE; }
  bool isEqualityOp() const { return isEqualityOp(getOpcode()); }

  static bool isComparisonOp(Opcode Opc) { return Opc >= BO_LT && Opc<=BO_NE; }
  bool isComparisonOp() const { return isComparisonOp(getOpcode()); }

  static bool isLogicalOp(Opcode Opc) { return Opc == BO_LAnd || Opc==BO_LOr; }
  bool isLogicalOp() const { return isLogicalOp(getOpcode()); }

  static bool isAssignmentOp(Opcode Opc) {
    return Opc >= BO_Assign && Opc <= BO_OrAssign;
  }
  bool isAssignmentOp() const { return isAssignmentOp(getOpcode()); }

  static bool isCompoundAssignmentOp(Opcode Opc) {
    return Opc > BO_Assign && Opc <= BO_OrAssign;
  }
  bool isCompoundAssignmentOp() const {
    return isCompoundAssignmentOp(getOpcode());
  }

  static bool isShiftAssignOp(Opcode Opc) {
    return Opc == BO_ShlAssign || Opc == BO_ShrAssign;
  }
  bool isShiftAssignOp() const {
    return isShiftAssignOp(getOpcode());
  }

  static bool classof(const Stmt *S) {
    return S->getStmtClass() >= firstBinaryOperatorConstant &&
           S->getStmtClass() <= lastBinaryOperatorConstant;
  }
  static bool classof(const BinaryOperator *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0], &SubExprs[0]+END_EXPR);
  }

protected:
  BinaryOperator(Expr *lhs, Expr *rhs, Opcode opc, QualType ResTy,
                 ExprValueKind VK, ExprObjectKind OK,
                 SourceLocation opLoc, bool dead)
    : Expr(CompoundAssignOperatorClass, ResTy, VK, OK,
           lhs->isTypeDependent() || rhs->isTypeDependent(),
           lhs->isValueDependent() || rhs->isValueDependent(),
           (lhs->containsUnexpandedParameterPack() ||
            rhs->containsUnexpandedParameterPack())),
      Opc(opc), OpLoc(opLoc) {
    SubExprs[LHS] = lhs;
    SubExprs[RHS] = rhs;
  }

  BinaryOperator(StmtClass SC, EmptyShell Empty)
    : Expr(SC, Empty), Opc(BO_MulAssign) { }
};

/// CompoundAssignOperator - For compound assignments (e.g. +=), we keep
/// track of the type the operation is performed in.  Due to the semantics of
/// these operators, the operands are promoted, the aritmetic performed, an
/// implicit conversion back to the result type done, then the assignment takes
/// place.  This captures the intermediate type which the computation is done
/// in.
class CompoundAssignOperator : public BinaryOperator {
  QualType ComputationLHSType;
  QualType ComputationResultType;
public:
  CompoundAssignOperator(Expr *lhs, Expr *rhs, Opcode opc, QualType ResType,
                         ExprValueKind VK, ExprObjectKind OK,
                         QualType CompLHSType, QualType CompResultType,
                         SourceLocation OpLoc)
    : BinaryOperator(lhs, rhs, opc, ResType, VK, OK, OpLoc, true),
      ComputationLHSType(CompLHSType),
      ComputationResultType(CompResultType) {
    assert(isCompoundAssignmentOp() &&
           "Only should be used for compound assignments");
  }

  /// \brief Build an empty compound assignment operator expression.
  explicit CompoundAssignOperator(EmptyShell Empty)
    : BinaryOperator(CompoundAssignOperatorClass, Empty) { }

  // The two computation types are the type the LHS is converted
  // to for the computation and the type of the result; the two are
  // distinct in a few cases (specifically, int+=ptr and ptr-=ptr).
  QualType getComputationLHSType() const { return ComputationLHSType; }
  void setComputationLHSType(QualType T) { ComputationLHSType = T; }

  QualType getComputationResultType() const { return ComputationResultType; }
  void setComputationResultType(QualType T) { ComputationResultType = T; }

  static bool classof(const CompoundAssignOperator *) { return true; }
  static bool classof(const Stmt *S) {
    return S->getStmtClass() == CompoundAssignOperatorClass;
  }
};

/// AbstractConditionalOperator - An abstract base class for
/// ConditionalOperator and BinaryConditionalOperator.
class AbstractConditionalOperator : public Expr {
  SourceLocation QuestionLoc, ColonLoc;
  friend class ASTStmtReader;

protected:
  AbstractConditionalOperator(StmtClass SC, QualType T,
                              ExprValueKind VK, ExprObjectKind OK,
                              bool TD, bool VD,
                              bool ContainsUnexpandedParameterPack,
                              SourceLocation qloc,
                              SourceLocation cloc)
    : Expr(SC, T, VK, OK, TD, VD, ContainsUnexpandedParameterPack),
      QuestionLoc(qloc), ColonLoc(cloc) {}

  AbstractConditionalOperator(StmtClass SC, EmptyShell Empty)
    : Expr(SC, Empty) { }

public:
  // getCond - Return the expression representing the condition for
  //   the ?: operator.
  Expr *getCond() const;

  // getTrueExpr - Return the subexpression representing the value of
  //   the expression if the condition evaluates to true.
  Expr *getTrueExpr() const;

  // getFalseExpr - Return the subexpression representing the value of
  //   the expression if the condition evaluates to false.  This is
  //   the same as getRHS.
  Expr *getFalseExpr() const;

  SourceLocation getQuestionLoc() const { return QuestionLoc; }
  SourceLocation getColonLoc() const { return ColonLoc; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ConditionalOperatorClass ||
           T->getStmtClass() == BinaryConditionalOperatorClass;
  }
  static bool classof(const AbstractConditionalOperator *) { return true; }
};

/// ConditionalOperator - The ?: ternary operator.  The GNU "missing
/// middle" extension is a BinaryConditionalOperator.
class ConditionalOperator : public AbstractConditionalOperator {
  enum { COND, LHS, RHS, END_EXPR };
  Stmt* SubExprs[END_EXPR]; // Left/Middle/Right hand sides.

  friend class ASTStmtReader;
public:
  ConditionalOperator(Expr *cond, SourceLocation QLoc, Expr *lhs,
                      SourceLocation CLoc, Expr *rhs,
                      QualType t, ExprValueKind VK, ExprObjectKind OK)
    : AbstractConditionalOperator(ConditionalOperatorClass, t, VK, OK,
           // FIXME: the type of the conditional operator doesn't
           // depend on the type of the conditional, but the standard
           // seems to imply that it could. File a bug!
           (lhs->isTypeDependent() || rhs->isTypeDependent()),
           (cond->isValueDependent() || lhs->isValueDependent() ||
            rhs->isValueDependent()),
           (cond->containsUnexpandedParameterPack() ||
            lhs->containsUnexpandedParameterPack() ||
            rhs->containsUnexpandedParameterPack()),
                                  QLoc, CLoc) {
    SubExprs[COND] = cond;
    SubExprs[LHS] = lhs;
    SubExprs[RHS] = rhs;
  }

  /// \brief Build an empty conditional operator.
  explicit ConditionalOperator(EmptyShell Empty)
    : AbstractConditionalOperator(ConditionalOperatorClass, Empty) { }

  // getCond - Return the expression representing the condition for
  //   the ?: operator.
  Expr *getCond() const { return cast<Expr>(SubExprs[COND]); }

  // getTrueExpr - Return the subexpression representing the value of
  //   the expression if the condition evaluates to true.
  Expr *getTrueExpr() const { return cast<Expr>(SubExprs[LHS]); }

  // getFalseExpr - Return the subexpression representing the value of
  //   the expression if the condition evaluates to false.  This is
  //   the same as getRHS.
  Expr *getFalseExpr() const { return cast<Expr>(SubExprs[RHS]); }
  
  Expr *getLHS() const { return cast<Expr>(SubExprs[LHS]); }
  Expr *getRHS() const { return cast<Expr>(SubExprs[RHS]); }

  SourceRange getSourceRange() const {
    return SourceRange(getCond()->getLocStart(), getRHS()->getLocEnd());
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ConditionalOperatorClass;
  }
  static bool classof(const ConditionalOperator *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0], &SubExprs[0]+END_EXPR);
  }
};

/// BinaryConditionalOperator - The GNU extension to the conditional
/// operator which allows the middle operand to be omitted.
///
/// This is a different expression kind on the assumption that almost
/// every client ends up needing to know that these are different.
class BinaryConditionalOperator : public AbstractConditionalOperator {
  enum { COMMON, COND, LHS, RHS, NUM_SUBEXPRS };

  /// - the common condition/left-hand-side expression, which will be
  ///   evaluated as the opaque value
  /// - the condition, expressed in terms of the opaque value
  /// - the left-hand-side, expressed in terms of the opaque value
  /// - the right-hand-side
  Stmt *SubExprs[NUM_SUBEXPRS];
  OpaqueValueExpr *OpaqueValue;

  friend class ASTStmtReader;
public:
  BinaryConditionalOperator(Expr *common, OpaqueValueExpr *opaqueValue,
                            Expr *cond, Expr *lhs, Expr *rhs,
                            SourceLocation qloc, SourceLocation cloc,
                            QualType t, ExprValueKind VK, ExprObjectKind OK)
    : AbstractConditionalOperator(BinaryConditionalOperatorClass, t, VK, OK,
           (common->isTypeDependent() || rhs->isTypeDependent()),
           (common->isValueDependent() || rhs->isValueDependent()),
           (common->containsUnexpandedParameterPack() ||
            rhs->containsUnexpandedParameterPack()),
                                  qloc, cloc),
      OpaqueValue(opaqueValue) {
    SubExprs[COMMON] = common;
    SubExprs[COND] = cond;
    SubExprs[LHS] = lhs;
    SubExprs[RHS] = rhs;

    OpaqueValue->setSourceExpr(common);
  }

  /// \brief Build an empty conditional operator.
  explicit BinaryConditionalOperator(EmptyShell Empty)
    : AbstractConditionalOperator(BinaryConditionalOperatorClass, Empty) { }

  /// \brief getCommon - Return the common expression, written to the
  ///   left of the condition.  The opaque value will be bound to the
  ///   result of this expression.
  Expr *getCommon() const { return cast<Expr>(SubExprs[COMMON]); }

  /// \brief getOpaqueValue - Return the opaque value placeholder.
  OpaqueValueExpr *getOpaqueValue() const { return OpaqueValue; }

  /// \brief getCond - Return the condition expression; this is defined
  ///   in terms of the opaque value.
  Expr *getCond() const { return cast<Expr>(SubExprs[COND]); }

  /// \brief getTrueExpr - Return the subexpression which will be
  ///   evaluated if the condition evaluates to true;  this is defined
  ///   in terms of the opaque value.
  Expr *getTrueExpr() const {
    return cast<Expr>(SubExprs[LHS]);
  }

  /// \brief getFalseExpr - Return the subexpression which will be
  ///   evaluated if the condnition evaluates to false; this is
  ///   defined in terms of the opaque value.
  Expr *getFalseExpr() const {
    return cast<Expr>(SubExprs[RHS]);
  }
  
  SourceRange getSourceRange() const {
    return SourceRange(getCommon()->getLocStart(), getFalseExpr()->getLocEnd());
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == BinaryConditionalOperatorClass;
  }
  static bool classof(const BinaryConditionalOperator *) { return true; }

  // Iterators
  child_range children() {
    return child_range(SubExprs, SubExprs + NUM_SUBEXPRS);
  }
};

inline Expr *AbstractConditionalOperator::getCond() const {
  if (const ConditionalOperator *co = dyn_cast<ConditionalOperator>(this))
    return co->getCond();
  return cast<BinaryConditionalOperator>(this)->getCond();
}

inline Expr *AbstractConditionalOperator::getTrueExpr() const {
  if (const ConditionalOperator *co = dyn_cast<ConditionalOperator>(this))
    return co->getTrueExpr();
  return cast<BinaryConditionalOperator>(this)->getTrueExpr();
}

inline Expr *AbstractConditionalOperator::getFalseExpr() const {
  if (const ConditionalOperator *co = dyn_cast<ConditionalOperator>(this))
    return co->getFalseExpr();
  return cast<BinaryConditionalOperator>(this)->getFalseExpr();
}

/// AddrLabelExpr - The GNU address of label extension, representing &&label.
class AddrLabelExpr : public Expr {
  SourceLocation AmpAmpLoc, LabelLoc;
  LabelDecl *Label;
public:
  AddrLabelExpr(SourceLocation AALoc, SourceLocation LLoc, LabelDecl *L,
                QualType t)
    : Expr(AddrLabelExprClass, t, VK_RValue, OK_Ordinary, false, false, false),
      AmpAmpLoc(AALoc), LabelLoc(LLoc), Label(L) {}

  /// \brief Build an empty address of a label expression.
  explicit AddrLabelExpr(EmptyShell Empty)
    : Expr(AddrLabelExprClass, Empty) { }

  SourceLocation getAmpAmpLoc() const { return AmpAmpLoc; }
  void setAmpAmpLoc(SourceLocation L) { AmpAmpLoc = L; }
  SourceLocation getLabelLoc() const { return LabelLoc; }
  void setLabelLoc(SourceLocation L) { LabelLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(AmpAmpLoc, LabelLoc);
  }

  LabelDecl *getLabel() const { return Label; }
  void setLabel(LabelDecl *L) { Label = L; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == AddrLabelExprClass;
  }
  static bool classof(const AddrLabelExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// StmtExpr - This is the GNU Statement Expression extension: ({int X=4; X;}).
/// The StmtExpr contains a single CompoundStmt node, which it evaluates and
/// takes the value of the last subexpression.
///
/// A StmtExpr is always an r-value; values "returned" out of a
/// StmtExpr will be copied.
class StmtExpr : public Expr {
  Stmt *SubStmt;
  SourceLocation LParenLoc, RParenLoc;
public:
  // FIXME: Does type-dependence need to be computed differently?
  StmtExpr(CompoundStmt *substmt, QualType T,
           SourceLocation lp, SourceLocation rp) :
    Expr(StmtExprClass, T, VK_RValue, OK_Ordinary,
         T->isDependentType(), false, false),
    SubStmt(substmt), LParenLoc(lp), RParenLoc(rp) { }

  /// \brief Build an empty statement expression.
  explicit StmtExpr(EmptyShell Empty) : Expr(StmtExprClass, Empty) { }

  CompoundStmt *getSubStmt() { return cast<CompoundStmt>(SubStmt); }
  const CompoundStmt *getSubStmt() const { return cast<CompoundStmt>(SubStmt); }
  void setSubStmt(CompoundStmt *S) { SubStmt = S; }

  SourceRange getSourceRange() const {
    return SourceRange(LParenLoc, RParenLoc);
  }

  SourceLocation getLParenLoc() const { return LParenLoc; }
  void setLParenLoc(SourceLocation L) { LParenLoc = L; }
  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == StmtExprClass;
  }
  static bool classof(const StmtExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&SubStmt, &SubStmt+1); }
};


/// ShuffleVectorExpr - clang-specific builtin-in function
/// __builtin_shufflevector.
/// This AST node represents a operator that does a constant
/// shuffle, similar to LLVM's shufflevector instruction. It takes
/// two vectors and a variable number of constant indices,
/// and returns the appropriately shuffled vector.
class ShuffleVectorExpr : public Expr {
  SourceLocation BuiltinLoc, RParenLoc;

  // SubExprs - the list of values passed to the __builtin_shufflevector
  // function. The first two are vectors, and the rest are constant
  // indices.  The number of values in this list is always
  // 2+the number of indices in the vector type.
  Stmt **SubExprs;
  unsigned NumExprs;

public:
  ShuffleVectorExpr(ASTContext &C, Expr **args, unsigned nexpr,
                    QualType Type, SourceLocation BLoc,
                    SourceLocation RP);

  /// \brief Build an empty vector-shuffle expression.
  explicit ShuffleVectorExpr(EmptyShell Empty)
    : Expr(ShuffleVectorExprClass, Empty), SubExprs(0) { }

  SourceLocation getBuiltinLoc() const { return BuiltinLoc; }
  void setBuiltinLoc(SourceLocation L) { BuiltinLoc = L; }

  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(BuiltinLoc, RParenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ShuffleVectorExprClass;
  }
  static bool classof(const ShuffleVectorExpr *) { return true; }

  /// getNumSubExprs - Return the size of the SubExprs array.  This includes the
  /// constant expression, the actual arguments passed in, and the function
  /// pointers.
  unsigned getNumSubExprs() const { return NumExprs; }

  /// \brief Retrieve the array of expressions.
  Expr **getSubExprs() { return reinterpret_cast<Expr **>(SubExprs); }
  
  /// getExpr - Return the Expr at the specified index.
  Expr *getExpr(unsigned Index) {
    assert((Index < NumExprs) && "Arg access out of range!");
    return cast<Expr>(SubExprs[Index]);
  }
  const Expr *getExpr(unsigned Index) const {
    assert((Index < NumExprs) && "Arg access out of range!");
    return cast<Expr>(SubExprs[Index]);
  }

  void setExprs(ASTContext &C, Expr ** Exprs, unsigned NumExprs);

  unsigned getShuffleMaskIdx(ASTContext &Ctx, unsigned N) {
    assert((N < NumExprs - 2) && "Shuffle idx out of range!");
    return getExpr(N+2)->EvaluateAsInt(Ctx).getZExtValue();
  }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0], &SubExprs[0]+NumExprs);
  }
};

/// ChooseExpr - GNU builtin-in function __builtin_choose_expr.
/// This AST node is similar to the conditional operator (?:) in C, with
/// the following exceptions:
/// - the test expression must be a integer constant expression.
/// - the expression returned acts like the chosen subexpression in every
///   visible way: the type is the same as that of the chosen subexpression,
///   and all predicates (whether it's an l-value, whether it's an integer
///   constant expression, etc.) return the same result as for the chosen
///   sub-expression.
class ChooseExpr : public Expr {
  enum { COND, LHS, RHS, END_EXPR };
  Stmt* SubExprs[END_EXPR]; // Left/Middle/Right hand sides.
  SourceLocation BuiltinLoc, RParenLoc;
public:
  ChooseExpr(SourceLocation BLoc, Expr *cond, Expr *lhs, Expr *rhs,
             QualType t, ExprValueKind VK, ExprObjectKind OK,
             SourceLocation RP, bool TypeDependent, bool ValueDependent)
    : Expr(ChooseExprClass, t, VK, OK, TypeDependent, ValueDependent,
           (cond->containsUnexpandedParameterPack() ||
            lhs->containsUnexpandedParameterPack() ||
            rhs->containsUnexpandedParameterPack())),
      BuiltinLoc(BLoc), RParenLoc(RP) {
      SubExprs[COND] = cond;
      SubExprs[LHS] = lhs;
      SubExprs[RHS] = rhs;
    }

  /// \brief Build an empty __builtin_choose_expr.
  explicit ChooseExpr(EmptyShell Empty) : Expr(ChooseExprClass, Empty) { }

  /// isConditionTrue - Return whether the condition is true (i.e. not
  /// equal to zero).
  bool isConditionTrue(const ASTContext &C) const;

  /// getChosenSubExpr - Return the subexpression chosen according to the
  /// condition.
  Expr *getChosenSubExpr(const ASTContext &C) const {
    return isConditionTrue(C) ? getLHS() : getRHS();
  }

  Expr *getCond() const { return cast<Expr>(SubExprs[COND]); }
  void setCond(Expr *E) { SubExprs[COND] = E; }
  Expr *getLHS() const { return cast<Expr>(SubExprs[LHS]); }
  void setLHS(Expr *E) { SubExprs[LHS] = E; }
  Expr *getRHS() const { return cast<Expr>(SubExprs[RHS]); }
  void setRHS(Expr *E) { SubExprs[RHS] = E; }

  SourceLocation getBuiltinLoc() const { return BuiltinLoc; }
  void setBuiltinLoc(SourceLocation L) { BuiltinLoc = L; }

  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(BuiltinLoc, RParenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ChooseExprClass;
  }
  static bool classof(const ChooseExpr *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&SubExprs[0], &SubExprs[0]+END_EXPR);
  }
};

/// GNUNullExpr - Implements the GNU __null extension, which is a name
/// for a null pointer constant that has integral type (e.g., int or
/// long) and is the same size and alignment as a pointer. The __null
/// extension is typically only used by system headers, which define
/// NULL as __null in C++ rather than using 0 (which is an integer
/// that may not match the size of a pointer).
class GNUNullExpr : public Expr {
  /// TokenLoc - The location of the __null keyword.
  SourceLocation TokenLoc;

public:
  GNUNullExpr(QualType Ty, SourceLocation Loc)
    : Expr(GNUNullExprClass, Ty, VK_RValue, OK_Ordinary, false, false, false),
      TokenLoc(Loc) { }

  /// \brief Build an empty GNU __null expression.
  explicit GNUNullExpr(EmptyShell Empty) : Expr(GNUNullExprClass, Empty) { }

  /// getTokenLocation - The location of the __null token.
  SourceLocation getTokenLocation() const { return TokenLoc; }
  void setTokenLocation(SourceLocation L) { TokenLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(TokenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == GNUNullExprClass;
  }
  static bool classof(const GNUNullExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// VAArgExpr, used for the builtin function __builtin_va_arg.
class VAArgExpr : public Expr {
  Stmt *Val;
  TypeSourceInfo *TInfo;
  SourceLocation BuiltinLoc, RParenLoc;
public:
  VAArgExpr(SourceLocation BLoc, Expr* e, TypeSourceInfo *TInfo,
            SourceLocation RPLoc, QualType t)
    : Expr(VAArgExprClass, t, VK_RValue, OK_Ordinary,
           t->isDependentType(), false,
           (TInfo->getType()->containsUnexpandedParameterPack() ||
            e->containsUnexpandedParameterPack())),
      Val(e), TInfo(TInfo),
      BuiltinLoc(BLoc),
      RParenLoc(RPLoc) { }

  /// \brief Create an empty __builtin_va_arg expression.
  explicit VAArgExpr(EmptyShell Empty) : Expr(VAArgExprClass, Empty) { }

  const Expr *getSubExpr() const { return cast<Expr>(Val); }
  Expr *getSubExpr() { return cast<Expr>(Val); }
  void setSubExpr(Expr *E) { Val = E; }

  TypeSourceInfo *getWrittenTypeInfo() const { return TInfo; }
  void setWrittenTypeInfo(TypeSourceInfo *TI) { TInfo = TI; }

  SourceLocation getBuiltinLoc() const { return BuiltinLoc; }
  void setBuiltinLoc(SourceLocation L) { BuiltinLoc = L; }

  SourceLocation getRParenLoc() const { return RParenLoc; }
  void setRParenLoc(SourceLocation L) { RParenLoc = L; }

  SourceRange getSourceRange() const {
    return SourceRange(BuiltinLoc, RParenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == VAArgExprClass;
  }
  static bool classof(const VAArgExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Val, &Val+1); }
};

/// @brief Describes an C or C++ initializer list.
///
/// InitListExpr describes an initializer list, which can be used to
/// initialize objects of different types, including
/// struct/class/union types, arrays, and vectors. For example:
///
/// @code
/// struct foo x = { 1, { 2, 3 } };
/// @endcode
///
/// Prior to semantic analysis, an initializer list will represent the
/// initializer list as written by the user, but will have the
/// placeholder type "void". This initializer list is called the
/// syntactic form of the initializer, and may contain C99 designated
/// initializers (represented as DesignatedInitExprs), initializations
/// of subobject members without explicit braces, and so on. Clients
/// interested in the original syntax of the initializer list should
/// use the syntactic form of the initializer list.
///
/// After semantic analysis, the initializer list will represent the
/// semantic form of the initializer, where the initializations of all
/// subobjects are made explicit with nested InitListExpr nodes and
/// C99 designators have been eliminated by placing the designated
/// initializations into the subobject they initialize. Additionally,
/// any "holes" in the initialization, where no initializer has been
/// specified for a particular subobject, will be replaced with
/// implicitly-generated ImplicitValueInitExpr expressions that
/// value-initialize the subobjects. Note, however, that the
/// initializer lists may still have fewer initializers than there are
/// elements to initialize within the object.
///
/// Given the semantic form of the initializer list, one can retrieve
/// the original syntactic form of that initializer list (if it
/// exists) using getSyntacticForm(). Since many initializer lists
/// have the same syntactic and semantic forms, getSyntacticForm() may
/// return NULL, indicating that the current initializer list also
/// serves as its syntactic form.
class InitListExpr : public Expr {
  // FIXME: Eliminate this vector in favor of ASTContext allocation
  typedef ASTVector<Stmt *> InitExprsTy;
  InitExprsTy InitExprs;
  SourceLocation LBraceLoc, RBraceLoc;

  /// Contains the initializer list that describes the syntactic form
  /// written in the source code.
  InitListExpr *SyntacticForm;

  /// \brief Either:
  ///  If this initializer list initializes an array with more elements than
  ///  there are initializers in the list, specifies an expression to be used
  ///  for value initialization of the rest of the elements.
  /// Or
  ///  If this initializer list initializes a union, specifies which
  ///  field within the union will be initialized.
  llvm::PointerUnion<Expr *, FieldDecl *> ArrayFillerOrUnionFieldInit;

  /// Whether this initializer list originally had a GNU array-range
  /// designator in it. This is a temporary marker used by CodeGen.
  bool HadArrayRangeDesignator;

public:
  InitListExpr(ASTContext &C, SourceLocation lbraceloc,
               Expr **initexprs, unsigned numinits,
               SourceLocation rbraceloc);

  /// \brief Build an empty initializer list.
  explicit InitListExpr(ASTContext &C, EmptyShell Empty)
    : Expr(InitListExprClass, Empty), InitExprs(C) { }

  unsigned getNumInits() const { return InitExprs.size(); }

  /// \brief Retrieve the set of initializers.
  Expr **getInits() { return reinterpret_cast<Expr **>(InitExprs.data()); }
    
  const Expr *getInit(unsigned Init) const {
    assert(Init < getNumInits() && "Initializer access out of range!");
    return cast_or_null<Expr>(InitExprs[Init]);
  }

  Expr *getInit(unsigned Init) {
    assert(Init < getNumInits() && "Initializer access out of range!");
    return cast_or_null<Expr>(InitExprs[Init]);
  }

  void setInit(unsigned Init, Expr *expr) {
    assert(Init < getNumInits() && "Initializer access out of range!");
    InitExprs[Init] = expr;
  }

  /// \brief Reserve space for some number of initializers.
  void reserveInits(ASTContext &C, unsigned NumInits);

  /// @brief Specify the number of initializers
  ///
  /// If there are more than @p NumInits initializers, the remaining
  /// initializers will be destroyed. If there are fewer than @p
  /// NumInits initializers, NULL expressions will be added for the
  /// unknown initializers.
  void resizeInits(ASTContext &Context, unsigned NumInits);

  /// @brief Updates the initializer at index @p Init with the new
  /// expression @p expr, and returns the old expression at that
  /// location.
  ///
  /// When @p Init is out of range for this initializer list, the
  /// initializer list will be extended with NULL expressions to
  /// accommodate the new entry.
  Expr *updateInit(ASTContext &C, unsigned Init, Expr *expr);

  /// \brief If this initializer list initializes an array with more elements
  /// than there are initializers in the list, specifies an expression to be
  /// used for value initialization of the rest of the elements.
  Expr *getArrayFiller() {
    return ArrayFillerOrUnionFieldInit.dyn_cast<Expr *>();
  }
  const Expr *getArrayFiller() const {
    return const_cast<InitListExpr *>(this)->getArrayFiller();
  }
  void setArrayFiller(Expr *filler);

  /// \brief If this initializes a union, specifies which field in the
  /// union to initialize.
  ///
  /// Typically, this field is the first named field within the
  /// union. However, a designated initializer can specify the
  /// initialization of a different field within the union.
  FieldDecl *getInitializedFieldInUnion() {
    return ArrayFillerOrUnionFieldInit.dyn_cast<FieldDecl *>();
  }
  const FieldDecl *getInitializedFieldInUnion() const {
    return const_cast<InitListExpr *>(this)->getInitializedFieldInUnion();
  }
  void setInitializedFieldInUnion(FieldDecl *FD) {
    ArrayFillerOrUnionFieldInit = FD;
  }

  // Explicit InitListExpr's originate from source code (and have valid source
  // locations). Implicit InitListExpr's are created by the semantic analyzer.
  bool isExplicit() {
    return LBraceLoc.isValid() && RBraceLoc.isValid();
  }

  SourceLocation getLBraceLoc() const { return LBraceLoc; }
  void setLBraceLoc(SourceLocation Loc) { LBraceLoc = Loc; }
  SourceLocation getRBraceLoc() const { return RBraceLoc; }
  void setRBraceLoc(SourceLocation Loc) { RBraceLoc = Loc; }

  /// @brief Retrieve the initializer list that describes the
  /// syntactic form of the initializer.
  ///
  ///
  InitListExpr *getSyntacticForm() const { return SyntacticForm; }
  void setSyntacticForm(InitListExpr *Init) { SyntacticForm = Init; }

  bool hadArrayRangeDesignator() const { return HadArrayRangeDesignator; }
  void sawArrayRangeDesignator(bool ARD = true) {
    HadArrayRangeDesignator = ARD;
  }

  SourceRange getSourceRange() const;

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == InitListExprClass;
  }
  static bool classof(const InitListExpr *) { return true; }

  // Iterators
  child_range children() {
    if (InitExprs.empty()) return child_range();
    return child_range(&InitExprs[0], &InitExprs[0] + InitExprs.size());
  }

  typedef InitExprsTy::iterator iterator;
  typedef InitExprsTy::const_iterator const_iterator;
  typedef InitExprsTy::reverse_iterator reverse_iterator;
  typedef InitExprsTy::const_reverse_iterator const_reverse_iterator;

  iterator begin() { return InitExprs.begin(); }
  const_iterator begin() const { return InitExprs.begin(); }
  iterator end() { return InitExprs.end(); }
  const_iterator end() const { return InitExprs.end(); }
  reverse_iterator rbegin() { return InitExprs.rbegin(); }
  const_reverse_iterator rbegin() const { return InitExprs.rbegin(); }
  reverse_iterator rend() { return InitExprs.rend(); }
  const_reverse_iterator rend() const { return InitExprs.rend(); }

  friend class ASTStmtReader;
  friend class ASTStmtWriter;
};

/// @brief Represents a C99 designated initializer expression.
///
/// A designated initializer expression (C99 6.7.8) contains one or
/// more designators (which can be field designators, array
/// designators, or GNU array-range designators) followed by an
/// expression that initializes the field or element(s) that the
/// designators refer to. For example, given:
///
/// @code
/// struct point {
///   double x;
///   double y;
/// };
/// struct point ptarray[10] = { [2].y = 1.0, [2].x = 2.0, [0].x = 1.0 };
/// @endcode
///
/// The InitListExpr contains three DesignatedInitExprs, the first of
/// which covers @c [2].y=1.0. This DesignatedInitExpr will have two
/// designators, one array designator for @c [2] followed by one field
/// designator for @c .y. The initalization expression will be 1.0.
class DesignatedInitExpr : public Expr {
public:
  /// \brief Forward declaration of the Designator class.
  class Designator;

private:
  /// The location of the '=' or ':' prior to the actual initializer
  /// expression.
  SourceLocation EqualOrColonLoc;

  /// Whether this designated initializer used the GNU deprecated
  /// syntax rather than the C99 '=' syntax.
  bool GNUSyntax : 1;

  /// The number of designators in this initializer expression.
  unsigned NumDesignators : 15;

  /// \brief The designators in this designated initialization
  /// expression.
  Designator *Designators;

  /// The number of subexpressions of this initializer expression,
  /// which contains both the initializer and any additional
  /// expressions used by array and array-range designators.
  unsigned NumSubExprs : 16;


  DesignatedInitExpr(ASTContext &C, QualType Ty, unsigned NumDesignators,
                     const Designator *Designators,
                     SourceLocation EqualOrColonLoc, bool GNUSyntax,
                     Expr **IndexExprs, unsigned NumIndexExprs,
                     Expr *Init);

  explicit DesignatedInitExpr(unsigned NumSubExprs)
    : Expr(DesignatedInitExprClass, EmptyShell()),
      NumDesignators(0), Designators(0), NumSubExprs(NumSubExprs) { }

public:
  /// A field designator, e.g., ".x".
  struct FieldDesignator {
    /// Refers to the field that is being initialized. The low bit
    /// of this field determines whether this is actually a pointer
    /// to an IdentifierInfo (if 1) or a FieldDecl (if 0). When
    /// initially constructed, a field designator will store an
    /// IdentifierInfo*. After semantic analysis has resolved that
    /// name, the field designator will instead store a FieldDecl*.
    uintptr_t NameOrField;

    /// The location of the '.' in the designated initializer.
    unsigned DotLoc;

    /// The location of the field name in the designated initializer.
    unsigned FieldLoc;
  };

  /// An array or GNU array-range designator, e.g., "[9]" or "[10..15]".
  struct ArrayOrRangeDesignator {
    /// Location of the first index expression within the designated
    /// initializer expression's list of subexpressions.
    unsigned Index;
    /// The location of the '[' starting the array range designator.
    unsigned LBracketLoc;
    /// The location of the ellipsis separating the start and end
    /// indices. Only valid for GNU array-range designators.
    unsigned EllipsisLoc;
    /// The location of the ']' terminating the array range designator.
    unsigned RBracketLoc;
  };

  /// @brief Represents a single C99 designator.
  ///
  /// @todo This class is infuriatingly similar to clang::Designator,
  /// but minor differences (storing indices vs. storing pointers)
  /// keep us from reusing it. Try harder, later, to rectify these
  /// differences.
  class Designator {
    /// @brief The kind of designator this describes.
    enum {
      FieldDesignator,
      ArrayDesignator,
      ArrayRangeDesignator
    } Kind;

    union {
      /// A field designator, e.g., ".x".
      struct FieldDesignator Field;
      /// An array or GNU array-range designator, e.g., "[9]" or "[10..15]".
      struct ArrayOrRangeDesignator ArrayOrRange;
    };
    friend class DesignatedInitExpr;

  public:
    Designator() {}

    /// @brief Initializes a field designator.
    Designator(const IdentifierInfo *FieldName, SourceLocation DotLoc,
               SourceLocation FieldLoc)
      : Kind(FieldDesignator) {
      Field.NameOrField = reinterpret_cast<uintptr_t>(FieldName) | 0x01;
      Field.DotLoc = DotLoc.getRawEncoding();
      Field.FieldLoc = FieldLoc.getRawEncoding();
    }

    /// @brief Initializes an array designator.
    Designator(unsigned Index, SourceLocation LBracketLoc,
               SourceLocation RBracketLoc)
      : Kind(ArrayDesignator) {
      ArrayOrRange.Index = Index;
      ArrayOrRange.LBracketLoc = LBracketLoc.getRawEncoding();
      ArrayOrRange.EllipsisLoc = SourceLocation().getRawEncoding();
      ArrayOrRange.RBracketLoc = RBracketLoc.getRawEncoding();
    }

    /// @brief Initializes a GNU array-range designator.
    Designator(unsigned Index, SourceLocation LBracketLoc,
               SourceLocation EllipsisLoc, SourceLocation RBracketLoc)
      : Kind(ArrayRangeDesignator) {
      ArrayOrRange.Index = Index;
      ArrayOrRange.LBracketLoc = LBracketLoc.getRawEncoding();
      ArrayOrRange.EllipsisLoc = EllipsisLoc.getRawEncoding();
      ArrayOrRange.RBracketLoc = RBracketLoc.getRawEncoding();
    }

    bool isFieldDesignator() const { return Kind == FieldDesignator; }
    bool isArrayDesignator() const { return Kind == ArrayDesignator; }
    bool isArrayRangeDesignator() const { return Kind == ArrayRangeDesignator; }

    IdentifierInfo * getFieldName();

    FieldDecl *getField() {
      assert(Kind == FieldDesignator && "Only valid on a field designator");
      if (Field.NameOrField & 0x01)
        return 0;
      else
        return reinterpret_cast<FieldDecl *>(Field.NameOrField);
    }

    void setField(FieldDecl *FD) {
      assert(Kind == FieldDesignator && "Only valid on a field designator");
      Field.NameOrField = reinterpret_cast<uintptr_t>(FD);
    }

    SourceLocation getDotLoc() const {
      assert(Kind == FieldDesignator && "Only valid on a field designator");
      return SourceLocation::getFromRawEncoding(Field.DotLoc);
    }

    SourceLocation getFieldLoc() const {
      assert(Kind == FieldDesignator && "Only valid on a field designator");
      return SourceLocation::getFromRawEncoding(Field.FieldLoc);
    }

    SourceLocation getLBracketLoc() const {
      assert((Kind == ArrayDesignator || Kind == ArrayRangeDesignator) &&
             "Only valid on an array or array-range designator");
      return SourceLocation::getFromRawEncoding(ArrayOrRange.LBracketLoc);
    }

    SourceLocation getRBracketLoc() const {
      assert((Kind == ArrayDesignator || Kind == ArrayRangeDesignator) &&
             "Only valid on an array or array-range designator");
      return SourceLocation::getFromRawEncoding(ArrayOrRange.RBracketLoc);
    }

    SourceLocation getEllipsisLoc() const {
      assert(Kind == ArrayRangeDesignator &&
             "Only valid on an array-range designator");
      return SourceLocation::getFromRawEncoding(ArrayOrRange.EllipsisLoc);
    }

    unsigned getFirstExprIndex() const {
      assert((Kind == ArrayDesignator || Kind == ArrayRangeDesignator) &&
             "Only valid on an array or array-range designator");
      return ArrayOrRange.Index;
    }

    SourceLocation getStartLocation() const {
      if (Kind == FieldDesignator)
        return getDotLoc().isInvalid()? getFieldLoc() : getDotLoc();
      else
        return getLBracketLoc();
    }
    SourceLocation getEndLocation() const {
      return Kind == FieldDesignator ? getFieldLoc() : getRBracketLoc();
    }
    SourceRange getSourceRange() const {
      return SourceRange(getStartLocation(), getEndLocation());
    }
  };

  static DesignatedInitExpr *Create(ASTContext &C, Designator *Designators,
                                    unsigned NumDesignators,
                                    Expr **IndexExprs, unsigned NumIndexExprs,
                                    SourceLocation EqualOrColonLoc,
                                    bool GNUSyntax, Expr *Init);

  static DesignatedInitExpr *CreateEmpty(ASTContext &C, unsigned NumIndexExprs);

  /// @brief Returns the number of designators in this initializer.
  unsigned size() const { return NumDesignators; }

  // Iterator access to the designators.
  typedef Designator* designators_iterator;
  designators_iterator designators_begin() { return Designators; }
  designators_iterator designators_end() {
    return Designators + NumDesignators;
  }

  typedef std::reverse_iterator<designators_iterator>
          reverse_designators_iterator;
  reverse_designators_iterator designators_rbegin() {
    return reverse_designators_iterator(designators_end());
  }
  reverse_designators_iterator designators_rend() {
    return reverse_designators_iterator(designators_begin());
  }

  Designator *getDesignator(unsigned Idx) { return &designators_begin()[Idx]; }

  void setDesignators(ASTContext &C, const Designator *Desigs, 
                      unsigned NumDesigs);

  Expr *getArrayIndex(const Designator& D);
  Expr *getArrayRangeStart(const Designator& D);
  Expr *getArrayRangeEnd(const Designator& D);

  /// @brief Retrieve the location of the '=' that precedes the
  /// initializer value itself, if present.
  SourceLocation getEqualOrColonLoc() const { return EqualOrColonLoc; }
  void setEqualOrColonLoc(SourceLocation L) { EqualOrColonLoc = L; }

  /// @brief Determines whether this designated initializer used the
  /// deprecated GNU syntax for designated initializers.
  bool usesGNUSyntax() const { return GNUSyntax; }
  void setGNUSyntax(bool GNU) { GNUSyntax = GNU; }

  /// @brief Retrieve the initializer value.
  Expr *getInit() const {
    return cast<Expr>(*const_cast<DesignatedInitExpr*>(this)->child_begin());
  }

  void setInit(Expr *init) {
    *child_begin() = init;
  }

  /// \brief Retrieve the total number of subexpressions in this
  /// designated initializer expression, including the actual
  /// initialized value and any expressions that occur within array
  /// and array-range designators.
  unsigned getNumSubExprs() const { return NumSubExprs; }

  Expr *getSubExpr(unsigned Idx) {
    assert(Idx < NumSubExprs && "Subscript out of range");
    char* Ptr = static_cast<char*>(static_cast<void *>(this));
    Ptr += sizeof(DesignatedInitExpr);
    return reinterpret_cast<Expr**>(reinterpret_cast<void**>(Ptr))[Idx];
  }

  void setSubExpr(unsigned Idx, Expr *E) {
    assert(Idx < NumSubExprs && "Subscript out of range");
    char* Ptr = static_cast<char*>(static_cast<void *>(this));
    Ptr += sizeof(DesignatedInitExpr);
    reinterpret_cast<Expr**>(reinterpret_cast<void**>(Ptr))[Idx] = E;
  }

  /// \brief Replaces the designator at index @p Idx with the series
  /// of designators in [First, Last).
  void ExpandDesignator(ASTContext &C, unsigned Idx, const Designator *First,
                        const Designator *Last);

  SourceRange getDesignatorsSourceRange() const;

  SourceRange getSourceRange() const;

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == DesignatedInitExprClass;
  }
  static bool classof(const DesignatedInitExpr *) { return true; }

  // Iterators
  child_range children() {
    Stmt **begin = reinterpret_cast<Stmt**>(this + 1);
    return child_range(begin, begin + NumSubExprs);
  }
};

/// \brief Represents an implicitly-generated value initialization of
/// an object of a given type.
///
/// Implicit value initializations occur within semantic initializer
/// list expressions (InitListExpr) as placeholders for subobject
/// initializations not explicitly specified by the user.
///
/// \see InitListExpr
class ImplicitValueInitExpr : public Expr {
public:
  explicit ImplicitValueInitExpr(QualType ty)
    : Expr(ImplicitValueInitExprClass, ty, VK_RValue, OK_Ordinary,
           false, false, false) { }

  /// \brief Construct an empty implicit value initialization.
  explicit ImplicitValueInitExpr(EmptyShell Empty)
    : Expr(ImplicitValueInitExprClass, Empty) { }

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ImplicitValueInitExprClass;
  }
  static bool classof(const ImplicitValueInitExpr *) { return true; }

  SourceRange getSourceRange() const {
    return SourceRange();
  }

  // Iterators
  child_range children() { return child_range(); }
};


class ParenListExpr : public Expr {
  Stmt **Exprs;
  unsigned NumExprs;
  SourceLocation LParenLoc, RParenLoc;

public:
  ParenListExpr(ASTContext& C, SourceLocation lparenloc, Expr **exprs,
                unsigned numexprs, SourceLocation rparenloc);

  /// \brief Build an empty paren list.
  explicit ParenListExpr(EmptyShell Empty) : Expr(ParenListExprClass, Empty) { }

  unsigned getNumExprs() const { return NumExprs; }

  const Expr* getExpr(unsigned Init) const {
    assert(Init < getNumExprs() && "Initializer access out of range!");
    return cast_or_null<Expr>(Exprs[Init]);
  }

  Expr* getExpr(unsigned Init) {
    assert(Init < getNumExprs() && "Initializer access out of range!");
    return cast_or_null<Expr>(Exprs[Init]);
  }

  Expr **getExprs() { return reinterpret_cast<Expr **>(Exprs); }

  SourceLocation getLParenLoc() const { return LParenLoc; }
  SourceLocation getRParenLoc() const { return RParenLoc; }

  SourceRange getSourceRange() const {
    return SourceRange(LParenLoc, RParenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ParenListExprClass;
  }
  static bool classof(const ParenListExpr *) { return true; }

  // Iterators
  child_range children() {
    return child_range(&Exprs[0], &Exprs[0]+NumExprs);
  }

  friend class ASTStmtReader;
  friend class ASTStmtWriter;
};


/// \brief Represents a C1X generic selection.
///
/// A generic selection (C1X 6.5.1.1) contains an unevaluated controlling
/// expression, followed by one or more generic associations.  Each generic
/// association specifies a type name and an expression, or "default" and an
/// expression (in which case it is known as a default generic association).
/// The type and value of the generic selection are identical to those of its
/// result expression, which is defined as the expression in the generic
/// association with a type name that is compatible with the type of the
/// controlling expression, or the expression in the default generic association
/// if no types are compatible.  For example:
///
/// @code
/// _Generic(X, double: 1, float: 2, default: 3)
/// @endcode
///
/// The above expression evaluates to 1 if 1.0 is substituted for X, 2 if 1.0f
/// or 3 if "hello".
///
/// As an extension, generic selections are allowed in C++, where the following
/// additional semantics apply:
///
/// Any generic selection whose controlling expression is type-dependent or
/// which names a dependent type in its association list is result-dependent,
/// which means that the choice of result expression is dependent.
/// Result-dependent generic associations are both type- and value-dependent.
class GenericSelectionExpr : public Expr {
  enum { CONTROLLING, END_EXPR };
  TypeSourceInfo **AssocTypes;
  Stmt **SubExprs;
  unsigned NumAssocs, ResultIndex;
  SourceLocation GenericLoc, DefaultLoc, RParenLoc;

public:
  GenericSelectionExpr(ASTContext &Context,
                       SourceLocation GenericLoc, Expr *ControllingExpr,
                       TypeSourceInfo **AssocTypes, Expr **AssocExprs,
                       unsigned NumAssocs, SourceLocation DefaultLoc,
                       SourceLocation RParenLoc,
                       bool ContainsUnexpandedParameterPack,
                       unsigned ResultIndex);

  /// This constructor is used in the result-dependent case.
  GenericSelectionExpr(ASTContext &Context,
                       SourceLocation GenericLoc, Expr *ControllingExpr,
                       TypeSourceInfo **AssocTypes, Expr **AssocExprs,
                       unsigned NumAssocs, SourceLocation DefaultLoc,
                       SourceLocation RParenLoc,
                       bool ContainsUnexpandedParameterPack);

  explicit GenericSelectionExpr(EmptyShell Empty)
    : Expr(GenericSelectionExprClass, Empty) { }

  unsigned getNumAssocs() const { return NumAssocs; }

  SourceLocation getGenericLoc() const { return GenericLoc; }
  SourceLocation getDefaultLoc() const { return DefaultLoc; }
  SourceLocation getRParenLoc() const { return RParenLoc; }

  const Expr *getAssocExpr(unsigned i) const {
    return cast<Expr>(SubExprs[END_EXPR+i]);
  }
  Expr *getAssocExpr(unsigned i) { return cast<Expr>(SubExprs[END_EXPR+i]); }

  const TypeSourceInfo *getAssocTypeSourceInfo(unsigned i) const {
    return AssocTypes[i];
  }
  TypeSourceInfo *getAssocTypeSourceInfo(unsigned i) { return AssocTypes[i]; }

  QualType getAssocType(unsigned i) const {
    if (const TypeSourceInfo *TS = getAssocTypeSourceInfo(i))
      return TS->getType();
    else
      return QualType();
  }

  const Expr *getControllingExpr() const {
    return cast<Expr>(SubExprs[CONTROLLING]);
  }
  Expr *getControllingExpr() { return cast<Expr>(SubExprs[CONTROLLING]); }

  /// Whether this generic selection is result-dependent.
  bool isResultDependent() const { return ResultIndex == -1U; }

  /// The zero-based index of the result expression's generic association in
  /// the generic selection's association list.  Defined only if the
  /// generic selection is not result-dependent.
  unsigned getResultIndex() const {
    assert(!isResultDependent() && "Generic selection is result-dependent");
    return ResultIndex;
  }

  /// The generic selection's result expression.  Defined only if the
  /// generic selection is not result-dependent.
  const Expr *getResultExpr() const { return getAssocExpr(getResultIndex()); }
  Expr *getResultExpr() { return getAssocExpr(getResultIndex()); }

  SourceRange getSourceRange() const {
    return SourceRange(GenericLoc, RParenLoc);
  }
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == GenericSelectionExprClass;
  }
  static bool classof(const GenericSelectionExpr *) { return true; }

  child_range children() {
    return child_range(SubExprs, SubExprs+END_EXPR+NumAssocs);
  }

  friend class ASTStmtReader;
};

//===----------------------------------------------------------------------===//
// Clang Extensions
//===----------------------------------------------------------------------===//


/// ExtVectorElementExpr - This represents access to specific elements of a
/// vector, and may occur on the left hand side or right hand side.  For example
/// the following is legal:  "V.xy = V.zw" if V is a 4 element extended vector.
///
/// Note that the base may have either vector or pointer to vector type, just
/// like a struct field reference.
///
class ExtVectorElementExpr : public Expr {
  Stmt *Base;
  IdentifierInfo *Accessor;
  SourceLocation AccessorLoc;
public:
  ExtVectorElementExpr(QualType ty, ExprValueKind VK, Expr *base,
                       IdentifierInfo &accessor, SourceLocation loc)
    : Expr(ExtVectorElementExprClass, ty, VK,
           (VK == VK_RValue ? OK_Ordinary : OK_VectorComponent),
           base->isTypeDependent(), base->isValueDependent(),
           base->containsUnexpandedParameterPack()),
      Base(base), Accessor(&accessor), AccessorLoc(loc) {}

  /// \brief Build an empty vector element expression.
  explicit ExtVectorElementExpr(EmptyShell Empty)
    : Expr(ExtVectorElementExprClass, Empty) { }

  const Expr *getBase() const { return cast<Expr>(Base); }
  Expr *getBase() { return cast<Expr>(Base); }
  void setBase(Expr *E) { Base = E; }

  IdentifierInfo &getAccessor() const { return *Accessor; }
  void setAccessor(IdentifierInfo *II) { Accessor = II; }

  SourceLocation getAccessorLoc() const { return AccessorLoc; }
  void setAccessorLoc(SourceLocation L) { AccessorLoc = L; }

  /// getNumElements - Get the number of components being selected.
  unsigned getNumElements() const;

  /// containsDuplicateElements - Return true if any element access is
  /// repeated.
  bool containsDuplicateElements() const;

  /// getEncodedElementAccess - Encode the elements accessed into an llvm
  /// aggregate Constant of ConstantInt(s).
  void getEncodedElementAccess(llvm::SmallVectorImpl<unsigned> &Elts) const;

  SourceRange getSourceRange() const {
    return SourceRange(getBase()->getLocStart(), AccessorLoc);
  }

  /// isArrow - Return true if the base expression is a pointer to vector,
  /// return false if the base expression is a vector.
  bool isArrow() const;

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == ExtVectorElementExprClass;
  }
  static bool classof(const ExtVectorElementExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(&Base, &Base+1); }
};


/// BlockExpr - Adaptor class for mixing a BlockDecl with expressions.
/// ^{ statement-body }   or   ^(int arg1, float arg2){ statement-body }
class BlockExpr : public Expr {
protected:
  BlockDecl *TheBlock;
public:
  BlockExpr(BlockDecl *BD, QualType ty)
    : Expr(BlockExprClass, ty, VK_RValue, OK_Ordinary,
           ty->isDependentType(), false, false),
      TheBlock(BD) {}

  /// \brief Build an empty block expression.
  explicit BlockExpr(EmptyShell Empty) : Expr(BlockExprClass, Empty) { }

  const BlockDecl *getBlockDecl() const { return TheBlock; }
  BlockDecl *getBlockDecl() { return TheBlock; }
  void setBlockDecl(BlockDecl *BD) { TheBlock = BD; }

  // Convenience functions for probing the underlying BlockDecl.
  SourceLocation getCaretLocation() const;
  const Stmt *getBody() const;
  Stmt *getBody();

  SourceRange getSourceRange() const {
    return SourceRange(getCaretLocation(), getBody()->getLocEnd());
  }

  /// getFunctionType - Return the underlying function type for this block.
  const FunctionType *getFunctionType() const;

  static bool classof(const Stmt *T) {
    return T->getStmtClass() == BlockExprClass;
  }
  static bool classof(const BlockExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// BlockDeclRefExpr - A reference to a local variable declared in an
/// enclosing scope.
class BlockDeclRefExpr : public Expr {
  VarDecl *D;
  SourceLocation Loc;
  bool IsByRef : 1;
  bool ConstQualAdded : 1;
public:
  BlockDeclRefExpr(VarDecl *d, QualType t, ExprValueKind VK,
                   SourceLocation l, bool ByRef, bool constAdded = false);

  // \brief Build an empty reference to a declared variable in a
  // block.
  explicit BlockDeclRefExpr(EmptyShell Empty)
    : Expr(BlockDeclRefExprClass, Empty) { }

  VarDecl *getDecl() { return D; }
  const VarDecl *getDecl() const { return D; }
  void setDecl(VarDecl *VD) { D = VD; }

  SourceLocation getLocation() const { return Loc; }
  void setLocation(SourceLocation L) { Loc = L; }

  SourceRange getSourceRange() const { return SourceRange(Loc); }

  bool isByRef() const { return IsByRef; }
  void setByRef(bool BR) { IsByRef = BR; }

  bool isConstQualAdded() const { return ConstQualAdded; }
  void setConstQualAdded(bool C) { ConstQualAdded = C; }
  
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == BlockDeclRefExprClass;
  }
  static bool classof(const BlockDeclRefExpr *) { return true; }

  // Iterators
  child_range children() { return child_range(); }
};

/// AsTypeExpr - Clang builtin function __builtin_astype [OpenCL 6.2.4.2]
/// This AST node provides support for reinterpreting a type to another
/// type of the same size.
class AsTypeExpr : public Expr {
private:
  Expr* SrcExpr;
  QualType DstType;
  SourceLocation BuiltinLoc, RParenLoc;
  
public:
  AsTypeExpr(Expr* SrcExpr, QualType DstType,
             ExprValueKind VK, ExprObjectKind OK,
             SourceLocation BuiltinLoc, SourceLocation RParenLoc)
  : Expr(AsTypeExprClass, DstType, VK, OK, false, false, false), 
  SrcExpr(SrcExpr), DstType(DstType),
  BuiltinLoc(BuiltinLoc), RParenLoc(RParenLoc) {}
  
  /// \brief Build an empty __builtin_astype
  explicit AsTypeExpr(EmptyShell Empty) : Expr(AsTypeExprClass, Empty) {}
  
  /// getSrcExpr - Return the Expr to be converted.
  Expr *getSrcExpr() const { return SrcExpr; }
  QualType getDstType() const { return DstType; }
  
  SourceRange getSourceRange() const {
    return SourceRange(BuiltinLoc, RParenLoc);
  }
  
  static bool classof(const Stmt *T) {
    return T->getStmtClass() == AsTypeExprClass; 
  }
  static bool classof(const AsTypeExpr *) { return true; }
  
  // Iterators
  child_range children() { return child_range(); }
};
}  // end namespace clang

#endif
OpenPOWER on IntegriCloud