ubpf_vm.rs 57 KB

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  1. // SPDX-License-Identifier: (Apache-2.0 OR MIT)
  2. // Converted from the tests for uBPF <https://github.com/iovisor/ubpf>
  3. // Copyright 2015 Big Switch Networks, Inc
  4. // Copyright 2016 6WIND S.A. <quentin.monnet@6wind.com>
  5. // The tests contained in this file are extracted from the unit tests of uBPF software. Each test
  6. // in this file has a name in the form `test_vm_<name>`, and corresponds to the (human-readable)
  7. // code in `ubpf/tree/master/tests/<name>`, available at
  8. // <https://github.com/iovisor/ubpf/tree/master/tests> (hyphen had to be replaced with underscores
  9. // as Rust will not accept them in function names). It is strongly advised to refer to the uBPF
  10. // version to understand what these program do.
  11. //
  12. // Each program was assembled from the uBPF version with the assembler provided by uBPF itself, and
  13. // available at <https://github.com/iovisor/ubpf/tree/master/ubpf>.
  14. // The very few modifications that have been realized should be indicated.
  15. // These are unit tests for the eBPF interpreter.
  16. #![cfg_attr(feature = "cargo-clippy", allow(clippy::unreadable_literal))]
  17. extern crate rbpf;
  18. mod common;
  19. use rbpf::helpers;
  20. use rbpf::assembler::assemble;
  21. use common::{TCP_SACK_ASM, TCP_SACK_MATCH, TCP_SACK_NOMATCH};
  22. #[test]
  23. fn test_vm_add() {
  24. let prog = assemble("
  25. mov32 r0, 0
  26. mov32 r1, 2
  27. add32 r0, 1
  28. add32 r0, r1
  29. exit").unwrap();
  30. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  31. assert_eq!(vm.execute_program().unwrap(), 0x3);
  32. }
  33. #[test]
  34. fn test_vm_alu64_arith() {
  35. let prog = assemble("
  36. mov r0, 0
  37. mov r1, 1
  38. mov r2, 2
  39. mov r3, 3
  40. mov r4, 4
  41. mov r5, 5
  42. mov r6, 6
  43. mov r7, 7
  44. mov r8, 8
  45. mov r9, 9
  46. add r0, 23
  47. add r0, r7
  48. sub r0, 13
  49. sub r0, r1
  50. mul r0, 7
  51. mul r0, r3
  52. div r0, 2
  53. div r0, r4
  54. exit").unwrap();
  55. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  56. assert_eq!(vm.execute_program().unwrap(), 0x2a);
  57. }
  58. #[test]
  59. fn test_vm_alu64_bit() {
  60. let prog = assemble("
  61. mov r0, 0
  62. mov r1, 1
  63. mov r2, 2
  64. mov r3, 3
  65. mov r4, 4
  66. mov r5, 5
  67. mov r6, 6
  68. mov r7, 7
  69. mov r8, 8
  70. or r0, r5
  71. or r0, 0xa0
  72. and r0, 0xa3
  73. mov r9, 0x91
  74. and r0, r9
  75. lsh r0, 32
  76. lsh r0, 22
  77. lsh r0, r8
  78. rsh r0, 32
  79. rsh r0, 19
  80. rsh r0, r7
  81. xor r0, 0x03
  82. xor r0, r2
  83. exit").unwrap();
  84. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  85. assert_eq!(vm.execute_program().unwrap(), 0x11);
  86. }
  87. #[test]
  88. fn test_vm_alu_arith() {
  89. let prog = assemble("
  90. mov32 r0, 0
  91. mov32 r1, 1
  92. mov32 r2, 2
  93. mov32 r3, 3
  94. mov32 r4, 4
  95. mov32 r5, 5
  96. mov32 r6, 6
  97. mov32 r7, 7
  98. mov32 r8, 8
  99. mov32 r9, 9
  100. add32 r0, 23
  101. add32 r0, r7
  102. sub32 r0, 13
  103. sub32 r0, r1
  104. mul32 r0, 7
  105. mul32 r0, r3
  106. div32 r0, 2
  107. div32 r0, r4
  108. exit").unwrap();
  109. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  110. assert_eq!(vm.execute_program().unwrap(), 0x2a);
  111. }
  112. #[test]
  113. fn test_vm_alu_bit() {
  114. let prog = assemble("
  115. mov32 r0, 0
  116. mov32 r1, 1
  117. mov32 r2, 2
  118. mov32 r3, 3
  119. mov32 r4, 4
  120. mov32 r5, 5
  121. mov32 r6, 6
  122. mov32 r7, 7
  123. mov32 r8, 8
  124. or32 r0, r5
  125. or32 r0, 0xa0
  126. and32 r0, 0xa3
  127. mov32 r9, 0x91
  128. and32 r0, r9
  129. lsh32 r0, 22
  130. lsh32 r0, r8
  131. rsh32 r0, 19
  132. rsh32 r0, r7
  133. xor32 r0, 0x03
  134. xor32 r0, r2
  135. exit").unwrap();
  136. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  137. assert_eq!(vm.execute_program().unwrap(), 0x11);
  138. }
  139. #[test]
  140. fn test_vm_arsh32_high_shift() {
  141. let prog = assemble("
  142. mov r0, 8
  143. lddw r1, 0x100000001
  144. arsh32 r0, r1
  145. exit").unwrap();
  146. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  147. assert_eq!(vm.execute_program().unwrap(), 0x4);
  148. }
  149. #[test]
  150. fn test_vm_arsh() {
  151. let prog = assemble("
  152. mov32 r0, 0xf8
  153. lsh32 r0, 28
  154. arsh32 r0, 16
  155. exit").unwrap();
  156. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  157. assert_eq!(vm.execute_program().unwrap(), 0xffff8000);
  158. }
  159. #[test]
  160. fn test_vm_arsh64() {
  161. let prog = assemble("
  162. mov32 r0, 1
  163. lsh r0, 63
  164. arsh r0, 55
  165. mov32 r1, 5
  166. arsh r0, r1
  167. exit").unwrap();
  168. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  169. assert_eq!(vm.execute_program().unwrap(), 0xfffffffffffffff8);
  170. }
  171. #[test]
  172. fn test_vm_arsh_reg() {
  173. let prog = assemble("
  174. mov32 r0, 0xf8
  175. mov32 r1, 16
  176. lsh32 r0, 28
  177. arsh32 r0, r1
  178. exit").unwrap();
  179. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  180. assert_eq!(vm.execute_program().unwrap(), 0xffff8000);
  181. }
  182. #[test]
  183. fn test_vm_be16() {
  184. let prog = assemble("
  185. ldxh r0, [r1]
  186. be16 r0
  187. exit").unwrap();
  188. let mem = &mut [
  189. 0x11, 0x22
  190. ];
  191. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  192. assert_eq!(vm.execute_program(mem).unwrap(), 0x1122);
  193. }
  194. #[test]
  195. fn test_vm_be16_high() {
  196. let prog = assemble("
  197. ldxdw r0, [r1]
  198. be16 r0
  199. exit").unwrap();
  200. let mem = &mut [
  201. 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88
  202. ];
  203. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  204. assert_eq!(vm.execute_program(mem).unwrap(), 0x1122);
  205. }
  206. #[test]
  207. fn test_vm_be32() {
  208. let prog = assemble("
  209. ldxw r0, [r1]
  210. be32 r0
  211. exit").unwrap();
  212. let mem = &mut [
  213. 0x11, 0x22, 0x33, 0x44
  214. ];
  215. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  216. assert_eq!(vm.execute_program(mem).unwrap(), 0x11223344);
  217. }
  218. #[test]
  219. fn test_vm_be32_high() {
  220. let prog = assemble("
  221. ldxdw r0, [r1]
  222. be32 r0
  223. exit").unwrap();
  224. let mem = &mut [
  225. 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88
  226. ];
  227. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  228. assert_eq!(vm.execute_program(mem).unwrap(), 0x11223344);
  229. }
  230. #[test]
  231. fn test_vm_be64() {
  232. let prog = assemble("
  233. ldxdw r0, [r1]
  234. be64 r0
  235. exit").unwrap();
  236. let mem = &mut [
  237. 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88
  238. ];
  239. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  240. assert_eq!(vm.execute_program(mem).unwrap(), 0x1122334455667788);
  241. }
  242. #[test]
  243. fn test_vm_call() {
  244. let prog = assemble("
  245. mov r1, 1
  246. mov r2, 2
  247. mov r3, 3
  248. mov r4, 4
  249. mov r5, 5
  250. call 0
  251. exit").unwrap();
  252. let mut vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  253. vm.register_helper(0, helpers::gather_bytes).unwrap();
  254. assert_eq!(vm.execute_program().unwrap(), 0x0102030405);
  255. }
  256. #[test]
  257. fn test_vm_call_memfrob() {
  258. let prog = assemble("
  259. mov r6, r1
  260. add r1, 2
  261. mov r2, 4
  262. call 1
  263. ldxdw r0, [r6]
  264. be64 r0
  265. exit").unwrap();
  266. let mem = &mut [
  267. 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08
  268. ];
  269. let mut vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  270. vm.register_helper(1, helpers::memfrob).unwrap();
  271. assert_eq!(vm.execute_program(mem).unwrap(), 0x102292e2f2c0708);
  272. }
  273. // TODO: helpers::trash_registers needs asm!().
  274. // Try this again once asm!() is available in stable.
  275. //#[test]
  276. //fn test_vm_call_save() {
  277. //let prog = &[
  278. //0xb7, 0x06, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00,
  279. //0xb7, 0x07, 0x00, 0x00, 0x20, 0x00, 0x00, 0x00,
  280. //0xb7, 0x08, 0x00, 0x00, 0x00, 0x03, 0x00, 0x00,
  281. //0xb7, 0x09, 0x00, 0x00, 0x00, 0x40, 0x00, 0x00,
  282. //0x85, 0x00, 0x00, 0x00, 0x02, 0x00, 0x00, 0x00,
  283. //0xb7, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  284. //0x4f, 0x60, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  285. //0x4f, 0x70, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  286. //0x4f, 0x80, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  287. //0x4f, 0x90, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  288. //0x95, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
  289. //];
  290. //let mut vm = rbpf::EbpfVmNoData::new(Some(prog)).unwrap();
  291. //vm.register_helper(2, helpers::trash_registers);
  292. //assert_eq!(vm.execute_program().unwrap(), 0x4321);
  293. //}
  294. #[test]
  295. fn test_vm_div32_high_divisor() {
  296. let prog = assemble("
  297. mov r0, 12
  298. lddw r1, 0x100000004
  299. div32 r0, r1
  300. exit").unwrap();
  301. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  302. assert_eq!(vm.execute_program().unwrap(), 0x3);
  303. }
  304. #[test]
  305. fn test_vm_div32_imm() {
  306. let prog = assemble("
  307. lddw r0, 0x10000000c
  308. div32 r0, 4
  309. exit").unwrap();
  310. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  311. assert_eq!(vm.execute_program().unwrap(), 0x3);
  312. }
  313. #[test]
  314. fn test_vm_div32_reg() {
  315. let prog = assemble("
  316. lddw r0, 0x10000000c
  317. mov r1, 4
  318. div32 r0, r1
  319. exit").unwrap();
  320. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  321. assert_eq!(vm.execute_program().unwrap(), 0x3);
  322. }
  323. #[test]
  324. fn test_vm_div64_imm() {
  325. let prog = assemble("
  326. mov r0, 0xc
  327. lsh r0, 32
  328. div r0, 4
  329. exit").unwrap();
  330. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  331. assert_eq!(vm.execute_program().unwrap(), 0x300000000);
  332. }
  333. #[test]
  334. fn test_vm_div64_reg() {
  335. let prog = assemble("
  336. mov r0, 0xc
  337. lsh r0, 32
  338. mov r1, 4
  339. div r0, r1
  340. exit").unwrap();
  341. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  342. assert_eq!(vm.execute_program().unwrap(), 0x300000000);
  343. }
  344. #[test]
  345. fn test_vm_early_exit() {
  346. let prog = assemble("
  347. mov r0, 3
  348. exit
  349. mov r0, 4
  350. exit").unwrap();
  351. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  352. assert_eq!(vm.execute_program().unwrap(), 0x3);
  353. }
  354. // uBPF limits the number of user functions at 64. We don't.
  355. //#[test]
  356. //fn test_vm_err_call_bad_imm() {
  357. //}
  358. #[test]
  359. #[should_panic(expected = "Error: unknown helper function (id: 0x3f)")]
  360. fn test_vm_err_call_unreg() {
  361. let prog = assemble("
  362. mov r1, 1
  363. mov r2, 2
  364. mov r3, 3
  365. mov r4, 4
  366. mov r5, 5
  367. call 63
  368. exit").unwrap();
  369. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  370. vm.execute_program().unwrap();
  371. }
  372. #[test]
  373. fn test_vm_div64_by_zero_imm() {
  374. let prog = assemble("
  375. mov32 r0, 1
  376. div r0, 0
  377. exit").unwrap();
  378. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  379. assert_eq!(vm.execute_program().unwrap(), 0x0);
  380. }
  381. #[test]
  382. fn test_vm_div_by_zero_imm() {
  383. let prog = assemble("
  384. mov32 r0, 1
  385. div32 r0, 0
  386. exit").unwrap();
  387. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  388. assert_eq!(vm.execute_program().unwrap(), 0x0);
  389. }
  390. #[test]
  391. fn test_vm_mod64_by_zero_imm() {
  392. let prog = assemble("
  393. mov32 r0, 1
  394. mod r0, 0
  395. exit").unwrap();
  396. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  397. assert_eq!(vm.execute_program().unwrap(), 0x1);
  398. }
  399. #[test]
  400. fn test_vm_mod_by_zero_imm() {
  401. let prog = assemble("
  402. mov32 r0, 1
  403. mod32 r0, 0
  404. exit").unwrap();
  405. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  406. assert_eq!(vm.execute_program().unwrap(), 0x1);
  407. }
  408. // Make sure we only consider the last 32 bits of the divisor.
  409. #[test]
  410. fn test_vm_mod_by_zero_reg_long() {
  411. let prog = assemble("
  412. lddw r1, 0x100000000
  413. mod32 r0, r1
  414. exit").unwrap();
  415. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  416. assert_eq!(vm.execute_program().unwrap(), 0x0);
  417. }
  418. #[test]
  419. fn test_vm_div64_by_zero_reg() {
  420. let prog = assemble("
  421. mov32 r0, 1
  422. mov32 r1, 0
  423. div r0, r1
  424. exit").unwrap();
  425. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  426. assert_eq!(vm.execute_program().unwrap(), 0x0);
  427. }
  428. #[test]
  429. fn test_vm_div_by_zero_reg() {
  430. let prog = assemble("
  431. mov32 r0, 1
  432. mov32 r1, 0
  433. div32 r0, r1
  434. exit").unwrap();
  435. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  436. assert_eq!(vm.execute_program().unwrap(), 0x0);
  437. }
  438. // Make sure we only consider the last 32 bits of the divisor.
  439. #[test]
  440. fn test_vm_div_by_zero_reg_long() {
  441. let prog = assemble("
  442. lddw r1, 0x100000000
  443. div32 r0, r1
  444. exit").unwrap();
  445. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  446. assert_eq!(vm.execute_program().unwrap(), 0x0);
  447. }
  448. #[test]
  449. fn test_vm_mod64_by_zero_reg() {
  450. let prog = assemble("
  451. mov32 r0, 1
  452. mov32 r1, 0
  453. mod r0, r1
  454. exit").unwrap();
  455. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  456. assert_eq!(vm.execute_program().unwrap(), 0x1);
  457. }
  458. #[test]
  459. fn test_vm_mod_by_zero_reg() {
  460. let prog = assemble("
  461. mov32 r0, 1
  462. mov32 r1, 0
  463. mod32 r0, r1
  464. exit").unwrap();
  465. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  466. assert_eq!(vm.execute_program().unwrap(), 0x1);
  467. }
  468. #[test]
  469. #[should_panic(expected = "Error: out of bounds memory store (insn #1)")]
  470. fn test_vm_err_stack_out_of_bound() {
  471. let prog = assemble("
  472. stb [r10], 0
  473. exit").unwrap();
  474. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  475. vm.execute_program().unwrap();
  476. }
  477. #[test]
  478. fn test_vm_exit() {
  479. let prog = assemble("
  480. mov r0, 0
  481. exit").unwrap();
  482. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  483. assert_eq!(vm.execute_program().unwrap(), 0x0);
  484. }
  485. #[test]
  486. fn test_vm_ja() {
  487. let prog = assemble("
  488. mov r0, 1
  489. ja +1
  490. mov r0, 2
  491. exit").unwrap();
  492. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  493. assert_eq!(vm.execute_program().unwrap(), 0x1);
  494. }
  495. #[test]
  496. fn test_vm_jeq_imm() {
  497. let prog = assemble("
  498. mov32 r0, 0
  499. mov32 r1, 0xa
  500. jeq r1, 0xb, +4
  501. mov32 r0, 1
  502. mov32 r1, 0xb
  503. jeq r1, 0xb, +1
  504. mov32 r0, 2
  505. exit").unwrap();
  506. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  507. assert_eq!(vm.execute_program().unwrap(), 0x1);
  508. }
  509. #[test]
  510. fn test_vm_jeq_reg() {
  511. let prog = assemble("
  512. mov32 r0, 0
  513. mov32 r1, 0xa
  514. mov32 r2, 0xb
  515. jeq r1, r2, +4
  516. mov32 r0, 1
  517. mov32 r1, 0xb
  518. jeq r1, r2, +1
  519. mov32 r0, 2
  520. exit").unwrap();
  521. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  522. assert_eq!(vm.execute_program().unwrap(), 0x1);
  523. }
  524. #[test]
  525. fn test_vm_jge_imm() {
  526. let prog = assemble("
  527. mov32 r0, 0
  528. mov32 r1, 0xa
  529. jge r1, 0xb, +4
  530. mov32 r0, 1
  531. mov32 r1, 0xc
  532. jge r1, 0xb, +1
  533. mov32 r0, 2
  534. exit").unwrap();
  535. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  536. assert_eq!(vm.execute_program().unwrap(), 0x1);
  537. }
  538. #[test]
  539. fn test_vm_jle_imm() {
  540. let prog = assemble("
  541. mov32 r0, 0
  542. mov32 r1, 5
  543. jle r1, 4, +1
  544. jle r1, 6, +1
  545. exit
  546. jle r1, 5, +1
  547. exit
  548. mov32 r0, 1
  549. exit").unwrap();
  550. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  551. assert_eq!(vm.execute_program().unwrap(), 0x1);
  552. }
  553. #[test]
  554. fn test_vm_jle_reg() {
  555. let prog = assemble("
  556. mov r0, 0
  557. mov r1, 5
  558. mov r2, 4
  559. mov r3, 6
  560. jle r1, r2, +2
  561. jle r1, r1, +1
  562. exit
  563. jle r1, r3, +1
  564. exit
  565. mov r0, 1
  566. exit").unwrap();
  567. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  568. assert_eq!(vm.execute_program().unwrap(), 0x1);
  569. }
  570. #[test]
  571. fn test_vm_jgt_imm() {
  572. let prog = assemble("
  573. mov32 r0, 0
  574. mov32 r1, 5
  575. jgt r1, 6, +2
  576. jgt r1, 5, +1
  577. jgt r1, 4, +1
  578. exit
  579. mov32 r0, 1
  580. exit").unwrap();
  581. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  582. assert_eq!(vm.execute_program().unwrap(), 0x1);
  583. }
  584. #[test]
  585. fn test_vm_jgt_reg() {
  586. let prog = assemble("
  587. mov r0, 0
  588. mov r1, 5
  589. mov r2, 6
  590. mov r3, 4
  591. jgt r1, r2, +2
  592. jgt r1, r1, +1
  593. jgt r1, r3, +1
  594. exit
  595. mov r0, 1
  596. exit").unwrap();
  597. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  598. assert_eq!(vm.execute_program().unwrap(), 0x1);
  599. }
  600. #[test]
  601. fn test_vm_jlt_imm() {
  602. let prog = assemble("
  603. mov32 r0, 0
  604. mov32 r1, 5
  605. jlt r1, 4, +2
  606. jlt r1, 5, +1
  607. jlt r1, 6, +1
  608. exit
  609. mov32 r0, 1
  610. exit").unwrap();
  611. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  612. assert_eq!(vm.execute_program().unwrap(), 0x1);
  613. }
  614. #[test]
  615. fn test_vm_jlt_reg() {
  616. let prog = assemble("
  617. mov r0, 0
  618. mov r1, 5
  619. mov r2, 4
  620. mov r3, 6
  621. jlt r1, r2, +2
  622. jlt r1, r1, +1
  623. jlt r1, r3, +1
  624. exit
  625. mov r0, 1
  626. exit").unwrap();
  627. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  628. assert_eq!(vm.execute_program().unwrap(), 0x1);
  629. }
  630. #[test]
  631. fn test_vm_jit_bounce() {
  632. let prog = assemble("
  633. mov r0, 1
  634. mov r6, r0
  635. mov r7, r6
  636. mov r8, r7
  637. mov r9, r8
  638. mov r0, r9
  639. exit").unwrap();
  640. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  641. assert_eq!(vm.execute_program().unwrap(), 0x1);
  642. }
  643. #[test]
  644. fn test_vm_jne_reg() {
  645. let prog = assemble("
  646. mov32 r0, 0
  647. mov32 r1, 0xb
  648. mov32 r2, 0xb
  649. jne r1, r2, +4
  650. mov32 r0, 1
  651. mov32 r1, 0xa
  652. jne r1, r2, +1
  653. mov32 r0, 2
  654. exit").unwrap();
  655. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  656. assert_eq!(vm.execute_program().unwrap(), 0x1);
  657. }
  658. #[test]
  659. fn test_vm_jset_imm() {
  660. let prog = assemble("
  661. mov32 r0, 0
  662. mov32 r1, 0x7
  663. jset r1, 0x8, +4
  664. mov32 r0, 1
  665. mov32 r1, 0x9
  666. jset r1, 0x8, +1
  667. mov32 r0, 2
  668. exit").unwrap();
  669. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  670. assert_eq!(vm.execute_program().unwrap(), 0x1);
  671. }
  672. #[test]
  673. fn test_vm_jset_reg() {
  674. let prog = assemble("
  675. mov32 r0, 0
  676. mov32 r1, 0x7
  677. mov32 r2, 0x8
  678. jset r1, r2, +4
  679. mov32 r0, 1
  680. mov32 r1, 0x9
  681. jset r1, r2, +1
  682. mov32 r0, 2
  683. exit").unwrap();
  684. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  685. assert_eq!(vm.execute_program().unwrap(), 0x1);
  686. }
  687. #[test]
  688. fn test_vm_jsge_imm() {
  689. let prog = assemble("
  690. mov32 r0, 0
  691. mov r1, -2
  692. jsge r1, -1, +5
  693. jsge r1, 0, +4
  694. mov32 r0, 1
  695. mov r1, -1
  696. jsge r1, -1, +1
  697. mov32 r0, 2
  698. exit").unwrap();
  699. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  700. assert_eq!(vm.execute_program().unwrap(), 0x1);
  701. }
  702. #[test]
  703. fn test_vm_jsge_reg() {
  704. let prog = assemble("
  705. mov32 r0, 0
  706. mov r1, -2
  707. mov r2, -1
  708. mov32 r3, 0
  709. jsge r1, r2, +5
  710. jsge r1, r3, +4
  711. mov32 r0, 1
  712. mov r1, r2
  713. jsge r1, r2, +1
  714. mov32 r0, 2
  715. exit").unwrap();
  716. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  717. assert_eq!(vm.execute_program().unwrap(), 0x1);
  718. }
  719. #[test]
  720. fn test_vm_jsle_imm() {
  721. let prog = assemble("
  722. mov32 r0, 0
  723. mov r1, -2
  724. jsle r1, -3, +1
  725. jsle r1, -1, +1
  726. exit
  727. mov32 r0, 1
  728. jsle r1, -2, +1
  729. mov32 r0, 2
  730. exit").unwrap();
  731. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  732. assert_eq!(vm.execute_program().unwrap(), 0x1);
  733. }
  734. #[test]
  735. fn test_vm_jsle_reg() {
  736. let prog = assemble("
  737. mov32 r0, 0
  738. mov r1, -1
  739. mov r2, -2
  740. mov32 r3, 0
  741. jsle r1, r2, +1
  742. jsle r1, r3, +1
  743. exit
  744. mov32 r0, 1
  745. mov r1, r2
  746. jsle r1, r2, +1
  747. mov32 r0, 2
  748. exit").unwrap();
  749. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  750. assert_eq!(vm.execute_program().unwrap(), 0x1);
  751. }
  752. #[test]
  753. fn test_vm_jsgt_imm() {
  754. let prog = assemble("
  755. mov32 r0, 0
  756. mov r1, -2
  757. jsgt r1, -1, +4
  758. mov32 r0, 1
  759. mov32 r1, 0
  760. jsgt r1, -1, +1
  761. mov32 r0, 2
  762. exit").unwrap();
  763. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  764. assert_eq!(vm.execute_program().unwrap(), 0x1);
  765. }
  766. #[test]
  767. fn test_vm_jsgt_reg() {
  768. let prog = assemble("
  769. mov32 r0, 0
  770. mov r1, -2
  771. mov r2, -1
  772. jsgt r1, r2, +4
  773. mov32 r0, 1
  774. mov32 r1, 0
  775. jsgt r1, r2, +1
  776. mov32 r0, 2
  777. exit").unwrap();
  778. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  779. assert_eq!(vm.execute_program().unwrap(), 0x1);
  780. }
  781. #[test]
  782. fn test_vm_jslt_imm() {
  783. let prog = assemble("
  784. mov32 r0, 0
  785. mov r1, -2
  786. jslt r1, -3, +2
  787. jslt r1, -2, +1
  788. jslt r1, -1, +1
  789. exit
  790. mov32 r0, 1
  791. exit").unwrap();
  792. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  793. assert_eq!(vm.execute_program().unwrap(), 0x1);
  794. }
  795. #[test]
  796. fn test_vm_jslt_reg() {
  797. let prog = assemble("
  798. mov32 r0, 0
  799. mov r1, -2
  800. mov r2, -3
  801. mov r3, -1
  802. jslt r1, r1, +2
  803. jslt r1, r2, +1
  804. jslt r1, r3, +1
  805. exit
  806. mov32 r0, 1
  807. exit").unwrap();
  808. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  809. assert_eq!(vm.execute_program().unwrap(), 0x1);
  810. }
  811. #[test]
  812. fn test_vm_jeq32_imm() {
  813. let prog = assemble("
  814. mov r9, 1
  815. lsh r9, 32
  816. mov32 r0, 0x0
  817. mov32 r1, 0xa
  818. jeq32 r1, 0xb, +5
  819. mov32 r0, 1
  820. mov r1, 0xb
  821. or r1, r9
  822. jeq32 r1, 0xb, +1
  823. mov32 r0, 2
  824. exit").unwrap();
  825. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  826. assert_eq!(vm.execute_program().unwrap(), 0x1);
  827. }
  828. #[test]
  829. fn test_vm_jeq32_reg() {
  830. let prog = assemble("
  831. mov r9, 1
  832. lsh r9, 32
  833. mov32 r0, 0
  834. mov32 r1, 0xa
  835. mov32 r2, 0xb
  836. jeq32 r1, r2, +5
  837. mov32 r0, 1
  838. mov32 r1, 0xb
  839. or r1, r9
  840. jeq32 r1, r2, +1
  841. mov32 r0, 2
  842. exit").unwrap();
  843. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  844. assert_eq!(vm.execute_program().unwrap(), 0x1);
  845. }
  846. #[test]
  847. fn test_vm_jge32_imm() {
  848. let prog = assemble("
  849. mov r9, 1
  850. lsh r9, 32
  851. mov32 r0, 0
  852. mov32 r1, 0xa
  853. jge32 r1, 0xb, +5
  854. mov32 r0, 1
  855. or r1, r9
  856. mov32 r1, 0xc
  857. jge32 r1, 0xb, +1
  858. mov32 r0, 2
  859. exit").unwrap();
  860. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  861. assert_eq!(vm.execute_program().unwrap(), 0x1);
  862. }
  863. #[test]
  864. fn test_vm_jge32_reg() {
  865. let prog = assemble("
  866. mov r9, 1
  867. lsh r9, 32
  868. mov32 r0, 0
  869. mov32 r1, 0xa
  870. mov32 r2, 0xb
  871. jge32 r1, r2, +5
  872. mov32 r0, 1
  873. or r1, r9
  874. mov32 r1, 0xc
  875. jge32 r1, r2, +1
  876. mov32 r0, 2
  877. exit").unwrap();
  878. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  879. assert_eq!(vm.execute_program().unwrap(), 0x1);
  880. }
  881. #[test]
  882. fn test_vm_jgt32_imm() {
  883. let prog = assemble("
  884. mov r9, 1
  885. lsh r9, 32
  886. mov32 r0, 0
  887. mov32 r1, 5
  888. or r1, r9
  889. jgt32 r1, 6, +4
  890. jgt32 r1, 5, +3
  891. jgt32 r1, 4, +1
  892. exit
  893. mov32 r0, 1
  894. exit").unwrap();
  895. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  896. assert_eq!(vm.execute_program().unwrap(), 0x1);
  897. }
  898. #[test]
  899. fn test_vm_jgt32_reg() {
  900. let prog = assemble("
  901. mov r9, 1
  902. lsh r9, 32
  903. mov r0, 0
  904. mov r1, 5
  905. mov32 r1, 5
  906. or r1, r9
  907. mov r2, 6
  908. mov r3, 4
  909. jgt32 r1, r2, +4
  910. jgt32 r1, r1, +3
  911. jgt32 r1, r3, +1
  912. exit
  913. mov r0, 1
  914. exit").unwrap();
  915. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  916. assert_eq!(vm.execute_program().unwrap(), 0x1);
  917. }
  918. #[test]
  919. fn test_vm_jle32_imm() {
  920. let prog = assemble("
  921. mov r9, 1
  922. lsh r9, 32
  923. mov32 r0, 0
  924. mov32 r1, 5
  925. or r1, r9
  926. jle32 r1, 4, +5
  927. jle32 r1, 6, +1
  928. exit
  929. jle32 r1, 5, +1
  930. exit
  931. mov32 r0, 1
  932. exit").unwrap();
  933. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  934. assert_eq!(vm.execute_program().unwrap(), 0x1);
  935. }
  936. #[test]
  937. fn test_vm_jle32_reg() {
  938. let prog = assemble("
  939. mov r9, 1
  940. lsh r9, 32
  941. mov r0, 0
  942. mov r1, 5
  943. mov r2, 4
  944. mov r3, 6
  945. or r1, r9
  946. jle32 r1, r2, +5
  947. jle32 r1, r1, +1
  948. exit
  949. jle32 r1, r3, +1
  950. exit
  951. mov r0, 1
  952. exit").unwrap();
  953. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  954. assert_eq!(vm.execute_program().unwrap(), 0x1);
  955. }
  956. #[test]
  957. fn test_vm_jlt32_imm() {
  958. let prog = assemble("
  959. mov r9, 1
  960. lsh r9, 32
  961. mov32 r0, 0
  962. mov32 r1, 5
  963. or r1, r9
  964. jlt32 r1, 4, +4
  965. jlt32 r1, 5, +3
  966. jlt32 r1, 6, +1
  967. exit
  968. mov32 r0, 1
  969. exit").unwrap();
  970. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  971. assert_eq!(vm.execute_program().unwrap(), 0x1);
  972. }
  973. #[test]
  974. fn test_vm_jlt32_reg() {
  975. let prog = assemble("
  976. mov r9, 1
  977. lsh r9, 32
  978. mov r0, 0
  979. mov r1, 5
  980. mov r2, 4
  981. mov r3, 6
  982. or r1, r9
  983. jlt32 r1, r2, +4
  984. jlt32 r1, r1, +3
  985. jlt32 r1, r3, +1
  986. exit
  987. mov r0, 1
  988. exit").unwrap();
  989. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  990. assert_eq!(vm.execute_program().unwrap(), 0x1);
  991. }
  992. #[test]
  993. fn test_vm_jne32_imm() {
  994. let prog = assemble("
  995. mov r9, 1
  996. lsh r9, 32
  997. mov32 r0, 0
  998. mov32 r1, 0xb
  999. or r1, r9
  1000. jne32 r1, 0xb, +4
  1001. mov32 r0, 1
  1002. mov32 r1, 0xa
  1003. or r1, r9
  1004. jne32 r1, 0xb, +1
  1005. mov32 r0, 2
  1006. exit").unwrap();
  1007. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1008. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1009. }
  1010. #[test]
  1011. fn test_vm_jne32_reg() {
  1012. let prog = assemble("
  1013. mov r9, 1
  1014. lsh r9, 32
  1015. mov32 r0, 0
  1016. mov32 r1, 0xb
  1017. or r1, r9
  1018. mov32 r2, 0xb
  1019. jne32 r1, r2, +4
  1020. mov32 r0, 1
  1021. mov32 r1, 0xa
  1022. or r1, r9
  1023. jne32 r1, r2, +1
  1024. mov32 r0, 2
  1025. exit").unwrap();
  1026. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1027. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1028. }
  1029. #[test]
  1030. fn test_vm_jset32_imm() {
  1031. let prog = assemble("
  1032. mov r9, 1
  1033. lsh r9, 32
  1034. mov32 r0, 0
  1035. mov32 r1, 0x7
  1036. or r1, r9
  1037. jset32 r1, 0x8, +4
  1038. mov32 r0, 1
  1039. mov32 r1, 0x9
  1040. jset32 r1, 0x8, +1
  1041. mov32 r0, 2
  1042. exit").unwrap();
  1043. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1044. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1045. }
  1046. #[test]
  1047. fn test_vm_jset32_reg() {
  1048. let prog = assemble("
  1049. mov r9, 1
  1050. lsh r9, 32
  1051. mov32 r0, 0
  1052. mov32 r1, 0x7
  1053. or r1, r9
  1054. mov32 r2, 0x8
  1055. jset32 r1, r2, +4
  1056. mov32 r0, 1
  1057. mov32 r1, 0x9
  1058. jset32 r1, r2, +1
  1059. mov32 r0, 2
  1060. exit").unwrap();
  1061. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1062. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1063. }
  1064. #[test]
  1065. fn test_vm_jsge32_imm() {
  1066. let prog = assemble("
  1067. mov r9, 1
  1068. lsh r9, 32
  1069. mov32 r0, 0
  1070. mov32 r1, -2
  1071. or r1, r9
  1072. jsge32 r1, -1, +5
  1073. jsge32 r1, 0, +4
  1074. mov32 r0, 1
  1075. mov r1, -1
  1076. jsge32 r1, -1, +1
  1077. mov32 r0, 2
  1078. exit").unwrap();
  1079. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1080. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1081. }
  1082. #[test]
  1083. fn test_vm_jsge32_reg() {
  1084. let prog = assemble("
  1085. mov r9, 1
  1086. lsh r9, 32
  1087. mov32 r0, 0
  1088. mov32 r1, -2
  1089. or r1, r9
  1090. mov r2, -1
  1091. mov32 r3, 0
  1092. jsge32 r1, r2, +5
  1093. jsge32 r1, r3, +4
  1094. mov32 r0, 1
  1095. mov r1, r2
  1096. jsge32 r1, r2, +1
  1097. mov32 r0, 2
  1098. exit").unwrap();
  1099. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1100. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1101. }
  1102. #[test]
  1103. fn test_vm_jsgt32_imm() {
  1104. let prog = assemble("
  1105. mov r9, 1
  1106. lsh r9, 32
  1107. mov32 r0, 0
  1108. mov32 r1, -2
  1109. or r1, r9
  1110. jsgt32 r1, -1, +4
  1111. mov32 r0, 1
  1112. mov32 r1, 0
  1113. jsgt32 r1, -1, +1
  1114. mov32 r0, 2
  1115. exit").unwrap();
  1116. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1117. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1118. }
  1119. #[test]
  1120. fn test_vm_jsgt32_reg() {
  1121. let prog = assemble("
  1122. mov r9, 1
  1123. lsh r9, 32
  1124. mov32 r0, 0
  1125. mov32 r1, -2
  1126. or r1, r9
  1127. mov r2, -1
  1128. jsgt32 r1, r2, +4
  1129. mov32 r0, 1
  1130. mov32 r1, 0
  1131. jsgt32 r1, r2, +1
  1132. mov32 r0, 2
  1133. exit").unwrap();
  1134. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1135. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1136. }
  1137. #[test]
  1138. fn test_vm_jsle32_imm() {
  1139. let prog = assemble("
  1140. mov r9, 1
  1141. lsh r9, 32
  1142. mov32 r0, 0
  1143. mov32 r1, -2
  1144. or r1, r9
  1145. jsle32 r1, -3, +5
  1146. jsle32 r1, -1, +1
  1147. exit
  1148. mov32 r0, 1
  1149. jsle32 r1, -2, +1
  1150. mov32 r0, 2
  1151. exit").unwrap();
  1152. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1153. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1154. }
  1155. #[test]
  1156. fn test_vm_jsle32_reg() {
  1157. let prog = assemble("
  1158. mov r9, 1
  1159. lsh r9, 32
  1160. mov32 r0, 0
  1161. mov32 r1, -2
  1162. or r1, r9
  1163. mov r2, -3
  1164. mov32 r3, 0
  1165. jsle32 r1, r2, +6
  1166. jsle32 r1, r3, +1
  1167. exit
  1168. mov32 r0, 1
  1169. mov r1, r2
  1170. jsle32 r1, r2, +1
  1171. mov32 r0, 2
  1172. exit").unwrap();
  1173. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1174. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1175. }
  1176. #[test]
  1177. fn test_vm_jslt32_imm() {
  1178. let prog = assemble("
  1179. mov r9, 1
  1180. lsh r9, 32
  1181. mov32 r0, 0
  1182. mov32 r1, -2
  1183. or r1, r9
  1184. jslt32 r1, -3, +4
  1185. jslt32 r1, -2, +3
  1186. jslt32 r1, -1, +1
  1187. exit
  1188. mov32 r0, 1
  1189. exit").unwrap();
  1190. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1191. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1192. }
  1193. #[test]
  1194. fn test_vm_jslt32_reg() {
  1195. let prog = assemble("
  1196. mov r9, 1
  1197. lsh r9, 32
  1198. mov32 r0, 0
  1199. mov32 r1, -2
  1200. or r1, r9
  1201. mov r2, -3
  1202. mov r3, -1
  1203. jslt32 r1, r1, +4
  1204. jslt32 r1, r2, +3
  1205. jslt32 r1, r3, +1
  1206. exit
  1207. mov32 r0, 1
  1208. exit").unwrap();
  1209. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1210. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1211. }
  1212. #[test]
  1213. fn test_vm_lddw() {
  1214. let prog = assemble("lddw r0, 0x1122334455667788
  1215. exit").unwrap();
  1216. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1217. assert_eq!(vm.execute_program().unwrap(), 0x1122334455667788);
  1218. }
  1219. #[test]
  1220. fn test_vm_lddw2() {
  1221. let prog = assemble("
  1222. lddw r0, 0x0000000080000000
  1223. exit").unwrap();
  1224. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1225. assert_eq!(vm.execute_program().unwrap(), 0x80000000);
  1226. }
  1227. #[test]
  1228. fn test_vm_ldxb_all() {
  1229. let prog = assemble("
  1230. mov r0, r1
  1231. ldxb r9, [r0+0]
  1232. lsh r9, 0
  1233. ldxb r8, [r0+1]
  1234. lsh r8, 4
  1235. ldxb r7, [r0+2]
  1236. lsh r7, 8
  1237. ldxb r6, [r0+3]
  1238. lsh r6, 12
  1239. ldxb r5, [r0+4]
  1240. lsh r5, 16
  1241. ldxb r4, [r0+5]
  1242. lsh r4, 20
  1243. ldxb r3, [r0+6]
  1244. lsh r3, 24
  1245. ldxb r2, [r0+7]
  1246. lsh r2, 28
  1247. ldxb r1, [r0+8]
  1248. lsh r1, 32
  1249. ldxb r0, [r0+9]
  1250. lsh r0, 36
  1251. or r0, r1
  1252. or r0, r2
  1253. or r0, r3
  1254. or r0, r4
  1255. or r0, r5
  1256. or r0, r6
  1257. or r0, r7
  1258. or r0, r8
  1259. or r0, r9
  1260. exit").unwrap();
  1261. let mem = &mut [
  1262. 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07,
  1263. 0x08, 0x09
  1264. ];
  1265. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1266. assert_eq!(vm.execute_program(mem).unwrap(), 0x9876543210);
  1267. }
  1268. #[test]
  1269. fn test_vm_ldxb() {
  1270. let prog = assemble("
  1271. ldxb r0, [r1+2]
  1272. exit").unwrap();
  1273. let mem = &mut [
  1274. 0xaa, 0xbb, 0x11, 0xcc, 0xdd
  1275. ];
  1276. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1277. assert_eq!(vm.execute_program(mem).unwrap(), 0x11);
  1278. }
  1279. #[test]
  1280. fn test_vm_ldxdw() {
  1281. let prog = assemble("
  1282. ldxdw r0, [r1+2]
  1283. exit").unwrap();
  1284. let mem = &mut [
  1285. 0xaa, 0xbb, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66,
  1286. 0x77, 0x88, 0xcc, 0xdd
  1287. ];
  1288. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1289. assert_eq!(vm.execute_program(mem).unwrap(), 0x8877665544332211);
  1290. }
  1291. #[test]
  1292. fn test_vm_ldxh_all() {
  1293. let prog = assemble("
  1294. mov r0, r1
  1295. ldxh r9, [r0+0]
  1296. be16 r9
  1297. lsh r9, 0
  1298. ldxh r8, [r0+2]
  1299. be16 r8
  1300. lsh r8, 4
  1301. ldxh r7, [r0+4]
  1302. be16 r7
  1303. lsh r7, 8
  1304. ldxh r6, [r0+6]
  1305. be16 r6
  1306. lsh r6, 12
  1307. ldxh r5, [r0+8]
  1308. be16 r5
  1309. lsh r5, 16
  1310. ldxh r4, [r0+10]
  1311. be16 r4
  1312. lsh r4, 20
  1313. ldxh r3, [r0+12]
  1314. be16 r3
  1315. lsh r3, 24
  1316. ldxh r2, [r0+14]
  1317. be16 r2
  1318. lsh r2, 28
  1319. ldxh r1, [r0+16]
  1320. be16 r1
  1321. lsh r1, 32
  1322. ldxh r0, [r0+18]
  1323. be16 r0
  1324. lsh r0, 36
  1325. or r0, r1
  1326. or r0, r2
  1327. or r0, r3
  1328. or r0, r4
  1329. or r0, r5
  1330. or r0, r6
  1331. or r0, r7
  1332. or r0, r8
  1333. or r0, r9
  1334. exit").unwrap();
  1335. let mem = &mut [
  1336. 0x00, 0x00, 0x00, 0x01, 0x00, 0x02, 0x00, 0x03,
  1337. 0x00, 0x04, 0x00, 0x05, 0x00, 0x06, 0x00, 0x07,
  1338. 0x00, 0x08, 0x00, 0x09
  1339. ];
  1340. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1341. assert_eq!(vm.execute_program(mem).unwrap(), 0x9876543210);
  1342. }
  1343. #[test]
  1344. fn test_vm_ldxh_all2() {
  1345. let prog = assemble("
  1346. mov r0, r1
  1347. ldxh r9, [r0+0]
  1348. be16 r9
  1349. ldxh r8, [r0+2]
  1350. be16 r8
  1351. ldxh r7, [r0+4]
  1352. be16 r7
  1353. ldxh r6, [r0+6]
  1354. be16 r6
  1355. ldxh r5, [r0+8]
  1356. be16 r5
  1357. ldxh r4, [r0+10]
  1358. be16 r4
  1359. ldxh r3, [r0+12]
  1360. be16 r3
  1361. ldxh r2, [r0+14]
  1362. be16 r2
  1363. ldxh r1, [r0+16]
  1364. be16 r1
  1365. ldxh r0, [r0+18]
  1366. be16 r0
  1367. or r0, r1
  1368. or r0, r2
  1369. or r0, r3
  1370. or r0, r4
  1371. or r0, r5
  1372. or r0, r6
  1373. or r0, r7
  1374. or r0, r8
  1375. or r0, r9
  1376. exit").unwrap();
  1377. let mem = &mut [
  1378. 0x00, 0x01, 0x00, 0x02, 0x00, 0x04, 0x00, 0x08,
  1379. 0x00, 0x10, 0x00, 0x20, 0x00, 0x40, 0x00, 0x80,
  1380. 0x01, 0x00, 0x02, 0x00
  1381. ];
  1382. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1383. assert_eq!(vm.execute_program(mem).unwrap(), 0x3ff);
  1384. }
  1385. #[test]
  1386. fn test_vm_ldxh() {
  1387. let prog = assemble("
  1388. ldxh r0, [r1+2]
  1389. exit").unwrap();
  1390. let mem = &mut [
  1391. 0xaa, 0xbb, 0x11, 0x22, 0xcc, 0xdd
  1392. ];
  1393. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1394. assert_eq!(vm.execute_program(mem).unwrap(), 0x2211);
  1395. }
  1396. #[test]
  1397. fn test_vm_ldxh_same_reg() {
  1398. let prog = assemble("
  1399. mov r0, r1
  1400. sth [r0], 0x1234
  1401. ldxh r0, [r0]
  1402. exit").unwrap();
  1403. let mem = &mut [
  1404. 0xff, 0xff
  1405. ];
  1406. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1407. assert_eq!(vm.execute_program(mem).unwrap(), 0x1234);
  1408. }
  1409. #[test]
  1410. fn test_vm_ldxw_all() {
  1411. let prog = assemble("
  1412. mov r0, r1
  1413. ldxw r9, [r0+0]
  1414. be32 r9
  1415. ldxw r8, [r0+4]
  1416. be32 r8
  1417. ldxw r7, [r0+8]
  1418. be32 r7
  1419. ldxw r6, [r0+12]
  1420. be32 r6
  1421. ldxw r5, [r0+16]
  1422. be32 r5
  1423. ldxw r4, [r0+20]
  1424. be32 r4
  1425. ldxw r3, [r0+24]
  1426. be32 r3
  1427. ldxw r2, [r0+28]
  1428. be32 r2
  1429. ldxw r1, [r0+32]
  1430. be32 r1
  1431. ldxw r0, [r0+36]
  1432. be32 r0
  1433. or r0, r1
  1434. or r0, r2
  1435. or r0, r3
  1436. or r0, r4
  1437. or r0, r5
  1438. or r0, r6
  1439. or r0, r7
  1440. or r0, r8
  1441. or r0, r9
  1442. exit").unwrap();
  1443. let mem = &mut [
  1444. 0x00, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00, 0x02,
  1445. 0x00, 0x00, 0x00, 0x04, 0x00, 0x00, 0x00, 0x08,
  1446. 0x00, 0x00, 0x01, 0x00, 0x00, 0x00, 0x02, 0x00,
  1447. 0x00, 0x00, 0x04, 0x00, 0x00, 0x00, 0x08, 0x00,
  1448. 0x00, 0x01, 0x00, 0x00, 0x00, 0x02, 0x00, 0x00
  1449. ];
  1450. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1451. assert_eq!(vm.execute_program(mem).unwrap(), 0x030f0f);
  1452. }
  1453. #[test]
  1454. fn test_vm_ldxw() {
  1455. let prog = assemble("
  1456. ldxw r0, [r1+2]
  1457. exit").unwrap();
  1458. let mem = &mut [
  1459. 0xaa, 0xbb, 0x11, 0x22, 0x33, 0x44, 0xcc, 0xdd
  1460. ];
  1461. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1462. assert_eq!(vm.execute_program(mem).unwrap(), 0x44332211);
  1463. }
  1464. #[test]
  1465. fn test_vm_le16() {
  1466. let prog = assemble("
  1467. ldxh r0, [r1]
  1468. le16 r0
  1469. exit").unwrap();
  1470. let mem = &mut [
  1471. 0x22, 0x11
  1472. ];
  1473. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1474. assert_eq!(vm.execute_program(mem).unwrap(), 0x1122);
  1475. }
  1476. #[test]
  1477. fn test_vm_le32() {
  1478. let prog = assemble("
  1479. ldxw r0, [r1]
  1480. le32 r0
  1481. exit").unwrap();
  1482. let mem = &mut [
  1483. 0x44, 0x33, 0x22, 0x11
  1484. ];
  1485. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1486. assert_eq!(vm.execute_program(mem).unwrap(), 0x11223344);
  1487. }
  1488. #[test]
  1489. fn test_vm_le64() {
  1490. let prog = assemble("
  1491. ldxdw r0, [r1]
  1492. le64 r0
  1493. exit").unwrap();
  1494. let mem = &mut [
  1495. 0x88, 0x77, 0x66, 0x55, 0x44, 0x33, 0x22, 0x11
  1496. ];
  1497. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1498. assert_eq!(vm.execute_program(mem).unwrap(), 0x1122334455667788);
  1499. }
  1500. #[test]
  1501. fn test_vm_lsh_imm() {
  1502. let prog = assemble("
  1503. mov r0, 1
  1504. lsh r0, 4
  1505. exit").unwrap();
  1506. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1507. assert_eq!(vm.execute_program().unwrap(), 0x10);
  1508. }
  1509. #[test]
  1510. fn test_vm_lsh_reg() {
  1511. let prog = assemble("
  1512. mov r0, 1
  1513. mov r7, 4
  1514. lsh r0, r7
  1515. exit").unwrap();
  1516. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1517. assert_eq!(vm.execute_program().unwrap(), 0x10);
  1518. }
  1519. #[test]
  1520. fn test_vm_lsh32_imm() {
  1521. let prog = assemble("
  1522. mov32 r0, 1
  1523. lsh32 r0, 4
  1524. exit").unwrap();
  1525. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1526. assert_eq!(vm.execute_program().unwrap(), 0x10);
  1527. }
  1528. #[test]
  1529. fn test_vm_lsh32_reg() {
  1530. let prog = assemble("
  1531. mov32 r0, 1
  1532. mov32 r7, 4
  1533. lsh32 r0, r7
  1534. exit").unwrap();
  1535. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1536. assert_eq!(vm.execute_program().unwrap(), 0x10);
  1537. }
  1538. #[test]
  1539. fn test_vm_lsh_imm_overflow() {
  1540. let prog = assemble("
  1541. mov r0, 1
  1542. lsh r0, 64
  1543. exit").unwrap();
  1544. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1545. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1546. }
  1547. #[test]
  1548. fn test_vm_lsh_reg_overflow() {
  1549. let prog = assemble("
  1550. mov r0, 1
  1551. mov r7, 64
  1552. lsh r0, r7
  1553. exit").unwrap();
  1554. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1555. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1556. }
  1557. #[test]
  1558. fn test_vm_lsh32_imm_overflow() {
  1559. let prog = assemble("
  1560. mov32 r0, 1
  1561. lsh32 r0, 32
  1562. exit").unwrap();
  1563. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1564. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1565. }
  1566. #[test]
  1567. fn test_vm_lsh32_reg_overflow() {
  1568. let prog = assemble("
  1569. mov32 r0, 1
  1570. mov32 r7, 32
  1571. lsh32 r0, r7
  1572. exit").unwrap();
  1573. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1574. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1575. }
  1576. #[test]
  1577. fn test_vm_mod() {
  1578. let prog = assemble("
  1579. mov32 r0, 5748
  1580. mod32 r0, 92
  1581. mov32 r1, 13
  1582. mod32 r0, r1
  1583. exit").unwrap();
  1584. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1585. assert_eq!(vm.execute_program().unwrap(), 0x5);
  1586. }
  1587. #[test]
  1588. fn test_vm_mod32() {
  1589. let prog = assemble("
  1590. lddw r0, 0x100000003
  1591. mod32 r0, 3
  1592. exit").unwrap();
  1593. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1594. assert_eq!(vm.execute_program().unwrap(), 0x0);
  1595. }
  1596. #[test]
  1597. fn test_vm_mod64() {
  1598. let prog = assemble("
  1599. mov32 r0, -1316649930
  1600. lsh r0, 32
  1601. or r0, 0x100dc5c8
  1602. mov32 r1, 0xdde263e
  1603. lsh r1, 32
  1604. or r1, 0x3cbef7f3
  1605. mod r0, r1
  1606. mod r0, 0x658f1778
  1607. exit").unwrap();
  1608. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1609. assert_eq!(vm.execute_program().unwrap(), 0x30ba5a04);
  1610. }
  1611. #[test]
  1612. fn test_vm_mov() {
  1613. let prog = assemble("
  1614. mov32 r1, 1
  1615. mov32 r0, r1
  1616. exit").unwrap();
  1617. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1618. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1619. }
  1620. #[test]
  1621. fn test_vm_mul32_imm() {
  1622. let prog = assemble("
  1623. mov r0, 3
  1624. mul32 r0, 4
  1625. exit").unwrap();
  1626. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1627. assert_eq!(vm.execute_program().unwrap(), 0xc);
  1628. }
  1629. #[test]
  1630. fn test_vm_mul32_reg() {
  1631. let prog = assemble("
  1632. mov r0, 3
  1633. mov r1, 4
  1634. mul32 r0, r1
  1635. exit").unwrap();
  1636. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1637. assert_eq!(vm.execute_program().unwrap(), 0xc);
  1638. }
  1639. #[test]
  1640. fn test_vm_mul32_reg_overflow() {
  1641. let prog = assemble("
  1642. mov r0, 0x40000001
  1643. mov r1, 4
  1644. mul32 r0, r1
  1645. exit").unwrap();
  1646. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1647. assert_eq!(vm.execute_program().unwrap(), 0x4);
  1648. }
  1649. #[test]
  1650. fn test_vm_mul64_imm() {
  1651. let prog = assemble("
  1652. mov r0, 0x40000001
  1653. mul r0, 4
  1654. exit").unwrap();
  1655. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1656. assert_eq!(vm.execute_program().unwrap(), 0x100000004);
  1657. }
  1658. #[test]
  1659. fn test_vm_mul64_reg() {
  1660. let prog = assemble("
  1661. mov r0, 0x40000001
  1662. mov r1, 4
  1663. mul r0, r1
  1664. exit").unwrap();
  1665. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1666. assert_eq!(vm.execute_program().unwrap(), 0x100000004);
  1667. }
  1668. #[test]
  1669. fn test_vm_mul_loop() {
  1670. let prog = assemble("
  1671. mov r0, 0x7
  1672. add r1, 0xa
  1673. lsh r1, 0x20
  1674. rsh r1, 0x20
  1675. jeq r1, 0x0, +4
  1676. mov r0, 0x7
  1677. mul r0, 0x7
  1678. add r1, -1
  1679. jne r1, 0x0, -3
  1680. exit").unwrap();
  1681. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1682. assert_eq!(vm.execute_program().unwrap(), 0x75db9c97);
  1683. }
  1684. #[test]
  1685. fn test_vm_neg64() {
  1686. let prog = assemble("
  1687. mov32 r0, 2
  1688. neg r0
  1689. exit").unwrap();
  1690. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1691. assert_eq!(vm.execute_program().unwrap(), 0xfffffffffffffffe);
  1692. }
  1693. #[test]
  1694. fn test_vm_neg() {
  1695. let prog = assemble("
  1696. mov32 r0, 2
  1697. neg32 r0
  1698. exit").unwrap();
  1699. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1700. assert_eq!(vm.execute_program().unwrap(), 0xfffffffe);
  1701. }
  1702. #[test]
  1703. fn test_vm_prime() {
  1704. let prog = assemble("
  1705. mov r1, 67
  1706. mov r0, 0x1
  1707. mov r2, 0x2
  1708. jgt r1, 0x2, +4
  1709. ja +10
  1710. add r2, 0x1
  1711. mov r0, 0x1
  1712. jge r2, r1, +7
  1713. mov r3, r1
  1714. div r3, r2
  1715. mul r3, r2
  1716. mov r4, r1
  1717. sub r4, r3
  1718. mov r0, 0x0
  1719. jne r4, 0x0, -10
  1720. exit").unwrap();
  1721. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1722. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1723. }
  1724. #[test]
  1725. fn test_vm_rhs32() {
  1726. let prog = assemble("
  1727. xor r0, r0
  1728. sub r0, 1
  1729. rsh32 r0, 8
  1730. exit").unwrap();
  1731. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1732. assert_eq!(vm.execute_program().unwrap(), 0x00ffffff);
  1733. }
  1734. #[test]
  1735. fn test_vm_rsh_reg() {
  1736. let prog = assemble("
  1737. mov r0, 0x10
  1738. mov r7, 4
  1739. rsh r0, r7
  1740. exit").unwrap();
  1741. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1742. assert_eq!(vm.execute_program().unwrap(), 0x1);
  1743. }
  1744. #[test]
  1745. fn test_vm_stack() {
  1746. let prog = assemble("
  1747. mov r1, 51
  1748. stdw [r10-16], 0xab
  1749. stdw [r10-8], 0xcd
  1750. and r1, 1
  1751. lsh r1, 3
  1752. mov r2, r10
  1753. add r2, r1
  1754. ldxdw r0, [r2-16]
  1755. exit").unwrap();
  1756. let vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1757. assert_eq!(vm.execute_program().unwrap(), 0xcd);
  1758. }
  1759. #[test]
  1760. fn test_vm_stack2() {
  1761. let prog = assemble("
  1762. stb [r10-4], 0x01
  1763. stb [r10-3], 0x02
  1764. stb [r10-2], 0x03
  1765. stb [r10-1], 0x04
  1766. mov r1, r10
  1767. mov r2, 0x4
  1768. sub r1, r2
  1769. call 1
  1770. mov r1, 0
  1771. ldxb r2, [r10-4]
  1772. ldxb r3, [r10-3]
  1773. ldxb r4, [r10-2]
  1774. ldxb r5, [r10-1]
  1775. call 0
  1776. xor r0, 0x2a2a2a2a
  1777. exit").unwrap();
  1778. let mut vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1779. vm.register_helper(0, helpers::gather_bytes).unwrap();
  1780. vm.register_helper(1, helpers::memfrob).unwrap();
  1781. assert_eq!(vm.execute_program().unwrap(), 0x01020304);
  1782. }
  1783. #[test]
  1784. fn test_vm_stb() {
  1785. let prog = assemble("
  1786. stb [r1+2], 0x11
  1787. ldxb r0, [r1+2]
  1788. exit").unwrap();
  1789. let mem = &mut [
  1790. 0xaa, 0xbb, 0xff, 0xcc, 0xdd
  1791. ];
  1792. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1793. assert_eq!(vm.execute_program(mem).unwrap(), 0x11);
  1794. }
  1795. #[test]
  1796. fn test_vm_stdw() {
  1797. let prog = assemble("
  1798. stdw [r1+2], 0x44332211
  1799. ldxdw r0, [r1+2]
  1800. exit").unwrap();
  1801. let mem = &mut [
  1802. 0xaa, 0xbb, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
  1803. 0xff, 0xff, 0xcc, 0xdd
  1804. ];
  1805. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1806. assert_eq!(vm.execute_program(mem).unwrap(), 0x44332211);
  1807. }
  1808. // If this case is not handled properly in check_mem(), then we may overflow when adding the
  1809. // context address and the offset, and make the thread panic with "attempt to add with overflow".
  1810. // Check that we panic with the expected out-of-bounds error.
  1811. #[test]
  1812. #[should_panic(expected = "Error: out of bounds memory store (insn #1)")]
  1813. fn test_vm_stdw_add_overflow() {
  1814. let prog = assemble("
  1815. stdw [r2-0x1], 0x44332211
  1816. ldxw r0, [r1+2]
  1817. exit").unwrap();
  1818. let mem = &mut [
  1819. 0xaa, 0xbb, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
  1820. 0xff, 0xff, 0xcc, 0xdd
  1821. ];
  1822. let mut vm = rbpf::EbpfVmFixedMbuff::new(Some(&prog), 0x00, 0x10).unwrap();
  1823. _ = vm.execute_program(mem).unwrap();
  1824. }
  1825. #[test]
  1826. fn test_vm_sth() {
  1827. let prog = assemble("
  1828. sth [r1+2], 0x2211
  1829. ldxh r0, [r1+2]
  1830. exit").unwrap();
  1831. let mem = &mut [
  1832. 0xaa, 0xbb, 0xff, 0xff, 0xcc, 0xdd
  1833. ];
  1834. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1835. assert_eq!(vm.execute_program(mem).unwrap(), 0x2211);
  1836. }
  1837. #[test]
  1838. fn test_vm_string_stack() {
  1839. let prog = assemble("
  1840. mov r1, 0x78636261
  1841. stxw [r10-8], r1
  1842. mov r6, 0x0
  1843. stxb [r10-4], r6
  1844. stxb [r10-12], r6
  1845. mov r1, 0x79636261
  1846. stxw [r10-16], r1
  1847. mov r1, r10
  1848. add r1, -8
  1849. mov r2, r1
  1850. call 0x4
  1851. mov r1, r0
  1852. mov r0, 0x1
  1853. lsh r1, 0x20
  1854. rsh r1, 0x20
  1855. jne r1, 0x0, +11
  1856. mov r1, r10
  1857. add r1, -8
  1858. mov r2, r10
  1859. add r2, -16
  1860. call 0x4
  1861. mov r1, r0
  1862. lsh r1, 0x20
  1863. rsh r1, 0x20
  1864. mov r0, 0x1
  1865. jeq r1, r6, +1
  1866. mov r0, 0x0
  1867. exit").unwrap();
  1868. let mut vm = rbpf::EbpfVmNoData::new(Some(&prog)).unwrap();
  1869. vm.register_helper(4, helpers::strcmp).unwrap();
  1870. assert_eq!(vm.execute_program().unwrap(), 0x0);
  1871. }
  1872. #[test]
  1873. fn test_vm_stw() {
  1874. let prog = assemble("
  1875. stw [r1+2], 0x44332211
  1876. ldxw r0, [r1+2]
  1877. exit").unwrap();
  1878. let mem = &mut [
  1879. 0xaa, 0xbb, 0xff, 0xff, 0xff, 0xff, 0xcc, 0xdd
  1880. ];
  1881. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1882. assert_eq!(vm.execute_program(mem).unwrap(), 0x44332211);
  1883. }
  1884. #[test]
  1885. fn test_vm_stxb() {
  1886. let prog = assemble("
  1887. mov32 r2, 0x11
  1888. stxb [r1+2], r2
  1889. ldxb r0, [r1+2]
  1890. exit").unwrap();
  1891. let mem = &mut [
  1892. 0xaa, 0xbb, 0xff, 0xcc, 0xdd
  1893. ];
  1894. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1895. assert_eq!(vm.execute_program(mem).unwrap(), 0x11);
  1896. }
  1897. #[test]
  1898. fn test_vm_stxb_all() {
  1899. let prog = assemble("
  1900. mov r0, 0xf0
  1901. mov r2, 0xf2
  1902. mov r3, 0xf3
  1903. mov r4, 0xf4
  1904. mov r5, 0xf5
  1905. mov r6, 0xf6
  1906. mov r7, 0xf7
  1907. mov r8, 0xf8
  1908. stxb [r1], r0
  1909. stxb [r1+1], r2
  1910. stxb [r1+2], r3
  1911. stxb [r1+3], r4
  1912. stxb [r1+4], r5
  1913. stxb [r1+5], r6
  1914. stxb [r1+6], r7
  1915. stxb [r1+7], r8
  1916. ldxdw r0, [r1]
  1917. be64 r0
  1918. exit").unwrap();
  1919. let mem = &mut [
  1920. 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff
  1921. ];
  1922. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1923. assert_eq!(vm.execute_program(mem).unwrap(), 0xf0f2f3f4f5f6f7f8);
  1924. }
  1925. #[test]
  1926. fn test_vm_stxb_all2() {
  1927. let prog = assemble("
  1928. mov r0, r1
  1929. mov r1, 0xf1
  1930. mov r9, 0xf9
  1931. stxb [r0], r1
  1932. stxb [r0+1], r9
  1933. ldxh r0, [r0]
  1934. be16 r0
  1935. exit").unwrap();
  1936. let mem = &mut [
  1937. 0xff, 0xff
  1938. ];
  1939. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1940. assert_eq!(vm.execute_program(mem).unwrap(), 0xf1f9);
  1941. }
  1942. #[test]
  1943. fn test_vm_stxb_chain() {
  1944. let prog = assemble("
  1945. mov r0, r1
  1946. ldxb r9, [r0+0]
  1947. stxb [r0+1], r9
  1948. ldxb r8, [r0+1]
  1949. stxb [r0+2], r8
  1950. ldxb r7, [r0+2]
  1951. stxb [r0+3], r7
  1952. ldxb r6, [r0+3]
  1953. stxb [r0+4], r6
  1954. ldxb r5, [r0+4]
  1955. stxb [r0+5], r5
  1956. ldxb r4, [r0+5]
  1957. stxb [r0+6], r4
  1958. ldxb r3, [r0+6]
  1959. stxb [r0+7], r3
  1960. ldxb r2, [r0+7]
  1961. stxb [r0+8], r2
  1962. ldxb r1, [r0+8]
  1963. stxb [r0+9], r1
  1964. ldxb r0, [r0+9]
  1965. exit").unwrap();
  1966. let mem = &mut [
  1967. 0x2a, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  1968. 0x00, 0x00
  1969. ];
  1970. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1971. assert_eq!(vm.execute_program(mem).unwrap(), 0x2a);
  1972. }
  1973. #[test]
  1974. fn test_vm_stxdw() {
  1975. let prog = assemble("
  1976. mov r2, -2005440939
  1977. lsh r2, 32
  1978. or r2, 0x44332211
  1979. stxdw [r1+2], r2
  1980. ldxdw r0, [r1+2]
  1981. exit").unwrap();
  1982. let mem = &mut [
  1983. 0xaa, 0xbb, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
  1984. 0xff, 0xff, 0xcc, 0xdd
  1985. ];
  1986. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  1987. assert_eq!(vm.execute_program(mem).unwrap(), 0x8877665544332211);
  1988. }
  1989. #[test]
  1990. fn test_vm_stxh() {
  1991. let prog = assemble("
  1992. mov32 r2, 0x2211
  1993. stxh [r1+2], r2
  1994. ldxh r0, [r1+2]
  1995. exit").unwrap();
  1996. let mem = &mut [
  1997. 0xaa, 0xbb, 0xff, 0xff, 0xcc, 0xdd
  1998. ];
  1999. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  2000. assert_eq!(vm.execute_program(mem).unwrap(), 0x2211);
  2001. }
  2002. #[test]
  2003. fn test_vm_stxw() {
  2004. let prog = assemble("
  2005. mov32 r2, 0x44332211
  2006. stxw [r1+2], r2
  2007. ldxw r0, [r1+2]
  2008. exit").unwrap();
  2009. let mem = &mut [
  2010. 0xaa, 0xbb, 0xff, 0xff, 0xff, 0xff, 0xcc, 0xdd
  2011. ];
  2012. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  2013. assert_eq!(vm.execute_program(mem).unwrap(), 0x44332211);
  2014. }
  2015. #[test]
  2016. fn test_vm_subnet() {
  2017. let prog = assemble("
  2018. mov r2, 0xe
  2019. ldxh r3, [r1+12]
  2020. jne r3, 0x81, +2
  2021. mov r2, 0x12
  2022. ldxh r3, [r1+16]
  2023. and r3, 0xffff
  2024. jne r3, 0x8, +5
  2025. add r1, r2
  2026. mov r0, 0x1
  2027. ldxw r1, [r1+16]
  2028. and r1, 0xffffff
  2029. jeq r1, 0x1a8c0, +1
  2030. mov r0, 0x0
  2031. exit").unwrap();
  2032. let mem = &mut [
  2033. 0x00, 0x00, 0xc0, 0x9f, 0xa0, 0x97, 0x00, 0xa0,
  2034. 0xcc, 0x3b, 0xbf, 0xfa, 0x08, 0x00, 0x45, 0x10,
  2035. 0x00, 0x3c, 0x46, 0x3c, 0x40, 0x00, 0x40, 0x06,
  2036. 0x73, 0x1c, 0xc0, 0xa8, 0x01, 0x02, 0xc0, 0xa8,
  2037. 0x01, 0x01, 0x06, 0x0e, 0x00, 0x17, 0x99, 0xc5,
  2038. 0xa0, 0xec, 0x00, 0x00, 0x00, 0x00, 0xa0, 0x02,
  2039. 0x7d, 0x78, 0xe0, 0xa3, 0x00, 0x00, 0x02, 0x04,
  2040. 0x05, 0xb4, 0x04, 0x02, 0x08, 0x0a, 0x00, 0x9c,
  2041. 0x27, 0x24, 0x00, 0x00, 0x00, 0x00, 0x01, 0x03,
  2042. 0x03, 0x00
  2043. ];
  2044. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  2045. assert_eq!(vm.execute_program(mem).unwrap(), 0x1);
  2046. }
  2047. const PROG_TCP_PORT_80: [u8;152] = [
  2048. 0x71, 0x12, 0x0c, 0x00, 0x00, 0x00, 0x00, 0x00,
  2049. 0x71, 0x13, 0x0d, 0x00, 0x00, 0x00, 0x00, 0x00,
  2050. 0x67, 0x03, 0x00, 0x00, 0x08, 0x00, 0x00, 0x00,
  2051. 0x4f, 0x23, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  2052. 0xb7, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  2053. 0x55, 0x03, 0x0c, 0x00, 0x08, 0x00, 0x00, 0x00,
  2054. 0x71, 0x12, 0x17, 0x00, 0x00, 0x00, 0x00, 0x00,
  2055. 0x55, 0x02, 0x0a, 0x00, 0x06, 0x00, 0x00, 0x00,
  2056. 0x71, 0x12, 0x0e, 0x00, 0x00, 0x00, 0x00, 0x00,
  2057. 0x07, 0x01, 0x00, 0x00, 0x0e, 0x00, 0x00, 0x00,
  2058. 0x57, 0x02, 0x00, 0x00, 0x0f, 0x00, 0x00, 0x00,
  2059. 0x67, 0x02, 0x00, 0x00, 0x02, 0x00, 0x00, 0x00,
  2060. 0x0f, 0x21, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  2061. 0x69, 0x12, 0x02, 0x00, 0x00, 0x00, 0x00, 0x00,
  2062. 0x15, 0x02, 0x02, 0x00, 0x00, 0x50, 0x00, 0x00,
  2063. 0x69, 0x11, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  2064. 0x55, 0x01, 0x01, 0x00, 0x00, 0x50, 0x00, 0x00,
  2065. 0xb7, 0x00, 0x00, 0x00, 0x01, 0x00, 0x00, 0x00,
  2066. 0x95, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
  2067. ];
  2068. #[test]
  2069. fn test_vm_tcp_port80_match() {
  2070. let mem = &mut [
  2071. 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x00, 0x06,
  2072. 0x07, 0x08, 0x09, 0x0a, 0x08, 0x00, 0x45, 0x00,
  2073. 0x00, 0x56, 0x00, 0x01, 0x00, 0x00, 0x40, 0x06,
  2074. 0xf9, 0x4d, 0xc0, 0xa8, 0x00, 0x01, 0xc0, 0xa8,
  2075. 0x00, 0x02, 0x27, 0x10, 0x00, 0x50, 0x00, 0x00,
  2076. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x50, 0x02,
  2077. 0x20, 0x00, 0xc5, 0x18, 0x00, 0x00, 0x44, 0x44,
  2078. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2079. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2080. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2081. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2082. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2083. 0x44, 0x44, 0x44, 0x44
  2084. ];
  2085. let prog = &PROG_TCP_PORT_80;
  2086. let vm = rbpf::EbpfVmRaw::new(Some(prog)).unwrap();
  2087. assert_eq!(vm.execute_program(mem).unwrap(), 0x1);
  2088. }
  2089. #[test]
  2090. fn test_vm_tcp_port80_nomatch() {
  2091. let mem = &mut [
  2092. 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x00, 0x06,
  2093. 0x07, 0x08, 0x09, 0x0a, 0x08, 0x00, 0x45, 0x00,
  2094. 0x00, 0x56, 0x00, 0x01, 0x00, 0x00, 0x40, 0x06,
  2095. 0xf9, 0x4d, 0xc0, 0xa8, 0x00, 0x01, 0xc0, 0xa8,
  2096. 0x00, 0x02, 0x00, 0x16, 0x27, 0x10, 0x00, 0x00,
  2097. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x51, 0x02,
  2098. 0x20, 0x00, 0xc5, 0x18, 0x00, 0x00, 0x44, 0x44,
  2099. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2100. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2101. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2102. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2103. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2104. 0x44, 0x44, 0x44, 0x44
  2105. ];
  2106. let prog = &PROG_TCP_PORT_80;
  2107. let vm = rbpf::EbpfVmRaw::new(Some(prog)).unwrap();
  2108. assert_eq!(vm.execute_program(mem).unwrap(), 0x0);
  2109. }
  2110. #[test]
  2111. fn test_vm_tcp_port80_nomatch_ethertype() {
  2112. let mem = &mut [
  2113. 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x00, 0x06,
  2114. 0x07, 0x08, 0x09, 0x0a, 0x08, 0x01, 0x45, 0x00,
  2115. 0x00, 0x56, 0x00, 0x01, 0x00, 0x00, 0x40, 0x06,
  2116. 0xf9, 0x4d, 0xc0, 0xa8, 0x00, 0x01, 0xc0, 0xa8,
  2117. 0x00, 0x02, 0x27, 0x10, 0x00, 0x50, 0x00, 0x00,
  2118. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x50, 0x02,
  2119. 0x20, 0x00, 0xc5, 0x18, 0x00, 0x00, 0x44, 0x44,
  2120. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2121. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2122. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2123. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2124. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2125. 0x44, 0x44, 0x44, 0x44
  2126. ];
  2127. let prog = &PROG_TCP_PORT_80;
  2128. let vm = rbpf::EbpfVmRaw::new(Some(prog)).unwrap();
  2129. assert_eq!(vm.execute_program(mem).unwrap(), 0x0);
  2130. }
  2131. #[test]
  2132. fn test_vm_tcp_port80_nomatch_proto() {
  2133. let mem = &mut [
  2134. 0x00, 0x01, 0x02, 0x03, 0x04, 0x05, 0x00, 0x06,
  2135. 0x07, 0x08, 0x09, 0x0a, 0x08, 0x00, 0x45, 0x00,
  2136. 0x00, 0x56, 0x00, 0x01, 0x00, 0x00, 0x40, 0x11,
  2137. 0xf9, 0x4d, 0xc0, 0xa8, 0x00, 0x01, 0xc0, 0xa8,
  2138. 0x00, 0x02, 0x27, 0x10, 0x00, 0x50, 0x00, 0x00,
  2139. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x50, 0x02,
  2140. 0x20, 0x00, 0xc5, 0x18, 0x00, 0x00, 0x44, 0x44,
  2141. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2142. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2143. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2144. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2145. 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44, 0x44,
  2146. 0x44, 0x44, 0x44, 0x44
  2147. ];
  2148. let prog = &PROG_TCP_PORT_80;
  2149. let vm = rbpf::EbpfVmRaw::new(Some(prog)).unwrap();
  2150. assert_eq!(vm.execute_program(mem).unwrap(), 0x0);
  2151. }
  2152. #[test]
  2153. fn test_vm_tcp_sack_match() {
  2154. let mut mem = TCP_SACK_MATCH.to_vec();
  2155. let prog = assemble(TCP_SACK_ASM).unwrap();
  2156. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  2157. assert_eq!(vm.execute_program(mem.as_mut_slice()).unwrap(), 0x1);
  2158. }
  2159. #[test]
  2160. fn test_vm_tcp_sack_nomatch() {
  2161. let mut mem = TCP_SACK_NOMATCH.to_vec();
  2162. let prog = assemble(TCP_SACK_ASM).unwrap();
  2163. let vm = rbpf::EbpfVmRaw::new(Some(&prog)).unwrap();
  2164. assert_eq!(vm.execute_program(mem.as_mut_slice()).unwrap(), 0x0);
  2165. }