syscall_linux.go 69 KB

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  1. // Copyright 2009 The Go Authors. All rights reserved.
  2. // Use of this source code is governed by a BSD-style
  3. // license that can be found in the LICENSE file.
  4. // Linux system calls.
  5. // This file is compiled as ordinary Go code,
  6. // but it is also input to mksyscall,
  7. // which parses the //sys lines and generates system call stubs.
  8. // Note that sometimes we use a lowercase //sys name and
  9. // wrap it in our own nicer implementation.
  10. package unix
  11. import (
  12. "encoding/binary"
  13. "runtime"
  14. "syscall"
  15. "unsafe"
  16. )
  17. /*
  18. * Wrapped
  19. */
  20. func Access(path string, mode uint32) (err error) {
  21. return Faccessat(AT_FDCWD, path, mode, 0)
  22. }
  23. func Chmod(path string, mode uint32) (err error) {
  24. return Fchmodat(AT_FDCWD, path, mode, 0)
  25. }
  26. func Chown(path string, uid int, gid int) (err error) {
  27. return Fchownat(AT_FDCWD, path, uid, gid, 0)
  28. }
  29. func Creat(path string, mode uint32) (fd int, err error) {
  30. return Open(path, O_CREAT|O_WRONLY|O_TRUNC, mode)
  31. }
  32. //sys FanotifyInit(flags uint, event_f_flags uint) (fd int, err error)
  33. //sys fanotifyMark(fd int, flags uint, mask uint64, dirFd int, pathname *byte) (err error)
  34. func FanotifyMark(fd int, flags uint, mask uint64, dirFd int, pathname string) (err error) {
  35. if pathname == "" {
  36. return fanotifyMark(fd, flags, mask, dirFd, nil)
  37. }
  38. p, err := BytePtrFromString(pathname)
  39. if err != nil {
  40. return err
  41. }
  42. return fanotifyMark(fd, flags, mask, dirFd, p)
  43. }
  44. //sys fchmodat(dirfd int, path string, mode uint32) (err error)
  45. func Fchmodat(dirfd int, path string, mode uint32, flags int) (err error) {
  46. // Linux fchmodat doesn't support the flags parameter. Mimick glibc's behavior
  47. // and check the flags. Otherwise the mode would be applied to the symlink
  48. // destination which is not what the user expects.
  49. if flags&^AT_SYMLINK_NOFOLLOW != 0 {
  50. return EINVAL
  51. } else if flags&AT_SYMLINK_NOFOLLOW != 0 {
  52. return EOPNOTSUPP
  53. }
  54. return fchmodat(dirfd, path, mode)
  55. }
  56. //sys ioctl(fd int, req uint, arg uintptr) (err error) = SYS_IOCTL
  57. //sys ioctlPtr(fd int, req uint, arg unsafe.Pointer) (err error) = SYS_IOCTL
  58. // ioctl itself should not be exposed directly, but additional get/set functions
  59. // for specific types are permissible. These are defined in ioctl.go and
  60. // ioctl_linux.go.
  61. //
  62. // The third argument to ioctl is often a pointer but sometimes an integer.
  63. // Callers should use ioctlPtr when the third argument is a pointer and ioctl
  64. // when the third argument is an integer.
  65. //
  66. // TODO: some existing code incorrectly uses ioctl when it should use ioctlPtr.
  67. //sys Linkat(olddirfd int, oldpath string, newdirfd int, newpath string, flags int) (err error)
  68. func Link(oldpath string, newpath string) (err error) {
  69. return Linkat(AT_FDCWD, oldpath, AT_FDCWD, newpath, 0)
  70. }
  71. func Mkdir(path string, mode uint32) (err error) {
  72. return Mkdirat(AT_FDCWD, path, mode)
  73. }
  74. func Mknod(path string, mode uint32, dev int) (err error) {
  75. return Mknodat(AT_FDCWD, path, mode, dev)
  76. }
  77. func Open(path string, mode int, perm uint32) (fd int, err error) {
  78. return openat(AT_FDCWD, path, mode|O_LARGEFILE, perm)
  79. }
  80. //sys openat(dirfd int, path string, flags int, mode uint32) (fd int, err error)
  81. func Openat(dirfd int, path string, flags int, mode uint32) (fd int, err error) {
  82. return openat(dirfd, path, flags|O_LARGEFILE, mode)
  83. }
  84. //sys openat2(dirfd int, path string, open_how *OpenHow, size int) (fd int, err error)
  85. func Openat2(dirfd int, path string, how *OpenHow) (fd int, err error) {
  86. return openat2(dirfd, path, how, SizeofOpenHow)
  87. }
  88. //sys ppoll(fds *PollFd, nfds int, timeout *Timespec, sigmask *Sigset_t) (n int, err error)
  89. func Ppoll(fds []PollFd, timeout *Timespec, sigmask *Sigset_t) (n int, err error) {
  90. if len(fds) == 0 {
  91. return ppoll(nil, 0, timeout, sigmask)
  92. }
  93. return ppoll(&fds[0], len(fds), timeout, sigmask)
  94. }
  95. //sys Readlinkat(dirfd int, path string, buf []byte) (n int, err error)
  96. func Readlink(path string, buf []byte) (n int, err error) {
  97. return Readlinkat(AT_FDCWD, path, buf)
  98. }
  99. func Rename(oldpath string, newpath string) (err error) {
  100. return Renameat(AT_FDCWD, oldpath, AT_FDCWD, newpath)
  101. }
  102. func Rmdir(path string) error {
  103. return Unlinkat(AT_FDCWD, path, AT_REMOVEDIR)
  104. }
  105. //sys Symlinkat(oldpath string, newdirfd int, newpath string) (err error)
  106. func Symlink(oldpath string, newpath string) (err error) {
  107. return Symlinkat(oldpath, AT_FDCWD, newpath)
  108. }
  109. func Unlink(path string) error {
  110. return Unlinkat(AT_FDCWD, path, 0)
  111. }
  112. //sys Unlinkat(dirfd int, path string, flags int) (err error)
  113. func Utimes(path string, tv []Timeval) error {
  114. if tv == nil {
  115. err := utimensat(AT_FDCWD, path, nil, 0)
  116. if err != ENOSYS {
  117. return err
  118. }
  119. return utimes(path, nil)
  120. }
  121. if len(tv) != 2 {
  122. return EINVAL
  123. }
  124. var ts [2]Timespec
  125. ts[0] = NsecToTimespec(TimevalToNsec(tv[0]))
  126. ts[1] = NsecToTimespec(TimevalToNsec(tv[1]))
  127. err := utimensat(AT_FDCWD, path, (*[2]Timespec)(unsafe.Pointer(&ts[0])), 0)
  128. if err != ENOSYS {
  129. return err
  130. }
  131. return utimes(path, (*[2]Timeval)(unsafe.Pointer(&tv[0])))
  132. }
  133. //sys utimensat(dirfd int, path string, times *[2]Timespec, flags int) (err error)
  134. func UtimesNano(path string, ts []Timespec) error {
  135. if ts == nil {
  136. err := utimensat(AT_FDCWD, path, nil, 0)
  137. if err != ENOSYS {
  138. return err
  139. }
  140. return utimes(path, nil)
  141. }
  142. if len(ts) != 2 {
  143. return EINVAL
  144. }
  145. err := utimensat(AT_FDCWD, path, (*[2]Timespec)(unsafe.Pointer(&ts[0])), 0)
  146. if err != ENOSYS {
  147. return err
  148. }
  149. // If the utimensat syscall isn't available (utimensat was added to Linux
  150. // in 2.6.22, Released, 8 July 2007) then fall back to utimes
  151. var tv [2]Timeval
  152. for i := 0; i < 2; i++ {
  153. tv[i] = NsecToTimeval(TimespecToNsec(ts[i]))
  154. }
  155. return utimes(path, (*[2]Timeval)(unsafe.Pointer(&tv[0])))
  156. }
  157. func UtimesNanoAt(dirfd int, path string, ts []Timespec, flags int) error {
  158. if ts == nil {
  159. return utimensat(dirfd, path, nil, flags)
  160. }
  161. if len(ts) != 2 {
  162. return EINVAL
  163. }
  164. return utimensat(dirfd, path, (*[2]Timespec)(unsafe.Pointer(&ts[0])), flags)
  165. }
  166. func Futimesat(dirfd int, path string, tv []Timeval) error {
  167. if tv == nil {
  168. return futimesat(dirfd, path, nil)
  169. }
  170. if len(tv) != 2 {
  171. return EINVAL
  172. }
  173. return futimesat(dirfd, path, (*[2]Timeval)(unsafe.Pointer(&tv[0])))
  174. }
  175. func Futimes(fd int, tv []Timeval) (err error) {
  176. // Believe it or not, this is the best we can do on Linux
  177. // (and is what glibc does).
  178. return Utimes("/proc/self/fd/"+itoa(fd), tv)
  179. }
  180. const ImplementsGetwd = true
  181. //sys Getcwd(buf []byte) (n int, err error)
  182. func Getwd() (wd string, err error) {
  183. var buf [PathMax]byte
  184. n, err := Getcwd(buf[0:])
  185. if err != nil {
  186. return "", err
  187. }
  188. // Getcwd returns the number of bytes written to buf, including the NUL.
  189. if n < 1 || n > len(buf) || buf[n-1] != 0 {
  190. return "", EINVAL
  191. }
  192. return string(buf[0 : n-1]), nil
  193. }
  194. func Getgroups() (gids []int, err error) {
  195. n, err := getgroups(0, nil)
  196. if err != nil {
  197. return nil, err
  198. }
  199. if n == 0 {
  200. return nil, nil
  201. }
  202. // Sanity check group count. Max is 1<<16 on Linux.
  203. if n < 0 || n > 1<<20 {
  204. return nil, EINVAL
  205. }
  206. a := make([]_Gid_t, n)
  207. n, err = getgroups(n, &a[0])
  208. if err != nil {
  209. return nil, err
  210. }
  211. gids = make([]int, n)
  212. for i, v := range a[0:n] {
  213. gids[i] = int(v)
  214. }
  215. return
  216. }
  217. func Setgroups(gids []int) (err error) {
  218. if len(gids) == 0 {
  219. return setgroups(0, nil)
  220. }
  221. a := make([]_Gid_t, len(gids))
  222. for i, v := range gids {
  223. a[i] = _Gid_t(v)
  224. }
  225. return setgroups(len(a), &a[0])
  226. }
  227. type WaitStatus uint32
  228. // Wait status is 7 bits at bottom, either 0 (exited),
  229. // 0x7F (stopped), or a signal number that caused an exit.
  230. // The 0x80 bit is whether there was a core dump.
  231. // An extra number (exit code, signal causing a stop)
  232. // is in the high bits. At least that's the idea.
  233. // There are various irregularities. For example, the
  234. // "continued" status is 0xFFFF, distinguishing itself
  235. // from stopped via the core dump bit.
  236. const (
  237. mask = 0x7F
  238. core = 0x80
  239. exited = 0x00
  240. stopped = 0x7F
  241. shift = 8
  242. )
  243. func (w WaitStatus) Exited() bool { return w&mask == exited }
  244. func (w WaitStatus) Signaled() bool { return w&mask != stopped && w&mask != exited }
  245. func (w WaitStatus) Stopped() bool { return w&0xFF == stopped }
  246. func (w WaitStatus) Continued() bool { return w == 0xFFFF }
  247. func (w WaitStatus) CoreDump() bool { return w.Signaled() && w&core != 0 }
  248. func (w WaitStatus) ExitStatus() int {
  249. if !w.Exited() {
  250. return -1
  251. }
  252. return int(w>>shift) & 0xFF
  253. }
  254. func (w WaitStatus) Signal() syscall.Signal {
  255. if !w.Signaled() {
  256. return -1
  257. }
  258. return syscall.Signal(w & mask)
  259. }
  260. func (w WaitStatus) StopSignal() syscall.Signal {
  261. if !w.Stopped() {
  262. return -1
  263. }
  264. return syscall.Signal(w>>shift) & 0xFF
  265. }
  266. func (w WaitStatus) TrapCause() int {
  267. if w.StopSignal() != SIGTRAP {
  268. return -1
  269. }
  270. return int(w>>shift) >> 8
  271. }
  272. //sys wait4(pid int, wstatus *_C_int, options int, rusage *Rusage) (wpid int, err error)
  273. func Wait4(pid int, wstatus *WaitStatus, options int, rusage *Rusage) (wpid int, err error) {
  274. var status _C_int
  275. wpid, err = wait4(pid, &status, options, rusage)
  276. if wstatus != nil {
  277. *wstatus = WaitStatus(status)
  278. }
  279. return
  280. }
  281. func Mkfifo(path string, mode uint32) error {
  282. return Mknod(path, mode|S_IFIFO, 0)
  283. }
  284. func Mkfifoat(dirfd int, path string, mode uint32) error {
  285. return Mknodat(dirfd, path, mode|S_IFIFO, 0)
  286. }
  287. func (sa *SockaddrInet4) sockaddr() (unsafe.Pointer, _Socklen, error) {
  288. if sa.Port < 0 || sa.Port > 0xFFFF {
  289. return nil, 0, EINVAL
  290. }
  291. sa.raw.Family = AF_INET
  292. p := (*[2]byte)(unsafe.Pointer(&sa.raw.Port))
  293. p[0] = byte(sa.Port >> 8)
  294. p[1] = byte(sa.Port)
  295. for i := 0; i < len(sa.Addr); i++ {
  296. sa.raw.Addr[i] = sa.Addr[i]
  297. }
  298. return unsafe.Pointer(&sa.raw), SizeofSockaddrInet4, nil
  299. }
  300. func (sa *SockaddrInet6) sockaddr() (unsafe.Pointer, _Socklen, error) {
  301. if sa.Port < 0 || sa.Port > 0xFFFF {
  302. return nil, 0, EINVAL
  303. }
  304. sa.raw.Family = AF_INET6
  305. p := (*[2]byte)(unsafe.Pointer(&sa.raw.Port))
  306. p[0] = byte(sa.Port >> 8)
  307. p[1] = byte(sa.Port)
  308. sa.raw.Scope_id = sa.ZoneId
  309. for i := 0; i < len(sa.Addr); i++ {
  310. sa.raw.Addr[i] = sa.Addr[i]
  311. }
  312. return unsafe.Pointer(&sa.raw), SizeofSockaddrInet6, nil
  313. }
  314. func (sa *SockaddrUnix) sockaddr() (unsafe.Pointer, _Socklen, error) {
  315. name := sa.Name
  316. n := len(name)
  317. if n >= len(sa.raw.Path) {
  318. return nil, 0, EINVAL
  319. }
  320. sa.raw.Family = AF_UNIX
  321. for i := 0; i < n; i++ {
  322. sa.raw.Path[i] = int8(name[i])
  323. }
  324. // length is family (uint16), name, NUL.
  325. sl := _Socklen(2)
  326. if n > 0 {
  327. sl += _Socklen(n) + 1
  328. }
  329. if sa.raw.Path[0] == '@' {
  330. sa.raw.Path[0] = 0
  331. // Don't count trailing NUL for abstract address.
  332. sl--
  333. }
  334. return unsafe.Pointer(&sa.raw), sl, nil
  335. }
  336. // SockaddrLinklayer implements the Sockaddr interface for AF_PACKET type sockets.
  337. type SockaddrLinklayer struct {
  338. Protocol uint16
  339. Ifindex int
  340. Hatype uint16
  341. Pkttype uint8
  342. Halen uint8
  343. Addr [8]byte
  344. raw RawSockaddrLinklayer
  345. }
  346. func (sa *SockaddrLinklayer) sockaddr() (unsafe.Pointer, _Socklen, error) {
  347. if sa.Ifindex < 0 || sa.Ifindex > 0x7fffffff {
  348. return nil, 0, EINVAL
  349. }
  350. sa.raw.Family = AF_PACKET
  351. sa.raw.Protocol = sa.Protocol
  352. sa.raw.Ifindex = int32(sa.Ifindex)
  353. sa.raw.Hatype = sa.Hatype
  354. sa.raw.Pkttype = sa.Pkttype
  355. sa.raw.Halen = sa.Halen
  356. for i := 0; i < len(sa.Addr); i++ {
  357. sa.raw.Addr[i] = sa.Addr[i]
  358. }
  359. return unsafe.Pointer(&sa.raw), SizeofSockaddrLinklayer, nil
  360. }
  361. // SockaddrNetlink implements the Sockaddr interface for AF_NETLINK type sockets.
  362. type SockaddrNetlink struct {
  363. Family uint16
  364. Pad uint16
  365. Pid uint32
  366. Groups uint32
  367. raw RawSockaddrNetlink
  368. }
  369. func (sa *SockaddrNetlink) sockaddr() (unsafe.Pointer, _Socklen, error) {
  370. sa.raw.Family = AF_NETLINK
  371. sa.raw.Pad = sa.Pad
  372. sa.raw.Pid = sa.Pid
  373. sa.raw.Groups = sa.Groups
  374. return unsafe.Pointer(&sa.raw), SizeofSockaddrNetlink, nil
  375. }
  376. // SockaddrHCI implements the Sockaddr interface for AF_BLUETOOTH type sockets
  377. // using the HCI protocol.
  378. type SockaddrHCI struct {
  379. Dev uint16
  380. Channel uint16
  381. raw RawSockaddrHCI
  382. }
  383. func (sa *SockaddrHCI) sockaddr() (unsafe.Pointer, _Socklen, error) {
  384. sa.raw.Family = AF_BLUETOOTH
  385. sa.raw.Dev = sa.Dev
  386. sa.raw.Channel = sa.Channel
  387. return unsafe.Pointer(&sa.raw), SizeofSockaddrHCI, nil
  388. }
  389. // SockaddrL2 implements the Sockaddr interface for AF_BLUETOOTH type sockets
  390. // using the L2CAP protocol.
  391. type SockaddrL2 struct {
  392. PSM uint16
  393. CID uint16
  394. Addr [6]uint8
  395. AddrType uint8
  396. raw RawSockaddrL2
  397. }
  398. func (sa *SockaddrL2) sockaddr() (unsafe.Pointer, _Socklen, error) {
  399. sa.raw.Family = AF_BLUETOOTH
  400. psm := (*[2]byte)(unsafe.Pointer(&sa.raw.Psm))
  401. psm[0] = byte(sa.PSM)
  402. psm[1] = byte(sa.PSM >> 8)
  403. for i := 0; i < len(sa.Addr); i++ {
  404. sa.raw.Bdaddr[i] = sa.Addr[len(sa.Addr)-1-i]
  405. }
  406. cid := (*[2]byte)(unsafe.Pointer(&sa.raw.Cid))
  407. cid[0] = byte(sa.CID)
  408. cid[1] = byte(sa.CID >> 8)
  409. sa.raw.Bdaddr_type = sa.AddrType
  410. return unsafe.Pointer(&sa.raw), SizeofSockaddrL2, nil
  411. }
  412. // SockaddrRFCOMM implements the Sockaddr interface for AF_BLUETOOTH type sockets
  413. // using the RFCOMM protocol.
  414. //
  415. // Server example:
  416. //
  417. // fd, _ := Socket(AF_BLUETOOTH, SOCK_STREAM, BTPROTO_RFCOMM)
  418. // _ = unix.Bind(fd, &unix.SockaddrRFCOMM{
  419. // Channel: 1,
  420. // Addr: [6]uint8{0, 0, 0, 0, 0, 0}, // BDADDR_ANY or 00:00:00:00:00:00
  421. // })
  422. // _ = Listen(fd, 1)
  423. // nfd, sa, _ := Accept(fd)
  424. // fmt.Printf("conn addr=%v fd=%d", sa.(*unix.SockaddrRFCOMM).Addr, nfd)
  425. // Read(nfd, buf)
  426. //
  427. // Client example:
  428. //
  429. // fd, _ := Socket(AF_BLUETOOTH, SOCK_STREAM, BTPROTO_RFCOMM)
  430. // _ = Connect(fd, &SockaddrRFCOMM{
  431. // Channel: 1,
  432. // Addr: [6]byte{0x11, 0x22, 0x33, 0xaa, 0xbb, 0xcc}, // CC:BB:AA:33:22:11
  433. // })
  434. // Write(fd, []byte(`hello`))
  435. type SockaddrRFCOMM struct {
  436. // Addr represents a bluetooth address, byte ordering is little-endian.
  437. Addr [6]uint8
  438. // Channel is a designated bluetooth channel, only 1-30 are available for use.
  439. // Since Linux 2.6.7 and further zero value is the first available channel.
  440. Channel uint8
  441. raw RawSockaddrRFCOMM
  442. }
  443. func (sa *SockaddrRFCOMM) sockaddr() (unsafe.Pointer, _Socklen, error) {
  444. sa.raw.Family = AF_BLUETOOTH
  445. sa.raw.Channel = sa.Channel
  446. sa.raw.Bdaddr = sa.Addr
  447. return unsafe.Pointer(&sa.raw), SizeofSockaddrRFCOMM, nil
  448. }
  449. // SockaddrCAN implements the Sockaddr interface for AF_CAN type sockets.
  450. // The RxID and TxID fields are used for transport protocol addressing in
  451. // (CAN_TP16, CAN_TP20, CAN_MCNET, and CAN_ISOTP), they can be left with
  452. // zero values for CAN_RAW and CAN_BCM sockets as they have no meaning.
  453. //
  454. // The SockaddrCAN struct must be bound to the socket file descriptor
  455. // using Bind before the CAN socket can be used.
  456. //
  457. // // Read one raw CAN frame
  458. // fd, _ := Socket(AF_CAN, SOCK_RAW, CAN_RAW)
  459. // addr := &SockaddrCAN{Ifindex: index}
  460. // Bind(fd, addr)
  461. // frame := make([]byte, 16)
  462. // Read(fd, frame)
  463. //
  464. // The full SocketCAN documentation can be found in the linux kernel
  465. // archives at: https://www.kernel.org/doc/Documentation/networking/can.txt
  466. type SockaddrCAN struct {
  467. Ifindex int
  468. RxID uint32
  469. TxID uint32
  470. raw RawSockaddrCAN
  471. }
  472. func (sa *SockaddrCAN) sockaddr() (unsafe.Pointer, _Socklen, error) {
  473. if sa.Ifindex < 0 || sa.Ifindex > 0x7fffffff {
  474. return nil, 0, EINVAL
  475. }
  476. sa.raw.Family = AF_CAN
  477. sa.raw.Ifindex = int32(sa.Ifindex)
  478. rx := (*[4]byte)(unsafe.Pointer(&sa.RxID))
  479. for i := 0; i < 4; i++ {
  480. sa.raw.Addr[i] = rx[i]
  481. }
  482. tx := (*[4]byte)(unsafe.Pointer(&sa.TxID))
  483. for i := 0; i < 4; i++ {
  484. sa.raw.Addr[i+4] = tx[i]
  485. }
  486. return unsafe.Pointer(&sa.raw), SizeofSockaddrCAN, nil
  487. }
  488. // SockaddrCANJ1939 implements the Sockaddr interface for AF_CAN using J1939
  489. // protocol (https://en.wikipedia.org/wiki/SAE_J1939). For more information
  490. // on the purposes of the fields, check the official linux kernel documentation
  491. // available here: https://www.kernel.org/doc/Documentation/networking/j1939.rst
  492. type SockaddrCANJ1939 struct {
  493. Ifindex int
  494. Name uint64
  495. PGN uint32
  496. Addr uint8
  497. raw RawSockaddrCAN
  498. }
  499. func (sa *SockaddrCANJ1939) sockaddr() (unsafe.Pointer, _Socklen, error) {
  500. if sa.Ifindex < 0 || sa.Ifindex > 0x7fffffff {
  501. return nil, 0, EINVAL
  502. }
  503. sa.raw.Family = AF_CAN
  504. sa.raw.Ifindex = int32(sa.Ifindex)
  505. n := (*[8]byte)(unsafe.Pointer(&sa.Name))
  506. for i := 0; i < 8; i++ {
  507. sa.raw.Addr[i] = n[i]
  508. }
  509. p := (*[4]byte)(unsafe.Pointer(&sa.PGN))
  510. for i := 0; i < 4; i++ {
  511. sa.raw.Addr[i+8] = p[i]
  512. }
  513. sa.raw.Addr[12] = sa.Addr
  514. return unsafe.Pointer(&sa.raw), SizeofSockaddrCAN, nil
  515. }
  516. // SockaddrALG implements the Sockaddr interface for AF_ALG type sockets.
  517. // SockaddrALG enables userspace access to the Linux kernel's cryptography
  518. // subsystem. The Type and Name fields specify which type of hash or cipher
  519. // should be used with a given socket.
  520. //
  521. // To create a file descriptor that provides access to a hash or cipher, both
  522. // Bind and Accept must be used. Once the setup process is complete, input
  523. // data can be written to the socket, processed by the kernel, and then read
  524. // back as hash output or ciphertext.
  525. //
  526. // Here is an example of using an AF_ALG socket with SHA1 hashing.
  527. // The initial socket setup process is as follows:
  528. //
  529. // // Open a socket to perform SHA1 hashing.
  530. // fd, _ := unix.Socket(unix.AF_ALG, unix.SOCK_SEQPACKET, 0)
  531. // addr := &unix.SockaddrALG{Type: "hash", Name: "sha1"}
  532. // unix.Bind(fd, addr)
  533. // // Note: unix.Accept does not work at this time; must invoke accept()
  534. // // manually using unix.Syscall.
  535. // hashfd, _, _ := unix.Syscall(unix.SYS_ACCEPT, uintptr(fd), 0, 0)
  536. //
  537. // Once a file descriptor has been returned from Accept, it may be used to
  538. // perform SHA1 hashing. The descriptor is not safe for concurrent use, but
  539. // may be re-used repeatedly with subsequent Write and Read operations.
  540. //
  541. // When hashing a small byte slice or string, a single Write and Read may
  542. // be used:
  543. //
  544. // // Assume hashfd is already configured using the setup process.
  545. // hash := os.NewFile(hashfd, "sha1")
  546. // // Hash an input string and read the results. Each Write discards
  547. // // previous hash state. Read always reads the current state.
  548. // b := make([]byte, 20)
  549. // for i := 0; i < 2; i++ {
  550. // io.WriteString(hash, "Hello, world.")
  551. // hash.Read(b)
  552. // fmt.Println(hex.EncodeToString(b))
  553. // }
  554. // // Output:
  555. // // 2ae01472317d1935a84797ec1983ae243fc6aa28
  556. // // 2ae01472317d1935a84797ec1983ae243fc6aa28
  557. //
  558. // For hashing larger byte slices, or byte streams such as those read from
  559. // a file or socket, use Sendto with MSG_MORE to instruct the kernel to update
  560. // the hash digest instead of creating a new one for a given chunk and finalizing it.
  561. //
  562. // // Assume hashfd and addr are already configured using the setup process.
  563. // hash := os.NewFile(hashfd, "sha1")
  564. // // Hash the contents of a file.
  565. // f, _ := os.Open("/tmp/linux-4.10-rc7.tar.xz")
  566. // b := make([]byte, 4096)
  567. // for {
  568. // n, err := f.Read(b)
  569. // if err == io.EOF {
  570. // break
  571. // }
  572. // unix.Sendto(hashfd, b[:n], unix.MSG_MORE, addr)
  573. // }
  574. // hash.Read(b)
  575. // fmt.Println(hex.EncodeToString(b))
  576. // // Output: 85cdcad0c06eef66f805ecce353bec9accbeecc5
  577. //
  578. // For more information, see: http://www.chronox.de/crypto-API/crypto/userspace-if.html.
  579. type SockaddrALG struct {
  580. Type string
  581. Name string
  582. Feature uint32
  583. Mask uint32
  584. raw RawSockaddrALG
  585. }
  586. func (sa *SockaddrALG) sockaddr() (unsafe.Pointer, _Socklen, error) {
  587. // Leave room for NUL byte terminator.
  588. if len(sa.Type) > 13 {
  589. return nil, 0, EINVAL
  590. }
  591. if len(sa.Name) > 63 {
  592. return nil, 0, EINVAL
  593. }
  594. sa.raw.Family = AF_ALG
  595. sa.raw.Feat = sa.Feature
  596. sa.raw.Mask = sa.Mask
  597. typ, err := ByteSliceFromString(sa.Type)
  598. if err != nil {
  599. return nil, 0, err
  600. }
  601. name, err := ByteSliceFromString(sa.Name)
  602. if err != nil {
  603. return nil, 0, err
  604. }
  605. copy(sa.raw.Type[:], typ)
  606. copy(sa.raw.Name[:], name)
  607. return unsafe.Pointer(&sa.raw), SizeofSockaddrALG, nil
  608. }
  609. // SockaddrVM implements the Sockaddr interface for AF_VSOCK type sockets.
  610. // SockaddrVM provides access to Linux VM sockets: a mechanism that enables
  611. // bidirectional communication between a hypervisor and its guest virtual
  612. // machines.
  613. type SockaddrVM struct {
  614. // CID and Port specify a context ID and port address for a VM socket.
  615. // Guests have a unique CID, and hosts may have a well-known CID of:
  616. // - VMADDR_CID_HYPERVISOR: refers to the hypervisor process.
  617. // - VMADDR_CID_LOCAL: refers to local communication (loopback).
  618. // - VMADDR_CID_HOST: refers to other processes on the host.
  619. CID uint32
  620. Port uint32
  621. Flags uint8
  622. raw RawSockaddrVM
  623. }
  624. func (sa *SockaddrVM) sockaddr() (unsafe.Pointer, _Socklen, error) {
  625. sa.raw.Family = AF_VSOCK
  626. sa.raw.Port = sa.Port
  627. sa.raw.Cid = sa.CID
  628. sa.raw.Flags = sa.Flags
  629. return unsafe.Pointer(&sa.raw), SizeofSockaddrVM, nil
  630. }
  631. type SockaddrXDP struct {
  632. Flags uint16
  633. Ifindex uint32
  634. QueueID uint32
  635. SharedUmemFD uint32
  636. raw RawSockaddrXDP
  637. }
  638. func (sa *SockaddrXDP) sockaddr() (unsafe.Pointer, _Socklen, error) {
  639. sa.raw.Family = AF_XDP
  640. sa.raw.Flags = sa.Flags
  641. sa.raw.Ifindex = sa.Ifindex
  642. sa.raw.Queue_id = sa.QueueID
  643. sa.raw.Shared_umem_fd = sa.SharedUmemFD
  644. return unsafe.Pointer(&sa.raw), SizeofSockaddrXDP, nil
  645. }
  646. // This constant mirrors the #define of PX_PROTO_OE in
  647. // linux/if_pppox.h. We're defining this by hand here instead of
  648. // autogenerating through mkerrors.sh because including
  649. // linux/if_pppox.h causes some declaration conflicts with other
  650. // includes (linux/if_pppox.h includes linux/in.h, which conflicts
  651. // with netinet/in.h). Given that we only need a single zero constant
  652. // out of that file, it's cleaner to just define it by hand here.
  653. const px_proto_oe = 0
  654. type SockaddrPPPoE struct {
  655. SID uint16
  656. Remote []byte
  657. Dev string
  658. raw RawSockaddrPPPoX
  659. }
  660. func (sa *SockaddrPPPoE) sockaddr() (unsafe.Pointer, _Socklen, error) {
  661. if len(sa.Remote) != 6 {
  662. return nil, 0, EINVAL
  663. }
  664. if len(sa.Dev) > IFNAMSIZ-1 {
  665. return nil, 0, EINVAL
  666. }
  667. *(*uint16)(unsafe.Pointer(&sa.raw[0])) = AF_PPPOX
  668. // This next field is in host-endian byte order. We can't use the
  669. // same unsafe pointer cast as above, because this value is not
  670. // 32-bit aligned and some architectures don't allow unaligned
  671. // access.
  672. //
  673. // However, the value of px_proto_oe is 0, so we can use
  674. // encoding/binary helpers to write the bytes without worrying
  675. // about the ordering.
  676. binary.BigEndian.PutUint32(sa.raw[2:6], px_proto_oe)
  677. // This field is deliberately big-endian, unlike the previous
  678. // one. The kernel expects SID to be in network byte order.
  679. binary.BigEndian.PutUint16(sa.raw[6:8], sa.SID)
  680. copy(sa.raw[8:14], sa.Remote)
  681. for i := 14; i < 14+IFNAMSIZ; i++ {
  682. sa.raw[i] = 0
  683. }
  684. copy(sa.raw[14:], sa.Dev)
  685. return unsafe.Pointer(&sa.raw), SizeofSockaddrPPPoX, nil
  686. }
  687. // SockaddrTIPC implements the Sockaddr interface for AF_TIPC type sockets.
  688. // For more information on TIPC, see: http://tipc.sourceforge.net/.
  689. type SockaddrTIPC struct {
  690. // Scope is the publication scopes when binding service/service range.
  691. // Should be set to TIPC_CLUSTER_SCOPE or TIPC_NODE_SCOPE.
  692. Scope int
  693. // Addr is the type of address used to manipulate a socket. Addr must be
  694. // one of:
  695. // - *TIPCSocketAddr: "id" variant in the C addr union
  696. // - *TIPCServiceRange: "nameseq" variant in the C addr union
  697. // - *TIPCServiceName: "name" variant in the C addr union
  698. //
  699. // If nil, EINVAL will be returned when the structure is used.
  700. Addr TIPCAddr
  701. raw RawSockaddrTIPC
  702. }
  703. // TIPCAddr is implemented by types that can be used as an address for
  704. // SockaddrTIPC. It is only implemented by *TIPCSocketAddr, *TIPCServiceRange,
  705. // and *TIPCServiceName.
  706. type TIPCAddr interface {
  707. tipcAddrtype() uint8
  708. tipcAddr() [12]byte
  709. }
  710. func (sa *TIPCSocketAddr) tipcAddr() [12]byte {
  711. var out [12]byte
  712. copy(out[:], (*(*[unsafe.Sizeof(TIPCSocketAddr{})]byte)(unsafe.Pointer(sa)))[:])
  713. return out
  714. }
  715. func (sa *TIPCSocketAddr) tipcAddrtype() uint8 { return TIPC_SOCKET_ADDR }
  716. func (sa *TIPCServiceRange) tipcAddr() [12]byte {
  717. var out [12]byte
  718. copy(out[:], (*(*[unsafe.Sizeof(TIPCServiceRange{})]byte)(unsafe.Pointer(sa)))[:])
  719. return out
  720. }
  721. func (sa *TIPCServiceRange) tipcAddrtype() uint8 { return TIPC_SERVICE_RANGE }
  722. func (sa *TIPCServiceName) tipcAddr() [12]byte {
  723. var out [12]byte
  724. copy(out[:], (*(*[unsafe.Sizeof(TIPCServiceName{})]byte)(unsafe.Pointer(sa)))[:])
  725. return out
  726. }
  727. func (sa *TIPCServiceName) tipcAddrtype() uint8 { return TIPC_SERVICE_ADDR }
  728. func (sa *SockaddrTIPC) sockaddr() (unsafe.Pointer, _Socklen, error) {
  729. if sa.Addr == nil {
  730. return nil, 0, EINVAL
  731. }
  732. sa.raw.Family = AF_TIPC
  733. sa.raw.Scope = int8(sa.Scope)
  734. sa.raw.Addrtype = sa.Addr.tipcAddrtype()
  735. sa.raw.Addr = sa.Addr.tipcAddr()
  736. return unsafe.Pointer(&sa.raw), SizeofSockaddrTIPC, nil
  737. }
  738. // SockaddrL2TPIP implements the Sockaddr interface for IPPROTO_L2TP/AF_INET sockets.
  739. type SockaddrL2TPIP struct {
  740. Addr [4]byte
  741. ConnId uint32
  742. raw RawSockaddrL2TPIP
  743. }
  744. func (sa *SockaddrL2TPIP) sockaddr() (unsafe.Pointer, _Socklen, error) {
  745. sa.raw.Family = AF_INET
  746. sa.raw.Conn_id = sa.ConnId
  747. for i := 0; i < len(sa.Addr); i++ {
  748. sa.raw.Addr[i] = sa.Addr[i]
  749. }
  750. return unsafe.Pointer(&sa.raw), SizeofSockaddrL2TPIP, nil
  751. }
  752. // SockaddrL2TPIP6 implements the Sockaddr interface for IPPROTO_L2TP/AF_INET6 sockets.
  753. type SockaddrL2TPIP6 struct {
  754. Addr [16]byte
  755. ZoneId uint32
  756. ConnId uint32
  757. raw RawSockaddrL2TPIP6
  758. }
  759. func (sa *SockaddrL2TPIP6) sockaddr() (unsafe.Pointer, _Socklen, error) {
  760. sa.raw.Family = AF_INET6
  761. sa.raw.Conn_id = sa.ConnId
  762. sa.raw.Scope_id = sa.ZoneId
  763. for i := 0; i < len(sa.Addr); i++ {
  764. sa.raw.Addr[i] = sa.Addr[i]
  765. }
  766. return unsafe.Pointer(&sa.raw), SizeofSockaddrL2TPIP6, nil
  767. }
  768. // SockaddrIUCV implements the Sockaddr interface for AF_IUCV sockets.
  769. type SockaddrIUCV struct {
  770. UserID string
  771. Name string
  772. raw RawSockaddrIUCV
  773. }
  774. func (sa *SockaddrIUCV) sockaddr() (unsafe.Pointer, _Socklen, error) {
  775. sa.raw.Family = AF_IUCV
  776. // These are EBCDIC encoded by the kernel, but we still need to pad them
  777. // with blanks. Initializing with blanks allows the caller to feed in either
  778. // a padded or an unpadded string.
  779. for i := 0; i < 8; i++ {
  780. sa.raw.Nodeid[i] = ' '
  781. sa.raw.User_id[i] = ' '
  782. sa.raw.Name[i] = ' '
  783. }
  784. if len(sa.UserID) > 8 || len(sa.Name) > 8 {
  785. return nil, 0, EINVAL
  786. }
  787. for i, b := range []byte(sa.UserID[:]) {
  788. sa.raw.User_id[i] = int8(b)
  789. }
  790. for i, b := range []byte(sa.Name[:]) {
  791. sa.raw.Name[i] = int8(b)
  792. }
  793. return unsafe.Pointer(&sa.raw), SizeofSockaddrIUCV, nil
  794. }
  795. type SockaddrNFC struct {
  796. DeviceIdx uint32
  797. TargetIdx uint32
  798. NFCProtocol uint32
  799. raw RawSockaddrNFC
  800. }
  801. func (sa *SockaddrNFC) sockaddr() (unsafe.Pointer, _Socklen, error) {
  802. sa.raw.Sa_family = AF_NFC
  803. sa.raw.Dev_idx = sa.DeviceIdx
  804. sa.raw.Target_idx = sa.TargetIdx
  805. sa.raw.Nfc_protocol = sa.NFCProtocol
  806. return unsafe.Pointer(&sa.raw), SizeofSockaddrNFC, nil
  807. }
  808. type SockaddrNFCLLCP struct {
  809. DeviceIdx uint32
  810. TargetIdx uint32
  811. NFCProtocol uint32
  812. DestinationSAP uint8
  813. SourceSAP uint8
  814. ServiceName string
  815. raw RawSockaddrNFCLLCP
  816. }
  817. func (sa *SockaddrNFCLLCP) sockaddr() (unsafe.Pointer, _Socklen, error) {
  818. sa.raw.Sa_family = AF_NFC
  819. sa.raw.Dev_idx = sa.DeviceIdx
  820. sa.raw.Target_idx = sa.TargetIdx
  821. sa.raw.Nfc_protocol = sa.NFCProtocol
  822. sa.raw.Dsap = sa.DestinationSAP
  823. sa.raw.Ssap = sa.SourceSAP
  824. if len(sa.ServiceName) > len(sa.raw.Service_name) {
  825. return nil, 0, EINVAL
  826. }
  827. copy(sa.raw.Service_name[:], sa.ServiceName)
  828. sa.raw.SetServiceNameLen(len(sa.ServiceName))
  829. return unsafe.Pointer(&sa.raw), SizeofSockaddrNFCLLCP, nil
  830. }
  831. var socketProtocol = func(fd int) (int, error) {
  832. return GetsockoptInt(fd, SOL_SOCKET, SO_PROTOCOL)
  833. }
  834. func anyToSockaddr(fd int, rsa *RawSockaddrAny) (Sockaddr, error) {
  835. switch rsa.Addr.Family {
  836. case AF_NETLINK:
  837. pp := (*RawSockaddrNetlink)(unsafe.Pointer(rsa))
  838. sa := new(SockaddrNetlink)
  839. sa.Family = pp.Family
  840. sa.Pad = pp.Pad
  841. sa.Pid = pp.Pid
  842. sa.Groups = pp.Groups
  843. return sa, nil
  844. case AF_PACKET:
  845. pp := (*RawSockaddrLinklayer)(unsafe.Pointer(rsa))
  846. sa := new(SockaddrLinklayer)
  847. sa.Protocol = pp.Protocol
  848. sa.Ifindex = int(pp.Ifindex)
  849. sa.Hatype = pp.Hatype
  850. sa.Pkttype = pp.Pkttype
  851. sa.Halen = pp.Halen
  852. for i := 0; i < len(sa.Addr); i++ {
  853. sa.Addr[i] = pp.Addr[i]
  854. }
  855. return sa, nil
  856. case AF_UNIX:
  857. pp := (*RawSockaddrUnix)(unsafe.Pointer(rsa))
  858. sa := new(SockaddrUnix)
  859. if pp.Path[0] == 0 {
  860. // "Abstract" Unix domain socket.
  861. // Rewrite leading NUL as @ for textual display.
  862. // (This is the standard convention.)
  863. // Not friendly to overwrite in place,
  864. // but the callers below don't care.
  865. pp.Path[0] = '@'
  866. }
  867. // Assume path ends at NUL.
  868. // This is not technically the Linux semantics for
  869. // abstract Unix domain sockets--they are supposed
  870. // to be uninterpreted fixed-size binary blobs--but
  871. // everyone uses this convention.
  872. n := 0
  873. for n < len(pp.Path) && pp.Path[n] != 0 {
  874. n++
  875. }
  876. bytes := (*[len(pp.Path)]byte)(unsafe.Pointer(&pp.Path[0]))[0:n]
  877. sa.Name = string(bytes)
  878. return sa, nil
  879. case AF_INET:
  880. proto, err := socketProtocol(fd)
  881. if err != nil {
  882. return nil, err
  883. }
  884. switch proto {
  885. case IPPROTO_L2TP:
  886. pp := (*RawSockaddrL2TPIP)(unsafe.Pointer(rsa))
  887. sa := new(SockaddrL2TPIP)
  888. sa.ConnId = pp.Conn_id
  889. for i := 0; i < len(sa.Addr); i++ {
  890. sa.Addr[i] = pp.Addr[i]
  891. }
  892. return sa, nil
  893. default:
  894. pp := (*RawSockaddrInet4)(unsafe.Pointer(rsa))
  895. sa := new(SockaddrInet4)
  896. p := (*[2]byte)(unsafe.Pointer(&pp.Port))
  897. sa.Port = int(p[0])<<8 + int(p[1])
  898. for i := 0; i < len(sa.Addr); i++ {
  899. sa.Addr[i] = pp.Addr[i]
  900. }
  901. return sa, nil
  902. }
  903. case AF_INET6:
  904. proto, err := socketProtocol(fd)
  905. if err != nil {
  906. return nil, err
  907. }
  908. switch proto {
  909. case IPPROTO_L2TP:
  910. pp := (*RawSockaddrL2TPIP6)(unsafe.Pointer(rsa))
  911. sa := new(SockaddrL2TPIP6)
  912. sa.ConnId = pp.Conn_id
  913. sa.ZoneId = pp.Scope_id
  914. for i := 0; i < len(sa.Addr); i++ {
  915. sa.Addr[i] = pp.Addr[i]
  916. }
  917. return sa, nil
  918. default:
  919. pp := (*RawSockaddrInet6)(unsafe.Pointer(rsa))
  920. sa := new(SockaddrInet6)
  921. p := (*[2]byte)(unsafe.Pointer(&pp.Port))
  922. sa.Port = int(p[0])<<8 + int(p[1])
  923. sa.ZoneId = pp.Scope_id
  924. for i := 0; i < len(sa.Addr); i++ {
  925. sa.Addr[i] = pp.Addr[i]
  926. }
  927. return sa, nil
  928. }
  929. case AF_VSOCK:
  930. pp := (*RawSockaddrVM)(unsafe.Pointer(rsa))
  931. sa := &SockaddrVM{
  932. CID: pp.Cid,
  933. Port: pp.Port,
  934. Flags: pp.Flags,
  935. }
  936. return sa, nil
  937. case AF_BLUETOOTH:
  938. proto, err := socketProtocol(fd)
  939. if err != nil {
  940. return nil, err
  941. }
  942. // only BTPROTO_L2CAP and BTPROTO_RFCOMM can accept connections
  943. switch proto {
  944. case BTPROTO_L2CAP:
  945. pp := (*RawSockaddrL2)(unsafe.Pointer(rsa))
  946. sa := &SockaddrL2{
  947. PSM: pp.Psm,
  948. CID: pp.Cid,
  949. Addr: pp.Bdaddr,
  950. AddrType: pp.Bdaddr_type,
  951. }
  952. return sa, nil
  953. case BTPROTO_RFCOMM:
  954. pp := (*RawSockaddrRFCOMM)(unsafe.Pointer(rsa))
  955. sa := &SockaddrRFCOMM{
  956. Channel: pp.Channel,
  957. Addr: pp.Bdaddr,
  958. }
  959. return sa, nil
  960. }
  961. case AF_XDP:
  962. pp := (*RawSockaddrXDP)(unsafe.Pointer(rsa))
  963. sa := &SockaddrXDP{
  964. Flags: pp.Flags,
  965. Ifindex: pp.Ifindex,
  966. QueueID: pp.Queue_id,
  967. SharedUmemFD: pp.Shared_umem_fd,
  968. }
  969. return sa, nil
  970. case AF_PPPOX:
  971. pp := (*RawSockaddrPPPoX)(unsafe.Pointer(rsa))
  972. if binary.BigEndian.Uint32(pp[2:6]) != px_proto_oe {
  973. return nil, EINVAL
  974. }
  975. sa := &SockaddrPPPoE{
  976. SID: binary.BigEndian.Uint16(pp[6:8]),
  977. Remote: pp[8:14],
  978. }
  979. for i := 14; i < 14+IFNAMSIZ; i++ {
  980. if pp[i] == 0 {
  981. sa.Dev = string(pp[14:i])
  982. break
  983. }
  984. }
  985. return sa, nil
  986. case AF_TIPC:
  987. pp := (*RawSockaddrTIPC)(unsafe.Pointer(rsa))
  988. sa := &SockaddrTIPC{
  989. Scope: int(pp.Scope),
  990. }
  991. // Determine which union variant is present in pp.Addr by checking
  992. // pp.Addrtype.
  993. switch pp.Addrtype {
  994. case TIPC_SERVICE_RANGE:
  995. sa.Addr = (*TIPCServiceRange)(unsafe.Pointer(&pp.Addr))
  996. case TIPC_SERVICE_ADDR:
  997. sa.Addr = (*TIPCServiceName)(unsafe.Pointer(&pp.Addr))
  998. case TIPC_SOCKET_ADDR:
  999. sa.Addr = (*TIPCSocketAddr)(unsafe.Pointer(&pp.Addr))
  1000. default:
  1001. return nil, EINVAL
  1002. }
  1003. return sa, nil
  1004. case AF_IUCV:
  1005. pp := (*RawSockaddrIUCV)(unsafe.Pointer(rsa))
  1006. var user [8]byte
  1007. var name [8]byte
  1008. for i := 0; i < 8; i++ {
  1009. user[i] = byte(pp.User_id[i])
  1010. name[i] = byte(pp.Name[i])
  1011. }
  1012. sa := &SockaddrIUCV{
  1013. UserID: string(user[:]),
  1014. Name: string(name[:]),
  1015. }
  1016. return sa, nil
  1017. case AF_CAN:
  1018. proto, err := socketProtocol(fd)
  1019. if err != nil {
  1020. return nil, err
  1021. }
  1022. pp := (*RawSockaddrCAN)(unsafe.Pointer(rsa))
  1023. switch proto {
  1024. case CAN_J1939:
  1025. sa := &SockaddrCANJ1939{
  1026. Ifindex: int(pp.Ifindex),
  1027. }
  1028. name := (*[8]byte)(unsafe.Pointer(&sa.Name))
  1029. for i := 0; i < 8; i++ {
  1030. name[i] = pp.Addr[i]
  1031. }
  1032. pgn := (*[4]byte)(unsafe.Pointer(&sa.PGN))
  1033. for i := 0; i < 4; i++ {
  1034. pgn[i] = pp.Addr[i+8]
  1035. }
  1036. addr := (*[1]byte)(unsafe.Pointer(&sa.Addr))
  1037. addr[0] = pp.Addr[12]
  1038. return sa, nil
  1039. default:
  1040. sa := &SockaddrCAN{
  1041. Ifindex: int(pp.Ifindex),
  1042. }
  1043. rx := (*[4]byte)(unsafe.Pointer(&sa.RxID))
  1044. for i := 0; i < 4; i++ {
  1045. rx[i] = pp.Addr[i]
  1046. }
  1047. tx := (*[4]byte)(unsafe.Pointer(&sa.TxID))
  1048. for i := 0; i < 4; i++ {
  1049. tx[i] = pp.Addr[i+4]
  1050. }
  1051. return sa, nil
  1052. }
  1053. case AF_NFC:
  1054. proto, err := socketProtocol(fd)
  1055. if err != nil {
  1056. return nil, err
  1057. }
  1058. switch proto {
  1059. case NFC_SOCKPROTO_RAW:
  1060. pp := (*RawSockaddrNFC)(unsafe.Pointer(rsa))
  1061. sa := &SockaddrNFC{
  1062. DeviceIdx: pp.Dev_idx,
  1063. TargetIdx: pp.Target_idx,
  1064. NFCProtocol: pp.Nfc_protocol,
  1065. }
  1066. return sa, nil
  1067. case NFC_SOCKPROTO_LLCP:
  1068. pp := (*RawSockaddrNFCLLCP)(unsafe.Pointer(rsa))
  1069. if uint64(pp.Service_name_len) > uint64(len(pp.Service_name)) {
  1070. return nil, EINVAL
  1071. }
  1072. sa := &SockaddrNFCLLCP{
  1073. DeviceIdx: pp.Dev_idx,
  1074. TargetIdx: pp.Target_idx,
  1075. NFCProtocol: pp.Nfc_protocol,
  1076. DestinationSAP: pp.Dsap,
  1077. SourceSAP: pp.Ssap,
  1078. ServiceName: string(pp.Service_name[:pp.Service_name_len]),
  1079. }
  1080. return sa, nil
  1081. default:
  1082. return nil, EINVAL
  1083. }
  1084. }
  1085. return nil, EAFNOSUPPORT
  1086. }
  1087. func Accept(fd int) (nfd int, sa Sockaddr, err error) {
  1088. var rsa RawSockaddrAny
  1089. var len _Socklen = SizeofSockaddrAny
  1090. // Try accept4 first for Android, then try accept for kernel older than 2.6.28
  1091. nfd, err = accept4(fd, &rsa, &len, 0)
  1092. if err == ENOSYS {
  1093. nfd, err = accept(fd, &rsa, &len)
  1094. }
  1095. if err != nil {
  1096. return
  1097. }
  1098. sa, err = anyToSockaddr(fd, &rsa)
  1099. if err != nil {
  1100. Close(nfd)
  1101. nfd = 0
  1102. }
  1103. return
  1104. }
  1105. func Accept4(fd int, flags int) (nfd int, sa Sockaddr, err error) {
  1106. var rsa RawSockaddrAny
  1107. var len _Socklen = SizeofSockaddrAny
  1108. nfd, err = accept4(fd, &rsa, &len, flags)
  1109. if err != nil {
  1110. return
  1111. }
  1112. if len > SizeofSockaddrAny {
  1113. panic("RawSockaddrAny too small")
  1114. }
  1115. sa, err = anyToSockaddr(fd, &rsa)
  1116. if err != nil {
  1117. Close(nfd)
  1118. nfd = 0
  1119. }
  1120. return
  1121. }
  1122. func Getsockname(fd int) (sa Sockaddr, err error) {
  1123. var rsa RawSockaddrAny
  1124. var len _Socklen = SizeofSockaddrAny
  1125. if err = getsockname(fd, &rsa, &len); err != nil {
  1126. return
  1127. }
  1128. return anyToSockaddr(fd, &rsa)
  1129. }
  1130. func GetsockoptIPMreqn(fd, level, opt int) (*IPMreqn, error) {
  1131. var value IPMreqn
  1132. vallen := _Socklen(SizeofIPMreqn)
  1133. err := getsockopt(fd, level, opt, unsafe.Pointer(&value), &vallen)
  1134. return &value, err
  1135. }
  1136. func GetsockoptUcred(fd, level, opt int) (*Ucred, error) {
  1137. var value Ucred
  1138. vallen := _Socklen(SizeofUcred)
  1139. err := getsockopt(fd, level, opt, unsafe.Pointer(&value), &vallen)
  1140. return &value, err
  1141. }
  1142. func GetsockoptTCPInfo(fd, level, opt int) (*TCPInfo, error) {
  1143. var value TCPInfo
  1144. vallen := _Socklen(SizeofTCPInfo)
  1145. err := getsockopt(fd, level, opt, unsafe.Pointer(&value), &vallen)
  1146. return &value, err
  1147. }
  1148. // GetsockoptString returns the string value of the socket option opt for the
  1149. // socket associated with fd at the given socket level.
  1150. func GetsockoptString(fd, level, opt int) (string, error) {
  1151. buf := make([]byte, 256)
  1152. vallen := _Socklen(len(buf))
  1153. err := getsockopt(fd, level, opt, unsafe.Pointer(&buf[0]), &vallen)
  1154. if err != nil {
  1155. if err == ERANGE {
  1156. buf = make([]byte, vallen)
  1157. err = getsockopt(fd, level, opt, unsafe.Pointer(&buf[0]), &vallen)
  1158. }
  1159. if err != nil {
  1160. return "", err
  1161. }
  1162. }
  1163. return string(buf[:vallen-1]), nil
  1164. }
  1165. func GetsockoptTpacketStats(fd, level, opt int) (*TpacketStats, error) {
  1166. var value TpacketStats
  1167. vallen := _Socklen(SizeofTpacketStats)
  1168. err := getsockopt(fd, level, opt, unsafe.Pointer(&value), &vallen)
  1169. return &value, err
  1170. }
  1171. func GetsockoptTpacketStatsV3(fd, level, opt int) (*TpacketStatsV3, error) {
  1172. var value TpacketStatsV3
  1173. vallen := _Socklen(SizeofTpacketStatsV3)
  1174. err := getsockopt(fd, level, opt, unsafe.Pointer(&value), &vallen)
  1175. return &value, err
  1176. }
  1177. func SetsockoptIPMreqn(fd, level, opt int, mreq *IPMreqn) (err error) {
  1178. return setsockopt(fd, level, opt, unsafe.Pointer(mreq), unsafe.Sizeof(*mreq))
  1179. }
  1180. func SetsockoptPacketMreq(fd, level, opt int, mreq *PacketMreq) error {
  1181. return setsockopt(fd, level, opt, unsafe.Pointer(mreq), unsafe.Sizeof(*mreq))
  1182. }
  1183. // SetsockoptSockFprog attaches a classic BPF or an extended BPF program to a
  1184. // socket to filter incoming packets. See 'man 7 socket' for usage information.
  1185. func SetsockoptSockFprog(fd, level, opt int, fprog *SockFprog) error {
  1186. return setsockopt(fd, level, opt, unsafe.Pointer(fprog), unsafe.Sizeof(*fprog))
  1187. }
  1188. func SetsockoptCanRawFilter(fd, level, opt int, filter []CanFilter) error {
  1189. var p unsafe.Pointer
  1190. if len(filter) > 0 {
  1191. p = unsafe.Pointer(&filter[0])
  1192. }
  1193. return setsockopt(fd, level, opt, p, uintptr(len(filter)*SizeofCanFilter))
  1194. }
  1195. func SetsockoptTpacketReq(fd, level, opt int, tp *TpacketReq) error {
  1196. return setsockopt(fd, level, opt, unsafe.Pointer(tp), unsafe.Sizeof(*tp))
  1197. }
  1198. func SetsockoptTpacketReq3(fd, level, opt int, tp *TpacketReq3) error {
  1199. return setsockopt(fd, level, opt, unsafe.Pointer(tp), unsafe.Sizeof(*tp))
  1200. }
  1201. func SetsockoptTCPRepairOpt(fd, level, opt int, o []TCPRepairOpt) (err error) {
  1202. if len(o) == 0 {
  1203. return EINVAL
  1204. }
  1205. return setsockopt(fd, level, opt, unsafe.Pointer(&o[0]), uintptr(SizeofTCPRepairOpt*len(o)))
  1206. }
  1207. // Keyctl Commands (http://man7.org/linux/man-pages/man2/keyctl.2.html)
  1208. // KeyctlInt calls keyctl commands in which each argument is an int.
  1209. // These commands are KEYCTL_REVOKE, KEYCTL_CHOWN, KEYCTL_CLEAR, KEYCTL_LINK,
  1210. // KEYCTL_UNLINK, KEYCTL_NEGATE, KEYCTL_SET_REQKEY_KEYRING, KEYCTL_SET_TIMEOUT,
  1211. // KEYCTL_ASSUME_AUTHORITY, KEYCTL_SESSION_TO_PARENT, KEYCTL_REJECT,
  1212. // KEYCTL_INVALIDATE, and KEYCTL_GET_PERSISTENT.
  1213. //sys KeyctlInt(cmd int, arg2 int, arg3 int, arg4 int, arg5 int) (ret int, err error) = SYS_KEYCTL
  1214. // KeyctlBuffer calls keyctl commands in which the third and fourth
  1215. // arguments are a buffer and its length, respectively.
  1216. // These commands are KEYCTL_UPDATE, KEYCTL_READ, and KEYCTL_INSTANTIATE.
  1217. //sys KeyctlBuffer(cmd int, arg2 int, buf []byte, arg5 int) (ret int, err error) = SYS_KEYCTL
  1218. // KeyctlString calls keyctl commands which return a string.
  1219. // These commands are KEYCTL_DESCRIBE and KEYCTL_GET_SECURITY.
  1220. func KeyctlString(cmd int, id int) (string, error) {
  1221. // We must loop as the string data may change in between the syscalls.
  1222. // We could allocate a large buffer here to reduce the chance that the
  1223. // syscall needs to be called twice; however, this is unnecessary as
  1224. // the performance loss is negligible.
  1225. var buffer []byte
  1226. for {
  1227. // Try to fill the buffer with data
  1228. length, err := KeyctlBuffer(cmd, id, buffer, 0)
  1229. if err != nil {
  1230. return "", err
  1231. }
  1232. // Check if the data was written
  1233. if length <= len(buffer) {
  1234. // Exclude the null terminator
  1235. return string(buffer[:length-1]), nil
  1236. }
  1237. // Make a bigger buffer if needed
  1238. buffer = make([]byte, length)
  1239. }
  1240. }
  1241. // Keyctl commands with special signatures.
  1242. // KeyctlGetKeyringID implements the KEYCTL_GET_KEYRING_ID command.
  1243. // See the full documentation at:
  1244. // http://man7.org/linux/man-pages/man3/keyctl_get_keyring_ID.3.html
  1245. func KeyctlGetKeyringID(id int, create bool) (ringid int, err error) {
  1246. createInt := 0
  1247. if create {
  1248. createInt = 1
  1249. }
  1250. return KeyctlInt(KEYCTL_GET_KEYRING_ID, id, createInt, 0, 0)
  1251. }
  1252. // KeyctlSetperm implements the KEYCTL_SETPERM command. The perm value is the
  1253. // key handle permission mask as described in the "keyctl setperm" section of
  1254. // http://man7.org/linux/man-pages/man1/keyctl.1.html.
  1255. // See the full documentation at:
  1256. // http://man7.org/linux/man-pages/man3/keyctl_setperm.3.html
  1257. func KeyctlSetperm(id int, perm uint32) error {
  1258. _, err := KeyctlInt(KEYCTL_SETPERM, id, int(perm), 0, 0)
  1259. return err
  1260. }
  1261. //sys keyctlJoin(cmd int, arg2 string) (ret int, err error) = SYS_KEYCTL
  1262. // KeyctlJoinSessionKeyring implements the KEYCTL_JOIN_SESSION_KEYRING command.
  1263. // See the full documentation at:
  1264. // http://man7.org/linux/man-pages/man3/keyctl_join_session_keyring.3.html
  1265. func KeyctlJoinSessionKeyring(name string) (ringid int, err error) {
  1266. return keyctlJoin(KEYCTL_JOIN_SESSION_KEYRING, name)
  1267. }
  1268. //sys keyctlSearch(cmd int, arg2 int, arg3 string, arg4 string, arg5 int) (ret int, err error) = SYS_KEYCTL
  1269. // KeyctlSearch implements the KEYCTL_SEARCH command.
  1270. // See the full documentation at:
  1271. // http://man7.org/linux/man-pages/man3/keyctl_search.3.html
  1272. func KeyctlSearch(ringid int, keyType, description string, destRingid int) (id int, err error) {
  1273. return keyctlSearch(KEYCTL_SEARCH, ringid, keyType, description, destRingid)
  1274. }
  1275. //sys keyctlIOV(cmd int, arg2 int, payload []Iovec, arg5 int) (err error) = SYS_KEYCTL
  1276. // KeyctlInstantiateIOV implements the KEYCTL_INSTANTIATE_IOV command. This
  1277. // command is similar to KEYCTL_INSTANTIATE, except that the payload is a slice
  1278. // of Iovec (each of which represents a buffer) instead of a single buffer.
  1279. // See the full documentation at:
  1280. // http://man7.org/linux/man-pages/man3/keyctl_instantiate_iov.3.html
  1281. func KeyctlInstantiateIOV(id int, payload []Iovec, ringid int) error {
  1282. return keyctlIOV(KEYCTL_INSTANTIATE_IOV, id, payload, ringid)
  1283. }
  1284. //sys keyctlDH(cmd int, arg2 *KeyctlDHParams, buf []byte) (ret int, err error) = SYS_KEYCTL
  1285. // KeyctlDHCompute implements the KEYCTL_DH_COMPUTE command. This command
  1286. // computes a Diffie-Hellman shared secret based on the provide params. The
  1287. // secret is written to the provided buffer and the returned size is the number
  1288. // of bytes written (returning an error if there is insufficient space in the
  1289. // buffer). If a nil buffer is passed in, this function returns the minimum
  1290. // buffer length needed to store the appropriate data. Note that this differs
  1291. // from KEYCTL_READ's behavior which always returns the requested payload size.
  1292. // See the full documentation at:
  1293. // http://man7.org/linux/man-pages/man3/keyctl_dh_compute.3.html
  1294. func KeyctlDHCompute(params *KeyctlDHParams, buffer []byte) (size int, err error) {
  1295. return keyctlDH(KEYCTL_DH_COMPUTE, params, buffer)
  1296. }
  1297. // KeyctlRestrictKeyring implements the KEYCTL_RESTRICT_KEYRING command. This
  1298. // command limits the set of keys that can be linked to the keyring, regardless
  1299. // of keyring permissions. The command requires the "setattr" permission.
  1300. //
  1301. // When called with an empty keyType the command locks the keyring, preventing
  1302. // any further keys from being linked to the keyring.
  1303. //
  1304. // The "asymmetric" keyType defines restrictions requiring key payloads to be
  1305. // DER encoded X.509 certificates signed by keys in another keyring. Restrictions
  1306. // for "asymmetric" include "builtin_trusted", "builtin_and_secondary_trusted",
  1307. // "key_or_keyring:<key>", and "key_or_keyring:<key>:chain".
  1308. //
  1309. // As of Linux 4.12, only the "asymmetric" keyType defines type-specific
  1310. // restrictions.
  1311. //
  1312. // See the full documentation at:
  1313. // http://man7.org/linux/man-pages/man3/keyctl_restrict_keyring.3.html
  1314. // http://man7.org/linux/man-pages/man2/keyctl.2.html
  1315. func KeyctlRestrictKeyring(ringid int, keyType string, restriction string) error {
  1316. if keyType == "" {
  1317. return keyctlRestrictKeyring(KEYCTL_RESTRICT_KEYRING, ringid)
  1318. }
  1319. return keyctlRestrictKeyringByType(KEYCTL_RESTRICT_KEYRING, ringid, keyType, restriction)
  1320. }
  1321. //sys keyctlRestrictKeyringByType(cmd int, arg2 int, keyType string, restriction string) (err error) = SYS_KEYCTL
  1322. //sys keyctlRestrictKeyring(cmd int, arg2 int) (err error) = SYS_KEYCTL
  1323. func Recvmsg(fd int, p, oob []byte, flags int) (n, oobn int, recvflags int, from Sockaddr, err error) {
  1324. var msg Msghdr
  1325. var rsa RawSockaddrAny
  1326. msg.Name = (*byte)(unsafe.Pointer(&rsa))
  1327. msg.Namelen = uint32(SizeofSockaddrAny)
  1328. var iov Iovec
  1329. if len(p) > 0 {
  1330. iov.Base = &p[0]
  1331. iov.SetLen(len(p))
  1332. }
  1333. var dummy byte
  1334. if len(oob) > 0 {
  1335. if len(p) == 0 {
  1336. var sockType int
  1337. sockType, err = GetsockoptInt(fd, SOL_SOCKET, SO_TYPE)
  1338. if err != nil {
  1339. return
  1340. }
  1341. // receive at least one normal byte
  1342. if sockType != SOCK_DGRAM {
  1343. iov.Base = &dummy
  1344. iov.SetLen(1)
  1345. }
  1346. }
  1347. msg.Control = &oob[0]
  1348. msg.SetControllen(len(oob))
  1349. }
  1350. msg.Iov = &iov
  1351. msg.Iovlen = 1
  1352. if n, err = recvmsg(fd, &msg, flags); err != nil {
  1353. return
  1354. }
  1355. oobn = int(msg.Controllen)
  1356. recvflags = int(msg.Flags)
  1357. // source address is only specified if the socket is unconnected
  1358. if rsa.Addr.Family != AF_UNSPEC {
  1359. from, err = anyToSockaddr(fd, &rsa)
  1360. }
  1361. return
  1362. }
  1363. func Sendmsg(fd int, p, oob []byte, to Sockaddr, flags int) (err error) {
  1364. _, err = SendmsgN(fd, p, oob, to, flags)
  1365. return
  1366. }
  1367. func SendmsgN(fd int, p, oob []byte, to Sockaddr, flags int) (n int, err error) {
  1368. var ptr unsafe.Pointer
  1369. var salen _Socklen
  1370. if to != nil {
  1371. var err error
  1372. ptr, salen, err = to.sockaddr()
  1373. if err != nil {
  1374. return 0, err
  1375. }
  1376. }
  1377. var msg Msghdr
  1378. msg.Name = (*byte)(ptr)
  1379. msg.Namelen = uint32(salen)
  1380. var iov Iovec
  1381. if len(p) > 0 {
  1382. iov.Base = &p[0]
  1383. iov.SetLen(len(p))
  1384. }
  1385. var dummy byte
  1386. if len(oob) > 0 {
  1387. if len(p) == 0 {
  1388. var sockType int
  1389. sockType, err = GetsockoptInt(fd, SOL_SOCKET, SO_TYPE)
  1390. if err != nil {
  1391. return 0, err
  1392. }
  1393. // send at least one normal byte
  1394. if sockType != SOCK_DGRAM {
  1395. iov.Base = &dummy
  1396. iov.SetLen(1)
  1397. }
  1398. }
  1399. msg.Control = &oob[0]
  1400. msg.SetControllen(len(oob))
  1401. }
  1402. msg.Iov = &iov
  1403. msg.Iovlen = 1
  1404. if n, err = sendmsg(fd, &msg, flags); err != nil {
  1405. return 0, err
  1406. }
  1407. if len(oob) > 0 && len(p) == 0 {
  1408. n = 0
  1409. }
  1410. return n, nil
  1411. }
  1412. // BindToDevice binds the socket associated with fd to device.
  1413. func BindToDevice(fd int, device string) (err error) {
  1414. return SetsockoptString(fd, SOL_SOCKET, SO_BINDTODEVICE, device)
  1415. }
  1416. //sys ptrace(request int, pid int, addr uintptr, data uintptr) (err error)
  1417. func ptracePeek(req int, pid int, addr uintptr, out []byte) (count int, err error) {
  1418. // The peek requests are machine-size oriented, so we wrap it
  1419. // to retrieve arbitrary-length data.
  1420. // The ptrace syscall differs from glibc's ptrace.
  1421. // Peeks returns the word in *data, not as the return value.
  1422. var buf [SizeofPtr]byte
  1423. // Leading edge. PEEKTEXT/PEEKDATA don't require aligned
  1424. // access (PEEKUSER warns that it might), but if we don't
  1425. // align our reads, we might straddle an unmapped page
  1426. // boundary and not get the bytes leading up to the page
  1427. // boundary.
  1428. n := 0
  1429. if addr%SizeofPtr != 0 {
  1430. err = ptrace(req, pid, addr-addr%SizeofPtr, uintptr(unsafe.Pointer(&buf[0])))
  1431. if err != nil {
  1432. return 0, err
  1433. }
  1434. n += copy(out, buf[addr%SizeofPtr:])
  1435. out = out[n:]
  1436. }
  1437. // Remainder.
  1438. for len(out) > 0 {
  1439. // We use an internal buffer to guarantee alignment.
  1440. // It's not documented if this is necessary, but we're paranoid.
  1441. err = ptrace(req, pid, addr+uintptr(n), uintptr(unsafe.Pointer(&buf[0])))
  1442. if err != nil {
  1443. return n, err
  1444. }
  1445. copied := copy(out, buf[0:])
  1446. n += copied
  1447. out = out[copied:]
  1448. }
  1449. return n, nil
  1450. }
  1451. func PtracePeekText(pid int, addr uintptr, out []byte) (count int, err error) {
  1452. return ptracePeek(PTRACE_PEEKTEXT, pid, addr, out)
  1453. }
  1454. func PtracePeekData(pid int, addr uintptr, out []byte) (count int, err error) {
  1455. return ptracePeek(PTRACE_PEEKDATA, pid, addr, out)
  1456. }
  1457. func PtracePeekUser(pid int, addr uintptr, out []byte) (count int, err error) {
  1458. return ptracePeek(PTRACE_PEEKUSR, pid, addr, out)
  1459. }
  1460. func ptracePoke(pokeReq int, peekReq int, pid int, addr uintptr, data []byte) (count int, err error) {
  1461. // As for ptracePeek, we need to align our accesses to deal
  1462. // with the possibility of straddling an invalid page.
  1463. // Leading edge.
  1464. n := 0
  1465. if addr%SizeofPtr != 0 {
  1466. var buf [SizeofPtr]byte
  1467. err = ptrace(peekReq, pid, addr-addr%SizeofPtr, uintptr(unsafe.Pointer(&buf[0])))
  1468. if err != nil {
  1469. return 0, err
  1470. }
  1471. n += copy(buf[addr%SizeofPtr:], data)
  1472. word := *((*uintptr)(unsafe.Pointer(&buf[0])))
  1473. err = ptrace(pokeReq, pid, addr-addr%SizeofPtr, word)
  1474. if err != nil {
  1475. return 0, err
  1476. }
  1477. data = data[n:]
  1478. }
  1479. // Interior.
  1480. for len(data) > SizeofPtr {
  1481. word := *((*uintptr)(unsafe.Pointer(&data[0])))
  1482. err = ptrace(pokeReq, pid, addr+uintptr(n), word)
  1483. if err != nil {
  1484. return n, err
  1485. }
  1486. n += SizeofPtr
  1487. data = data[SizeofPtr:]
  1488. }
  1489. // Trailing edge.
  1490. if len(data) > 0 {
  1491. var buf [SizeofPtr]byte
  1492. err = ptrace(peekReq, pid, addr+uintptr(n), uintptr(unsafe.Pointer(&buf[0])))
  1493. if err != nil {
  1494. return n, err
  1495. }
  1496. copy(buf[0:], data)
  1497. word := *((*uintptr)(unsafe.Pointer(&buf[0])))
  1498. err = ptrace(pokeReq, pid, addr+uintptr(n), word)
  1499. if err != nil {
  1500. return n, err
  1501. }
  1502. n += len(data)
  1503. }
  1504. return n, nil
  1505. }
  1506. func PtracePokeText(pid int, addr uintptr, data []byte) (count int, err error) {
  1507. return ptracePoke(PTRACE_POKETEXT, PTRACE_PEEKTEXT, pid, addr, data)
  1508. }
  1509. func PtracePokeData(pid int, addr uintptr, data []byte) (count int, err error) {
  1510. return ptracePoke(PTRACE_POKEDATA, PTRACE_PEEKDATA, pid, addr, data)
  1511. }
  1512. func PtracePokeUser(pid int, addr uintptr, data []byte) (count int, err error) {
  1513. return ptracePoke(PTRACE_POKEUSR, PTRACE_PEEKUSR, pid, addr, data)
  1514. }
  1515. func PtraceGetRegs(pid int, regsout *PtraceRegs) (err error) {
  1516. return ptrace(PTRACE_GETREGS, pid, 0, uintptr(unsafe.Pointer(regsout)))
  1517. }
  1518. func PtraceSetRegs(pid int, regs *PtraceRegs) (err error) {
  1519. return ptrace(PTRACE_SETREGS, pid, 0, uintptr(unsafe.Pointer(regs)))
  1520. }
  1521. func PtraceSetOptions(pid int, options int) (err error) {
  1522. return ptrace(PTRACE_SETOPTIONS, pid, 0, uintptr(options))
  1523. }
  1524. func PtraceGetEventMsg(pid int) (msg uint, err error) {
  1525. var data _C_long
  1526. err = ptrace(PTRACE_GETEVENTMSG, pid, 0, uintptr(unsafe.Pointer(&data)))
  1527. msg = uint(data)
  1528. return
  1529. }
  1530. func PtraceCont(pid int, signal int) (err error) {
  1531. return ptrace(PTRACE_CONT, pid, 0, uintptr(signal))
  1532. }
  1533. func PtraceSyscall(pid int, signal int) (err error) {
  1534. return ptrace(PTRACE_SYSCALL, pid, 0, uintptr(signal))
  1535. }
  1536. func PtraceSingleStep(pid int) (err error) { return ptrace(PTRACE_SINGLESTEP, pid, 0, 0) }
  1537. func PtraceInterrupt(pid int) (err error) { return ptrace(PTRACE_INTERRUPT, pid, 0, 0) }
  1538. func PtraceAttach(pid int) (err error) { return ptrace(PTRACE_ATTACH, pid, 0, 0) }
  1539. func PtraceSeize(pid int) (err error) { return ptrace(PTRACE_SEIZE, pid, 0, 0) }
  1540. func PtraceDetach(pid int) (err error) { return ptrace(PTRACE_DETACH, pid, 0, 0) }
  1541. //sys reboot(magic1 uint, magic2 uint, cmd int, arg string) (err error)
  1542. func Reboot(cmd int) (err error) {
  1543. return reboot(LINUX_REBOOT_MAGIC1, LINUX_REBOOT_MAGIC2, cmd, "")
  1544. }
  1545. func direntIno(buf []byte) (uint64, bool) {
  1546. return readInt(buf, unsafe.Offsetof(Dirent{}.Ino), unsafe.Sizeof(Dirent{}.Ino))
  1547. }
  1548. func direntReclen(buf []byte) (uint64, bool) {
  1549. return readInt(buf, unsafe.Offsetof(Dirent{}.Reclen), unsafe.Sizeof(Dirent{}.Reclen))
  1550. }
  1551. func direntNamlen(buf []byte) (uint64, bool) {
  1552. reclen, ok := direntReclen(buf)
  1553. if !ok {
  1554. return 0, false
  1555. }
  1556. return reclen - uint64(unsafe.Offsetof(Dirent{}.Name)), true
  1557. }
  1558. //sys mount(source string, target string, fstype string, flags uintptr, data *byte) (err error)
  1559. func Mount(source string, target string, fstype string, flags uintptr, data string) (err error) {
  1560. // Certain file systems get rather angry and EINVAL if you give
  1561. // them an empty string of data, rather than NULL.
  1562. if data == "" {
  1563. return mount(source, target, fstype, flags, nil)
  1564. }
  1565. datap, err := BytePtrFromString(data)
  1566. if err != nil {
  1567. return err
  1568. }
  1569. return mount(source, target, fstype, flags, datap)
  1570. }
  1571. func Sendfile(outfd int, infd int, offset *int64, count int) (written int, err error) {
  1572. if raceenabled {
  1573. raceReleaseMerge(unsafe.Pointer(&ioSync))
  1574. }
  1575. return sendfile(outfd, infd, offset, count)
  1576. }
  1577. // Sendto
  1578. // Recvfrom
  1579. // Socketpair
  1580. /*
  1581. * Direct access
  1582. */
  1583. //sys Acct(path string) (err error)
  1584. //sys AddKey(keyType string, description string, payload []byte, ringid int) (id int, err error)
  1585. //sys Adjtimex(buf *Timex) (state int, err error)
  1586. //sysnb Capget(hdr *CapUserHeader, data *CapUserData) (err error)
  1587. //sysnb Capset(hdr *CapUserHeader, data *CapUserData) (err error)
  1588. //sys Chdir(path string) (err error)
  1589. //sys Chroot(path string) (err error)
  1590. //sys ClockGetres(clockid int32, res *Timespec) (err error)
  1591. //sys ClockGettime(clockid int32, time *Timespec) (err error)
  1592. //sys ClockNanosleep(clockid int32, flags int, request *Timespec, remain *Timespec) (err error)
  1593. //sys Close(fd int) (err error)
  1594. //sys CloseRange(first uint, last uint, flags uint) (err error)
  1595. //sys CopyFileRange(rfd int, roff *int64, wfd int, woff *int64, len int, flags int) (n int, err error)
  1596. //sys DeleteModule(name string, flags int) (err error)
  1597. //sys Dup(oldfd int) (fd int, err error)
  1598. func Dup2(oldfd, newfd int) error {
  1599. // Android O and newer blocks dup2; riscv and arm64 don't implement dup2.
  1600. if runtime.GOOS == "android" || runtime.GOARCH == "riscv64" || runtime.GOARCH == "arm64" {
  1601. return Dup3(oldfd, newfd, 0)
  1602. }
  1603. return dup2(oldfd, newfd)
  1604. }
  1605. //sys Dup3(oldfd int, newfd int, flags int) (err error)
  1606. //sysnb EpollCreate1(flag int) (fd int, err error)
  1607. //sysnb EpollCtl(epfd int, op int, fd int, event *EpollEvent) (err error)
  1608. //sys Eventfd(initval uint, flags int) (fd int, err error) = SYS_EVENTFD2
  1609. //sys Exit(code int) = SYS_EXIT_GROUP
  1610. //sys Fallocate(fd int, mode uint32, off int64, len int64) (err error)
  1611. //sys Fchdir(fd int) (err error)
  1612. //sys Fchmod(fd int, mode uint32) (err error)
  1613. //sys Fchownat(dirfd int, path string, uid int, gid int, flags int) (err error)
  1614. //sys Fdatasync(fd int) (err error)
  1615. //sys Fgetxattr(fd int, attr string, dest []byte) (sz int, err error)
  1616. //sys FinitModule(fd int, params string, flags int) (err error)
  1617. //sys Flistxattr(fd int, dest []byte) (sz int, err error)
  1618. //sys Flock(fd int, how int) (err error)
  1619. //sys Fremovexattr(fd int, attr string) (err error)
  1620. //sys Fsetxattr(fd int, attr string, dest []byte, flags int) (err error)
  1621. //sys Fsync(fd int) (err error)
  1622. //sys Getdents(fd int, buf []byte) (n int, err error) = SYS_GETDENTS64
  1623. //sysnb Getpgid(pid int) (pgid int, err error)
  1624. func Getpgrp() (pid int) {
  1625. pid, _ = Getpgid(0)
  1626. return
  1627. }
  1628. //sysnb Getpid() (pid int)
  1629. //sysnb Getppid() (ppid int)
  1630. //sys Getpriority(which int, who int) (prio int, err error)
  1631. //sys Getrandom(buf []byte, flags int) (n int, err error)
  1632. //sysnb Getrusage(who int, rusage *Rusage) (err error)
  1633. //sysnb Getsid(pid int) (sid int, err error)
  1634. //sysnb Gettid() (tid int)
  1635. //sys Getxattr(path string, attr string, dest []byte) (sz int, err error)
  1636. //sys InitModule(moduleImage []byte, params string) (err error)
  1637. //sys InotifyAddWatch(fd int, pathname string, mask uint32) (watchdesc int, err error)
  1638. //sysnb InotifyInit1(flags int) (fd int, err error)
  1639. //sysnb InotifyRmWatch(fd int, watchdesc uint32) (success int, err error)
  1640. //sysnb Kill(pid int, sig syscall.Signal) (err error)
  1641. //sys Klogctl(typ int, buf []byte) (n int, err error) = SYS_SYSLOG
  1642. //sys Lgetxattr(path string, attr string, dest []byte) (sz int, err error)
  1643. //sys Listxattr(path string, dest []byte) (sz int, err error)
  1644. //sys Llistxattr(path string, dest []byte) (sz int, err error)
  1645. //sys Lremovexattr(path string, attr string) (err error)
  1646. //sys Lsetxattr(path string, attr string, data []byte, flags int) (err error)
  1647. //sys MemfdCreate(name string, flags int) (fd int, err error)
  1648. //sys Mkdirat(dirfd int, path string, mode uint32) (err error)
  1649. //sys Mknodat(dirfd int, path string, mode uint32, dev int) (err error)
  1650. //sys Nanosleep(time *Timespec, leftover *Timespec) (err error)
  1651. //sys PerfEventOpen(attr *PerfEventAttr, pid int, cpu int, groupFd int, flags int) (fd int, err error)
  1652. //sys PivotRoot(newroot string, putold string) (err error) = SYS_PIVOT_ROOT
  1653. //sysnb Prlimit(pid int, resource int, newlimit *Rlimit, old *Rlimit) (err error) = SYS_PRLIMIT64
  1654. //sys Prctl(option int, arg2 uintptr, arg3 uintptr, arg4 uintptr, arg5 uintptr) (err error)
  1655. //sys Pselect(nfd int, r *FdSet, w *FdSet, e *FdSet, timeout *Timespec, sigmask *Sigset_t) (n int, err error) = SYS_PSELECT6
  1656. //sys read(fd int, p []byte) (n int, err error)
  1657. //sys Removexattr(path string, attr string) (err error)
  1658. //sys Renameat2(olddirfd int, oldpath string, newdirfd int, newpath string, flags uint) (err error)
  1659. //sys RequestKey(keyType string, description string, callback string, destRingid int) (id int, err error)
  1660. //sys Setdomainname(p []byte) (err error)
  1661. //sys Sethostname(p []byte) (err error)
  1662. //sysnb Setpgid(pid int, pgid int) (err error)
  1663. //sysnb Setsid() (pid int, err error)
  1664. //sysnb Settimeofday(tv *Timeval) (err error)
  1665. //sys Setns(fd int, nstype int) (err error)
  1666. // PrctlRetInt performs a prctl operation specified by option and further
  1667. // optional arguments arg2 through arg5 depending on option. It returns a
  1668. // non-negative integer that is returned by the prctl syscall.
  1669. func PrctlRetInt(option int, arg2 uintptr, arg3 uintptr, arg4 uintptr, arg5 uintptr) (int, error) {
  1670. ret, _, err := Syscall6(SYS_PRCTL, uintptr(option), uintptr(arg2), uintptr(arg3), uintptr(arg4), uintptr(arg5), 0)
  1671. if err != 0 {
  1672. return 0, err
  1673. }
  1674. return int(ret), nil
  1675. }
  1676. // issue 1435.
  1677. // On linux Setuid and Setgid only affects the current thread, not the process.
  1678. // This does not match what most callers expect so we must return an error
  1679. // here rather than letting the caller think that the call succeeded.
  1680. func Setuid(uid int) (err error) {
  1681. return EOPNOTSUPP
  1682. }
  1683. func Setgid(uid int) (err error) {
  1684. return EOPNOTSUPP
  1685. }
  1686. // SetfsgidRetGid sets fsgid for current thread and returns previous fsgid set.
  1687. // setfsgid(2) will return a non-nil error only if its caller lacks CAP_SETUID capability.
  1688. // If the call fails due to other reasons, current fsgid will be returned.
  1689. func SetfsgidRetGid(gid int) (int, error) {
  1690. return setfsgid(gid)
  1691. }
  1692. // SetfsuidRetUid sets fsuid for current thread and returns previous fsuid set.
  1693. // setfsgid(2) will return a non-nil error only if its caller lacks CAP_SETUID capability
  1694. // If the call fails due to other reasons, current fsuid will be returned.
  1695. func SetfsuidRetUid(uid int) (int, error) {
  1696. return setfsuid(uid)
  1697. }
  1698. func Setfsgid(gid int) error {
  1699. _, err := setfsgid(gid)
  1700. return err
  1701. }
  1702. func Setfsuid(uid int) error {
  1703. _, err := setfsuid(uid)
  1704. return err
  1705. }
  1706. func Signalfd(fd int, sigmask *Sigset_t, flags int) (newfd int, err error) {
  1707. return signalfd(fd, sigmask, _C__NSIG/8, flags)
  1708. }
  1709. //sys Setpriority(which int, who int, prio int) (err error)
  1710. //sys Setxattr(path string, attr string, data []byte, flags int) (err error)
  1711. //sys signalfd(fd int, sigmask *Sigset_t, maskSize uintptr, flags int) (newfd int, err error) = SYS_SIGNALFD4
  1712. //sys Statx(dirfd int, path string, flags int, mask int, stat *Statx_t) (err error)
  1713. //sys Sync()
  1714. //sys Syncfs(fd int) (err error)
  1715. //sysnb Sysinfo(info *Sysinfo_t) (err error)
  1716. //sys Tee(rfd int, wfd int, len int, flags int) (n int64, err error)
  1717. //sysnb TimerfdCreate(clockid int, flags int) (fd int, err error)
  1718. //sysnb TimerfdGettime(fd int, currValue *ItimerSpec) (err error)
  1719. //sysnb TimerfdSettime(fd int, flags int, newValue *ItimerSpec, oldValue *ItimerSpec) (err error)
  1720. //sysnb Tgkill(tgid int, tid int, sig syscall.Signal) (err error)
  1721. //sysnb Times(tms *Tms) (ticks uintptr, err error)
  1722. //sysnb Umask(mask int) (oldmask int)
  1723. //sysnb Uname(buf *Utsname) (err error)
  1724. //sys Unmount(target string, flags int) (err error) = SYS_UMOUNT2
  1725. //sys Unshare(flags int) (err error)
  1726. //sys write(fd int, p []byte) (n int, err error)
  1727. //sys exitThread(code int) (err error) = SYS_EXIT
  1728. //sys readlen(fd int, p *byte, np int) (n int, err error) = SYS_READ
  1729. //sys writelen(fd int, p *byte, np int) (n int, err error) = SYS_WRITE
  1730. //sys readv(fd int, iovs []Iovec) (n int, err error) = SYS_READV
  1731. //sys writev(fd int, iovs []Iovec) (n int, err error) = SYS_WRITEV
  1732. //sys preadv(fd int, iovs []Iovec, offs_l uintptr, offs_h uintptr) (n int, err error) = SYS_PREADV
  1733. //sys pwritev(fd int, iovs []Iovec, offs_l uintptr, offs_h uintptr) (n int, err error) = SYS_PWRITEV
  1734. //sys preadv2(fd int, iovs []Iovec, offs_l uintptr, offs_h uintptr, flags int) (n int, err error) = SYS_PREADV2
  1735. //sys pwritev2(fd int, iovs []Iovec, offs_l uintptr, offs_h uintptr, flags int) (n int, err error) = SYS_PWRITEV2
  1736. func bytes2iovec(bs [][]byte) []Iovec {
  1737. iovecs := make([]Iovec, len(bs))
  1738. for i, b := range bs {
  1739. iovecs[i].SetLen(len(b))
  1740. if len(b) > 0 {
  1741. iovecs[i].Base = &b[0]
  1742. } else {
  1743. iovecs[i].Base = (*byte)(unsafe.Pointer(&_zero))
  1744. }
  1745. }
  1746. return iovecs
  1747. }
  1748. // offs2lohi splits offs into its lower and upper unsigned long. On 64-bit
  1749. // systems, hi will always be 0. On 32-bit systems, offs will be split in half.
  1750. // preadv/pwritev chose this calling convention so they don't need to add a
  1751. // padding-register for alignment on ARM.
  1752. func offs2lohi(offs int64) (lo, hi uintptr) {
  1753. return uintptr(offs), uintptr(uint64(offs) >> SizeofLong)
  1754. }
  1755. func Readv(fd int, iovs [][]byte) (n int, err error) {
  1756. iovecs := bytes2iovec(iovs)
  1757. n, err = readv(fd, iovecs)
  1758. readvRacedetect(iovecs, n, err)
  1759. return n, err
  1760. }
  1761. func Preadv(fd int, iovs [][]byte, offset int64) (n int, err error) {
  1762. iovecs := bytes2iovec(iovs)
  1763. lo, hi := offs2lohi(offset)
  1764. n, err = preadv(fd, iovecs, lo, hi)
  1765. readvRacedetect(iovecs, n, err)
  1766. return n, err
  1767. }
  1768. func Preadv2(fd int, iovs [][]byte, offset int64, flags int) (n int, err error) {
  1769. iovecs := bytes2iovec(iovs)
  1770. lo, hi := offs2lohi(offset)
  1771. n, err = preadv2(fd, iovecs, lo, hi, flags)
  1772. readvRacedetect(iovecs, n, err)
  1773. return n, err
  1774. }
  1775. func readvRacedetect(iovecs []Iovec, n int, err error) {
  1776. if !raceenabled {
  1777. return
  1778. }
  1779. for i := 0; n > 0 && i < len(iovecs); i++ {
  1780. m := int(iovecs[i].Len)
  1781. if m > n {
  1782. m = n
  1783. }
  1784. n -= m
  1785. if m > 0 {
  1786. raceWriteRange(unsafe.Pointer(iovecs[i].Base), m)
  1787. }
  1788. }
  1789. if err == nil {
  1790. raceAcquire(unsafe.Pointer(&ioSync))
  1791. }
  1792. }
  1793. func Writev(fd int, iovs [][]byte) (n int, err error) {
  1794. iovecs := bytes2iovec(iovs)
  1795. if raceenabled {
  1796. raceReleaseMerge(unsafe.Pointer(&ioSync))
  1797. }
  1798. n, err = writev(fd, iovecs)
  1799. writevRacedetect(iovecs, n)
  1800. return n, err
  1801. }
  1802. func Pwritev(fd int, iovs [][]byte, offset int64) (n int, err error) {
  1803. iovecs := bytes2iovec(iovs)
  1804. if raceenabled {
  1805. raceReleaseMerge(unsafe.Pointer(&ioSync))
  1806. }
  1807. lo, hi := offs2lohi(offset)
  1808. n, err = pwritev(fd, iovecs, lo, hi)
  1809. writevRacedetect(iovecs, n)
  1810. return n, err
  1811. }
  1812. func Pwritev2(fd int, iovs [][]byte, offset int64, flags int) (n int, err error) {
  1813. iovecs := bytes2iovec(iovs)
  1814. if raceenabled {
  1815. raceReleaseMerge(unsafe.Pointer(&ioSync))
  1816. }
  1817. lo, hi := offs2lohi(offset)
  1818. n, err = pwritev2(fd, iovecs, lo, hi, flags)
  1819. writevRacedetect(iovecs, n)
  1820. return n, err
  1821. }
  1822. func writevRacedetect(iovecs []Iovec, n int) {
  1823. if !raceenabled {
  1824. return
  1825. }
  1826. for i := 0; n > 0 && i < len(iovecs); i++ {
  1827. m := int(iovecs[i].Len)
  1828. if m > n {
  1829. m = n
  1830. }
  1831. n -= m
  1832. if m > 0 {
  1833. raceReadRange(unsafe.Pointer(iovecs[i].Base), m)
  1834. }
  1835. }
  1836. }
  1837. // mmap varies by architecture; see syscall_linux_*.go.
  1838. //sys munmap(addr uintptr, length uintptr) (err error)
  1839. var mapper = &mmapper{
  1840. active: make(map[*byte][]byte),
  1841. mmap: mmap,
  1842. munmap: munmap,
  1843. }
  1844. func Mmap(fd int, offset int64, length int, prot int, flags int) (data []byte, err error) {
  1845. return mapper.Mmap(fd, offset, length, prot, flags)
  1846. }
  1847. func Munmap(b []byte) (err error) {
  1848. return mapper.Munmap(b)
  1849. }
  1850. //sys Madvise(b []byte, advice int) (err error)
  1851. //sys Mprotect(b []byte, prot int) (err error)
  1852. //sys Mlock(b []byte) (err error)
  1853. //sys Mlockall(flags int) (err error)
  1854. //sys Msync(b []byte, flags int) (err error)
  1855. //sys Munlock(b []byte) (err error)
  1856. //sys Munlockall() (err error)
  1857. // Vmsplice splices user pages from a slice of Iovecs into a pipe specified by fd,
  1858. // using the specified flags.
  1859. func Vmsplice(fd int, iovs []Iovec, flags int) (int, error) {
  1860. var p unsafe.Pointer
  1861. if len(iovs) > 0 {
  1862. p = unsafe.Pointer(&iovs[0])
  1863. }
  1864. n, _, errno := Syscall6(SYS_VMSPLICE, uintptr(fd), uintptr(p), uintptr(len(iovs)), uintptr(flags), 0, 0)
  1865. if errno != 0 {
  1866. return 0, syscall.Errno(errno)
  1867. }
  1868. return int(n), nil
  1869. }
  1870. func isGroupMember(gid int) bool {
  1871. groups, err := Getgroups()
  1872. if err != nil {
  1873. return false
  1874. }
  1875. for _, g := range groups {
  1876. if g == gid {
  1877. return true
  1878. }
  1879. }
  1880. return false
  1881. }
  1882. //sys faccessat(dirfd int, path string, mode uint32) (err error)
  1883. //sys Faccessat2(dirfd int, path string, mode uint32, flags int) (err error)
  1884. func Faccessat(dirfd int, path string, mode uint32, flags int) (err error) {
  1885. if flags == 0 {
  1886. return faccessat(dirfd, path, mode)
  1887. }
  1888. if err := Faccessat2(dirfd, path, mode, flags); err != ENOSYS && err != EPERM {
  1889. return err
  1890. }
  1891. // The Linux kernel faccessat system call does not take any flags.
  1892. // The glibc faccessat implements the flags itself; see
  1893. // https://sourceware.org/git/?p=glibc.git;a=blob;f=sysdeps/unix/sysv/linux/faccessat.c;hb=HEAD
  1894. // Because people naturally expect syscall.Faccessat to act
  1895. // like C faccessat, we do the same.
  1896. if flags & ^(AT_SYMLINK_NOFOLLOW|AT_EACCESS) != 0 {
  1897. return EINVAL
  1898. }
  1899. var st Stat_t
  1900. if err := Fstatat(dirfd, path, &st, flags&AT_SYMLINK_NOFOLLOW); err != nil {
  1901. return err
  1902. }
  1903. mode &= 7
  1904. if mode == 0 {
  1905. return nil
  1906. }
  1907. var uid int
  1908. if flags&AT_EACCESS != 0 {
  1909. uid = Geteuid()
  1910. } else {
  1911. uid = Getuid()
  1912. }
  1913. if uid == 0 {
  1914. if mode&1 == 0 {
  1915. // Root can read and write any file.
  1916. return nil
  1917. }
  1918. if st.Mode&0111 != 0 {
  1919. // Root can execute any file that anybody can execute.
  1920. return nil
  1921. }
  1922. return EACCES
  1923. }
  1924. var fmode uint32
  1925. if uint32(uid) == st.Uid {
  1926. fmode = (st.Mode >> 6) & 7
  1927. } else {
  1928. var gid int
  1929. if flags&AT_EACCESS != 0 {
  1930. gid = Getegid()
  1931. } else {
  1932. gid = Getgid()
  1933. }
  1934. if uint32(gid) == st.Gid || isGroupMember(gid) {
  1935. fmode = (st.Mode >> 3) & 7
  1936. } else {
  1937. fmode = st.Mode & 7
  1938. }
  1939. }
  1940. if fmode&mode == mode {
  1941. return nil
  1942. }
  1943. return EACCES
  1944. }
  1945. //sys nameToHandleAt(dirFD int, pathname string, fh *fileHandle, mountID *_C_int, flags int) (err error) = SYS_NAME_TO_HANDLE_AT
  1946. //sys openByHandleAt(mountFD int, fh *fileHandle, flags int) (fd int, err error) = SYS_OPEN_BY_HANDLE_AT
  1947. // fileHandle is the argument to nameToHandleAt and openByHandleAt. We
  1948. // originally tried to generate it via unix/linux/types.go with "type
  1949. // fileHandle C.struct_file_handle" but that generated empty structs
  1950. // for mips64 and mips64le. Instead, hard code it for now (it's the
  1951. // same everywhere else) until the mips64 generator issue is fixed.
  1952. type fileHandle struct {
  1953. Bytes uint32
  1954. Type int32
  1955. }
  1956. // FileHandle represents the C struct file_handle used by
  1957. // name_to_handle_at (see NameToHandleAt) and open_by_handle_at (see
  1958. // OpenByHandleAt).
  1959. type FileHandle struct {
  1960. *fileHandle
  1961. }
  1962. // NewFileHandle constructs a FileHandle.
  1963. func NewFileHandle(handleType int32, handle []byte) FileHandle {
  1964. const hdrSize = unsafe.Sizeof(fileHandle{})
  1965. buf := make([]byte, hdrSize+uintptr(len(handle)))
  1966. copy(buf[hdrSize:], handle)
  1967. fh := (*fileHandle)(unsafe.Pointer(&buf[0]))
  1968. fh.Type = handleType
  1969. fh.Bytes = uint32(len(handle))
  1970. return FileHandle{fh}
  1971. }
  1972. func (fh *FileHandle) Size() int { return int(fh.fileHandle.Bytes) }
  1973. func (fh *FileHandle) Type() int32 { return fh.fileHandle.Type }
  1974. func (fh *FileHandle) Bytes() []byte {
  1975. n := fh.Size()
  1976. if n == 0 {
  1977. return nil
  1978. }
  1979. return (*[1 << 30]byte)(unsafe.Pointer(uintptr(unsafe.Pointer(&fh.fileHandle.Type)) + 4))[:n:n]
  1980. }
  1981. // NameToHandleAt wraps the name_to_handle_at system call; it obtains
  1982. // a handle for a path name.
  1983. func NameToHandleAt(dirfd int, path string, flags int) (handle FileHandle, mountID int, err error) {
  1984. var mid _C_int
  1985. // Try first with a small buffer, assuming the handle will
  1986. // only be 32 bytes.
  1987. size := uint32(32 + unsafe.Sizeof(fileHandle{}))
  1988. didResize := false
  1989. for {
  1990. buf := make([]byte, size)
  1991. fh := (*fileHandle)(unsafe.Pointer(&buf[0]))
  1992. fh.Bytes = size - uint32(unsafe.Sizeof(fileHandle{}))
  1993. err = nameToHandleAt(dirfd, path, fh, &mid, flags)
  1994. if err == EOVERFLOW {
  1995. if didResize {
  1996. // We shouldn't need to resize more than once
  1997. return
  1998. }
  1999. didResize = true
  2000. size = fh.Bytes + uint32(unsafe.Sizeof(fileHandle{}))
  2001. continue
  2002. }
  2003. if err != nil {
  2004. return
  2005. }
  2006. return FileHandle{fh}, int(mid), nil
  2007. }
  2008. }
  2009. // OpenByHandleAt wraps the open_by_handle_at system call; it opens a
  2010. // file via a handle as previously returned by NameToHandleAt.
  2011. func OpenByHandleAt(mountFD int, handle FileHandle, flags int) (fd int, err error) {
  2012. return openByHandleAt(mountFD, handle.fileHandle, flags)
  2013. }
  2014. // Klogset wraps the sys_syslog system call; it sets console_loglevel to
  2015. // the value specified by arg and passes a dummy pointer to bufp.
  2016. func Klogset(typ int, arg int) (err error) {
  2017. var p unsafe.Pointer
  2018. _, _, errno := Syscall(SYS_SYSLOG, uintptr(typ), uintptr(p), uintptr(arg))
  2019. if errno != 0 {
  2020. return errnoErr(errno)
  2021. }
  2022. return nil
  2023. }
  2024. // RemoteIovec is Iovec with the pointer replaced with an integer.
  2025. // It is used for ProcessVMReadv and ProcessVMWritev, where the pointer
  2026. // refers to a location in a different process' address space, which
  2027. // would confuse the Go garbage collector.
  2028. type RemoteIovec struct {
  2029. Base uintptr
  2030. Len int
  2031. }
  2032. //sys ProcessVMReadv(pid int, localIov []Iovec, remoteIov []RemoteIovec, flags uint) (n int, err error) = SYS_PROCESS_VM_READV
  2033. //sys ProcessVMWritev(pid int, localIov []Iovec, remoteIov []RemoteIovec, flags uint) (n int, err error) = SYS_PROCESS_VM_WRITEV
  2034. /*
  2035. * Unimplemented
  2036. */
  2037. // AfsSyscall
  2038. // Alarm
  2039. // ArchPrctl
  2040. // Brk
  2041. // ClockNanosleep
  2042. // ClockSettime
  2043. // Clone
  2044. // EpollCtlOld
  2045. // EpollPwait
  2046. // EpollWaitOld
  2047. // Execve
  2048. // Fork
  2049. // Futex
  2050. // GetKernelSyms
  2051. // GetMempolicy
  2052. // GetRobustList
  2053. // GetThreadArea
  2054. // Getitimer
  2055. // Getpmsg
  2056. // IoCancel
  2057. // IoDestroy
  2058. // IoGetevents
  2059. // IoSetup
  2060. // IoSubmit
  2061. // IoprioGet
  2062. // IoprioSet
  2063. // KexecLoad
  2064. // LookupDcookie
  2065. // Mbind
  2066. // MigratePages
  2067. // Mincore
  2068. // ModifyLdt
  2069. // Mount
  2070. // MovePages
  2071. // MqGetsetattr
  2072. // MqNotify
  2073. // MqOpen
  2074. // MqTimedreceive
  2075. // MqTimedsend
  2076. // MqUnlink
  2077. // Mremap
  2078. // Msgctl
  2079. // Msgget
  2080. // Msgrcv
  2081. // Msgsnd
  2082. // Nfsservctl
  2083. // Personality
  2084. // Pselect6
  2085. // Ptrace
  2086. // Putpmsg
  2087. // Quotactl
  2088. // Readahead
  2089. // Readv
  2090. // RemapFilePages
  2091. // RestartSyscall
  2092. // RtSigaction
  2093. // RtSigpending
  2094. // RtSigprocmask
  2095. // RtSigqueueinfo
  2096. // RtSigreturn
  2097. // RtSigsuspend
  2098. // RtSigtimedwait
  2099. // SchedGetPriorityMax
  2100. // SchedGetPriorityMin
  2101. // SchedGetparam
  2102. // SchedGetscheduler
  2103. // SchedRrGetInterval
  2104. // SchedSetparam
  2105. // SchedYield
  2106. // Security
  2107. // Semctl
  2108. // Semget
  2109. // Semop
  2110. // Semtimedop
  2111. // SetMempolicy
  2112. // SetRobustList
  2113. // SetThreadArea
  2114. // SetTidAddress
  2115. // Shmat
  2116. // Shmctl
  2117. // Shmdt
  2118. // Shmget
  2119. // Sigaltstack
  2120. // Swapoff
  2121. // Swapon
  2122. // Sysfs
  2123. // TimerCreate
  2124. // TimerDelete
  2125. // TimerGetoverrun
  2126. // TimerGettime
  2127. // TimerSettime
  2128. // Tkill (obsolete)
  2129. // Tuxcall
  2130. // Umount2
  2131. // Uselib
  2132. // Utimensat
  2133. // Vfork
  2134. // Vhangup
  2135. // Vserver
  2136. // Waitid
  2137. // _Sysctl