phi.ll 15 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575576577578579580581582583584585586587588589590591592593594595596597598599600601602603604605606607608609610611612613614615616617618619620621622623624625626627628629630631632
  1. ; This test makes sure that these instructions are properly eliminated.
  2. ;
  3. ; RUN: opt < %s -instcombine -S | FileCheck %s
  4. target datalayout = "e-p:64:64:64-i1:8:8-i8:8:8-i16:16:16-i32:32:32-i64:64:64-f32:32:32-f64:64:64-v64:64:64-v128:128:128-a0:0:64-s0:64:64-f80:128:128:n8:16:32:64"
  5. define i32 @test1(i32 %A, i1 %b) {
  6. BB0:
  7. br i1 %b, label %BB1, label %BB2
  8. BB1:
  9. ; Combine away one argument PHI nodes
  10. %B = phi i32 [ %A, %BB0 ]
  11. ret i32 %B
  12. BB2:
  13. ret i32 %A
  14. ; CHECK-LABEL: @test1(
  15. ; CHECK: BB1:
  16. ; CHECK-NEXT: ret i32 %A
  17. }
  18. define i32 @test2(i32 %A, i1 %b) {
  19. BB0:
  20. br i1 %b, label %BB1, label %BB2
  21. BB1:
  22. br label %BB2
  23. BB2:
  24. ; Combine away PHI nodes with same values
  25. %B = phi i32 [ %A, %BB0 ], [ %A, %BB1 ]
  26. ret i32 %B
  27. ; CHECK-LABEL: @test2(
  28. ; CHECK: BB2:
  29. ; CHECK-NEXT: ret i32 %A
  30. }
  31. define i32 @test3(i32 %A, i1 %b) {
  32. BB0:
  33. br label %Loop
  34. Loop:
  35. ; PHI has same value always.
  36. %B = phi i32 [ %A, %BB0 ], [ %B, %Loop ]
  37. br i1 %b, label %Loop, label %Exit
  38. Exit:
  39. ret i32 %B
  40. ; CHECK-LABEL: @test3(
  41. ; CHECK: Exit:
  42. ; CHECK-NEXT: ret i32 %A
  43. }
  44. define i32 @test4(i1 %b) {
  45. BB0:
  46. ; Loop is unreachable
  47. ret i32 7
  48. Loop: ; preds = %L2, %Loop
  49. ; PHI has same value always.
  50. %B = phi i32 [ %B, %L2 ], [ %B, %Loop ]
  51. br i1 %b, label %L2, label %Loop
  52. L2: ; preds = %Loop
  53. br label %Loop
  54. ; CHECK-LABEL: @test4(
  55. ; CHECK: Loop:
  56. ; CHECK-NEXT: br i1 %b
  57. }
  58. define i32 @test5(i32 %A, i1 %b) {
  59. BB0:
  60. br label %Loop
  61. Loop: ; preds = %Loop, %BB0
  62. ; PHI has same value always.
  63. %B = phi i32 [ %A, %BB0 ], [ undef, %Loop ]
  64. br i1 %b, label %Loop, label %Exit
  65. Exit: ; preds = %Loop
  66. ret i32 %B
  67. ; CHECK-LABEL: @test5(
  68. ; CHECK: Loop:
  69. ; CHECK-NEXT: br i1 %b
  70. ; CHECK: Exit:
  71. ; CHECK-NEXT: ret i32 %A
  72. }
  73. define i32 @test6(i16 %A, i1 %b) {
  74. BB0:
  75. %X = zext i16 %A to i32
  76. br i1 %b, label %BB1, label %BB2
  77. BB1:
  78. %Y = zext i16 %A to i32
  79. br label %BB2
  80. BB2:
  81. ;; Suck casts into phi
  82. %B = phi i32 [ %X, %BB0 ], [ %Y, %BB1 ]
  83. ret i32 %B
  84. ; CHECK-LABEL: @test6(
  85. ; CHECK: BB2:
  86. ; CHECK: zext i16 %A to i32
  87. ; CHECK-NEXT: ret i32
  88. }
  89. define i32 @test7(i32 %A, i1 %b) {
  90. BB0:
  91. br label %Loop
  92. Loop: ; preds = %Loop, %BB0
  93. ; PHI is dead.
  94. %B = phi i32 [ %A, %BB0 ], [ %C, %Loop ]
  95. %C = add i32 %B, 123
  96. br i1 %b, label %Loop, label %Exit
  97. Exit: ; preds = %Loop
  98. ret i32 0
  99. ; CHECK-LABEL: @test7(
  100. ; CHECK: Loop:
  101. ; CHECK-NEXT: br i1 %b
  102. }
  103. define i32* @test8({ i32, i32 } *%A, i1 %b) {
  104. BB0:
  105. %X = getelementptr inbounds { i32, i32 }, { i32, i32 } *%A, i32 0, i32 1
  106. br i1 %b, label %BB1, label %BB2
  107. BB1:
  108. %Y = getelementptr { i32, i32 }, { i32, i32 } *%A, i32 0, i32 1
  109. br label %BB2
  110. BB2:
  111. ;; Suck GEPs into phi
  112. %B = phi i32* [ %X, %BB0 ], [ %Y, %BB1 ]
  113. ret i32* %B
  114. ; CHECK-LABEL: @test8(
  115. ; CHECK-NOT: phi
  116. ; CHECK: BB2:
  117. ; CHECK-NEXT: %B = getelementptr { i32, i32 }, { i32, i32 }* %A
  118. ; CHECK-NEXT: ret i32* %B
  119. }
  120. define i32 @test9(i32* %A, i32* %B) {
  121. entry:
  122. %c = icmp eq i32* %A, null
  123. br i1 %c, label %bb1, label %bb
  124. bb:
  125. %C = load i32, i32* %B, align 1
  126. br label %bb2
  127. bb1:
  128. %D = load i32, i32* %A, align 1
  129. br label %bb2
  130. bb2:
  131. %E = phi i32 [ %C, %bb ], [ %D, %bb1 ]
  132. ret i32 %E
  133. ; CHECK-LABEL: @test9(
  134. ; CHECK: bb2:
  135. ; CHECK-NEXT: phi i32* [ %B, %bb ], [ %A, %bb1 ]
  136. ; CHECK-NEXT: %E = load i32, i32* %{{[^,]*}}, align 1
  137. ; CHECK-NEXT: ret i32 %E
  138. }
  139. define i32 @test10(i32* %A, i32* %B) {
  140. entry:
  141. %c = icmp eq i32* %A, null
  142. br i1 %c, label %bb1, label %bb
  143. bb:
  144. %C = load i32, i32* %B, align 16
  145. br label %bb2
  146. bb1:
  147. %D = load i32, i32* %A, align 32
  148. br label %bb2
  149. bb2:
  150. %E = phi i32 [ %C, %bb ], [ %D, %bb1 ]
  151. ret i32 %E
  152. ; CHECK-LABEL: @test10(
  153. ; CHECK: bb2:
  154. ; CHECK-NEXT: phi i32* [ %B, %bb ], [ %A, %bb1 ]
  155. ; CHECK-NEXT: %E = load i32, i32* %{{[^,]*}}, align 16
  156. ; CHECK-NEXT: ret i32 %E
  157. }
  158. ; PR1777
  159. declare i1 @test11a()
  160. define i1 @test11() {
  161. entry:
  162. %a = alloca i32
  163. %i = ptrtoint i32* %a to i64
  164. %b = call i1 @test11a()
  165. br i1 %b, label %one, label %two
  166. one:
  167. %x = phi i64 [%i, %entry], [%y, %two]
  168. %c = call i1 @test11a()
  169. br i1 %c, label %two, label %end
  170. two:
  171. %y = phi i64 [%i, %entry], [%x, %one]
  172. %d = call i1 @test11a()
  173. br i1 %d, label %one, label %end
  174. end:
  175. %f = phi i64 [ %x, %one], [%y, %two]
  176. ; Change the %f to %i, and the optimizer suddenly becomes a lot smarter
  177. ; even though %f must equal %i at this point
  178. %g = inttoptr i64 %f to i32*
  179. store i32 10, i32* %g
  180. %z = call i1 @test11a()
  181. ret i1 %z
  182. ; CHECK-LABEL: @test11(
  183. ; CHECK-NOT: phi i32
  184. ; CHECK: ret i1 %z
  185. }
  186. define i64 @test12(i1 %cond, i8* %Ptr, i64 %Val) {
  187. entry:
  188. %tmp41 = ptrtoint i8* %Ptr to i64
  189. %tmp42 = zext i64 %tmp41 to i128
  190. br i1 %cond, label %end, label %two
  191. two:
  192. %tmp36 = zext i64 %Val to i128 ; <i128> [#uses=1]
  193. %tmp37 = shl i128 %tmp36, 64 ; <i128> [#uses=1]
  194. %ins39 = or i128 %tmp42, %tmp37 ; <i128> [#uses=1]
  195. br label %end
  196. end:
  197. %tmp869.0 = phi i128 [ %tmp42, %entry ], [ %ins39, %two ]
  198. %tmp32 = trunc i128 %tmp869.0 to i64 ; <i64> [#uses=1]
  199. %tmp29 = lshr i128 %tmp869.0, 64 ; <i128> [#uses=1]
  200. %tmp30 = trunc i128 %tmp29 to i64 ; <i64> [#uses=1]
  201. %tmp2 = add i64 %tmp32, %tmp30
  202. ret i64 %tmp2
  203. ; CHECK-LABEL: @test12(
  204. ; CHECK-NOT: zext
  205. ; CHECK: end:
  206. ; CHECK-NEXT: phi i64 [ 0, %entry ], [ %Val, %two ]
  207. ; CHECK-NOT: phi
  208. ; CHECK: ret i64
  209. }
  210. declare void @test13f(double, i32)
  211. define void @test13(i1 %cond, i32 %V1, double %Vald) {
  212. entry:
  213. %tmp42 = zext i32 %V1 to i128
  214. br i1 %cond, label %end, label %two
  215. two:
  216. %Val = bitcast double %Vald to i64
  217. %tmp36 = zext i64 %Val to i128 ; <i128> [#uses=1]
  218. %tmp37 = shl i128 %tmp36, 64 ; <i128> [#uses=1]
  219. %ins39 = or i128 %tmp42, %tmp37 ; <i128> [#uses=1]
  220. br label %end
  221. end:
  222. %tmp869.0 = phi i128 [ %tmp42, %entry ], [ %ins39, %two ]
  223. %tmp32 = trunc i128 %tmp869.0 to i32
  224. %tmp29 = lshr i128 %tmp869.0, 64 ; <i128> [#uses=1]
  225. %tmp30 = trunc i128 %tmp29 to i64 ; <i64> [#uses=1]
  226. %tmp31 = bitcast i64 %tmp30 to double
  227. call void @test13f(double %tmp31, i32 %tmp32)
  228. ret void
  229. ; CHECK-LABEL: @test13(
  230. ; CHECK-NOT: zext
  231. ; CHECK: end:
  232. ; CHECK-NEXT: phi double [ 0.000000e+00, %entry ], [ %Vald, %two ]
  233. ; CHECK-NEXT: call void @test13f(double {{[^,]*}}, i32 %V1)
  234. ; CHECK: ret void
  235. }
  236. define i640 @test14a(i320 %A, i320 %B, i1 %b1) {
  237. BB0:
  238. %a = zext i320 %A to i640
  239. %b = zext i320 %B to i640
  240. br label %Loop
  241. Loop:
  242. %C = phi i640 [ %a, %BB0 ], [ %b, %Loop ]
  243. br i1 %b1, label %Loop, label %Exit
  244. Exit: ; preds = %Loop
  245. ret i640 %C
  246. ; CHECK-LABEL: @test14a(
  247. ; CHECK: Loop:
  248. ; CHECK-NEXT: phi i320
  249. }
  250. define i160 @test14b(i320 %A, i320 %B, i1 %b1) {
  251. BB0:
  252. %a = trunc i320 %A to i160
  253. %b = trunc i320 %B to i160
  254. br label %Loop
  255. Loop:
  256. %C = phi i160 [ %a, %BB0 ], [ %b, %Loop ]
  257. br i1 %b1, label %Loop, label %Exit
  258. Exit: ; preds = %Loop
  259. ret i160 %C
  260. ; CHECK-LABEL: @test14b(
  261. ; CHECK: Loop:
  262. ; CHECK-NEXT: phi i160
  263. }
  264. declare i64 @test15a(i64)
  265. define i64 @test15b(i64 %A, i1 %b) {
  266. ; CHECK-LABEL: @test15b(
  267. entry:
  268. %i0 = zext i64 %A to i128
  269. %i1 = shl i128 %i0, 64
  270. %i = or i128 %i1, %i0
  271. br i1 %b, label %one, label %two
  272. ; CHECK: entry:
  273. ; CHECK-NEXT: br i1 %b
  274. one:
  275. %x = phi i128 [%i, %entry], [%y, %two]
  276. %x1 = lshr i128 %x, 64
  277. %x2 = trunc i128 %x1 to i64
  278. %c = call i64 @test15a(i64 %x2)
  279. %c1 = zext i64 %c to i128
  280. br label %two
  281. ; CHECK: one:
  282. ; CHECK-NEXT: phi i64
  283. ; CHECK-NEXT: %c = call i64 @test15a
  284. two:
  285. %y = phi i128 [%i, %entry], [%c1, %one]
  286. %y1 = lshr i128 %y, 64
  287. %y2 = trunc i128 %y1 to i64
  288. %d = call i64 @test15a(i64 %y2)
  289. %d1 = trunc i64 %d to i1
  290. br i1 %d1, label %one, label %end
  291. ; CHECK: two:
  292. ; CHECK-NEXT: phi i64
  293. ; CHECK-NEXT: phi i64
  294. ; CHECK-NEXT: %d = call i64 @test15a
  295. end:
  296. %g = trunc i128 %y to i64
  297. ret i64 %g
  298. ; CHECK: end:
  299. ; CHECK-NEXT: ret i64
  300. }
  301. ; PR6512 - Shouldn't merge loads from different addr spaces.
  302. define i32 @test16(i32 addrspace(1)* %pointer1, i32 %flag, i32* %pointer2)
  303. nounwind {
  304. entry:
  305. %retval = alloca i32, align 4 ; <i32*> [#uses=2]
  306. %pointer1.addr = alloca i32 addrspace(1)*, align 4 ; <i32 addrspace(1)**>
  307. %flag.addr = alloca i32, align 4 ; <i32*> [#uses=2]
  308. %pointer2.addr = alloca i32*, align 4 ; <i32**> [#uses=2]
  309. %res = alloca i32, align 4 ; <i32*> [#uses=4]
  310. store i32 addrspace(1)* %pointer1, i32 addrspace(1)** %pointer1.addr
  311. store i32 %flag, i32* %flag.addr
  312. store i32* %pointer2, i32** %pointer2.addr
  313. store i32 10, i32* %res
  314. %tmp = load i32, i32* %flag.addr ; <i32> [#uses=1]
  315. %tobool = icmp ne i32 %tmp, 0 ; <i1> [#uses=1]
  316. br i1 %tobool, label %if.then, label %if.else
  317. return: ; preds = %if.end
  318. %tmp7 = load i32, i32* %retval ; <i32> [#uses=1]
  319. ret i32 %tmp7
  320. if.end: ; preds = %if.else, %if.then
  321. %tmp6 = load i32, i32* %res ; <i32> [#uses=1]
  322. store i32 %tmp6, i32* %retval
  323. br label %return
  324. if.then: ; preds = %entry
  325. %tmp1 = load i32 addrspace(1)*, i32 addrspace(1)** %pointer1.addr ; <i32 addrspace(1)*>
  326. %arrayidx = getelementptr i32, i32 addrspace(1)* %tmp1, i32 0 ; <i32 addrspace(1)*> [#uses=1]
  327. %tmp2 = load i32, i32 addrspace(1)* %arrayidx ; <i32> [#uses=1]
  328. store i32 %tmp2, i32* %res
  329. br label %if.end
  330. if.else: ; preds = %entry
  331. %tmp3 = load i32*, i32** %pointer2.addr ; <i32*> [#uses=1]
  332. %arrayidx4 = getelementptr i32, i32* %tmp3, i32 0 ; <i32*> [#uses=1]
  333. %tmp5 = load i32, i32* %arrayidx4 ; <i32> [#uses=1]
  334. store i32 %tmp5, i32* %res
  335. br label %if.end
  336. }
  337. ; PR4413
  338. declare i32 @ext()
  339. ; CHECK-LABEL: @test17(
  340. define i32 @test17(i1 %a) {
  341. entry:
  342. br i1 %a, label %bb1, label %bb2
  343. bb1: ; preds = %entry
  344. %0 = tail call i32 @ext() ; <i32> [#uses=1]
  345. br label %bb2
  346. bb2: ; preds = %bb1, %entry
  347. %cond = phi i1 [ true, %bb1 ], [ false, %entry ] ; <i1> [#uses=1]
  348. ; CHECK-NOT: %val = phi i32 [ %0, %bb1 ], [ 0, %entry ]
  349. %val = phi i32 [ %0, %bb1 ], [ 0, %entry ] ; <i32> [#uses=1]
  350. %res = select i1 %cond, i32 %val, i32 0 ; <i32> [#uses=1]
  351. ; CHECK: ret i32 %cond
  352. ret i32 %res
  353. }
  354. define i1 @test18(i1 %cond) {
  355. %zero = alloca i32
  356. %one = alloca i32
  357. br i1 %cond, label %true, label %false
  358. true:
  359. br label %ret
  360. false:
  361. br label %ret
  362. ret:
  363. %ptr = phi i32* [ %zero, %true ] , [ %one, %false ]
  364. %isnull = icmp eq i32* %ptr, null
  365. ret i1 %isnull
  366. ; CHECK-LABEL: @test18(
  367. ; CHECK: ret i1 false
  368. }
  369. define i1 @test19(i1 %cond, double %x) {
  370. br i1 %cond, label %true, label %false
  371. true:
  372. br label %ret
  373. false:
  374. br label %ret
  375. ret:
  376. %p = phi double [ %x, %true ], [ 0x7FF0000000000000, %false ]; RHS = +infty
  377. %cmp = fcmp ule double %x, %p
  378. ret i1 %cmp
  379. ; CHECK-LABEL: @test19(
  380. ; CHECK: ret i1 true
  381. }
  382. define i1 @test20(i1 %cond) {
  383. %a = alloca i32
  384. %b = alloca i32
  385. %c = alloca i32
  386. br i1 %cond, label %true, label %false
  387. true:
  388. br label %ret
  389. false:
  390. br label %ret
  391. ret:
  392. %p = phi i32* [ %a, %true ], [ %b, %false ]
  393. %r = icmp eq i32* %p, %c
  394. ret i1 %r
  395. ; CHECK-LABEL: @test20(
  396. ; CHECK: ret i1 false
  397. }
  398. define i1 @test21(i1 %c1, i1 %c2) {
  399. %a = alloca i32
  400. %b = alloca i32
  401. %c = alloca i32
  402. br i1 %c1, label %true, label %false
  403. true:
  404. br label %loop
  405. false:
  406. br label %loop
  407. loop:
  408. %p = phi i32* [ %a, %true ], [ %b, %false ], [ %p, %loop ]
  409. %r = icmp eq i32* %p, %c
  410. br i1 %c2, label %ret, label %loop
  411. ret:
  412. ret i1 %r
  413. ; CHECK-LABEL: @test21(
  414. ; CHECK: ret i1 false
  415. }
  416. define void @test22() {
  417. ; CHECK-LABEL: @test22(
  418. entry:
  419. br label %loop
  420. loop:
  421. %phi = phi i32 [ 0, %entry ], [ %y, %loop ]
  422. %y = add i32 %phi, 1
  423. %o = or i32 %y, %phi
  424. %e = icmp eq i32 %o, %y
  425. br i1 %e, label %loop, label %ret
  426. ; CHECK: br i1 %e
  427. ret:
  428. ret void
  429. }
  430. define i32 @test23(i32 %A, i1 %b, i32 * %P) {
  431. BB0:
  432. br label %Loop
  433. Loop: ; preds = %Loop, %BB0
  434. ; PHI has same value always.
  435. %B = phi i32 [ %A, %BB0 ], [ 42, %Loop ]
  436. %D = add i32 %B, 19
  437. store i32 %D, i32* %P
  438. br i1 %b, label %Loop, label %Exit
  439. Exit: ; preds = %Loop
  440. %E = add i32 %B, 19
  441. ret i32 %E
  442. ; CHECK-LABEL: @test23(
  443. ; CHECK: %phitmp = add i32 %A, 19
  444. ; CHECK: Loop:
  445. ; CHECK-NEXT: %B = phi i32 [ %phitmp, %BB0 ], [ 61, %Loop ]
  446. ; CHECK: Exit:
  447. ; CHECK-NEXT: ret i32 %B
  448. }
  449. define i32 @test24(i32 %A, i1 %cond) {
  450. BB0:
  451. %X = add nuw nsw i32 %A, 1
  452. br i1 %cond, label %BB1, label %BB2
  453. BB1:
  454. %Y = add nuw i32 %A, 1
  455. br label %BB2
  456. BB2:
  457. %C = phi i32 [ %X, %BB0 ], [ %Y, %BB1 ]
  458. ret i32 %C
  459. ; CHECK-LABEL: @test24(
  460. ; CHECK-NOT: phi
  461. ; CHECK: BB2:
  462. ; CHECK-NEXT: %C = add nuw i32 %A, 1
  463. ; CHECK-NEXT: ret i32 %C
  464. }
  465. ; Same as test11, but used to be missed due to a bug.
  466. declare i1 @test25a()
  467. define i1 @test25() {
  468. entry:
  469. %a = alloca i32
  470. %i = ptrtoint i32* %a to i64
  471. %b = call i1 @test25a()
  472. br i1 %b, label %one, label %two
  473. one:
  474. %x = phi i64 [%y, %two], [%i, %entry]
  475. %c = call i1 @test25a()
  476. br i1 %c, label %two, label %end
  477. two:
  478. %y = phi i64 [%x, %one], [%i, %entry]
  479. %d = call i1 @test25a()
  480. br i1 %d, label %one, label %end
  481. end:
  482. %f = phi i64 [ %x, %one], [%y, %two]
  483. ; Change the %f to %i, and the optimizer suddenly becomes a lot smarter
  484. ; even though %f must equal %i at this point
  485. %g = inttoptr i64 %f to i32*
  486. store i32 10, i32* %g
  487. %z = call i1 @test25a()
  488. ret i1 %z
  489. ; CHECK-LABEL: @test25(
  490. ; CHECK-NOT: phi i32
  491. ; CHECK: ret i1 %z
  492. }
  493. declare i1 @test26a()
  494. define i1 @test26(i32 %n) {
  495. entry:
  496. %a = alloca i32
  497. %i = ptrtoint i32* %a to i64
  498. %b = call i1 @test26a()
  499. br label %one
  500. one:
  501. %x = phi i64 [%y, %two], [%w, %three], [%i, %entry]
  502. %c = call i1 @test26a()
  503. switch i32 %n, label %end [
  504. i32 2, label %two
  505. i32 3, label %three
  506. ]
  507. two:
  508. %y = phi i64 [%x, %one], [%w, %three]
  509. %d = call i1 @test26a()
  510. switch i32 %n, label %end [
  511. i32 10, label %one
  512. i32 30, label %three
  513. ]
  514. three:
  515. %w = phi i64 [%y, %two], [%x, %one]
  516. %e = call i1 @test26a()
  517. br i1 %e, label %one, label %two
  518. end:
  519. %f = phi i64 [ %x, %one], [%y, %two]
  520. ; Change the %f to %i, and the optimizer suddenly becomes a lot smarter
  521. ; even though %f must equal %i at this point
  522. %g = inttoptr i64 %f to i32*
  523. store i32 10, i32* %g
  524. %z = call i1 @test26a()
  525. ret i1 %z
  526. ; CHECK-LABEL: @test26(
  527. ; CHECK-NOT: phi i32
  528. ; CHECK: ret i1 %z
  529. }
  530. ; CHECK-LABEL: @test27(
  531. ; CHECK: ret i32 undef
  532. define i32 @test27(i1 %b) {
  533. entry:
  534. br label %done
  535. done:
  536. %y = phi i32 [ undef, %entry ]
  537. ret i32 %y
  538. }