diff --git a/sys/compat/linux/linux_ioctl.c b/sys/compat/linux/linux_ioctl.c index a9d39ef18429..18f911de29a4 100644 --- a/sys/compat/linux/linux_ioctl.c +++ b/sys/compat/linux/linux_ioctl.c @@ -1,3816 +1,3815 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 1994-1995 Søren Schmidt * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include #include #include #ifdef COMPAT_LINUX32 #include #endif #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include -#include #include #include #include #include #include #include #include #include #include #ifdef COMPAT_LINUX32 #include #include #else #include #include #endif #include #include #include #include #include #include #include #include #include #include #include CTASSERT(LINUX_IFNAMSIZ == IFNAMSIZ); #define DEFINE_LINUX_IOCTL_SET(shortname, SHORTNAME) \ static linux_ioctl_function_t linux_ioctl_ ## shortname; \ static struct linux_ioctl_handler shortname ## _handler = { \ .func = linux_ioctl_ ## shortname, \ .low = LINUX_IOCTL_ ## SHORTNAME ## _MIN, \ .high = LINUX_IOCTL_ ## SHORTNAME ## _MAX, \ }; \ DATA_SET(linux_ioctl_handler_set, shortname ## _handler) DEFINE_LINUX_IOCTL_SET(cdrom, CDROM); DEFINE_LINUX_IOCTL_SET(vfat, VFAT); DEFINE_LINUX_IOCTL_SET(console, CONSOLE); DEFINE_LINUX_IOCTL_SET(hdio, HDIO); DEFINE_LINUX_IOCTL_SET(disk, DISK); DEFINE_LINUX_IOCTL_SET(socket, SOCKET); DEFINE_LINUX_IOCTL_SET(sound, SOUND); DEFINE_LINUX_IOCTL_SET(termio, TERMIO); DEFINE_LINUX_IOCTL_SET(private, PRIVATE); DEFINE_LINUX_IOCTL_SET(drm, DRM); DEFINE_LINUX_IOCTL_SET(sg, SG); DEFINE_LINUX_IOCTL_SET(v4l, VIDEO); DEFINE_LINUX_IOCTL_SET(v4l2, VIDEO2); DEFINE_LINUX_IOCTL_SET(fbsd_usb, FBSD_LUSB); DEFINE_LINUX_IOCTL_SET(evdev, EVDEV); DEFINE_LINUX_IOCTL_SET(kcov, KCOV); #undef DEFINE_LINUX_IOCTL_SET static int linux_ioctl_special(struct thread *, struct linux_ioctl_args *); /* * Keep sorted by low. */ static struct linux_ioctl_handler linux_ioctls[] = { { .func = linux_ioctl_termio, .low = LINUX_IOCTL_TERMIO_MIN, .high = LINUX_IOCTL_TERMIO_MAX }, }; #ifdef __i386__ static TAILQ_HEAD(, linux_ioctl_handler_element) linux_ioctl_handlers = TAILQ_HEAD_INITIALIZER(linux_ioctl_handlers); static struct sx linux_ioctl_sx; SX_SYSINIT(linux_ioctl, &linux_ioctl_sx, "Linux ioctl handlers"); #else extern TAILQ_HEAD(, linux_ioctl_handler_element) linux_ioctl_handlers; extern struct sx linux_ioctl_sx; #endif #ifdef COMPAT_LINUX32 static TAILQ_HEAD(, linux_ioctl_handler_element) linux32_ioctl_handlers = TAILQ_HEAD_INITIALIZER(linux32_ioctl_handlers); #endif /* * hdio related ioctls for VMWare support */ struct linux_hd_geometry { uint8_t heads; uint8_t sectors; uint16_t cylinders; uint32_t start; }; struct linux_hd_big_geometry { uint8_t heads; uint8_t sectors; uint32_t cylinders; uint32_t start; }; static int linux_ioctl_hdio(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; u_int sectorsize, fwcylinders, fwheads, fwsectors; off_t mediasize, bytespercyl; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); switch (args->cmd & 0xffff) { case LINUX_HDIO_GET_GEO: case LINUX_HDIO_GET_GEO_BIG: error = fo_ioctl(fp, DIOCGMEDIASIZE, (caddr_t)&mediasize, td->td_ucred, td); if (!error) error = fo_ioctl(fp, DIOCGSECTORSIZE, (caddr_t)§orsize, td->td_ucred, td); if (!error) error = fo_ioctl(fp, DIOCGFWHEADS, (caddr_t)&fwheads, td->td_ucred, td); if (!error) error = fo_ioctl(fp, DIOCGFWSECTORS, (caddr_t)&fwsectors, td->td_ucred, td); /* * XXX: DIOCGFIRSTOFFSET is not yet implemented, so * so pretend that GEOM always says 0. This is NOT VALID * for slices or partitions, only the per-disk raw devices. */ fdrop(fp, td); if (error) return (error); /* * 1. Calculate the number of bytes in a cylinder, * given the firmware's notion of heads and sectors * per cylinder. * 2. Calculate the number of cylinders, given the total * size of the media. * All internal calculations should have 64-bit precision. */ bytespercyl = (off_t) sectorsize * fwheads * fwsectors; fwcylinders = mediasize / bytespercyl; if ((args->cmd & 0xffff) == LINUX_HDIO_GET_GEO) { struct linux_hd_geometry hdg; hdg.cylinders = fwcylinders; hdg.heads = fwheads; hdg.sectors = fwsectors; hdg.start = 0; error = copyout(&hdg, (void *)args->arg, sizeof(hdg)); } else if ((args->cmd & 0xffff) == LINUX_HDIO_GET_GEO_BIG) { struct linux_hd_big_geometry hdbg; memset(&hdbg, 0, sizeof(hdbg)); hdbg.cylinders = fwcylinders; hdbg.heads = fwheads; hdbg.sectors = fwsectors; hdbg.start = 0; error = copyout(&hdbg, (void *)args->arg, sizeof(hdbg)); } return (error); break; default: /* XXX */ linux_msg(td, "%s fd=%d, cmd=0x%x ('%c',%d) is not implemented", __func__, args->fd, args->cmd, (int)(args->cmd & 0xff00) >> 8, (int)(args->cmd & 0xff)); break; } fdrop(fp, td); return (ENOIOCTL); } static int linux_ioctl_disk(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; u_int sectorsize, psectorsize; uint64_t blksize64; off_t mediasize, stripesize; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); switch (args->cmd & 0xffff) { case LINUX_BLKGETSIZE: error = fo_ioctl(fp, DIOCGSECTORSIZE, (caddr_t)§orsize, td->td_ucred, td); if (!error) error = fo_ioctl(fp, DIOCGMEDIASIZE, (caddr_t)&mediasize, td->td_ucred, td); fdrop(fp, td); if (error) return (error); sectorsize = mediasize / sectorsize; /* * XXX: How do we know we return the right size of integer ? */ return (copyout(§orsize, (void *)args->arg, sizeof(sectorsize))); break; case LINUX_BLKGETSIZE64: error = fo_ioctl(fp, DIOCGMEDIASIZE, (caddr_t)&mediasize, td->td_ucred, td); fdrop(fp, td); if (error) return (error); blksize64 = mediasize; return (copyout(&blksize64, (void *)args->arg, sizeof(blksize64))); case LINUX_BLKSSZGET: error = fo_ioctl(fp, DIOCGSECTORSIZE, (caddr_t)§orsize, td->td_ucred, td); fdrop(fp, td); if (error) return (error); return (copyout(§orsize, (void *)args->arg, sizeof(sectorsize))); break; case LINUX_BLKPBSZGET: error = fo_ioctl(fp, DIOCGSTRIPESIZE, (caddr_t)&stripesize, td->td_ucred, td); if (error != 0) { fdrop(fp, td); return (error); } if (stripesize > 0 && stripesize <= 4096) { psectorsize = stripesize; } else { error = fo_ioctl(fp, DIOCGSECTORSIZE, (caddr_t)§orsize, td->td_ucred, td); if (error != 0) { fdrop(fp, td); return (error); } psectorsize = sectorsize; } fdrop(fp, td); return (copyout(&psectorsize, (void *)args->arg, sizeof(psectorsize))); } fdrop(fp, td); return (ENOIOCTL); } /* * termio related ioctls */ struct linux_termio { unsigned short c_iflag; unsigned short c_oflag; unsigned short c_cflag; unsigned short c_lflag; unsigned char c_line; unsigned char c_cc[LINUX_NCC]; }; struct linux_termios { unsigned int c_iflag; unsigned int c_oflag; unsigned int c_cflag; unsigned int c_lflag; unsigned char c_line; unsigned char c_cc[LINUX_NCCS]; }; struct linux_winsize { unsigned short ws_row, ws_col; unsigned short ws_xpixel, ws_ypixel; }; struct speedtab { int sp_speed; /* Speed. */ int sp_code; /* Code. */ }; static struct speedtab sptab[] = { { B0, LINUX_B0 }, { B50, LINUX_B50 }, { B75, LINUX_B75 }, { B110, LINUX_B110 }, { B134, LINUX_B134 }, { B150, LINUX_B150 }, { B200, LINUX_B200 }, { B300, LINUX_B300 }, { B600, LINUX_B600 }, { B1200, LINUX_B1200 }, { B1800, LINUX_B1800 }, { B2400, LINUX_B2400 }, { B4800, LINUX_B4800 }, { B9600, LINUX_B9600 }, { B19200, LINUX_B19200 }, { B38400, LINUX_B38400 }, { B57600, LINUX_B57600 }, { B115200, LINUX_B115200 }, {-1, -1 } }; struct linux_serial_struct { int type; int line; int port; int irq; int flags; int xmit_fifo_size; int custom_divisor; int baud_base; unsigned short close_delay; char reserved_char[2]; int hub6; unsigned short closing_wait; unsigned short closing_wait2; int reserved[4]; }; static int linux_to_bsd_speed(int code, struct speedtab *table) { for ( ; table->sp_code != -1; table++) if (table->sp_code == code) return (table->sp_speed); return (-1); } static int bsd_to_linux_speed(int speed, struct speedtab *table) { for ( ; table->sp_speed != -1; table++) if (table->sp_speed == speed) return (table->sp_code); return (-1); } static void bsd_to_linux_termios(struct termios *bios, struct linux_termios *lios) { int i; lios->c_iflag = 0; if (bios->c_iflag & IGNBRK) lios->c_iflag |= LINUX_IGNBRK; if (bios->c_iflag & BRKINT) lios->c_iflag |= LINUX_BRKINT; if (bios->c_iflag & IGNPAR) lios->c_iflag |= LINUX_IGNPAR; if (bios->c_iflag & PARMRK) lios->c_iflag |= LINUX_PARMRK; if (bios->c_iflag & INPCK) lios->c_iflag |= LINUX_INPCK; if (bios->c_iflag & ISTRIP) lios->c_iflag |= LINUX_ISTRIP; if (bios->c_iflag & INLCR) lios->c_iflag |= LINUX_INLCR; if (bios->c_iflag & IGNCR) lios->c_iflag |= LINUX_IGNCR; if (bios->c_iflag & ICRNL) lios->c_iflag |= LINUX_ICRNL; if (bios->c_iflag & IXON) lios->c_iflag |= LINUX_IXON; if (bios->c_iflag & IXANY) lios->c_iflag |= LINUX_IXANY; if (bios->c_iflag & IXOFF) lios->c_iflag |= LINUX_IXOFF; if (bios->c_iflag & IMAXBEL) lios->c_iflag |= LINUX_IMAXBEL; lios->c_oflag = 0; if (bios->c_oflag & OPOST) lios->c_oflag |= LINUX_OPOST; if (bios->c_oflag & ONLCR) lios->c_oflag |= LINUX_ONLCR; if (bios->c_oflag & TAB3) lios->c_oflag |= LINUX_XTABS; lios->c_cflag = bsd_to_linux_speed(bios->c_ispeed, sptab); lios->c_cflag |= (bios->c_cflag & CSIZE) >> 4; if (bios->c_cflag & CSTOPB) lios->c_cflag |= LINUX_CSTOPB; if (bios->c_cflag & CREAD) lios->c_cflag |= LINUX_CREAD; if (bios->c_cflag & PARENB) lios->c_cflag |= LINUX_PARENB; if (bios->c_cflag & PARODD) lios->c_cflag |= LINUX_PARODD; if (bios->c_cflag & HUPCL) lios->c_cflag |= LINUX_HUPCL; if (bios->c_cflag & CLOCAL) lios->c_cflag |= LINUX_CLOCAL; if (bios->c_cflag & CRTSCTS) lios->c_cflag |= LINUX_CRTSCTS; lios->c_lflag = 0; if (bios->c_lflag & ISIG) lios->c_lflag |= LINUX_ISIG; if (bios->c_lflag & ICANON) lios->c_lflag |= LINUX_ICANON; if (bios->c_lflag & ECHO) lios->c_lflag |= LINUX_ECHO; if (bios->c_lflag & ECHOE) lios->c_lflag |= LINUX_ECHOE; if (bios->c_lflag & ECHOK) lios->c_lflag |= LINUX_ECHOK; if (bios->c_lflag & ECHONL) lios->c_lflag |= LINUX_ECHONL; if (bios->c_lflag & NOFLSH) lios->c_lflag |= LINUX_NOFLSH; if (bios->c_lflag & TOSTOP) lios->c_lflag |= LINUX_TOSTOP; if (bios->c_lflag & ECHOCTL) lios->c_lflag |= LINUX_ECHOCTL; if (bios->c_lflag & ECHOPRT) lios->c_lflag |= LINUX_ECHOPRT; if (bios->c_lflag & ECHOKE) lios->c_lflag |= LINUX_ECHOKE; if (bios->c_lflag & FLUSHO) lios->c_lflag |= LINUX_FLUSHO; if (bios->c_lflag & PENDIN) lios->c_lflag |= LINUX_PENDIN; if (bios->c_lflag & IEXTEN) lios->c_lflag |= LINUX_IEXTEN; for (i=0; ic_cc[i] = LINUX_POSIX_VDISABLE; lios->c_cc[LINUX_VINTR] = bios->c_cc[VINTR]; lios->c_cc[LINUX_VQUIT] = bios->c_cc[VQUIT]; lios->c_cc[LINUX_VERASE] = bios->c_cc[VERASE]; lios->c_cc[LINUX_VKILL] = bios->c_cc[VKILL]; lios->c_cc[LINUX_VEOF] = bios->c_cc[VEOF]; lios->c_cc[LINUX_VEOL] = bios->c_cc[VEOL]; lios->c_cc[LINUX_VMIN] = bios->c_cc[VMIN]; lios->c_cc[LINUX_VTIME] = bios->c_cc[VTIME]; lios->c_cc[LINUX_VEOL2] = bios->c_cc[VEOL2]; lios->c_cc[LINUX_VSUSP] = bios->c_cc[VSUSP]; lios->c_cc[LINUX_VSTART] = bios->c_cc[VSTART]; lios->c_cc[LINUX_VSTOP] = bios->c_cc[VSTOP]; lios->c_cc[LINUX_VREPRINT] = bios->c_cc[VREPRINT]; lios->c_cc[LINUX_VDISCARD] = bios->c_cc[VDISCARD]; lios->c_cc[LINUX_VWERASE] = bios->c_cc[VWERASE]; lios->c_cc[LINUX_VLNEXT] = bios->c_cc[VLNEXT]; if (linux_preserve_vstatus) lios->c_cc[LINUX_VSTATUS] = bios->c_cc[VSTATUS]; for (i=0; ic_cc[i] == _POSIX_VDISABLE) lios->c_cc[i] = LINUX_POSIX_VDISABLE; } lios->c_line = 0; } static void linux_to_bsd_termios(struct linux_termios *lios, struct termios *bios) { int i; bios->c_iflag = 0; if (lios->c_iflag & LINUX_IGNBRK) bios->c_iflag |= IGNBRK; if (lios->c_iflag & LINUX_BRKINT) bios->c_iflag |= BRKINT; if (lios->c_iflag & LINUX_IGNPAR) bios->c_iflag |= IGNPAR; if (lios->c_iflag & LINUX_PARMRK) bios->c_iflag |= PARMRK; if (lios->c_iflag & LINUX_INPCK) bios->c_iflag |= INPCK; if (lios->c_iflag & LINUX_ISTRIP) bios->c_iflag |= ISTRIP; if (lios->c_iflag & LINUX_INLCR) bios->c_iflag |= INLCR; if (lios->c_iflag & LINUX_IGNCR) bios->c_iflag |= IGNCR; if (lios->c_iflag & LINUX_ICRNL) bios->c_iflag |= ICRNL; if (lios->c_iflag & LINUX_IXON) bios->c_iflag |= IXON; if (lios->c_iflag & LINUX_IXANY) bios->c_iflag |= IXANY; if (lios->c_iflag & LINUX_IXOFF) bios->c_iflag |= IXOFF; if (lios->c_iflag & LINUX_IMAXBEL) bios->c_iflag |= IMAXBEL; bios->c_oflag = 0; if (lios->c_oflag & LINUX_OPOST) bios->c_oflag |= OPOST; if (lios->c_oflag & LINUX_ONLCR) bios->c_oflag |= ONLCR; if (lios->c_oflag & LINUX_XTABS) bios->c_oflag |= TAB3; bios->c_cflag = (lios->c_cflag & LINUX_CSIZE) << 4; if (lios->c_cflag & LINUX_CSTOPB) bios->c_cflag |= CSTOPB; if (lios->c_cflag & LINUX_CREAD) bios->c_cflag |= CREAD; if (lios->c_cflag & LINUX_PARENB) bios->c_cflag |= PARENB; if (lios->c_cflag & LINUX_PARODD) bios->c_cflag |= PARODD; if (lios->c_cflag & LINUX_HUPCL) bios->c_cflag |= HUPCL; if (lios->c_cflag & LINUX_CLOCAL) bios->c_cflag |= CLOCAL; if (lios->c_cflag & LINUX_CRTSCTS) bios->c_cflag |= CRTSCTS; bios->c_lflag = 0; if (lios->c_lflag & LINUX_ISIG) bios->c_lflag |= ISIG; if (lios->c_lflag & LINUX_ICANON) bios->c_lflag |= ICANON; if (lios->c_lflag & LINUX_ECHO) bios->c_lflag |= ECHO; if (lios->c_lflag & LINUX_ECHOE) bios->c_lflag |= ECHOE; if (lios->c_lflag & LINUX_ECHOK) bios->c_lflag |= ECHOK; if (lios->c_lflag & LINUX_ECHONL) bios->c_lflag |= ECHONL; if (lios->c_lflag & LINUX_NOFLSH) bios->c_lflag |= NOFLSH; if (lios->c_lflag & LINUX_TOSTOP) bios->c_lflag |= TOSTOP; if (lios->c_lflag & LINUX_ECHOCTL) bios->c_lflag |= ECHOCTL; if (lios->c_lflag & LINUX_ECHOPRT) bios->c_lflag |= ECHOPRT; if (lios->c_lflag & LINUX_ECHOKE) bios->c_lflag |= ECHOKE; if (lios->c_lflag & LINUX_FLUSHO) bios->c_lflag |= FLUSHO; if (lios->c_lflag & LINUX_PENDIN) bios->c_lflag |= PENDIN; if (lios->c_lflag & LINUX_IEXTEN) bios->c_lflag |= IEXTEN; for (i=0; ic_cc[i] = _POSIX_VDISABLE; bios->c_cc[VINTR] = lios->c_cc[LINUX_VINTR]; bios->c_cc[VQUIT] = lios->c_cc[LINUX_VQUIT]; bios->c_cc[VERASE] = lios->c_cc[LINUX_VERASE]; bios->c_cc[VKILL] = lios->c_cc[LINUX_VKILL]; bios->c_cc[VEOF] = lios->c_cc[LINUX_VEOF]; bios->c_cc[VEOL] = lios->c_cc[LINUX_VEOL]; bios->c_cc[VMIN] = lios->c_cc[LINUX_VMIN]; bios->c_cc[VTIME] = lios->c_cc[LINUX_VTIME]; bios->c_cc[VEOL2] = lios->c_cc[LINUX_VEOL2]; bios->c_cc[VSUSP] = lios->c_cc[LINUX_VSUSP]; bios->c_cc[VSTART] = lios->c_cc[LINUX_VSTART]; bios->c_cc[VSTOP] = lios->c_cc[LINUX_VSTOP]; bios->c_cc[VREPRINT] = lios->c_cc[LINUX_VREPRINT]; bios->c_cc[VDISCARD] = lios->c_cc[LINUX_VDISCARD]; bios->c_cc[VWERASE] = lios->c_cc[LINUX_VWERASE]; bios->c_cc[VLNEXT] = lios->c_cc[LINUX_VLNEXT]; if (linux_preserve_vstatus) bios->c_cc[VSTATUS] = lios->c_cc[LINUX_VSTATUS]; for (i=0; ic_cc[i] == LINUX_POSIX_VDISABLE) bios->c_cc[i] = _POSIX_VDISABLE; } bios->c_ispeed = bios->c_ospeed = linux_to_bsd_speed(lios->c_cflag & LINUX_CBAUD, sptab); } static void bsd_to_linux_termio(struct termios *bios, struct linux_termio *lio) { struct linux_termios lios; memset(lio, 0, sizeof(*lio)); bsd_to_linux_termios(bios, &lios); lio->c_iflag = lios.c_iflag; lio->c_oflag = lios.c_oflag; lio->c_cflag = lios.c_cflag; lio->c_lflag = lios.c_lflag; lio->c_line = lios.c_line; memcpy(lio->c_cc, lios.c_cc, LINUX_NCC); } static void linux_to_bsd_termio(struct linux_termio *lio, struct termios *bios) { struct linux_termios lios; int i; lios.c_iflag = lio->c_iflag; lios.c_oflag = lio->c_oflag; lios.c_cflag = lio->c_cflag; lios.c_lflag = lio->c_lflag; for (i=LINUX_NCC; ic_cc, LINUX_NCC); linux_to_bsd_termios(&lios, bios); } static int linux_ioctl_termio(struct thread *td, struct linux_ioctl_args *args) { struct termios bios; struct linux_termios lios; struct linux_termio lio; struct file *fp; int error; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); switch (args->cmd & 0xffff) { case LINUX_TCGETS: error = fo_ioctl(fp, TIOCGETA, (caddr_t)&bios, td->td_ucred, td); if (error) break; bsd_to_linux_termios(&bios, &lios); error = copyout(&lios, (void *)args->arg, sizeof(lios)); break; case LINUX_TCSETS: error = copyin((void *)args->arg, &lios, sizeof(lios)); if (error) break; linux_to_bsd_termios(&lios, &bios); error = (fo_ioctl(fp, TIOCSETA, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCSETSW: error = copyin((void *)args->arg, &lios, sizeof(lios)); if (error) break; linux_to_bsd_termios(&lios, &bios); error = (fo_ioctl(fp, TIOCSETAW, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCSETSF: error = copyin((void *)args->arg, &lios, sizeof(lios)); if (error) break; linux_to_bsd_termios(&lios, &bios); error = (fo_ioctl(fp, TIOCSETAF, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCGETA: error = fo_ioctl(fp, TIOCGETA, (caddr_t)&bios, td->td_ucred, td); if (error) break; bsd_to_linux_termio(&bios, &lio); error = (copyout(&lio, (void *)args->arg, sizeof(lio))); break; case LINUX_TCSETA: error = copyin((void *)args->arg, &lio, sizeof(lio)); if (error) break; linux_to_bsd_termio(&lio, &bios); error = (fo_ioctl(fp, TIOCSETA, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCSETAW: error = copyin((void *)args->arg, &lio, sizeof(lio)); if (error) break; linux_to_bsd_termio(&lio, &bios); error = (fo_ioctl(fp, TIOCSETAW, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCSETAF: error = copyin((void *)args->arg, &lio, sizeof(lio)); if (error) break; linux_to_bsd_termio(&lio, &bios); error = (fo_ioctl(fp, TIOCSETAF, (caddr_t)&bios, td->td_ucred, td)); break; case LINUX_TCSBRK: if (args->arg != 0) { error = (fo_ioctl(fp, TIOCDRAIN, (caddr_t)&bios, td->td_ucred, td)); } else { linux_msg(td, "ioctl TCSBRK arg 0 not implemented"); error = ENOIOCTL; } break; case LINUX_TCXONC: { switch (args->arg) { case LINUX_TCOOFF: args->cmd = TIOCSTOP; break; case LINUX_TCOON: args->cmd = TIOCSTART; break; case LINUX_TCIOFF: case LINUX_TCION: { int c; struct write_args wr; error = fo_ioctl(fp, TIOCGETA, (caddr_t)&bios, td->td_ucred, td); if (error) break; fdrop(fp, td); c = (args->arg == LINUX_TCIOFF) ? VSTOP : VSTART; c = bios.c_cc[c]; if (c != _POSIX_VDISABLE) { wr.fd = args->fd; wr.buf = &c; wr.nbyte = sizeof(c); return (sys_write(td, &wr)); } else return (0); } default: fdrop(fp, td); return (EINVAL); } args->arg = 0; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; } case LINUX_TCFLSH: { int val; switch (args->arg) { case LINUX_TCIFLUSH: val = FREAD; break; case LINUX_TCOFLUSH: val = FWRITE; break; case LINUX_TCIOFLUSH: val = FREAD | FWRITE; break; default: fdrop(fp, td); return (EINVAL); } error = (fo_ioctl(fp,TIOCFLUSH,(caddr_t)&val,td->td_ucred,td)); break; } case LINUX_TIOCEXCL: args->cmd = TIOCEXCL; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCNXCL: args->cmd = TIOCNXCL; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCSCTTY: args->cmd = TIOCSCTTY; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCGPGRP: args->cmd = TIOCGPGRP; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCSPGRP: args->cmd = TIOCSPGRP; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* LINUX_TIOCOUTQ */ /* LINUX_TIOCSTI */ case LINUX_TIOCGWINSZ: args->cmd = TIOCGWINSZ; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCSWINSZ: args->cmd = TIOCSWINSZ; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCMGET: args->cmd = TIOCMGET; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCMBIS: args->cmd = TIOCMBIS; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCMBIC: args->cmd = TIOCMBIC; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCMSET: args->cmd = TIOCMSET; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* TIOCGSOFTCAR */ /* TIOCSSOFTCAR */ case LINUX_FIONREAD: /* LINUX_TIOCINQ */ args->cmd = FIONREAD; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* LINUX_TIOCLINUX */ case LINUX_TIOCCONS: args->cmd = TIOCCONS; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCGSERIAL: { struct linux_serial_struct lss; bzero(&lss, sizeof(lss)); lss.type = LINUX_PORT_16550A; lss.flags = 0; lss.close_delay = 0; error = copyout(&lss, (void *)args->arg, sizeof(lss)); break; } case LINUX_TIOCSSERIAL: { struct linux_serial_struct lss; error = copyin((void *)args->arg, &lss, sizeof(lss)); if (error) break; /* XXX - It really helps to have an implementation that * does nothing. NOT! */ error = 0; break; } case LINUX_TIOCPKT: args->cmd = TIOCPKT; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_FIONBIO: args->cmd = FIONBIO; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCNOTTY: args->cmd = TIOCNOTTY; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCSETD: { int line; switch (args->arg) { case LINUX_N_TTY: line = TTYDISC; break; case LINUX_N_SLIP: line = SLIPDISC; break; case LINUX_N_PPP: line = PPPDISC; break; default: fdrop(fp, td); return (EINVAL); } error = (fo_ioctl(fp, TIOCSETD, (caddr_t)&line, td->td_ucred, td)); break; } case LINUX_TIOCGETD: { int linux_line; int bsd_line = TTYDISC; error = fo_ioctl(fp, TIOCGETD, (caddr_t)&bsd_line, td->td_ucred, td); if (error) break; switch (bsd_line) { case TTYDISC: linux_line = LINUX_N_TTY; break; case SLIPDISC: linux_line = LINUX_N_SLIP; break; case PPPDISC: linux_line = LINUX_N_PPP; break; default: fdrop(fp, td); return (EINVAL); } error = (copyout(&linux_line, (void *)args->arg, sizeof(int))); break; } /* LINUX_TCSBRKP */ /* LINUX_TIOCTTYGSTRUCT */ case LINUX_FIONCLEX: args->cmd = FIONCLEX; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_FIOCLEX: args->cmd = FIOCLEX; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_FIOASYNC: args->cmd = FIOASYNC; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* LINUX_TIOCSERCONFIG */ /* LINUX_TIOCSERGWILD */ /* LINUX_TIOCSERSWILD */ /* LINUX_TIOCGLCKTRMIOS */ /* LINUX_TIOCSLCKTRMIOS */ case LINUX_TIOCSBRK: args->cmd = TIOCSBRK; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCCBRK: args->cmd = TIOCCBRK; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_TIOCGPTN: { int nb; error = fo_ioctl(fp, TIOCGPTN, (caddr_t)&nb, td->td_ucred, td); if (!error) error = copyout(&nb, (void *)args->arg, sizeof(int)); break; } case LINUX_TIOCGPTPEER: linux_msg(td, "unsupported ioctl TIOCGPTPEER"); error = ENOIOCTL; break; case LINUX_TIOCSPTLCK: /* Our unlockpt() does nothing. */ error = 0; break; default: error = ENOIOCTL; break; } fdrop(fp, td); return (error); } /* * CDROM related ioctls */ struct linux_cdrom_msf { u_char cdmsf_min0; u_char cdmsf_sec0; u_char cdmsf_frame0; u_char cdmsf_min1; u_char cdmsf_sec1; u_char cdmsf_frame1; }; struct linux_cdrom_tochdr { u_char cdth_trk0; u_char cdth_trk1; }; union linux_cdrom_addr { struct { u_char minute; u_char second; u_char frame; } msf; int lba; }; struct linux_cdrom_tocentry { u_char cdte_track; u_char cdte_adr:4; u_char cdte_ctrl:4; u_char cdte_format; union linux_cdrom_addr cdte_addr; u_char cdte_datamode; }; struct linux_cdrom_subchnl { u_char cdsc_format; u_char cdsc_audiostatus; u_char cdsc_adr:4; u_char cdsc_ctrl:4; u_char cdsc_trk; u_char cdsc_ind; union linux_cdrom_addr cdsc_absaddr; union linux_cdrom_addr cdsc_reladdr; }; struct l_cdrom_read_audio { union linux_cdrom_addr addr; u_char addr_format; l_int nframes; u_char *buf; }; struct l_dvd_layer { u_char book_version:4; u_char book_type:4; u_char min_rate:4; u_char disc_size:4; u_char layer_type:4; u_char track_path:1; u_char nlayers:2; u_char track_density:4; u_char linear_density:4; u_char bca:1; uint32_t start_sector; uint32_t end_sector; uint32_t end_sector_l0; }; struct l_dvd_physical { u_char type; u_char layer_num; struct l_dvd_layer layer[4]; }; struct l_dvd_copyright { u_char type; u_char layer_num; u_char cpst; u_char rmi; }; struct l_dvd_disckey { u_char type; l_uint agid:2; u_char value[2048]; }; struct l_dvd_bca { u_char type; l_int len; u_char value[188]; }; struct l_dvd_manufact { u_char type; u_char layer_num; l_int len; u_char value[2048]; }; typedef union { u_char type; struct l_dvd_physical physical; struct l_dvd_copyright copyright; struct l_dvd_disckey disckey; struct l_dvd_bca bca; struct l_dvd_manufact manufact; } l_dvd_struct; typedef u_char l_dvd_key[5]; typedef u_char l_dvd_challenge[10]; struct l_dvd_lu_send_agid { u_char type; l_uint agid:2; }; struct l_dvd_host_send_challenge { u_char type; l_uint agid:2; l_dvd_challenge chal; }; struct l_dvd_send_key { u_char type; l_uint agid:2; l_dvd_key key; }; struct l_dvd_lu_send_challenge { u_char type; l_uint agid:2; l_dvd_challenge chal; }; struct l_dvd_lu_send_title_key { u_char type; l_uint agid:2; l_dvd_key title_key; l_int lba; l_uint cpm:1; l_uint cp_sec:1; l_uint cgms:2; }; struct l_dvd_lu_send_asf { u_char type; l_uint agid:2; l_uint asf:1; }; struct l_dvd_host_send_rpcstate { u_char type; u_char pdrc; }; struct l_dvd_lu_send_rpcstate { u_char type:2; u_char vra:3; u_char ucca:3; u_char region_mask; u_char rpc_scheme; }; typedef union { u_char type; struct l_dvd_lu_send_agid lsa; struct l_dvd_host_send_challenge hsc; struct l_dvd_send_key lsk; struct l_dvd_lu_send_challenge lsc; struct l_dvd_send_key hsk; struct l_dvd_lu_send_title_key lstk; struct l_dvd_lu_send_asf lsasf; struct l_dvd_host_send_rpcstate hrpcs; struct l_dvd_lu_send_rpcstate lrpcs; } l_dvd_authinfo; static void bsd_to_linux_msf_lba(u_char af, union msf_lba *bp, union linux_cdrom_addr *lp) { if (af == CD_LBA_FORMAT) lp->lba = bp->lba; else { lp->msf.minute = bp->msf.minute; lp->msf.second = bp->msf.second; lp->msf.frame = bp->msf.frame; } } static void set_linux_cdrom_addr(union linux_cdrom_addr *addr, int format, int lba) { if (format == LINUX_CDROM_MSF) { addr->msf.frame = lba % 75; lba /= 75; lba += 2; addr->msf.second = lba % 60; addr->msf.minute = lba / 60; } else addr->lba = lba; } static int linux_to_bsd_dvd_struct(l_dvd_struct *lp, struct dvd_struct *bp) { bp->format = lp->type; switch (bp->format) { case DVD_STRUCT_PHYSICAL: if (bp->layer_num >= 4) return (EINVAL); bp->layer_num = lp->physical.layer_num; break; case DVD_STRUCT_COPYRIGHT: bp->layer_num = lp->copyright.layer_num; break; case DVD_STRUCT_DISCKEY: bp->agid = lp->disckey.agid; break; case DVD_STRUCT_BCA: case DVD_STRUCT_MANUFACT: break; default: return (EINVAL); } return (0); } static int bsd_to_linux_dvd_struct(struct dvd_struct *bp, l_dvd_struct *lp) { switch (bp->format) { case DVD_STRUCT_PHYSICAL: { struct dvd_layer *blp = (struct dvd_layer *)bp->data; struct l_dvd_layer *llp = &lp->physical.layer[bp->layer_num]; memset(llp, 0, sizeof(*llp)); llp->book_version = blp->book_version; llp->book_type = blp->book_type; llp->min_rate = blp->max_rate; llp->disc_size = blp->disc_size; llp->layer_type = blp->layer_type; llp->track_path = blp->track_path; llp->nlayers = blp->nlayers; llp->track_density = blp->track_density; llp->linear_density = blp->linear_density; llp->bca = blp->bca; llp->start_sector = blp->start_sector; llp->end_sector = blp->end_sector; llp->end_sector_l0 = blp->end_sector_l0; break; } case DVD_STRUCT_COPYRIGHT: lp->copyright.cpst = bp->cpst; lp->copyright.rmi = bp->rmi; break; case DVD_STRUCT_DISCKEY: memcpy(lp->disckey.value, bp->data, sizeof(lp->disckey.value)); break; case DVD_STRUCT_BCA: lp->bca.len = bp->length; memcpy(lp->bca.value, bp->data, sizeof(lp->bca.value)); break; case DVD_STRUCT_MANUFACT: lp->manufact.len = bp->length; memcpy(lp->manufact.value, bp->data, sizeof(lp->manufact.value)); /* lp->manufact.layer_num is unused in Linux (redhat 7.0). */ break; default: return (EINVAL); } return (0); } static int linux_to_bsd_dvd_authinfo(l_dvd_authinfo *lp, int *bcode, struct dvd_authinfo *bp) { switch (lp->type) { case LINUX_DVD_LU_SEND_AGID: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_AGID; bp->agid = lp->lsa.agid; break; case LINUX_DVD_HOST_SEND_CHALLENGE: *bcode = DVDIOCSENDKEY; bp->format = DVD_SEND_CHALLENGE; bp->agid = lp->hsc.agid; memcpy(bp->keychal, lp->hsc.chal, 10); break; case LINUX_DVD_LU_SEND_KEY1: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_KEY1; bp->agid = lp->lsk.agid; break; case LINUX_DVD_LU_SEND_CHALLENGE: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_CHALLENGE; bp->agid = lp->lsc.agid; break; case LINUX_DVD_HOST_SEND_KEY2: *bcode = DVDIOCSENDKEY; bp->format = DVD_SEND_KEY2; bp->agid = lp->hsk.agid; memcpy(bp->keychal, lp->hsk.key, 5); break; case LINUX_DVD_LU_SEND_TITLE_KEY: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_TITLE_KEY; bp->agid = lp->lstk.agid; bp->lba = lp->lstk.lba; break; case LINUX_DVD_LU_SEND_ASF: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_ASF; bp->agid = lp->lsasf.agid; break; case LINUX_DVD_INVALIDATE_AGID: *bcode = DVDIOCREPORTKEY; bp->format = DVD_INVALIDATE_AGID; bp->agid = lp->lsa.agid; break; case LINUX_DVD_LU_SEND_RPC_STATE: *bcode = DVDIOCREPORTKEY; bp->format = DVD_REPORT_RPC; break; case LINUX_DVD_HOST_SEND_RPC_STATE: *bcode = DVDIOCSENDKEY; bp->format = DVD_SEND_RPC; bp->region = lp->hrpcs.pdrc; break; default: return (EINVAL); } return (0); } static int bsd_to_linux_dvd_authinfo(struct dvd_authinfo *bp, l_dvd_authinfo *lp) { switch (lp->type) { case LINUX_DVD_LU_SEND_AGID: lp->lsa.agid = bp->agid; break; case LINUX_DVD_HOST_SEND_CHALLENGE: lp->type = LINUX_DVD_LU_SEND_KEY1; break; case LINUX_DVD_LU_SEND_KEY1: memcpy(lp->lsk.key, bp->keychal, sizeof(lp->lsk.key)); break; case LINUX_DVD_LU_SEND_CHALLENGE: memcpy(lp->lsc.chal, bp->keychal, sizeof(lp->lsc.chal)); break; case LINUX_DVD_HOST_SEND_KEY2: lp->type = LINUX_DVD_AUTH_ESTABLISHED; break; case LINUX_DVD_LU_SEND_TITLE_KEY: memcpy(lp->lstk.title_key, bp->keychal, sizeof(lp->lstk.title_key)); lp->lstk.cpm = bp->cpm; lp->lstk.cp_sec = bp->cp_sec; lp->lstk.cgms = bp->cgms; break; case LINUX_DVD_LU_SEND_ASF: lp->lsasf.asf = bp->asf; break; case LINUX_DVD_INVALIDATE_AGID: break; case LINUX_DVD_LU_SEND_RPC_STATE: lp->lrpcs.type = bp->reg_type; lp->lrpcs.vra = bp->vend_rsts; lp->lrpcs.ucca = bp->user_rsts; lp->lrpcs.region_mask = bp->region; lp->lrpcs.rpc_scheme = bp->rpc_scheme; break; case LINUX_DVD_HOST_SEND_RPC_STATE: break; default: return (EINVAL); } return (0); } static int linux_ioctl_cdrom(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); switch (args->cmd & 0xffff) { case LINUX_CDROMPAUSE: args->cmd = CDIOCPAUSE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMRESUME: args->cmd = CDIOCRESUME; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMPLAYMSF: args->cmd = CDIOCPLAYMSF; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMPLAYTRKIND: args->cmd = CDIOCPLAYTRACKS; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMREADTOCHDR: { struct ioc_toc_header th; struct linux_cdrom_tochdr lth; error = fo_ioctl(fp, CDIOREADTOCHEADER, (caddr_t)&th, td->td_ucred, td); if (!error) { lth.cdth_trk0 = th.starting_track; lth.cdth_trk1 = th.ending_track; copyout(<h, (void *)args->arg, sizeof(lth)); } break; } case LINUX_CDROMREADTOCENTRY: { struct linux_cdrom_tocentry lte; struct ioc_read_toc_single_entry irtse; error = copyin((void *)args->arg, <e, sizeof(lte)); if (error) break; irtse.address_format = lte.cdte_format; irtse.track = lte.cdte_track; error = fo_ioctl(fp, CDIOREADTOCENTRY, (caddr_t)&irtse, td->td_ucred, td); if (!error) { lte.cdte_ctrl = irtse.entry.control; lte.cdte_adr = irtse.entry.addr_type; bsd_to_linux_msf_lba(irtse.address_format, &irtse.entry.addr, <e.cdte_addr); error = copyout(<e, (void *)args->arg, sizeof(lte)); } break; } case LINUX_CDROMSTOP: args->cmd = CDIOCSTOP; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMSTART: args->cmd = CDIOCSTART; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_CDROMEJECT: args->cmd = CDIOCEJECT; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* LINUX_CDROMVOLCTRL */ case LINUX_CDROMSUBCHNL: { struct linux_cdrom_subchnl sc; struct ioc_read_subchannel bsdsc; struct cd_sub_channel_info bsdinfo; error = copyin((void *)args->arg, &sc, sizeof(sc)); if (error) break; /* * Invoke the native ioctl and bounce the returned data through * the userspace buffer. This works because the Linux structure * is the same size as our structures for the subchannel header * and position data. */ bsdsc.address_format = CD_LBA_FORMAT; bsdsc.data_format = CD_CURRENT_POSITION; bsdsc.track = 0; bsdsc.data_len = sizeof(sc); bsdsc.data = (void *)args->arg; error = fo_ioctl(fp, CDIOCREADSUBCHANNEL, (caddr_t)&bsdsc, td->td_ucred, td); if (error) break; error = copyin((void *)args->arg, &bsdinfo, sizeof(bsdinfo)); if (error) break; sc.cdsc_audiostatus = bsdinfo.header.audio_status; sc.cdsc_adr = bsdinfo.what.position.addr_type; sc.cdsc_ctrl = bsdinfo.what.position.control; sc.cdsc_trk = bsdinfo.what.position.track_number; sc.cdsc_ind = bsdinfo.what.position.index_number; set_linux_cdrom_addr(&sc.cdsc_absaddr, sc.cdsc_format, bsdinfo.what.position.absaddr.lba); set_linux_cdrom_addr(&sc.cdsc_reladdr, sc.cdsc_format, bsdinfo.what.position.reladdr.lba); error = copyout(&sc, (void *)args->arg, sizeof(sc)); break; } /* LINUX_CDROMREADMODE2 */ /* LINUX_CDROMREADMODE1 */ /* LINUX_CDROMREADAUDIO */ /* LINUX_CDROMEJECT_SW */ /* LINUX_CDROMMULTISESSION */ /* LINUX_CDROM_GET_UPC */ case LINUX_CDROMRESET: args->cmd = CDIOCRESET; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; /* LINUX_CDROMVOLREAD */ /* LINUX_CDROMREADRAW */ /* LINUX_CDROMREADCOOKED */ /* LINUX_CDROMSEEK */ /* LINUX_CDROMPLAYBLK */ /* LINUX_CDROMREADALL */ /* LINUX_CDROMCLOSETRAY */ /* LINUX_CDROMLOADFROMSLOT */ /* LINUX_CDROMGETSPINDOWN */ /* LINUX_CDROMSETSPINDOWN */ /* LINUX_CDROM_SET_OPTIONS */ /* LINUX_CDROM_CLEAR_OPTIONS */ /* LINUX_CDROM_SELECT_SPEED */ /* LINUX_CDROM_SELECT_DISC */ /* LINUX_CDROM_MEDIA_CHANGED */ /* LINUX_CDROM_DRIVE_STATUS */ /* LINUX_CDROM_DISC_STATUS */ /* LINUX_CDROM_CHANGER_NSLOTS */ /* LINUX_CDROM_LOCKDOOR */ /* LINUX_CDROM_DEBUG */ /* LINUX_CDROM_GET_CAPABILITY */ /* LINUX_CDROMAUDIOBUFSIZ */ case LINUX_DVD_READ_STRUCT: { l_dvd_struct *lds; struct dvd_struct *bds; lds = malloc(sizeof(*lds), M_LINUX, M_WAITOK); bds = malloc(sizeof(*bds), M_LINUX, M_WAITOK); error = copyin((void *)args->arg, lds, sizeof(*lds)); if (error) goto out; error = linux_to_bsd_dvd_struct(lds, bds); if (error) goto out; error = fo_ioctl(fp, DVDIOCREADSTRUCTURE, (caddr_t)bds, td->td_ucred, td); if (error) goto out; error = bsd_to_linux_dvd_struct(bds, lds); if (error) goto out; error = copyout(lds, (void *)args->arg, sizeof(*lds)); out: free(bds, M_LINUX); free(lds, M_LINUX); break; } /* LINUX_DVD_WRITE_STRUCT */ case LINUX_DVD_AUTH: { l_dvd_authinfo lda; struct dvd_authinfo bda; int bcode; error = copyin((void *)args->arg, &lda, sizeof(lda)); if (error) break; error = linux_to_bsd_dvd_authinfo(&lda, &bcode, &bda); if (error) break; error = fo_ioctl(fp, bcode, (caddr_t)&bda, td->td_ucred, td); if (error) { if (lda.type == LINUX_DVD_HOST_SEND_KEY2) { lda.type = LINUX_DVD_AUTH_FAILURE; copyout(&lda, (void *)args->arg, sizeof(lda)); } break; } error = bsd_to_linux_dvd_authinfo(&bda, &lda); if (error) break; error = copyout(&lda, (void *)args->arg, sizeof(lda)); break; } case LINUX_SCSI_GET_BUS_NUMBER: { struct sg_scsi_id id; error = fo_ioctl(fp, SG_GET_SCSI_ID, (caddr_t)&id, td->td_ucred, td); if (error) break; error = copyout(&id.channel, (void *)args->arg, sizeof(int)); break; } case LINUX_SCSI_GET_IDLUN: { struct sg_scsi_id id; struct scsi_idlun idl; error = fo_ioctl(fp, SG_GET_SCSI_ID, (caddr_t)&id, td->td_ucred, td); if (error) break; idl.dev_id = (id.scsi_id & 0xff) + ((id.lun & 0xff) << 8) + ((id.channel & 0xff) << 16) + ((id.host_no & 0xff) << 24); idl.host_unique_id = id.host_no; error = copyout(&idl, (void *)args->arg, sizeof(idl)); break; } /* LINUX_CDROM_SEND_PACKET */ /* LINUX_CDROM_NEXT_WRITABLE */ /* LINUX_CDROM_LAST_WRITTEN */ default: error = ENOIOCTL; break; } fdrop(fp, td); return (error); } static int linux_ioctl_vfat(struct thread *td, struct linux_ioctl_args *args) { return (ENOTTY); } /* * Sound related ioctls */ struct linux_old_mixer_info { char id[16]; char name[32]; }; static uint32_t dirbits[4] = { IOC_VOID, IOC_IN, IOC_OUT, IOC_INOUT }; #define SETDIR(c) (((c) & ~IOC_DIRMASK) | dirbits[args->cmd >> 30]) static int linux_ioctl_sound(struct thread *td, struct linux_ioctl_args *args) { switch (args->cmd & 0xffff) { case LINUX_SOUND_MIXER_WRITE_VOLUME: args->cmd = SETDIR(SOUND_MIXER_WRITE_VOLUME); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_BASS: args->cmd = SETDIR(SOUND_MIXER_WRITE_BASS); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_TREBLE: args->cmd = SETDIR(SOUND_MIXER_WRITE_TREBLE); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_SYNTH: args->cmd = SETDIR(SOUND_MIXER_WRITE_SYNTH); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_PCM: args->cmd = SETDIR(SOUND_MIXER_WRITE_PCM); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_SPEAKER: args->cmd = SETDIR(SOUND_MIXER_WRITE_SPEAKER); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_LINE: args->cmd = SETDIR(SOUND_MIXER_WRITE_LINE); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_MIC: args->cmd = SETDIR(SOUND_MIXER_WRITE_MIC); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_CD: args->cmd = SETDIR(SOUND_MIXER_WRITE_CD); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_IMIX: args->cmd = SETDIR(SOUND_MIXER_WRITE_IMIX); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_ALTPCM: args->cmd = SETDIR(SOUND_MIXER_WRITE_ALTPCM); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_RECLEV: args->cmd = SETDIR(SOUND_MIXER_WRITE_RECLEV); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_IGAIN: args->cmd = SETDIR(SOUND_MIXER_WRITE_IGAIN); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_OGAIN: args->cmd = SETDIR(SOUND_MIXER_WRITE_OGAIN); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_LINE1: args->cmd = SETDIR(SOUND_MIXER_WRITE_LINE1); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_LINE2: args->cmd = SETDIR(SOUND_MIXER_WRITE_LINE2); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_LINE3: args->cmd = SETDIR(SOUND_MIXER_WRITE_LINE3); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_MONITOR: args->cmd = SETDIR(SOUND_MIXER_WRITE_MONITOR); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_INFO: { /* Key on encoded length */ switch ((args->cmd >> 16) & 0x1fff) { case 0x005c: { /* SOUND_MIXER_INFO */ args->cmd = SOUND_MIXER_INFO; return (sys_ioctl(td, (struct ioctl_args *)args)); } case 0x0030: { /* SOUND_OLD_MIXER_INFO */ struct linux_old_mixer_info info; bzero(&info, sizeof(info)); strncpy(info.id, "OSS", sizeof(info.id) - 1); strncpy(info.name, "FreeBSD OSS Mixer", sizeof(info.name) - 1); copyout(&info, (void *)args->arg, sizeof(info)); return (0); } default: return (ENOIOCTL); } break; } case LINUX_OSS_GETVERSION: { int version = linux_get_oss_version(td); return (copyout(&version, (void *)args->arg, sizeof(int))); } case LINUX_SOUND_MIXER_READ_STEREODEVS: args->cmd = SOUND_MIXER_READ_STEREODEVS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_READ_CAPS: args->cmd = SOUND_MIXER_READ_CAPS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_READ_RECMASK: args->cmd = SOUND_MIXER_READ_RECMASK; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_READ_DEVMASK: args->cmd = SOUND_MIXER_READ_DEVMASK; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_MIXER_WRITE_RECSRC: args->cmd = SETDIR(SOUND_MIXER_WRITE_RECSRC); return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_RESET: args->cmd = SNDCTL_DSP_RESET; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SYNC: args->cmd = SNDCTL_DSP_SYNC; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SPEED: args->cmd = SNDCTL_DSP_SPEED; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_STEREO: args->cmd = SNDCTL_DSP_STEREO; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETBLKSIZE: /* LINUX_SNDCTL_DSP_SETBLKSIZE */ args->cmd = SNDCTL_DSP_GETBLKSIZE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SETFMT: args->cmd = SNDCTL_DSP_SETFMT; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_PCM_WRITE_CHANNELS: args->cmd = SOUND_PCM_WRITE_CHANNELS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SOUND_PCM_WRITE_FILTER: args->cmd = SOUND_PCM_WRITE_FILTER; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_POST: args->cmd = SNDCTL_DSP_POST; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SUBDIVIDE: args->cmd = SNDCTL_DSP_SUBDIVIDE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SETFRAGMENT: args->cmd = SNDCTL_DSP_SETFRAGMENT; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETFMTS: args->cmd = SNDCTL_DSP_GETFMTS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETOSPACE: args->cmd = SNDCTL_DSP_GETOSPACE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETISPACE: args->cmd = SNDCTL_DSP_GETISPACE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_NONBLOCK: args->cmd = SNDCTL_DSP_NONBLOCK; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETCAPS: args->cmd = SNDCTL_DSP_GETCAPS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SETTRIGGER: /* LINUX_SNDCTL_GETTRIGGER */ args->cmd = SNDCTL_DSP_SETTRIGGER; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETIPTR: args->cmd = SNDCTL_DSP_GETIPTR; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETOPTR: args->cmd = SNDCTL_DSP_GETOPTR; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_SETDUPLEX: args->cmd = SNDCTL_DSP_SETDUPLEX; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_DSP_GETODELAY: args->cmd = SNDCTL_DSP_GETODELAY; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_RESET: args->cmd = SNDCTL_SEQ_RESET; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_SYNC: args->cmd = SNDCTL_SEQ_SYNC; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SYNTH_INFO: args->cmd = SNDCTL_SYNTH_INFO; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_CTRLRATE: args->cmd = SNDCTL_SEQ_CTRLRATE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_GETOUTCOUNT: args->cmd = SNDCTL_SEQ_GETOUTCOUNT; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_GETINCOUNT: args->cmd = SNDCTL_SEQ_GETINCOUNT; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_PERCMODE: args->cmd = SNDCTL_SEQ_PERCMODE; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_FM_LOAD_INSTR: args->cmd = SNDCTL_FM_LOAD_INSTR; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_TESTMIDI: args->cmd = SNDCTL_SEQ_TESTMIDI; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_RESETSAMPLES: args->cmd = SNDCTL_SEQ_RESETSAMPLES; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_NRSYNTHS: args->cmd = SNDCTL_SEQ_NRSYNTHS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_NRMIDIS: args->cmd = SNDCTL_SEQ_NRMIDIS; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_MIDI_INFO: args->cmd = SNDCTL_MIDI_INFO; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SEQ_TRESHOLD: args->cmd = SNDCTL_SEQ_TRESHOLD; return (sys_ioctl(td, (struct ioctl_args *)args)); case LINUX_SNDCTL_SYNTH_MEMAVL: args->cmd = SNDCTL_SYNTH_MEMAVL; return (sys_ioctl(td, (struct ioctl_args *)args)); } return (ENOIOCTL); } /* * Console related ioctls */ static int linux_ioctl_console(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); switch (args->cmd & 0xffff) { case LINUX_KIOCSOUND: args->cmd = KIOCSOUND; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDMKTONE: args->cmd = KDMKTONE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDGETLED: args->cmd = KDGETLED; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDSETLED: args->cmd = KDSETLED; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDSETMODE: args->cmd = KDSETMODE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDGETMODE: args->cmd = KDGETMODE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDGKBMODE: args->cmd = KDGKBMODE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_KDSKBMODE: { int kbdmode; switch (args->arg) { case LINUX_KBD_RAW: kbdmode = K_RAW; break; case LINUX_KBD_XLATE: kbdmode = K_XLATE; break; case LINUX_KBD_MEDIUMRAW: kbdmode = K_RAW; break; default: fdrop(fp, td); return (EINVAL); } error = (fo_ioctl(fp, KDSKBMODE, (caddr_t)&kbdmode, td->td_ucred, td)); break; } case LINUX_VT_OPENQRY: args->cmd = VT_OPENQRY; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_VT_GETMODE: args->cmd = VT_GETMODE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_VT_SETMODE: { struct vt_mode mode; if ((error = copyin((void *)args->arg, &mode, sizeof(mode)))) break; if (LINUX_SIG_VALID(mode.relsig)) mode.relsig = linux_to_bsd_signal(mode.relsig); else mode.relsig = 0; if (LINUX_SIG_VALID(mode.acqsig)) mode.acqsig = linux_to_bsd_signal(mode.acqsig); else mode.acqsig = 0; /* XXX. Linux ignores frsig and set it to 0. */ mode.frsig = 0; if ((error = copyout(&mode, (void *)args->arg, sizeof(mode)))) break; args->cmd = VT_SETMODE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; } case LINUX_VT_GETSTATE: args->cmd = VT_GETACTIVE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_VT_RELDISP: args->cmd = VT_RELDISP; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_VT_ACTIVATE: args->cmd = VT_ACTIVATE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; case LINUX_VT_WAITACTIVE: args->cmd = VT_WAITACTIVE; error = (sys_ioctl(td, (struct ioctl_args *)args)); break; default: error = ENOIOCTL; break; } fdrop(fp, td); return (error); } /* * Implement the SIOCGIFNAME ioctl */ static int linux_ioctl_ifname(struct thread *td, struct l_ifreq *uifr) { struct l_ifreq ifr; struct ifnet *ifp; int error, ethno, index; error = copyin(uifr, &ifr, sizeof(ifr)); if (error != 0) return (error); CURVNET_SET(TD_TO_VNET(curthread)); IFNET_RLOCK(); index = 1; /* ifr.ifr_ifindex starts from 1 */ ethno = 0; error = ENODEV; CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) { if (ifr.ifr_ifindex == index) { if (!linux_use_real_ifname(ifp)) snprintf(ifr.ifr_name, LINUX_IFNAMSIZ, "eth%d", ethno); else strlcpy(ifr.ifr_name, ifp->if_xname, LINUX_IFNAMSIZ); error = 0; break; } if (!linux_use_real_ifname(ifp)) ethno++; index++; } IFNET_RUNLOCK(); if (error == 0) error = copyout(&ifr, uifr, sizeof(ifr)); CURVNET_RESTORE(); return (error); } /* * Implement the SIOCGIFCONF ioctl */ static int linux_ifconf(struct thread *td, struct ifconf *uifc) { #ifdef COMPAT_LINUX32 struct l_ifconf ifc; #else struct ifconf ifc; #endif struct l_ifreq ifr; struct ifnet *ifp; struct ifaddr *ifa; struct sbuf *sb; int error, ethno, full = 0, valid_len, max_len; error = copyin(uifc, &ifc, sizeof(ifc)); if (error != 0) return (error); max_len = maxphys - 1; CURVNET_SET(TD_TO_VNET(td)); /* handle the 'request buffer size' case */ if ((l_uintptr_t)ifc.ifc_buf == PTROUT(NULL)) { ifc.ifc_len = 0; IFNET_RLOCK(); CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) { CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) { struct sockaddr *sa = ifa->ifa_addr; if (sa->sa_family == AF_INET) ifc.ifc_len += sizeof(ifr); } } IFNET_RUNLOCK(); error = copyout(&ifc, uifc, sizeof(ifc)); CURVNET_RESTORE(); return (error); } if (ifc.ifc_len <= 0) { CURVNET_RESTORE(); return (EINVAL); } again: /* Keep track of eth interfaces */ ethno = 0; if (ifc.ifc_len <= max_len) { max_len = ifc.ifc_len; full = 1; } sb = sbuf_new(NULL, NULL, max_len + 1, SBUF_FIXEDLEN); max_len = 0; valid_len = 0; /* Return all AF_INET addresses of all interfaces */ IFNET_RLOCK(); CK_STAILQ_FOREACH(ifp, &V_ifnet, if_link) { int addrs = 0; bzero(&ifr, sizeof(ifr)); if (IFP_IS_ETH(ifp)) snprintf(ifr.ifr_name, LINUX_IFNAMSIZ, "eth%d", ethno++); else strlcpy(ifr.ifr_name, ifp->if_xname, LINUX_IFNAMSIZ); /* Walk the address list */ CK_STAILQ_FOREACH(ifa, &ifp->if_addrhead, ifa_link) { struct sockaddr *sa = ifa->ifa_addr; if (sa->sa_family == AF_INET) { ifr.ifr_addr.sa_family = LINUX_AF_INET; memcpy(ifr.ifr_addr.sa_data, sa->sa_data, sizeof(ifr.ifr_addr.sa_data)); sbuf_bcat(sb, &ifr, sizeof(ifr)); max_len += sizeof(ifr); addrs++; } if (sbuf_error(sb) == 0) valid_len = sbuf_len(sb); } if (addrs == 0) { bzero((caddr_t)&ifr.ifr_addr, sizeof(ifr.ifr_addr)); sbuf_bcat(sb, &ifr, sizeof(ifr)); max_len += sizeof(ifr); if (sbuf_error(sb) == 0) valid_len = sbuf_len(sb); } } IFNET_RUNLOCK(); if (valid_len != max_len && !full) { sbuf_delete(sb); goto again; } ifc.ifc_len = valid_len; sbuf_finish(sb); error = copyout(sbuf_data(sb), PTRIN(ifc.ifc_buf), ifc.ifc_len); if (error == 0) error = copyout(&ifc, uifc, sizeof(ifc)); sbuf_delete(sb); CURVNET_RESTORE(); return (error); } static int linux_gifflags(struct thread *td, struct ifnet *ifp, struct l_ifreq *ifr) { l_short flags; linux_ifflags(ifp, &flags); return (copyout(&flags, &ifr->ifr_flags, sizeof(flags))); } static int linux_gifhwaddr(struct ifnet *ifp, struct l_ifreq *ifr) { struct l_sockaddr lsa; if (linux_ifhwaddr(ifp, &lsa) != 0) return (ENOENT); return (copyout(&lsa, &ifr->ifr_hwaddr, sizeof(lsa))); } /* * If we fault in bsd_to_linux_ifreq() then we will fault when we call * the native ioctl(). Thus, we don't really need to check the return * value of this function. */ static int bsd_to_linux_ifreq(struct ifreq *arg) { struct ifreq ifr; size_t ifr_len = sizeof(struct ifreq); int error; if ((error = copyin(arg, &ifr, ifr_len))) return (error); *(u_short *)&ifr.ifr_addr = ifr.ifr_addr.sa_family; error = copyout(&ifr, arg, ifr_len); return (error); } /* * Socket related ioctls */ static int linux_ioctl_socket(struct thread *td, struct linux_ioctl_args *args) { char lifname[LINUX_IFNAMSIZ], ifname[IFNAMSIZ]; struct ifnet *ifp; struct file *fp; int error, type; ifp = NULL; error = 0; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); type = fp->f_type; fdrop(fp, td); if (type != DTYPE_SOCKET) { /* not a socket - probably a tap / vmnet device */ switch (args->cmd) { case LINUX_SIOCGIFADDR: case LINUX_SIOCSIFADDR: case LINUX_SIOCGIFFLAGS: return (linux_ioctl_special(td, args)); default: return (ENOIOCTL); } } switch (args->cmd & 0xffff) { case LINUX_FIOGETOWN: case LINUX_FIOSETOWN: case LINUX_SIOCADDMULTI: case LINUX_SIOCATMARK: case LINUX_SIOCDELMULTI: case LINUX_SIOCGIFNAME: case LINUX_SIOCGIFCONF: case LINUX_SIOCGPGRP: case LINUX_SIOCSPGRP: case LINUX_SIOCGIFCOUNT: /* these ioctls don't take an interface name */ break; case LINUX_SIOCGIFFLAGS: case LINUX_SIOCGIFADDR: case LINUX_SIOCSIFADDR: case LINUX_SIOCGIFDSTADDR: case LINUX_SIOCGIFBRDADDR: case LINUX_SIOCGIFNETMASK: case LINUX_SIOCSIFNETMASK: case LINUX_SIOCGIFMTU: case LINUX_SIOCSIFMTU: case LINUX_SIOCSIFNAME: case LINUX_SIOCGIFHWADDR: case LINUX_SIOCSIFHWADDR: case LINUX_SIOCDEVPRIVATE: case LINUX_SIOCDEVPRIVATE+1: case LINUX_SIOCGIFINDEX: /* copy in the interface name and translate it. */ error = copyin((void *)args->arg, lifname, LINUX_IFNAMSIZ); if (error != 0) return (error); memset(ifname, 0, sizeof(ifname)); ifp = ifname_linux_to_bsd(td, lifname, ifname); if (ifp == NULL) return (EINVAL); /* * We need to copy it back out in case we pass the * request on to our native ioctl(), which will expect * the ifreq to be in user space and have the correct * interface name. */ error = copyout(ifname, (void *)args->arg, IFNAMSIZ); if (error != 0) return (error); break; default: return (ENOIOCTL); } switch (args->cmd & 0xffff) { case LINUX_FIOSETOWN: args->cmd = FIOSETOWN; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCSPGRP: args->cmd = SIOCSPGRP; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_FIOGETOWN: args->cmd = FIOGETOWN; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCGPGRP: args->cmd = SIOCGPGRP; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCATMARK: args->cmd = SIOCATMARK; error = sys_ioctl(td, (struct ioctl_args *)args); break; /* LINUX_SIOCGSTAMP */ case LINUX_SIOCGIFNAME: error = linux_ioctl_ifname(td, (struct l_ifreq *)args->arg); break; case LINUX_SIOCGIFCONF: error = linux_ifconf(td, (struct ifconf *)args->arg); break; case LINUX_SIOCGIFFLAGS: args->cmd = SIOCGIFFLAGS; error = linux_gifflags(td, ifp, (struct l_ifreq *)args->arg); break; case LINUX_SIOCGIFADDR: args->cmd = SIOCGIFADDR; error = sys_ioctl(td, (struct ioctl_args *)args); bsd_to_linux_ifreq((struct ifreq *)args->arg); break; case LINUX_SIOCSIFADDR: /* XXX probably doesn't work, included for completeness */ args->cmd = SIOCSIFADDR; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCGIFDSTADDR: args->cmd = SIOCGIFDSTADDR; error = sys_ioctl(td, (struct ioctl_args *)args); bsd_to_linux_ifreq((struct ifreq *)args->arg); break; case LINUX_SIOCGIFBRDADDR: args->cmd = SIOCGIFBRDADDR; error = sys_ioctl(td, (struct ioctl_args *)args); bsd_to_linux_ifreq((struct ifreq *)args->arg); break; case LINUX_SIOCGIFNETMASK: args->cmd = SIOCGIFNETMASK; error = sys_ioctl(td, (struct ioctl_args *)args); bsd_to_linux_ifreq((struct ifreq *)args->arg); break; case LINUX_SIOCSIFNETMASK: error = ENOIOCTL; break; case LINUX_SIOCGIFMTU: args->cmd = SIOCGIFMTU; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCSIFMTU: args->cmd = SIOCSIFMTU; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCSIFNAME: error = ENOIOCTL; break; case LINUX_SIOCGIFHWADDR: error = linux_gifhwaddr(ifp, (struct l_ifreq *)args->arg); break; case LINUX_SIOCSIFHWADDR: error = ENOIOCTL; break; case LINUX_SIOCADDMULTI: args->cmd = SIOCADDMULTI; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCDELMULTI: args->cmd = SIOCDELMULTI; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCGIFINDEX: args->cmd = SIOCGIFINDEX; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCGIFCOUNT: error = 0; break; /* * XXX This is slightly bogus, but these ioctls are currently * XXX only used by the aironet (if_an) network driver. */ case LINUX_SIOCDEVPRIVATE: args->cmd = SIOCGPRIVATE_0; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCDEVPRIVATE+1: args->cmd = SIOCGPRIVATE_1; error = sys_ioctl(td, (struct ioctl_args *)args); break; } if (ifp != NULL) /* restore the original interface name */ copyout(lifname, (void *)args->arg, LINUX_IFNAMSIZ); return (error); } /* * Device private ioctl handler */ static int linux_ioctl_private(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error, type; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); type = fp->f_type; fdrop(fp, td); if (type == DTYPE_SOCKET) return (linux_ioctl_socket(td, args)); return (ENOIOCTL); } /* * DRM ioctl handler (sys/dev/drm) */ static int linux_ioctl_drm(struct thread *td, struct linux_ioctl_args *args) { args->cmd = SETDIR(args->cmd); return (sys_ioctl(td, (struct ioctl_args *)args)); } #ifdef COMPAT_LINUX32 static int linux_ioctl_sg_io(struct thread *td, struct linux_ioctl_args *args) { struct sg_io_hdr io; struct sg_io_hdr32 io32; struct file *fp; int error; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) { printf("sg_linux_ioctl: fget returned %d\n", error); return (error); } if ((error = copyin((void *)args->arg, &io32, sizeof(io32))) != 0) goto out; CP(io32, io, interface_id); CP(io32, io, dxfer_direction); CP(io32, io, cmd_len); CP(io32, io, mx_sb_len); CP(io32, io, iovec_count); CP(io32, io, dxfer_len); PTRIN_CP(io32, io, dxferp); PTRIN_CP(io32, io, cmdp); PTRIN_CP(io32, io, sbp); CP(io32, io, timeout); CP(io32, io, flags); CP(io32, io, pack_id); PTRIN_CP(io32, io, usr_ptr); CP(io32, io, status); CP(io32, io, masked_status); CP(io32, io, msg_status); CP(io32, io, sb_len_wr); CP(io32, io, host_status); CP(io32, io, driver_status); CP(io32, io, resid); CP(io32, io, duration); CP(io32, io, info); if ((error = fo_ioctl(fp, SG_IO, (caddr_t)&io, td->td_ucred, td)) != 0) goto out; CP(io, io32, interface_id); CP(io, io32, dxfer_direction); CP(io, io32, cmd_len); CP(io, io32, mx_sb_len); CP(io, io32, iovec_count); CP(io, io32, dxfer_len); PTROUT_CP(io, io32, dxferp); PTROUT_CP(io, io32, cmdp); PTROUT_CP(io, io32, sbp); CP(io, io32, timeout); CP(io, io32, flags); CP(io, io32, pack_id); PTROUT_CP(io, io32, usr_ptr); CP(io, io32, status); CP(io, io32, masked_status); CP(io, io32, msg_status); CP(io, io32, sb_len_wr); CP(io, io32, host_status); CP(io, io32, driver_status); CP(io, io32, resid); CP(io, io32, duration); CP(io, io32, info); error = copyout(&io32, (void *)args->arg, sizeof(io32)); out: fdrop(fp, td); return (error); } #endif static int linux_ioctl_sg(struct thread *td, struct linux_ioctl_args *args) { switch (args->cmd) { case LINUX_SG_GET_VERSION_NUM: args->cmd = SG_GET_VERSION_NUM; break; case LINUX_SG_SET_TIMEOUT: args->cmd = SG_SET_TIMEOUT; break; case LINUX_SG_GET_TIMEOUT: args->cmd = SG_GET_TIMEOUT; break; case LINUX_SG_IO: args->cmd = SG_IO; #ifdef COMPAT_LINUX32 return (linux_ioctl_sg_io(td, args)); #endif break; case LINUX_SG_GET_RESERVED_SIZE: args->cmd = SG_GET_RESERVED_SIZE; break; case LINUX_SG_GET_SCSI_ID: args->cmd = SG_GET_SCSI_ID; break; case LINUX_SG_GET_SG_TABLESIZE: args->cmd = SG_GET_SG_TABLESIZE; break; default: return (ENODEV); } return (sys_ioctl(td, (struct ioctl_args *)args)); } /* * Video4Linux (V4L) ioctl handler */ static int linux_to_bsd_v4l_tuner(struct l_video_tuner *lvt, struct video_tuner *vt) { vt->tuner = lvt->tuner; strlcpy(vt->name, lvt->name, LINUX_VIDEO_TUNER_NAME_SIZE); vt->rangelow = lvt->rangelow; /* possible long size conversion */ vt->rangehigh = lvt->rangehigh; /* possible long size conversion */ vt->flags = lvt->flags; vt->mode = lvt->mode; vt->signal = lvt->signal; return (0); } static int bsd_to_linux_v4l_tuner(struct video_tuner *vt, struct l_video_tuner *lvt) { lvt->tuner = vt->tuner; strlcpy(lvt->name, vt->name, LINUX_VIDEO_TUNER_NAME_SIZE); lvt->rangelow = vt->rangelow; /* possible long size conversion */ lvt->rangehigh = vt->rangehigh; /* possible long size conversion */ lvt->flags = vt->flags; lvt->mode = vt->mode; lvt->signal = vt->signal; return (0); } #ifdef COMPAT_LINUX_V4L_CLIPLIST static int linux_to_bsd_v4l_clip(struct l_video_clip *lvc, struct video_clip *vc) { vc->x = lvc->x; vc->y = lvc->y; vc->width = lvc->width; vc->height = lvc->height; vc->next = PTRIN(lvc->next); /* possible pointer size conversion */ return (0); } #endif static int linux_to_bsd_v4l_window(struct l_video_window *lvw, struct video_window *vw) { vw->x = lvw->x; vw->y = lvw->y; vw->width = lvw->width; vw->height = lvw->height; vw->chromakey = lvw->chromakey; vw->flags = lvw->flags; vw->clips = PTRIN(lvw->clips); /* possible pointer size conversion */ vw->clipcount = lvw->clipcount; return (0); } static int bsd_to_linux_v4l_window(struct video_window *vw, struct l_video_window *lvw) { memset(lvw, 0, sizeof(*lvw)); lvw->x = vw->x; lvw->y = vw->y; lvw->width = vw->width; lvw->height = vw->height; lvw->chromakey = vw->chromakey; lvw->flags = vw->flags; lvw->clips = PTROUT(vw->clips); /* possible pointer size conversion */ lvw->clipcount = vw->clipcount; return (0); } static int linux_to_bsd_v4l_buffer(struct l_video_buffer *lvb, struct video_buffer *vb) { vb->base = PTRIN(lvb->base); /* possible pointer size conversion */ vb->height = lvb->height; vb->width = lvb->width; vb->depth = lvb->depth; vb->bytesperline = lvb->bytesperline; return (0); } static int bsd_to_linux_v4l_buffer(struct video_buffer *vb, struct l_video_buffer *lvb) { lvb->base = PTROUT(vb->base); /* possible pointer size conversion */ lvb->height = vb->height; lvb->width = vb->width; lvb->depth = vb->depth; lvb->bytesperline = vb->bytesperline; return (0); } static int linux_to_bsd_v4l_code(struct l_video_code *lvc, struct video_code *vc) { strlcpy(vc->loadwhat, lvc->loadwhat, LINUX_VIDEO_CODE_LOADWHAT_SIZE); vc->datasize = lvc->datasize; vc->data = PTRIN(lvc->data); /* possible pointer size conversion */ return (0); } #ifdef COMPAT_LINUX_V4L_CLIPLIST static int linux_v4l_clip_copy(void *lvc, struct video_clip **ppvc) { int error; struct video_clip vclip; struct l_video_clip l_vclip; error = copyin(lvc, &l_vclip, sizeof(l_vclip)); if (error) return (error); linux_to_bsd_v4l_clip(&l_vclip, &vclip); /* XXX: If there can be no concurrency: s/M_NOWAIT/M_WAITOK/ */ if ((*ppvc = malloc(sizeof(**ppvc), M_LINUX, M_NOWAIT)) == NULL) return (ENOMEM); /* XXX: Linux has no ENOMEM here. */ memcpy(*ppvc, &vclip, sizeof(vclip)); (*ppvc)->next = NULL; return (0); } static int linux_v4l_cliplist_free(struct video_window *vw) { struct video_clip **ppvc; struct video_clip **ppvc_next; for (ppvc = &(vw->clips); *ppvc != NULL; ppvc = ppvc_next) { ppvc_next = &((*ppvc)->next); free(*ppvc, M_LINUX); } vw->clips = NULL; return (0); } static int linux_v4l_cliplist_copy(struct l_video_window *lvw, struct video_window *vw) { int error; int clipcount; void *plvc; struct video_clip **ppvc; /* * XXX: The cliplist is used to pass in a list of clipping * rectangles or, if clipcount == VIDEO_CLIP_BITMAP, a * clipping bitmap. Some Linux apps, however, appear to * leave cliplist and clips uninitialized. In any case, * the cliplist is not used by pwc(4), at the time of * writing, FreeBSD's only V4L driver. When a driver * that uses the cliplist is developed, this code may * need re-examiniation. */ error = 0; clipcount = vw->clipcount; if (clipcount == VIDEO_CLIP_BITMAP) { /* * In this case, the pointer (clips) is overloaded * to be a "void *" to a bitmap, therefore there * is no struct video_clip to copy now. */ } else if (clipcount > 0 && clipcount <= 16384) { /* * Clips points to list of clip rectangles, so * copy the list. * * XXX: Upper limit of 16384 was used here to try to * avoid cases when clipcount and clips pointer * are uninitialized and therefore have high random * values, as is the case in the Linux Skype * application. The value 16384 was chosen as that * is what is used in the Linux stradis(4) MPEG * decoder driver, the only place we found an * example of cliplist use. */ plvc = PTRIN(lvw->clips); vw->clips = NULL; ppvc = &(vw->clips); while (clipcount-- > 0) { if (plvc == NULL) { error = EFAULT; break; } else { error = linux_v4l_clip_copy(plvc, ppvc); if (error) { linux_v4l_cliplist_free(vw); break; } } ppvc = &((*ppvc)->next); plvc = PTRIN(((struct l_video_clip *) plvc)->next); } } else { /* * clipcount == 0 or negative (but not VIDEO_CLIP_BITMAP) * Force cliplist to null. */ vw->clipcount = 0; vw->clips = NULL; } return (error); } #endif static int linux_ioctl_v4l(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; struct video_tuner vtun; struct video_window vwin; struct video_buffer vbuf; struct video_code vcode; struct l_video_tuner l_vtun; struct l_video_window l_vwin; struct l_video_buffer l_vbuf; struct l_video_code l_vcode; switch (args->cmd & 0xffff) { case LINUX_VIDIOCGCAP: args->cmd = VIDIOCGCAP; break; case LINUX_VIDIOCGCHAN: args->cmd = VIDIOCGCHAN; break; case LINUX_VIDIOCSCHAN: args->cmd = VIDIOCSCHAN; break; case LINUX_VIDIOCGTUNER: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = copyin((void *) args->arg, &l_vtun, sizeof(l_vtun)); if (error) { fdrop(fp, td); return (error); } linux_to_bsd_v4l_tuner(&l_vtun, &vtun); error = fo_ioctl(fp, VIDIOCGTUNER, &vtun, td->td_ucred, td); if (!error) { bsd_to_linux_v4l_tuner(&vtun, &l_vtun); error = copyout(&l_vtun, (void *) args->arg, sizeof(l_vtun)); } fdrop(fp, td); return (error); case LINUX_VIDIOCSTUNER: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = copyin((void *) args->arg, &l_vtun, sizeof(l_vtun)); if (error) { fdrop(fp, td); return (error); } linux_to_bsd_v4l_tuner(&l_vtun, &vtun); error = fo_ioctl(fp, VIDIOCSTUNER, &vtun, td->td_ucred, td); fdrop(fp, td); return (error); case LINUX_VIDIOCGPICT: args->cmd = VIDIOCGPICT; break; case LINUX_VIDIOCSPICT: args->cmd = VIDIOCSPICT; break; case LINUX_VIDIOCCAPTURE: args->cmd = VIDIOCCAPTURE; break; case LINUX_VIDIOCGWIN: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = fo_ioctl(fp, VIDIOCGWIN, &vwin, td->td_ucred, td); if (!error) { bsd_to_linux_v4l_window(&vwin, &l_vwin); error = copyout(&l_vwin, (void *) args->arg, sizeof(l_vwin)); } fdrop(fp, td); return (error); case LINUX_VIDIOCSWIN: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = copyin((void *) args->arg, &l_vwin, sizeof(l_vwin)); if (error) { fdrop(fp, td); return (error); } linux_to_bsd_v4l_window(&l_vwin, &vwin); #ifdef COMPAT_LINUX_V4L_CLIPLIST error = linux_v4l_cliplist_copy(&l_vwin, &vwin); if (error) { fdrop(fp, td); return (error); } #endif error = fo_ioctl(fp, VIDIOCSWIN, &vwin, td->td_ucred, td); fdrop(fp, td); #ifdef COMPAT_LINUX_V4L_CLIPLIST linux_v4l_cliplist_free(&vwin); #endif return (error); case LINUX_VIDIOCGFBUF: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = fo_ioctl(fp, VIDIOCGFBUF, &vbuf, td->td_ucred, td); if (!error) { bsd_to_linux_v4l_buffer(&vbuf, &l_vbuf); error = copyout(&l_vbuf, (void *) args->arg, sizeof(l_vbuf)); } fdrop(fp, td); return (error); case LINUX_VIDIOCSFBUF: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = copyin((void *) args->arg, &l_vbuf, sizeof(l_vbuf)); if (error) { fdrop(fp, td); return (error); } linux_to_bsd_v4l_buffer(&l_vbuf, &vbuf); error = fo_ioctl(fp, VIDIOCSFBUF, &vbuf, td->td_ucred, td); fdrop(fp, td); return (error); case LINUX_VIDIOCKEY: args->cmd = VIDIOCKEY; break; case LINUX_VIDIOCGFREQ: args->cmd = VIDIOCGFREQ; break; case LINUX_VIDIOCSFREQ: args->cmd = VIDIOCSFREQ; break; case LINUX_VIDIOCGAUDIO: args->cmd = VIDIOCGAUDIO; break; case LINUX_VIDIOCSAUDIO: args->cmd = VIDIOCSAUDIO; break; case LINUX_VIDIOCSYNC: args->cmd = VIDIOCSYNC; break; case LINUX_VIDIOCMCAPTURE: args->cmd = VIDIOCMCAPTURE; break; case LINUX_VIDIOCGMBUF: args->cmd = VIDIOCGMBUF; break; case LINUX_VIDIOCGUNIT: args->cmd = VIDIOCGUNIT; break; case LINUX_VIDIOCGCAPTURE: args->cmd = VIDIOCGCAPTURE; break; case LINUX_VIDIOCSCAPTURE: args->cmd = VIDIOCSCAPTURE; break; case LINUX_VIDIOCSPLAYMODE: args->cmd = VIDIOCSPLAYMODE; break; case LINUX_VIDIOCSWRITEMODE: args->cmd = VIDIOCSWRITEMODE; break; case LINUX_VIDIOCGPLAYINFO: args->cmd = VIDIOCGPLAYINFO; break; case LINUX_VIDIOCSMICROCODE: error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = copyin((void *) args->arg, &l_vcode, sizeof(l_vcode)); if (error) { fdrop(fp, td); return (error); } linux_to_bsd_v4l_code(&l_vcode, &vcode); error = fo_ioctl(fp, VIDIOCSMICROCODE, &vcode, td->td_ucred, td); fdrop(fp, td); return (error); case LINUX_VIDIOCGVBIFMT: args->cmd = VIDIOCGVBIFMT; break; case LINUX_VIDIOCSVBIFMT: args->cmd = VIDIOCSVBIFMT; break; default: return (ENOIOCTL); } error = sys_ioctl(td, (struct ioctl_args *)args); return (error); } /* * Special ioctl handler */ static int linux_ioctl_special(struct thread *td, struct linux_ioctl_args *args) { int error; switch (args->cmd) { case LINUX_SIOCGIFADDR: args->cmd = SIOCGIFADDR; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCSIFADDR: args->cmd = SIOCSIFADDR; error = sys_ioctl(td, (struct ioctl_args *)args); break; case LINUX_SIOCGIFFLAGS: args->cmd = SIOCGIFFLAGS; error = sys_ioctl(td, (struct ioctl_args *)args); break; default: error = ENOIOCTL; } return (error); } static int linux_to_bsd_v4l2_standard(struct l_v4l2_standard *lvstd, struct v4l2_standard *vstd) { vstd->index = lvstd->index; vstd->id = lvstd->id; CTASSERT(sizeof(vstd->name) == sizeof(lvstd->name)); memcpy(vstd->name, lvstd->name, sizeof(vstd->name)); vstd->frameperiod = lvstd->frameperiod; vstd->framelines = lvstd->framelines; CTASSERT(sizeof(vstd->reserved) == sizeof(lvstd->reserved)); memcpy(vstd->reserved, lvstd->reserved, sizeof(vstd->reserved)); return (0); } static int bsd_to_linux_v4l2_standard(struct v4l2_standard *vstd, struct l_v4l2_standard *lvstd) { lvstd->index = vstd->index; lvstd->id = vstd->id; CTASSERT(sizeof(vstd->name) == sizeof(lvstd->name)); memcpy(lvstd->name, vstd->name, sizeof(lvstd->name)); lvstd->frameperiod = vstd->frameperiod; lvstd->framelines = vstd->framelines; CTASSERT(sizeof(vstd->reserved) == sizeof(lvstd->reserved)); memcpy(lvstd->reserved, vstd->reserved, sizeof(lvstd->reserved)); return (0); } static int linux_to_bsd_v4l2_buffer(struct l_v4l2_buffer *lvb, struct v4l2_buffer *vb) { vb->index = lvb->index; vb->type = lvb->type; vb->bytesused = lvb->bytesused; vb->flags = lvb->flags; vb->field = lvb->field; vb->timestamp.tv_sec = lvb->timestamp.tv_sec; vb->timestamp.tv_usec = lvb->timestamp.tv_usec; memcpy(&vb->timecode, &lvb->timecode, sizeof (lvb->timecode)); vb->sequence = lvb->sequence; vb->memory = lvb->memory; if (lvb->memory == V4L2_MEMORY_USERPTR) /* possible pointer size conversion */ vb->m.userptr = (unsigned long)PTRIN(lvb->m.userptr); else vb->m.offset = lvb->m.offset; vb->length = lvb->length; vb->input = lvb->input; vb->reserved = lvb->reserved; return (0); } static int bsd_to_linux_v4l2_buffer(struct v4l2_buffer *vb, struct l_v4l2_buffer *lvb) { lvb->index = vb->index; lvb->type = vb->type; lvb->bytesused = vb->bytesused; lvb->flags = vb->flags; lvb->field = vb->field; lvb->timestamp.tv_sec = vb->timestamp.tv_sec; lvb->timestamp.tv_usec = vb->timestamp.tv_usec; memcpy(&lvb->timecode, &vb->timecode, sizeof (vb->timecode)); lvb->sequence = vb->sequence; lvb->memory = vb->memory; if (vb->memory == V4L2_MEMORY_USERPTR) /* possible pointer size conversion */ lvb->m.userptr = PTROUT(vb->m.userptr); else lvb->m.offset = vb->m.offset; lvb->length = vb->length; lvb->input = vb->input; lvb->reserved = vb->reserved; return (0); } static int linux_to_bsd_v4l2_format(struct l_v4l2_format *lvf, struct v4l2_format *vf) { vf->type = lvf->type; if (lvf->type == V4L2_BUF_TYPE_VIDEO_OVERLAY #ifdef V4L2_BUF_TYPE_VIDEO_OUTPUT_OVERLAY || lvf->type == V4L2_BUF_TYPE_VIDEO_OUTPUT_OVERLAY #endif ) /* * XXX TODO - needs 32 -> 64 bit conversion: * (unused by webcams?) */ return (EINVAL); memcpy(&vf->fmt, &lvf->fmt, sizeof(vf->fmt)); return (0); } static int bsd_to_linux_v4l2_format(struct v4l2_format *vf, struct l_v4l2_format *lvf) { lvf->type = vf->type; if (vf->type == V4L2_BUF_TYPE_VIDEO_OVERLAY #ifdef V4L2_BUF_TYPE_VIDEO_OUTPUT_OVERLAY || vf->type == V4L2_BUF_TYPE_VIDEO_OUTPUT_OVERLAY #endif ) /* * XXX TODO - needs 32 -> 64 bit conversion: * (unused by webcams?) */ return (EINVAL); memcpy(&lvf->fmt, &vf->fmt, sizeof(vf->fmt)); return (0); } static int linux_ioctl_v4l2(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; int error; struct v4l2_format vformat; struct l_v4l2_format l_vformat; struct v4l2_standard vstd; struct l_v4l2_standard l_vstd; struct l_v4l2_buffer l_vbuf; struct v4l2_buffer vbuf; struct v4l2_input vinp; switch (args->cmd & 0xffff) { case LINUX_VIDIOC_RESERVED: case LINUX_VIDIOC_LOG_STATUS: if ((args->cmd & IOC_DIRMASK) != LINUX_IOC_VOID) return (ENOIOCTL); args->cmd = (args->cmd & 0xffff) | IOC_VOID; break; case LINUX_VIDIOC_OVERLAY: case LINUX_VIDIOC_STREAMON: case LINUX_VIDIOC_STREAMOFF: case LINUX_VIDIOC_S_STD: case LINUX_VIDIOC_S_TUNER: case LINUX_VIDIOC_S_AUDIO: case LINUX_VIDIOC_S_AUDOUT: case LINUX_VIDIOC_S_MODULATOR: case LINUX_VIDIOC_S_FREQUENCY: case LINUX_VIDIOC_S_CROP: case LINUX_VIDIOC_S_JPEGCOMP: case LINUX_VIDIOC_S_PRIORITY: case LINUX_VIDIOC_DBG_S_REGISTER: case LINUX_VIDIOC_S_HW_FREQ_SEEK: case LINUX_VIDIOC_SUBSCRIBE_EVENT: case LINUX_VIDIOC_UNSUBSCRIBE_EVENT: args->cmd = (args->cmd & ~IOC_DIRMASK) | IOC_IN; break; case LINUX_VIDIOC_QUERYCAP: case LINUX_VIDIOC_G_STD: case LINUX_VIDIOC_G_AUDIO: case LINUX_VIDIOC_G_INPUT: case LINUX_VIDIOC_G_OUTPUT: case LINUX_VIDIOC_G_AUDOUT: case LINUX_VIDIOC_G_JPEGCOMP: case LINUX_VIDIOC_QUERYSTD: case LINUX_VIDIOC_G_PRIORITY: case LINUX_VIDIOC_QUERY_DV_PRESET: args->cmd = (args->cmd & ~IOC_DIRMASK) | IOC_OUT; break; case LINUX_VIDIOC_ENUM_FMT: case LINUX_VIDIOC_REQBUFS: case LINUX_VIDIOC_G_PARM: case LINUX_VIDIOC_S_PARM: case LINUX_VIDIOC_G_CTRL: case LINUX_VIDIOC_S_CTRL: case LINUX_VIDIOC_G_TUNER: case LINUX_VIDIOC_QUERYCTRL: case LINUX_VIDIOC_QUERYMENU: case LINUX_VIDIOC_S_INPUT: case LINUX_VIDIOC_S_OUTPUT: case LINUX_VIDIOC_ENUMOUTPUT: case LINUX_VIDIOC_G_MODULATOR: case LINUX_VIDIOC_G_FREQUENCY: case LINUX_VIDIOC_CROPCAP: case LINUX_VIDIOC_G_CROP: case LINUX_VIDIOC_ENUMAUDIO: case LINUX_VIDIOC_ENUMAUDOUT: case LINUX_VIDIOC_G_SLICED_VBI_CAP: #ifdef VIDIOC_ENUM_FRAMESIZES case LINUX_VIDIOC_ENUM_FRAMESIZES: case LINUX_VIDIOC_ENUM_FRAMEINTERVALS: case LINUX_VIDIOC_ENCODER_CMD: case LINUX_VIDIOC_TRY_ENCODER_CMD: #endif case LINUX_VIDIOC_DBG_G_REGISTER: case LINUX_VIDIOC_DBG_G_CHIP_IDENT: case LINUX_VIDIOC_ENUM_DV_PRESETS: case LINUX_VIDIOC_S_DV_PRESET: case LINUX_VIDIOC_G_DV_PRESET: case LINUX_VIDIOC_S_DV_TIMINGS: case LINUX_VIDIOC_G_DV_TIMINGS: args->cmd = (args->cmd & ~IOC_DIRMASK) | IOC_INOUT; break; case LINUX_VIDIOC_G_FMT: case LINUX_VIDIOC_S_FMT: case LINUX_VIDIOC_TRY_FMT: error = copyin((void *)args->arg, &l_vformat, sizeof(l_vformat)); if (error) return (error); error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error) return (error); if (linux_to_bsd_v4l2_format(&l_vformat, &vformat) != 0) error = EINVAL; else if ((args->cmd & 0xffff) == LINUX_VIDIOC_G_FMT) error = fo_ioctl(fp, VIDIOC_G_FMT, &vformat, td->td_ucred, td); else if ((args->cmd & 0xffff) == LINUX_VIDIOC_S_FMT) error = fo_ioctl(fp, VIDIOC_S_FMT, &vformat, td->td_ucred, td); else error = fo_ioctl(fp, VIDIOC_TRY_FMT, &vformat, td->td_ucred, td); bsd_to_linux_v4l2_format(&vformat, &l_vformat); copyout(&l_vformat, (void *)args->arg, sizeof(l_vformat)); fdrop(fp, td); return (error); case LINUX_VIDIOC_ENUMSTD: error = copyin((void *)args->arg, &l_vstd, sizeof(l_vstd)); if (error) return (error); linux_to_bsd_v4l2_standard(&l_vstd, &vstd); error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error) return (error); error = fo_ioctl(fp, VIDIOC_ENUMSTD, (caddr_t)&vstd, td->td_ucred, td); if (error) { fdrop(fp, td); return (error); } bsd_to_linux_v4l2_standard(&vstd, &l_vstd); error = copyout(&l_vstd, (void *)args->arg, sizeof(l_vstd)); fdrop(fp, td); return (error); case LINUX_VIDIOC_ENUMINPUT: /* * The Linux struct l_v4l2_input differs only in size, * it has no padding at the end. */ error = copyin((void *)args->arg, &vinp, sizeof(struct l_v4l2_input)); if (error != 0) return (error); error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = fo_ioctl(fp, VIDIOC_ENUMINPUT, (caddr_t)&vinp, td->td_ucred, td); if (error) { fdrop(fp, td); return (error); } error = copyout(&vinp, (void *)args->arg, sizeof(struct l_v4l2_input)); fdrop(fp, td); return (error); case LINUX_VIDIOC_QUERYBUF: case LINUX_VIDIOC_QBUF: case LINUX_VIDIOC_DQBUF: error = copyin((void *)args->arg, &l_vbuf, sizeof(l_vbuf)); if (error) return (error); error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error) return (error); linux_to_bsd_v4l2_buffer(&l_vbuf, &vbuf); if ((args->cmd & 0xffff) == LINUX_VIDIOC_QUERYBUF) error = fo_ioctl(fp, VIDIOC_QUERYBUF, &vbuf, td->td_ucred, td); else if ((args->cmd & 0xffff) == LINUX_VIDIOC_QBUF) error = fo_ioctl(fp, VIDIOC_QBUF, &vbuf, td->td_ucred, td); else error = fo_ioctl(fp, VIDIOC_DQBUF, &vbuf, td->td_ucred, td); bsd_to_linux_v4l2_buffer(&vbuf, &l_vbuf); copyout(&l_vbuf, (void *)args->arg, sizeof(l_vbuf)); fdrop(fp, td); return (error); /* * XXX TODO - these need 32 -> 64 bit conversion: * (are any of them needed for webcams?) */ case LINUX_VIDIOC_G_FBUF: case LINUX_VIDIOC_S_FBUF: case LINUX_VIDIOC_G_EXT_CTRLS: case LINUX_VIDIOC_S_EXT_CTRLS: case LINUX_VIDIOC_TRY_EXT_CTRLS: case LINUX_VIDIOC_DQEVENT: default: return (ENOIOCTL); } error = sys_ioctl(td, (struct ioctl_args *)args); return (error); } /* * Support for emulators/linux-libusb. This port uses FBSD_LUSB* macros * instead of USB* ones. This lets us to provide correct values for cmd. * 0xffffffe0 -- 0xffffffff range seemed to be the least collision-prone. */ static int linux_ioctl_fbsd_usb(struct thread *td, struct linux_ioctl_args *args) { int error; error = 0; switch (args->cmd) { case FBSD_LUSB_DEVICEENUMERATE: args->cmd = USB_DEVICEENUMERATE; break; case FBSD_LUSB_DEV_QUIRK_ADD: args->cmd = USB_DEV_QUIRK_ADD; break; case FBSD_LUSB_DEV_QUIRK_GET: args->cmd = USB_DEV_QUIRK_GET; break; case FBSD_LUSB_DEV_QUIRK_REMOVE: args->cmd = USB_DEV_QUIRK_REMOVE; break; case FBSD_LUSB_DO_REQUEST: args->cmd = USB_DO_REQUEST; break; case FBSD_LUSB_FS_CLEAR_STALL_SYNC: args->cmd = USB_FS_CLEAR_STALL_SYNC; break; case FBSD_LUSB_FS_CLOSE: args->cmd = USB_FS_CLOSE; break; case FBSD_LUSB_FS_COMPLETE: args->cmd = USB_FS_COMPLETE; break; case FBSD_LUSB_FS_INIT: args->cmd = USB_FS_INIT; break; case FBSD_LUSB_FS_OPEN: args->cmd = USB_FS_OPEN; break; case FBSD_LUSB_FS_START: args->cmd = USB_FS_START; break; case FBSD_LUSB_FS_STOP: args->cmd = USB_FS_STOP; break; case FBSD_LUSB_FS_UNINIT: args->cmd = USB_FS_UNINIT; break; case FBSD_LUSB_GET_CONFIG: args->cmd = USB_GET_CONFIG; break; case FBSD_LUSB_GET_DEVICEINFO: args->cmd = USB_GET_DEVICEINFO; break; case FBSD_LUSB_GET_DEVICE_DESC: args->cmd = USB_GET_DEVICE_DESC; break; case FBSD_LUSB_GET_FULL_DESC: args->cmd = USB_GET_FULL_DESC; break; case FBSD_LUSB_GET_IFACE_DRIVER: args->cmd = USB_GET_IFACE_DRIVER; break; case FBSD_LUSB_GET_PLUGTIME: args->cmd = USB_GET_PLUGTIME; break; case FBSD_LUSB_GET_POWER_MODE: args->cmd = USB_GET_POWER_MODE; break; case FBSD_LUSB_GET_REPORT_DESC: args->cmd = USB_GET_REPORT_DESC; break; case FBSD_LUSB_GET_REPORT_ID: args->cmd = USB_GET_REPORT_ID; break; case FBSD_LUSB_GET_TEMPLATE: args->cmd = USB_GET_TEMPLATE; break; case FBSD_LUSB_IFACE_DRIVER_ACTIVE: args->cmd = USB_IFACE_DRIVER_ACTIVE; break; case FBSD_LUSB_IFACE_DRIVER_DETACH: args->cmd = USB_IFACE_DRIVER_DETACH; break; case FBSD_LUSB_QUIRK_NAME_GET: args->cmd = USB_QUIRK_NAME_GET; break; case FBSD_LUSB_READ_DIR: args->cmd = USB_READ_DIR; break; case FBSD_LUSB_SET_ALTINTERFACE: args->cmd = USB_SET_ALTINTERFACE; break; case FBSD_LUSB_SET_CONFIG: args->cmd = USB_SET_CONFIG; break; case FBSD_LUSB_SET_IMMED: args->cmd = USB_SET_IMMED; break; case FBSD_LUSB_SET_POWER_MODE: args->cmd = USB_SET_POWER_MODE; break; case FBSD_LUSB_SET_TEMPLATE: args->cmd = USB_SET_TEMPLATE; break; case FBSD_LUSB_FS_OPEN_STREAM: args->cmd = USB_FS_OPEN_STREAM; break; case FBSD_LUSB_GET_DEV_PORT_PATH: args->cmd = USB_GET_DEV_PORT_PATH; break; case FBSD_LUSB_GET_POWER_USAGE: args->cmd = USB_GET_POWER_USAGE; break; case FBSD_LUSB_DEVICESTATS: args->cmd = USB_DEVICESTATS; break; default: error = ENOIOCTL; } if (error != ENOIOCTL) error = sys_ioctl(td, (struct ioctl_args *)args); return (error); } /* * Some evdev ioctls must be translated. * - EVIOCGMTSLOTS is a IOC_READ ioctl on Linux although it has input data * (must be IOC_INOUT on FreeBSD). * - On Linux, EVIOCGRAB, EVIOCREVOKE and EVIOCRMFF are defined as _IOW with * an int argument. You don't pass an int pointer to the ioctl(), however, * but just the int directly. On FreeBSD, they are defined as _IOWINT for * this to work. */ static int linux_ioctl_evdev(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; clockid_t clock; int error; args->cmd = SETDIR(args->cmd); switch (args->cmd) { case (EVIOCGRAB & ~IOC_DIRMASK) | IOC_IN: args->cmd = EVIOCGRAB; break; case (EVIOCREVOKE & ~IOC_DIRMASK) | IOC_IN: args->cmd = EVIOCREVOKE; break; case (EVIOCRMFF & ~IOC_DIRMASK) | IOC_IN: args->cmd = EVIOCRMFF; break; case EVIOCSCLOCKID: { error = copyin(PTRIN(args->arg), &clock, sizeof(clock)); if (error != 0) return (error); if (clock & ~(LINUX_IOCTL_EVDEV_CLK)) return (EINVAL); error = linux_to_native_clockid(&clock, clock); if (error != 0) return (error); error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); error = fo_ioctl(fp, EVIOCSCLOCKID, &clock, td->td_ucred, td); fdrop(fp, td); return (error); } default: break; } if (IOCBASECMD(args->cmd) == ((EVIOCGMTSLOTS(0) & ~IOC_DIRMASK) | IOC_OUT)) args->cmd = (args->cmd & ~IOC_DIRMASK) | IOC_INOUT; return (sys_ioctl(td, (struct ioctl_args *)args)); } static int linux_ioctl_kcov(struct thread *td, struct linux_ioctl_args *args) { int error; error = 0; switch (args->cmd & 0xffff) { case LINUX_KCOV_INIT_TRACE: args->cmd = KIOSETBUFSIZE; break; case LINUX_KCOV_ENABLE: args->cmd = KIOENABLE; if (args->arg == 0) args->arg = KCOV_MODE_TRACE_PC; else if (args->arg == 1) args->arg = KCOV_MODE_TRACE_CMP; else error = EINVAL; break; case LINUX_KCOV_DISABLE: args->cmd = KIODISABLE; break; default: error = ENOTTY; break; } if (error == 0) error = sys_ioctl(td, (struct ioctl_args *)args); return (error); } /* * main ioctl syscall function */ static int linux_ioctl_fallback(struct thread *td, struct linux_ioctl_args *args) { struct file *fp; struct linux_ioctl_handler_element *he; int error, cmd; error = fget(td, args->fd, &cap_ioctl_rights, &fp); if (error != 0) return (error); if ((fp->f_flag & (FREAD|FWRITE)) == 0) { fdrop(fp, td); return (EBADF); } /* Iterate over the ioctl handlers */ cmd = args->cmd & 0xffff; sx_slock(&linux_ioctl_sx); mtx_lock(&Giant); #ifdef COMPAT_LINUX32 TAILQ_FOREACH(he, &linux32_ioctl_handlers, list) { if (cmd >= he->low && cmd <= he->high) { error = (*he->func)(td, args); if (error != ENOIOCTL) { mtx_unlock(&Giant); sx_sunlock(&linux_ioctl_sx); fdrop(fp, td); return (error); } } } #endif TAILQ_FOREACH(he, &linux_ioctl_handlers, list) { if (cmd >= he->low && cmd <= he->high) { error = (*he->func)(td, args); if (error != ENOIOCTL) { mtx_unlock(&Giant); sx_sunlock(&linux_ioctl_sx); fdrop(fp, td); return (error); } } } mtx_unlock(&Giant); sx_sunlock(&linux_ioctl_sx); fdrop(fp, td); switch (args->cmd & 0xffff) { case LINUX_BTRFS_IOC_CLONE: case LINUX_F2FS_IOC_GET_FEATURES: case LINUX_FS_IOC_FIEMAP: return (ENOTSUP); default: linux_msg(td, "%s fd=%d, cmd=0x%x ('%c',%d) is not implemented", __func__, args->fd, args->cmd, (int)(args->cmd & 0xff00) >> 8, (int)(args->cmd & 0xff)); break; } return (EINVAL); } int linux_ioctl(struct thread *td, struct linux_ioctl_args *args) { struct linux_ioctl_handler *handler; int error, cmd, i; cmd = args->cmd & 0xffff; /* * array of ioctls known at compilation time. Elides a lot of work on * each call compared to the list variant. Everything frequently used * should be moved here. * * Arguably the magic creating the list should create an array instead. * * For now just a linear scan. */ for (i = 0; i < nitems(linux_ioctls); i++) { handler = &linux_ioctls[i]; if (cmd >= handler->low && cmd <= handler->high) { error = (*handler->func)(td, args); if (error != ENOIOCTL) { return (error); } } } return (linux_ioctl_fallback(td, args)); } int linux_ioctl_register_handler(struct linux_ioctl_handler *h) { struct linux_ioctl_handler_element *he, *cur; if (h == NULL || h->func == NULL) return (EINVAL); /* * Reuse the element if the handler is already on the list, otherwise * create a new element. */ sx_xlock(&linux_ioctl_sx); TAILQ_FOREACH(he, &linux_ioctl_handlers, list) { if (he->func == h->func) break; } if (he == NULL) { he = malloc(sizeof(*he), M_LINUX, M_WAITOK); he->func = h->func; } else TAILQ_REMOVE(&linux_ioctl_handlers, he, list); /* Initialize range information. */ he->low = h->low; he->high = h->high; he->span = h->high - h->low + 1; /* Add the element to the list, sorted on span. */ TAILQ_FOREACH(cur, &linux_ioctl_handlers, list) { if (cur->span > he->span) { TAILQ_INSERT_BEFORE(cur, he, list); sx_xunlock(&linux_ioctl_sx); return (0); } } TAILQ_INSERT_TAIL(&linux_ioctl_handlers, he, list); sx_xunlock(&linux_ioctl_sx); return (0); } int linux_ioctl_unregister_handler(struct linux_ioctl_handler *h) { struct linux_ioctl_handler_element *he; if (h == NULL || h->func == NULL) return (EINVAL); sx_xlock(&linux_ioctl_sx); TAILQ_FOREACH(he, &linux_ioctl_handlers, list) { if (he->func == h->func) { TAILQ_REMOVE(&linux_ioctl_handlers, he, list); sx_xunlock(&linux_ioctl_sx); free(he, M_LINUX); return (0); } } sx_xunlock(&linux_ioctl_sx); return (EINVAL); } #ifdef COMPAT_LINUX32 int linux32_ioctl_register_handler(struct linux_ioctl_handler *h) { struct linux_ioctl_handler_element *he, *cur; if (h == NULL || h->func == NULL) return (EINVAL); /* * Reuse the element if the handler is already on the list, otherwise * create a new element. */ sx_xlock(&linux_ioctl_sx); TAILQ_FOREACH(he, &linux32_ioctl_handlers, list) { if (he->func == h->func) break; } if (he == NULL) { he = malloc(sizeof(*he), M_LINUX, M_WAITOK); he->func = h->func; } else TAILQ_REMOVE(&linux32_ioctl_handlers, he, list); /* Initialize range information. */ he->low = h->low; he->high = h->high; he->span = h->high - h->low + 1; /* Add the element to the list, sorted on span. */ TAILQ_FOREACH(cur, &linux32_ioctl_handlers, list) { if (cur->span > he->span) { TAILQ_INSERT_BEFORE(cur, he, list); sx_xunlock(&linux_ioctl_sx); return (0); } } TAILQ_INSERT_TAIL(&linux32_ioctl_handlers, he, list); sx_xunlock(&linux_ioctl_sx); return (0); } int linux32_ioctl_unregister_handler(struct linux_ioctl_handler *h) { struct linux_ioctl_handler_element *he; if (h == NULL || h->func == NULL) return (EINVAL); sx_xlock(&linux_ioctl_sx); TAILQ_FOREACH(he, &linux32_ioctl_handlers, list) { if (he->func == h->func) { TAILQ_REMOVE(&linux32_ioctl_handlers, he, list); sx_xunlock(&linux_ioctl_sx); free(he, M_LINUX); return (0); } } sx_xunlock(&linux_ioctl_sx); return (EINVAL); } #endif diff --git a/sys/compat/linux/linux_misc.c b/sys/compat/linux/linux_misc.c index 4dba124a918f..562b2f3170a7 100644 --- a/sys/compat/linux/linux_misc.c +++ b/sys/compat/linux/linux_misc.c @@ -1,2661 +1,2660 @@ /*- * SPDX-License-Identifier: BSD-3-Clause * * Copyright (c) 2002 Doug Rabson * Copyright (c) 1994-1995 Søren Schmidt * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer * in this position and unchanged. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * 3. The name of the author may not be used to endorse or promote products * derived from this software without specific prior written permission * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include -#include #include #include #include #include #include #ifdef COMPAT_LINUX32 #include #include #else #include #include #endif #include #include #include #include #include #include #include #include #include #include int stclohz; /* Statistics clock frequency */ static unsigned int linux_to_bsd_resource[LINUX_RLIM_NLIMITS] = { RLIMIT_CPU, RLIMIT_FSIZE, RLIMIT_DATA, RLIMIT_STACK, RLIMIT_CORE, RLIMIT_RSS, RLIMIT_NPROC, RLIMIT_NOFILE, RLIMIT_MEMLOCK, RLIMIT_AS }; struct l_sysinfo { l_long uptime; /* Seconds since boot */ l_ulong loads[3]; /* 1, 5, and 15 minute load averages */ #define LINUX_SYSINFO_LOADS_SCALE 65536 l_ulong totalram; /* Total usable main memory size */ l_ulong freeram; /* Available memory size */ l_ulong sharedram; /* Amount of shared memory */ l_ulong bufferram; /* Memory used by buffers */ l_ulong totalswap; /* Total swap space size */ l_ulong freeswap; /* swap space still available */ l_ushort procs; /* Number of current processes */ l_ushort pads; l_ulong totalhigh; l_ulong freehigh; l_uint mem_unit; char _f[20-2*sizeof(l_long)-sizeof(l_int)]; /* padding */ }; struct l_pselect6arg { l_uintptr_t ss; l_size_t ss_len; }; static int linux_utimensat_lts_to_ts(struct l_timespec *, struct timespec *); #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) static int linux_utimensat_lts64_to_ts(struct l_timespec64 *, struct timespec *); #endif static int linux_common_utimensat(struct thread *, int, const char *, struct timespec *, int); static int linux_common_pselect6(struct thread *, l_int, l_fd_set *, l_fd_set *, l_fd_set *, struct timespec *, l_uintptr_t *); static int linux_common_ppoll(struct thread *, struct pollfd *, uint32_t, struct timespec *, l_sigset_t *, l_size_t); static int linux_pollin(struct thread *, struct pollfd *, struct pollfd *, u_int); static int linux_pollout(struct thread *, struct pollfd *, struct pollfd *, u_int); int linux_sysinfo(struct thread *td, struct linux_sysinfo_args *args) { struct l_sysinfo sysinfo; int i, j; struct timespec ts; bzero(&sysinfo, sizeof(sysinfo)); getnanouptime(&ts); if (ts.tv_nsec != 0) ts.tv_sec++; sysinfo.uptime = ts.tv_sec; /* Use the information from the mib to get our load averages */ for (i = 0; i < 3; i++) sysinfo.loads[i] = averunnable.ldavg[i] * LINUX_SYSINFO_LOADS_SCALE / averunnable.fscale; sysinfo.totalram = physmem * PAGE_SIZE; sysinfo.freeram = (u_long)vm_free_count() * PAGE_SIZE; /* * sharedram counts pages allocated to named, swap-backed objects such * as shared memory segments and tmpfs files. There is no cheap way to * compute this, so just leave the field unpopulated. Linux itself only * started setting this field in the 3.x timeframe. */ sysinfo.sharedram = 0; sysinfo.bufferram = 0; swap_pager_status(&i, &j); sysinfo.totalswap = i * PAGE_SIZE; sysinfo.freeswap = (i - j) * PAGE_SIZE; sysinfo.procs = nprocs; /* * Platforms supported by the emulation layer do not have a notion of * high memory. */ sysinfo.totalhigh = 0; sysinfo.freehigh = 0; sysinfo.mem_unit = 1; return (copyout(&sysinfo, args->info, sizeof(sysinfo))); } #ifdef LINUX_LEGACY_SYSCALLS int linux_alarm(struct thread *td, struct linux_alarm_args *args) { struct itimerval it, old_it; u_int secs; int error __diagused; secs = args->secs; /* * Linux alarm() is always successful. Limit secs to INT32_MAX / 2 * to match kern_setitimer()'s limit to avoid error from it. * * XXX. Linux limit secs to INT_MAX on 32 and does not limit on 64-bit * platforms. */ if (secs > INT32_MAX / 2) secs = INT32_MAX / 2; it.it_value.tv_sec = secs; it.it_value.tv_usec = 0; timevalclear(&it.it_interval); error = kern_setitimer(td, ITIMER_REAL, &it, &old_it); KASSERT(error == 0, ("kern_setitimer returns %d", error)); if ((old_it.it_value.tv_sec == 0 && old_it.it_value.tv_usec > 0) || old_it.it_value.tv_usec >= 500000) old_it.it_value.tv_sec++; td->td_retval[0] = old_it.it_value.tv_sec; return (0); } #endif int linux_brk(struct thread *td, struct linux_brk_args *args) { struct vmspace *vm = td->td_proc->p_vmspace; uintptr_t new, old; old = (uintptr_t)vm->vm_daddr + ctob(vm->vm_dsize); new = (uintptr_t)args->dsend; if ((caddr_t)new > vm->vm_daddr && !kern_break(td, &new)) td->td_retval[0] = (register_t)new; else td->td_retval[0] = (register_t)old; return (0); } #ifdef LINUX_LEGACY_SYSCALLS int linux_select(struct thread *td, struct linux_select_args *args) { l_timeval ltv; struct timeval tv0, tv1, utv, *tvp; int error; /* * Store current time for computation of the amount of * time left. */ if (args->timeout) { if ((error = copyin(args->timeout, <v, sizeof(ltv)))) goto select_out; utv.tv_sec = ltv.tv_sec; utv.tv_usec = ltv.tv_usec; if (itimerfix(&utv)) { /* * The timeval was invalid. Convert it to something * valid that will act as it does under Linux. */ utv.tv_sec += utv.tv_usec / 1000000; utv.tv_usec %= 1000000; if (utv.tv_usec < 0) { utv.tv_sec -= 1; utv.tv_usec += 1000000; } if (utv.tv_sec < 0) timevalclear(&utv); } microtime(&tv0); tvp = &utv; } else tvp = NULL; error = kern_select(td, args->nfds, args->readfds, args->writefds, args->exceptfds, tvp, LINUX_NFDBITS); if (error) goto select_out; if (args->timeout) { if (td->td_retval[0]) { /* * Compute how much time was left of the timeout, * by subtracting the current time and the time * before we started the call, and subtracting * that result from the user-supplied value. */ microtime(&tv1); timevalsub(&tv1, &tv0); timevalsub(&utv, &tv1); if (utv.tv_sec < 0) timevalclear(&utv); } else timevalclear(&utv); ltv.tv_sec = utv.tv_sec; ltv.tv_usec = utv.tv_usec; if ((error = copyout(<v, args->timeout, sizeof(ltv)))) goto select_out; } select_out: return (error); } #endif int linux_mremap(struct thread *td, struct linux_mremap_args *args) { uintptr_t addr; size_t len; int error = 0; if (args->flags & ~(LINUX_MREMAP_FIXED | LINUX_MREMAP_MAYMOVE)) { td->td_retval[0] = 0; return (EINVAL); } /* * Check for the page alignment. * Linux defines PAGE_MASK to be FreeBSD ~PAGE_MASK. */ if (args->addr & PAGE_MASK) { td->td_retval[0] = 0; return (EINVAL); } args->new_len = round_page(args->new_len); args->old_len = round_page(args->old_len); if (args->new_len > args->old_len) { td->td_retval[0] = 0; return (ENOMEM); } if (args->new_len < args->old_len) { addr = args->addr + args->new_len; len = args->old_len - args->new_len; error = kern_munmap(td, addr, len); } td->td_retval[0] = error ? 0 : (uintptr_t)args->addr; return (error); } #define LINUX_MS_ASYNC 0x0001 #define LINUX_MS_INVALIDATE 0x0002 #define LINUX_MS_SYNC 0x0004 int linux_msync(struct thread *td, struct linux_msync_args *args) { return (kern_msync(td, args->addr, args->len, args->fl & ~LINUX_MS_SYNC)); } #ifdef LINUX_LEGACY_SYSCALLS int linux_time(struct thread *td, struct linux_time_args *args) { struct timeval tv; l_time_t tm; int error; microtime(&tv); tm = tv.tv_sec; if (args->tm && (error = copyout(&tm, args->tm, sizeof(tm)))) return (error); td->td_retval[0] = tm; return (0); } #endif struct l_times_argv { l_clock_t tms_utime; l_clock_t tms_stime; l_clock_t tms_cutime; l_clock_t tms_cstime; }; /* * Glibc versions prior to 2.2.1 always use hard-coded CLK_TCK value. * Since 2.2.1 Glibc uses value exported from kernel via AT_CLKTCK * auxiliary vector entry. */ #define CLK_TCK 100 #define CONVOTCK(r) (r.tv_sec * CLK_TCK + r.tv_usec / (1000000 / CLK_TCK)) #define CONVNTCK(r) (r.tv_sec * stclohz + r.tv_usec / (1000000 / stclohz)) #define CONVTCK(r) (linux_kernver(td) >= LINUX_KERNVER_2004000 ? \ CONVNTCK(r) : CONVOTCK(r)) int linux_times(struct thread *td, struct linux_times_args *args) { struct timeval tv, utime, stime, cutime, cstime; struct l_times_argv tms; struct proc *p; int error; if (args->buf != NULL) { p = td->td_proc; PROC_LOCK(p); PROC_STATLOCK(p); calcru(p, &utime, &stime); PROC_STATUNLOCK(p); calccru(p, &cutime, &cstime); PROC_UNLOCK(p); tms.tms_utime = CONVTCK(utime); tms.tms_stime = CONVTCK(stime); tms.tms_cutime = CONVTCK(cutime); tms.tms_cstime = CONVTCK(cstime); if ((error = copyout(&tms, args->buf, sizeof(tms)))) return (error); } microuptime(&tv); td->td_retval[0] = (int)CONVTCK(tv); return (0); } int linux_newuname(struct thread *td, struct linux_newuname_args *args) { struct l_new_utsname utsname; char osname[LINUX_MAX_UTSNAME]; char osrelease[LINUX_MAX_UTSNAME]; char *p; linux_get_osname(td, osname); linux_get_osrelease(td, osrelease); bzero(&utsname, sizeof(utsname)); strlcpy(utsname.sysname, osname, LINUX_MAX_UTSNAME); getcredhostname(td->td_ucred, utsname.nodename, LINUX_MAX_UTSNAME); getcreddomainname(td->td_ucred, utsname.domainname, LINUX_MAX_UTSNAME); strlcpy(utsname.release, osrelease, LINUX_MAX_UTSNAME); strlcpy(utsname.version, version, LINUX_MAX_UTSNAME); for (p = utsname.version; *p != '\0'; ++p) if (*p == '\n') { *p = '\0'; break; } #if defined(__amd64__) /* * On amd64, Linux uname(2) needs to return "x86_64" * for both 64-bit and 32-bit applications. On 32-bit, * the string returned by getauxval(AT_PLATFORM) needs * to remain "i686", though. */ #if defined(COMPAT_LINUX32) if (linux32_emulate_i386) strlcpy(utsname.machine, "i686", LINUX_MAX_UTSNAME); else #endif strlcpy(utsname.machine, "x86_64", LINUX_MAX_UTSNAME); #elif defined(__aarch64__) strlcpy(utsname.machine, "aarch64", LINUX_MAX_UTSNAME); #elif defined(__i386__) strlcpy(utsname.machine, "i686", LINUX_MAX_UTSNAME); #endif return (copyout(&utsname, args->buf, sizeof(utsname))); } struct l_utimbuf { l_time_t l_actime; l_time_t l_modtime; }; #ifdef LINUX_LEGACY_SYSCALLS int linux_utime(struct thread *td, struct linux_utime_args *args) { struct timeval tv[2], *tvp; struct l_utimbuf lut; char *fname; int error; if (args->times) { if ((error = copyin(args->times, &lut, sizeof lut)) != 0) return (error); tv[0].tv_sec = lut.l_actime; tv[0].tv_usec = 0; tv[1].tv_sec = lut.l_modtime; tv[1].tv_usec = 0; tvp = tv; } else tvp = NULL; if (!LUSECONVPATH(td)) { error = kern_utimesat(td, AT_FDCWD, args->fname, UIO_USERSPACE, tvp, UIO_SYSSPACE); } else { LCONVPATHEXIST(args->fname, &fname); error = kern_utimesat(td, AT_FDCWD, fname, UIO_SYSSPACE, tvp, UIO_SYSSPACE); LFREEPATH(fname); } return (error); } #endif #ifdef LINUX_LEGACY_SYSCALLS int linux_utimes(struct thread *td, struct linux_utimes_args *args) { l_timeval ltv[2]; struct timeval tv[2], *tvp = NULL; char *fname; int error; if (args->tptr != NULL) { if ((error = copyin(args->tptr, ltv, sizeof ltv)) != 0) return (error); tv[0].tv_sec = ltv[0].tv_sec; tv[0].tv_usec = ltv[0].tv_usec; tv[1].tv_sec = ltv[1].tv_sec; tv[1].tv_usec = ltv[1].tv_usec; tvp = tv; } if (!LUSECONVPATH(td)) { error = kern_utimesat(td, AT_FDCWD, args->fname, UIO_USERSPACE, tvp, UIO_SYSSPACE); } else { LCONVPATHEXIST(args->fname, &fname); error = kern_utimesat(td, AT_FDCWD, fname, UIO_SYSSPACE, tvp, UIO_SYSSPACE); LFREEPATH(fname); } return (error); } #endif static int linux_utimensat_lts_to_ts(struct l_timespec *l_times, struct timespec *times) { if (l_times->tv_nsec != LINUX_UTIME_OMIT && l_times->tv_nsec != LINUX_UTIME_NOW && (l_times->tv_nsec < 0 || l_times->tv_nsec > 999999999)) return (EINVAL); times->tv_sec = l_times->tv_sec; switch (l_times->tv_nsec) { case LINUX_UTIME_OMIT: times->tv_nsec = UTIME_OMIT; break; case LINUX_UTIME_NOW: times->tv_nsec = UTIME_NOW; break; default: times->tv_nsec = l_times->tv_nsec; } return (0); } static int linux_common_utimensat(struct thread *td, int ldfd, const char *pathname, struct timespec *timesp, int lflags) { char *path = NULL; int error, dfd, flags = 0; dfd = (ldfd == LINUX_AT_FDCWD) ? AT_FDCWD : ldfd; if (lflags & ~(LINUX_AT_SYMLINK_NOFOLLOW | LINUX_AT_EMPTY_PATH)) return (EINVAL); if (timesp != NULL) { /* This breaks POSIX, but is what the Linux kernel does * _on purpose_ (documented in the man page for utimensat(2)), * so we must follow that behaviour. */ if (timesp[0].tv_nsec == UTIME_OMIT && timesp[1].tv_nsec == UTIME_OMIT) return (0); } if (lflags & LINUX_AT_SYMLINK_NOFOLLOW) flags |= AT_SYMLINK_NOFOLLOW; if (lflags & LINUX_AT_EMPTY_PATH) flags |= AT_EMPTY_PATH; if (!LUSECONVPATH(td)) { if (pathname != NULL) { return (kern_utimensat(td, dfd, pathname, UIO_USERSPACE, timesp, UIO_SYSSPACE, flags)); } } if (pathname != NULL) LCONVPATHEXIST_AT(pathname, &path, dfd); else if (lflags != 0) return (EINVAL); if (path == NULL) error = kern_futimens(td, dfd, timesp, UIO_SYSSPACE); else { error = kern_utimensat(td, dfd, path, UIO_SYSSPACE, timesp, UIO_SYSSPACE, flags); LFREEPATH(path); } return (error); } int linux_utimensat(struct thread *td, struct linux_utimensat_args *args) { struct l_timespec l_times[2]; struct timespec times[2], *timesp; int error; if (args->times != NULL) { error = copyin(args->times, l_times, sizeof(l_times)); if (error != 0) return (error); error = linux_utimensat_lts_to_ts(&l_times[0], ×[0]); if (error != 0) return (error); error = linux_utimensat_lts_to_ts(&l_times[1], ×[1]); if (error != 0) return (error); timesp = times; } else timesp = NULL; return (linux_common_utimensat(td, args->dfd, args->pathname, timesp, args->flags)); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) static int linux_utimensat_lts64_to_ts(struct l_timespec64 *l_times, struct timespec *times) { /* Zero out the padding in compat mode. */ l_times->tv_nsec &= 0xFFFFFFFFUL; if (l_times->tv_nsec != LINUX_UTIME_OMIT && l_times->tv_nsec != LINUX_UTIME_NOW && (l_times->tv_nsec < 0 || l_times->tv_nsec > 999999999)) return (EINVAL); times->tv_sec = l_times->tv_sec; switch (l_times->tv_nsec) { case LINUX_UTIME_OMIT: times->tv_nsec = UTIME_OMIT; break; case LINUX_UTIME_NOW: times->tv_nsec = UTIME_NOW; break; default: times->tv_nsec = l_times->tv_nsec; } return (0); } int linux_utimensat_time64(struct thread *td, struct linux_utimensat_time64_args *args) { struct l_timespec64 l_times[2]; struct timespec times[2], *timesp; int error; if (args->times64 != NULL) { error = copyin(args->times64, l_times, sizeof(l_times)); if (error != 0) return (error); error = linux_utimensat_lts64_to_ts(&l_times[0], ×[0]); if (error != 0) return (error); error = linux_utimensat_lts64_to_ts(&l_times[1], ×[1]); if (error != 0) return (error); timesp = times; } else timesp = NULL; return (linux_common_utimensat(td, args->dfd, args->pathname, timesp, args->flags)); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ #ifdef LINUX_LEGACY_SYSCALLS int linux_futimesat(struct thread *td, struct linux_futimesat_args *args) { l_timeval ltv[2]; struct timeval tv[2], *tvp = NULL; char *fname; int error, dfd; dfd = (args->dfd == LINUX_AT_FDCWD) ? AT_FDCWD : args->dfd; if (args->utimes != NULL) { if ((error = copyin(args->utimes, ltv, sizeof ltv)) != 0) return (error); tv[0].tv_sec = ltv[0].tv_sec; tv[0].tv_usec = ltv[0].tv_usec; tv[1].tv_sec = ltv[1].tv_sec; tv[1].tv_usec = ltv[1].tv_usec; tvp = tv; } if (!LUSECONVPATH(td)) { error = kern_utimesat(td, dfd, args->filename, UIO_USERSPACE, tvp, UIO_SYSSPACE); } else { LCONVPATHEXIST_AT(args->filename, &fname, dfd); error = kern_utimesat(td, dfd, fname, UIO_SYSSPACE, tvp, UIO_SYSSPACE); LFREEPATH(fname); } return (error); } #endif static int linux_common_wait(struct thread *td, idtype_t idtype, int id, int *statusp, int options, void *rup, l_siginfo_t *infop) { l_siginfo_t lsi; siginfo_t siginfo; struct __wrusage wru; int error, status, tmpstat, sig; error = kern_wait6(td, idtype, id, &status, options, rup != NULL ? &wru : NULL, &siginfo); if (error == 0 && statusp) { tmpstat = status & 0xffff; if (WIFSIGNALED(tmpstat)) { tmpstat = (tmpstat & 0xffffff80) | bsd_to_linux_signal(WTERMSIG(tmpstat)); } else if (WIFSTOPPED(tmpstat)) { tmpstat = (tmpstat & 0xffff00ff) | (bsd_to_linux_signal(WSTOPSIG(tmpstat)) << 8); #if defined(__aarch64__) || (defined(__amd64__) && !defined(COMPAT_LINUX32)) if (WSTOPSIG(status) == SIGTRAP) { tmpstat = linux_ptrace_status(td, siginfo.si_pid, tmpstat); } #endif } else if (WIFCONTINUED(tmpstat)) { tmpstat = 0xffff; } error = copyout(&tmpstat, statusp, sizeof(int)); } if (error == 0 && rup != NULL) error = linux_copyout_rusage(&wru.wru_self, rup); if (error == 0 && infop != NULL && td->td_retval[0] != 0) { sig = bsd_to_linux_signal(siginfo.si_signo); siginfo_to_lsiginfo(&siginfo, &lsi, sig); error = copyout(&lsi, infop, sizeof(lsi)); } return (error); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_waitpid(struct thread *td, struct linux_waitpid_args *args) { struct linux_wait4_args wait4_args = { .pid = args->pid, .status = args->status, .options = args->options, .rusage = NULL, }; return (linux_wait4(td, &wait4_args)); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ int linux_wait4(struct thread *td, struct linux_wait4_args *args) { struct proc *p; int options, id, idtype; if (args->options & ~(LINUX_WUNTRACED | LINUX_WNOHANG | LINUX_WCONTINUED | __WCLONE | __WNOTHREAD | __WALL)) return (EINVAL); /* -INT_MIN is not defined. */ if (args->pid == INT_MIN) return (ESRCH); options = 0; linux_to_bsd_waitopts(args->options, &options); /* * For backward compatibility we implicitly add flags WEXITED * and WTRAPPED here. */ options |= WEXITED | WTRAPPED; if (args->pid == WAIT_ANY) { idtype = P_ALL; id = 0; } else if (args->pid < 0) { idtype = P_PGID; id = (id_t)-args->pid; } else if (args->pid == 0) { idtype = P_PGID; p = td->td_proc; PROC_LOCK(p); id = p->p_pgid; PROC_UNLOCK(p); } else { idtype = P_PID; id = (id_t)args->pid; } return (linux_common_wait(td, idtype, id, args->status, options, args->rusage, NULL)); } int linux_waitid(struct thread *td, struct linux_waitid_args *args) { idtype_t idtype; int error, options; struct proc *p; pid_t id; if (args->options & ~(LINUX_WNOHANG | LINUX_WNOWAIT | LINUX_WEXITED | LINUX_WSTOPPED | LINUX_WCONTINUED | __WCLONE | __WNOTHREAD | __WALL)) return (EINVAL); options = 0; linux_to_bsd_waitopts(args->options, &options); id = args->id; switch (args->idtype) { case LINUX_P_ALL: idtype = P_ALL; break; case LINUX_P_PID: if (args->id <= 0) return (EINVAL); idtype = P_PID; break; case LINUX_P_PGID: if (linux_use54(td) && args->id == 0) { p = td->td_proc; PROC_LOCK(p); id = p->p_pgid; PROC_UNLOCK(p); } else if (args->id <= 0) return (EINVAL); idtype = P_PGID; break; case LINUX_P_PIDFD: LINUX_RATELIMIT_MSG("unsupported waitid P_PIDFD idtype"); return (ENOSYS); default: return (EINVAL); } error = linux_common_wait(td, idtype, id, NULL, options, args->rusage, args->info); td->td_retval[0] = 0; return (error); } #ifdef LINUX_LEGACY_SYSCALLS int linux_mknod(struct thread *td, struct linux_mknod_args *args) { char *path; int error; enum uio_seg seg; bool convpath; convpath = LUSECONVPATH(td); if (!convpath) { path = args->path; seg = UIO_USERSPACE; } else { LCONVPATHCREAT(args->path, &path); seg = UIO_SYSSPACE; } switch (args->mode & S_IFMT) { case S_IFIFO: case S_IFSOCK: error = kern_mkfifoat(td, AT_FDCWD, path, seg, args->mode); break; case S_IFCHR: case S_IFBLK: error = kern_mknodat(td, AT_FDCWD, path, seg, args->mode, args->dev); break; case S_IFDIR: error = EPERM; break; case 0: args->mode |= S_IFREG; /* FALLTHROUGH */ case S_IFREG: error = kern_openat(td, AT_FDCWD, path, seg, O_WRONLY | O_CREAT | O_TRUNC, args->mode); if (error == 0) kern_close(td, td->td_retval[0]); break; default: error = EINVAL; break; } if (convpath) LFREEPATH(path); return (error); } #endif int linux_mknodat(struct thread *td, struct linux_mknodat_args *args) { char *path; int error, dfd; enum uio_seg seg; bool convpath; dfd = (args->dfd == LINUX_AT_FDCWD) ? AT_FDCWD : args->dfd; convpath = LUSECONVPATH(td); if (!convpath) { path = __DECONST(char *, args->filename); seg = UIO_USERSPACE; } else { LCONVPATHCREAT_AT(args->filename, &path, dfd); seg = UIO_SYSSPACE; } switch (args->mode & S_IFMT) { case S_IFIFO: case S_IFSOCK: error = kern_mkfifoat(td, dfd, path, seg, args->mode); break; case S_IFCHR: case S_IFBLK: error = kern_mknodat(td, dfd, path, seg, args->mode, args->dev); break; case S_IFDIR: error = EPERM; break; case 0: args->mode |= S_IFREG; /* FALLTHROUGH */ case S_IFREG: error = kern_openat(td, dfd, path, seg, O_WRONLY | O_CREAT | O_TRUNC, args->mode); if (error == 0) kern_close(td, td->td_retval[0]); break; default: error = EINVAL; break; } if (convpath) LFREEPATH(path); return (error); } /* * UGH! This is just about the dumbest idea I've ever heard!! */ int linux_personality(struct thread *td, struct linux_personality_args *args) { struct linux_pemuldata *pem; struct proc *p = td->td_proc; uint32_t old; PROC_LOCK(p); pem = pem_find(p); old = pem->persona; if (args->per != 0xffffffff) pem->persona = args->per; PROC_UNLOCK(p); td->td_retval[0] = old; return (0); } struct l_itimerval { l_timeval it_interval; l_timeval it_value; }; #define B2L_ITIMERVAL(bip, lip) \ (bip)->it_interval.tv_sec = (lip)->it_interval.tv_sec; \ (bip)->it_interval.tv_usec = (lip)->it_interval.tv_usec; \ (bip)->it_value.tv_sec = (lip)->it_value.tv_sec; \ (bip)->it_value.tv_usec = (lip)->it_value.tv_usec; int linux_setitimer(struct thread *td, struct linux_setitimer_args *uap) { int error; struct l_itimerval ls; struct itimerval aitv, oitv; if (uap->itv == NULL) { uap->itv = uap->oitv; return (linux_getitimer(td, (struct linux_getitimer_args *)uap)); } error = copyin(uap->itv, &ls, sizeof(ls)); if (error != 0) return (error); B2L_ITIMERVAL(&aitv, &ls); error = kern_setitimer(td, uap->which, &aitv, &oitv); if (error != 0 || uap->oitv == NULL) return (error); B2L_ITIMERVAL(&ls, &oitv); return (copyout(&ls, uap->oitv, sizeof(ls))); } int linux_getitimer(struct thread *td, struct linux_getitimer_args *uap) { int error; struct l_itimerval ls; struct itimerval aitv; error = kern_getitimer(td, uap->which, &aitv); if (error != 0) return (error); B2L_ITIMERVAL(&ls, &aitv); return (copyout(&ls, uap->itv, sizeof(ls))); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_nice(struct thread *td, struct linux_nice_args *args) { return (kern_setpriority(td, PRIO_PROCESS, 0, args->inc)); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ int linux_setgroups(struct thread *td, struct linux_setgroups_args *args) { struct ucred *newcred, *oldcred; l_gid_t *linux_gidset; gid_t *bsd_gidset; int ngrp, error; struct proc *p; ngrp = args->gidsetsize; if (ngrp < 0 || ngrp >= ngroups_max + 1) return (EINVAL); linux_gidset = malloc(ngrp * sizeof(*linux_gidset), M_LINUX, M_WAITOK); error = copyin(args->grouplist, linux_gidset, ngrp * sizeof(l_gid_t)); if (error) goto out; newcred = crget(); crextend(newcred, ngrp + 1); p = td->td_proc; PROC_LOCK(p); oldcred = p->p_ucred; crcopy(newcred, oldcred); /* * cr_groups[0] holds egid. Setting the whole set from * the supplied set will cause egid to be changed too. * Keep cr_groups[0] unchanged to prevent that. */ if ((error = priv_check_cred(oldcred, PRIV_CRED_SETGROUPS)) != 0) { PROC_UNLOCK(p); crfree(newcred); goto out; } if (ngrp > 0) { newcred->cr_ngroups = ngrp + 1; bsd_gidset = newcred->cr_groups; ngrp--; while (ngrp >= 0) { bsd_gidset[ngrp + 1] = linux_gidset[ngrp]; ngrp--; } } else newcred->cr_ngroups = 1; setsugid(p); proc_set_cred(p, newcred); PROC_UNLOCK(p); crfree(oldcred); error = 0; out: free(linux_gidset, M_LINUX); return (error); } int linux_getgroups(struct thread *td, struct linux_getgroups_args *args) { struct ucred *cred; l_gid_t *linux_gidset; gid_t *bsd_gidset; int bsd_gidsetsz, ngrp, error; cred = td->td_ucred; bsd_gidset = cred->cr_groups; bsd_gidsetsz = cred->cr_ngroups - 1; /* * cr_groups[0] holds egid. Returning the whole set * here will cause a duplicate. Exclude cr_groups[0] * to prevent that. */ if ((ngrp = args->gidsetsize) == 0) { td->td_retval[0] = bsd_gidsetsz; return (0); } if (ngrp < bsd_gidsetsz) return (EINVAL); ngrp = 0; linux_gidset = malloc(bsd_gidsetsz * sizeof(*linux_gidset), M_LINUX, M_WAITOK); while (ngrp < bsd_gidsetsz) { linux_gidset[ngrp] = bsd_gidset[ngrp + 1]; ngrp++; } error = copyout(linux_gidset, args->grouplist, ngrp * sizeof(l_gid_t)); free(linux_gidset, M_LINUX); if (error) return (error); td->td_retval[0] = ngrp; return (0); } static bool linux_get_dummy_limit(l_uint resource, struct rlimit *rlim) { if (linux_dummy_rlimits == 0) return (false); switch (resource) { case LINUX_RLIMIT_LOCKS: case LINUX_RLIMIT_SIGPENDING: case LINUX_RLIMIT_MSGQUEUE: case LINUX_RLIMIT_RTTIME: rlim->rlim_cur = LINUX_RLIM_INFINITY; rlim->rlim_max = LINUX_RLIM_INFINITY; return (true); case LINUX_RLIMIT_NICE: case LINUX_RLIMIT_RTPRIO: rlim->rlim_cur = 0; rlim->rlim_max = 0; return (true); default: return (false); } } int linux_setrlimit(struct thread *td, struct linux_setrlimit_args *args) { struct rlimit bsd_rlim; struct l_rlimit rlim; u_int which; int error; if (args->resource >= LINUX_RLIM_NLIMITS) return (EINVAL); which = linux_to_bsd_resource[args->resource]; if (which == -1) return (EINVAL); error = copyin(args->rlim, &rlim, sizeof(rlim)); if (error) return (error); bsd_rlim.rlim_cur = (rlim_t)rlim.rlim_cur; bsd_rlim.rlim_max = (rlim_t)rlim.rlim_max; return (kern_setrlimit(td, which, &bsd_rlim)); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_old_getrlimit(struct thread *td, struct linux_old_getrlimit_args *args) { struct l_rlimit rlim; struct rlimit bsd_rlim; u_int which; if (linux_get_dummy_limit(args->resource, &bsd_rlim)) { rlim.rlim_cur = bsd_rlim.rlim_cur; rlim.rlim_max = bsd_rlim.rlim_max; return (copyout(&rlim, args->rlim, sizeof(rlim))); } if (args->resource >= LINUX_RLIM_NLIMITS) return (EINVAL); which = linux_to_bsd_resource[args->resource]; if (which == -1) return (EINVAL); lim_rlimit(td, which, &bsd_rlim); #ifdef COMPAT_LINUX32 rlim.rlim_cur = (unsigned int)bsd_rlim.rlim_cur; if (rlim.rlim_cur == UINT_MAX) rlim.rlim_cur = INT_MAX; rlim.rlim_max = (unsigned int)bsd_rlim.rlim_max; if (rlim.rlim_max == UINT_MAX) rlim.rlim_max = INT_MAX; #else rlim.rlim_cur = (unsigned long)bsd_rlim.rlim_cur; if (rlim.rlim_cur == ULONG_MAX) rlim.rlim_cur = LONG_MAX; rlim.rlim_max = (unsigned long)bsd_rlim.rlim_max; if (rlim.rlim_max == ULONG_MAX) rlim.rlim_max = LONG_MAX; #endif return (copyout(&rlim, args->rlim, sizeof(rlim))); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ int linux_getrlimit(struct thread *td, struct linux_getrlimit_args *args) { struct l_rlimit rlim; struct rlimit bsd_rlim; u_int which; if (linux_get_dummy_limit(args->resource, &bsd_rlim)) { rlim.rlim_cur = bsd_rlim.rlim_cur; rlim.rlim_max = bsd_rlim.rlim_max; return (copyout(&rlim, args->rlim, sizeof(rlim))); } if (args->resource >= LINUX_RLIM_NLIMITS) return (EINVAL); which = linux_to_bsd_resource[args->resource]; if (which == -1) return (EINVAL); lim_rlimit(td, which, &bsd_rlim); rlim.rlim_cur = (l_ulong)bsd_rlim.rlim_cur; rlim.rlim_max = (l_ulong)bsd_rlim.rlim_max; return (copyout(&rlim, args->rlim, sizeof(rlim))); } int linux_sched_setscheduler(struct thread *td, struct linux_sched_setscheduler_args *args) { struct sched_param sched_param; struct thread *tdt; int error, policy; switch (args->policy) { case LINUX_SCHED_OTHER: policy = SCHED_OTHER; break; case LINUX_SCHED_FIFO: policy = SCHED_FIFO; break; case LINUX_SCHED_RR: policy = SCHED_RR; break; default: return (EINVAL); } error = copyin(args->param, &sched_param, sizeof(sched_param)); if (error) return (error); if (linux_map_sched_prio) { switch (policy) { case SCHED_OTHER: if (sched_param.sched_priority != 0) return (EINVAL); sched_param.sched_priority = PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE; break; case SCHED_FIFO: case SCHED_RR: if (sched_param.sched_priority < 1 || sched_param.sched_priority >= LINUX_MAX_RT_PRIO) return (EINVAL); /* * Map [1, LINUX_MAX_RT_PRIO - 1] to * [0, RTP_PRIO_MAX - RTP_PRIO_MIN] (rounding down). */ sched_param.sched_priority = (sched_param.sched_priority - 1) * (RTP_PRIO_MAX - RTP_PRIO_MIN + 1) / (LINUX_MAX_RT_PRIO - 1); break; } } tdt = linux_tdfind(td, args->pid, -1); if (tdt == NULL) return (ESRCH); error = kern_sched_setscheduler(td, tdt, policy, &sched_param); PROC_UNLOCK(tdt->td_proc); return (error); } int linux_sched_getscheduler(struct thread *td, struct linux_sched_getscheduler_args *args) { struct thread *tdt; int error, policy; tdt = linux_tdfind(td, args->pid, -1); if (tdt == NULL) return (ESRCH); error = kern_sched_getscheduler(td, tdt, &policy); PROC_UNLOCK(tdt->td_proc); switch (policy) { case SCHED_OTHER: td->td_retval[0] = LINUX_SCHED_OTHER; break; case SCHED_FIFO: td->td_retval[0] = LINUX_SCHED_FIFO; break; case SCHED_RR: td->td_retval[0] = LINUX_SCHED_RR; break; } return (error); } int linux_sched_get_priority_max(struct thread *td, struct linux_sched_get_priority_max_args *args) { struct sched_get_priority_max_args bsd; if (linux_map_sched_prio) { switch (args->policy) { case LINUX_SCHED_OTHER: td->td_retval[0] = 0; return (0); case LINUX_SCHED_FIFO: case LINUX_SCHED_RR: td->td_retval[0] = LINUX_MAX_RT_PRIO - 1; return (0); default: return (EINVAL); } } switch (args->policy) { case LINUX_SCHED_OTHER: bsd.policy = SCHED_OTHER; break; case LINUX_SCHED_FIFO: bsd.policy = SCHED_FIFO; break; case LINUX_SCHED_RR: bsd.policy = SCHED_RR; break; default: return (EINVAL); } return (sys_sched_get_priority_max(td, &bsd)); } int linux_sched_get_priority_min(struct thread *td, struct linux_sched_get_priority_min_args *args) { struct sched_get_priority_min_args bsd; if (linux_map_sched_prio) { switch (args->policy) { case LINUX_SCHED_OTHER: td->td_retval[0] = 0; return (0); case LINUX_SCHED_FIFO: case LINUX_SCHED_RR: td->td_retval[0] = 1; return (0); default: return (EINVAL); } } switch (args->policy) { case LINUX_SCHED_OTHER: bsd.policy = SCHED_OTHER; break; case LINUX_SCHED_FIFO: bsd.policy = SCHED_FIFO; break; case LINUX_SCHED_RR: bsd.policy = SCHED_RR; break; default: return (EINVAL); } return (sys_sched_get_priority_min(td, &bsd)); } #define REBOOT_CAD_ON 0x89abcdef #define REBOOT_CAD_OFF 0 #define REBOOT_HALT 0xcdef0123 #define REBOOT_RESTART 0x01234567 #define REBOOT_RESTART2 0xA1B2C3D4 #define REBOOT_POWEROFF 0x4321FEDC #define REBOOT_MAGIC1 0xfee1dead #define REBOOT_MAGIC2 0x28121969 #define REBOOT_MAGIC2A 0x05121996 #define REBOOT_MAGIC2B 0x16041998 int linux_reboot(struct thread *td, struct linux_reboot_args *args) { struct reboot_args bsd_args; if (args->magic1 != REBOOT_MAGIC1) return (EINVAL); switch (args->magic2) { case REBOOT_MAGIC2: case REBOOT_MAGIC2A: case REBOOT_MAGIC2B: break; default: return (EINVAL); } switch (args->cmd) { case REBOOT_CAD_ON: case REBOOT_CAD_OFF: return (priv_check(td, PRIV_REBOOT)); case REBOOT_HALT: bsd_args.opt = RB_HALT; break; case REBOOT_RESTART: case REBOOT_RESTART2: bsd_args.opt = 0; break; case REBOOT_POWEROFF: bsd_args.opt = RB_POWEROFF; break; default: return (EINVAL); } return (sys_reboot(td, &bsd_args)); } int linux_getpid(struct thread *td, struct linux_getpid_args *args) { td->td_retval[0] = td->td_proc->p_pid; return (0); } int linux_gettid(struct thread *td, struct linux_gettid_args *args) { struct linux_emuldata *em; em = em_find(td); KASSERT(em != NULL, ("gettid: emuldata not found.\n")); td->td_retval[0] = em->em_tid; return (0); } int linux_getppid(struct thread *td, struct linux_getppid_args *args) { td->td_retval[0] = kern_getppid(td); return (0); } int linux_getgid(struct thread *td, struct linux_getgid_args *args) { td->td_retval[0] = td->td_ucred->cr_rgid; return (0); } int linux_getuid(struct thread *td, struct linux_getuid_args *args) { td->td_retval[0] = td->td_ucred->cr_ruid; return (0); } int linux_getsid(struct thread *td, struct linux_getsid_args *args) { return (kern_getsid(td, args->pid)); } int linux_nosys(struct thread *td, struct nosys_args *ignore) { return (ENOSYS); } int linux_getpriority(struct thread *td, struct linux_getpriority_args *args) { int error; error = kern_getpriority(td, args->which, args->who); td->td_retval[0] = 20 - td->td_retval[0]; return (error); } int linux_sethostname(struct thread *td, struct linux_sethostname_args *args) { int name[2]; name[0] = CTL_KERN; name[1] = KERN_HOSTNAME; return (userland_sysctl(td, name, 2, 0, 0, 0, args->hostname, args->len, 0, 0)); } int linux_setdomainname(struct thread *td, struct linux_setdomainname_args *args) { int name[2]; name[0] = CTL_KERN; name[1] = KERN_NISDOMAINNAME; return (userland_sysctl(td, name, 2, 0, 0, 0, args->name, args->len, 0, 0)); } int linux_exit_group(struct thread *td, struct linux_exit_group_args *args) { LINUX_CTR2(exit_group, "thread(%d) (%d)", td->td_tid, args->error_code); /* * XXX: we should send a signal to the parent if * SIGNAL_EXIT_GROUP is set. We ignore that (temporarily?) * as it doesnt occur often. */ exit1(td, args->error_code, 0); /* NOTREACHED */ } #define _LINUX_CAPABILITY_VERSION_1 0x19980330 #define _LINUX_CAPABILITY_VERSION_2 0x20071026 #define _LINUX_CAPABILITY_VERSION_3 0x20080522 struct l_user_cap_header { l_int version; l_int pid; }; struct l_user_cap_data { l_int effective; l_int permitted; l_int inheritable; }; int linux_capget(struct thread *td, struct linux_capget_args *uap) { struct l_user_cap_header luch; struct l_user_cap_data lucd[2]; int error, u32s; if (uap->hdrp == NULL) return (EFAULT); error = copyin(uap->hdrp, &luch, sizeof(luch)); if (error != 0) return (error); switch (luch.version) { case _LINUX_CAPABILITY_VERSION_1: u32s = 1; break; case _LINUX_CAPABILITY_VERSION_2: case _LINUX_CAPABILITY_VERSION_3: u32s = 2; break; default: luch.version = _LINUX_CAPABILITY_VERSION_1; error = copyout(&luch, uap->hdrp, sizeof(luch)); if (error) return (error); return (EINVAL); } if (luch.pid) return (EPERM); if (uap->datap) { /* * The current implementation doesn't support setting * a capability (it's essentially a stub) so indicate * that no capabilities are currently set or available * to request. */ memset(&lucd, 0, u32s * sizeof(lucd[0])); error = copyout(&lucd, uap->datap, u32s * sizeof(lucd[0])); } return (error); } int linux_capset(struct thread *td, struct linux_capset_args *uap) { struct l_user_cap_header luch; struct l_user_cap_data lucd[2]; int error, i, u32s; if (uap->hdrp == NULL || uap->datap == NULL) return (EFAULT); error = copyin(uap->hdrp, &luch, sizeof(luch)); if (error != 0) return (error); switch (luch.version) { case _LINUX_CAPABILITY_VERSION_1: u32s = 1; break; case _LINUX_CAPABILITY_VERSION_2: case _LINUX_CAPABILITY_VERSION_3: u32s = 2; break; default: luch.version = _LINUX_CAPABILITY_VERSION_1; error = copyout(&luch, uap->hdrp, sizeof(luch)); if (error) return (error); return (EINVAL); } if (luch.pid) return (EPERM); error = copyin(uap->datap, &lucd, u32s * sizeof(lucd[0])); if (error != 0) return (error); /* We currently don't support setting any capabilities. */ for (i = 0; i < u32s; i++) { if (lucd[i].effective || lucd[i].permitted || lucd[i].inheritable) { linux_msg(td, "capset[%d] effective=0x%x, permitted=0x%x, " "inheritable=0x%x is not implemented", i, (int)lucd[i].effective, (int)lucd[i].permitted, (int)lucd[i].inheritable); return (EPERM); } } return (0); } int linux_prctl(struct thread *td, struct linux_prctl_args *args) { int error = 0, max_size, arg; struct proc *p = td->td_proc; char comm[LINUX_MAX_COMM_LEN]; int pdeath_signal, trace_state; switch (args->option) { case LINUX_PR_SET_PDEATHSIG: if (!LINUX_SIG_VALID(args->arg2)) return (EINVAL); pdeath_signal = linux_to_bsd_signal(args->arg2); return (kern_procctl(td, P_PID, 0, PROC_PDEATHSIG_CTL, &pdeath_signal)); case LINUX_PR_GET_PDEATHSIG: error = kern_procctl(td, P_PID, 0, PROC_PDEATHSIG_STATUS, &pdeath_signal); if (error != 0) return (error); pdeath_signal = bsd_to_linux_signal(pdeath_signal); return (copyout(&pdeath_signal, (void *)(register_t)args->arg2, sizeof(pdeath_signal))); /* * In Linux, this flag controls if set[gu]id processes can coredump. * There are additional semantics imposed on processes that cannot * coredump: * - Such processes can not be ptraced. * - There are some semantics around ownership of process-related files * in the /proc namespace. * * In FreeBSD, we can (and by default, do) disable setuid coredump * system-wide with 'sugid_coredump.' We control tracability on a * per-process basis with the procctl PROC_TRACE (=> P2_NOTRACE flag). * By happy coincidence, P2_NOTRACE also prevents coredumping. So the * procctl is roughly analogous to Linux's DUMPABLE. * * So, proxy these knobs to the corresponding PROC_TRACE setting. */ case LINUX_PR_GET_DUMPABLE: error = kern_procctl(td, P_PID, p->p_pid, PROC_TRACE_STATUS, &trace_state); if (error != 0) return (error); td->td_retval[0] = (trace_state != -1); return (0); case LINUX_PR_SET_DUMPABLE: /* * It is only valid for userspace to set one of these two * flags, and only one at a time. */ switch (args->arg2) { case LINUX_SUID_DUMP_DISABLE: trace_state = PROC_TRACE_CTL_DISABLE_EXEC; break; case LINUX_SUID_DUMP_USER: trace_state = PROC_TRACE_CTL_ENABLE; break; default: return (EINVAL); } return (kern_procctl(td, P_PID, p->p_pid, PROC_TRACE_CTL, &trace_state)); case LINUX_PR_GET_KEEPCAPS: /* * Indicate that we always clear the effective and * permitted capability sets when the user id becomes * non-zero (actually the capability sets are simply * always zero in the current implementation). */ td->td_retval[0] = 0; break; case LINUX_PR_SET_KEEPCAPS: /* * Ignore requests to keep the effective and permitted * capability sets when the user id becomes non-zero. */ break; case LINUX_PR_SET_NAME: /* * To be on the safe side we need to make sure to not * overflow the size a Linux program expects. We already * do this here in the copyin, so that we don't need to * check on copyout. */ max_size = MIN(sizeof(comm), sizeof(p->p_comm)); error = copyinstr((void *)(register_t)args->arg2, comm, max_size, NULL); /* Linux silently truncates the name if it is too long. */ if (error == ENAMETOOLONG) { /* * XXX: copyinstr() isn't documented to populate the * array completely, so do a copyin() to be on the * safe side. This should be changed in case * copyinstr() is changed to guarantee this. */ error = copyin((void *)(register_t)args->arg2, comm, max_size - 1); comm[max_size - 1] = '\0'; } if (error) return (error); PROC_LOCK(p); strlcpy(p->p_comm, comm, sizeof(p->p_comm)); PROC_UNLOCK(p); break; case LINUX_PR_GET_NAME: PROC_LOCK(p); strlcpy(comm, p->p_comm, sizeof(comm)); PROC_UNLOCK(p); error = copyout(comm, (void *)(register_t)args->arg2, strlen(comm) + 1); break; case LINUX_PR_GET_SECCOMP: case LINUX_PR_SET_SECCOMP: /* * Same as returned by Linux without CONFIG_SECCOMP enabled. */ error = EINVAL; break; case LINUX_PR_CAPBSET_READ: #if 0 /* * This makes too much noise with Ubuntu Focal. */ linux_msg(td, "unsupported prctl PR_CAPBSET_READ %d", (int)args->arg2); #endif error = EINVAL; break; case LINUX_PR_SET_NO_NEW_PRIVS: arg = args->arg2 == 1 ? PROC_NO_NEW_PRIVS_ENABLE : PROC_NO_NEW_PRIVS_DISABLE; error = kern_procctl(td, P_PID, p->p_pid, PROC_NO_NEW_PRIVS_CTL, &arg); break; case LINUX_PR_SET_PTRACER: linux_msg(td, "unsupported prctl PR_SET_PTRACER"); error = EINVAL; break; default: linux_msg(td, "unsupported prctl option %d", args->option); error = EINVAL; break; } return (error); } int linux_sched_setparam(struct thread *td, struct linux_sched_setparam_args *uap) { struct sched_param sched_param; struct thread *tdt; int error, policy; error = copyin(uap->param, &sched_param, sizeof(sched_param)); if (error) return (error); tdt = linux_tdfind(td, uap->pid, -1); if (tdt == NULL) return (ESRCH); if (linux_map_sched_prio) { error = kern_sched_getscheduler(td, tdt, &policy); if (error) goto out; switch (policy) { case SCHED_OTHER: if (sched_param.sched_priority != 0) { error = EINVAL; goto out; } sched_param.sched_priority = PRI_MAX_TIMESHARE - PRI_MIN_TIMESHARE; break; case SCHED_FIFO: case SCHED_RR: if (sched_param.sched_priority < 1 || sched_param.sched_priority >= LINUX_MAX_RT_PRIO) { error = EINVAL; goto out; } /* * Map [1, LINUX_MAX_RT_PRIO - 1] to * [0, RTP_PRIO_MAX - RTP_PRIO_MIN] (rounding down). */ sched_param.sched_priority = (sched_param.sched_priority - 1) * (RTP_PRIO_MAX - RTP_PRIO_MIN + 1) / (LINUX_MAX_RT_PRIO - 1); break; } } error = kern_sched_setparam(td, tdt, &sched_param); out: PROC_UNLOCK(tdt->td_proc); return (error); } int linux_sched_getparam(struct thread *td, struct linux_sched_getparam_args *uap) { struct sched_param sched_param; struct thread *tdt; int error, policy; tdt = linux_tdfind(td, uap->pid, -1); if (tdt == NULL) return (ESRCH); error = kern_sched_getparam(td, tdt, &sched_param); if (error) { PROC_UNLOCK(tdt->td_proc); return (error); } if (linux_map_sched_prio) { error = kern_sched_getscheduler(td, tdt, &policy); PROC_UNLOCK(tdt->td_proc); if (error) return (error); switch (policy) { case SCHED_OTHER: sched_param.sched_priority = 0; break; case SCHED_FIFO: case SCHED_RR: /* * Map [0, RTP_PRIO_MAX - RTP_PRIO_MIN] to * [1, LINUX_MAX_RT_PRIO - 1] (rounding up). */ sched_param.sched_priority = (sched_param.sched_priority * (LINUX_MAX_RT_PRIO - 1) + (RTP_PRIO_MAX - RTP_PRIO_MIN - 1)) / (RTP_PRIO_MAX - RTP_PRIO_MIN) + 1; break; } } else PROC_UNLOCK(tdt->td_proc); error = copyout(&sched_param, uap->param, sizeof(sched_param)); return (error); } /* * Get affinity of a process. */ int linux_sched_getaffinity(struct thread *td, struct linux_sched_getaffinity_args *args) { struct thread *tdt; cpuset_t *mask; size_t size; int error; id_t tid; tdt = linux_tdfind(td, args->pid, -1); if (tdt == NULL) return (ESRCH); tid = tdt->td_tid; PROC_UNLOCK(tdt->td_proc); mask = malloc(sizeof(cpuset_t), M_LINUX, M_WAITOK | M_ZERO); size = min(args->len, sizeof(cpuset_t)); error = kern_cpuset_getaffinity(td, CPU_LEVEL_WHICH, CPU_WHICH_TID, tid, size, mask); if (error == ERANGE) error = EINVAL; if (error == 0) error = copyout(mask, args->user_mask_ptr, size); if (error == 0) td->td_retval[0] = size; free(mask, M_LINUX); return (error); } /* * Set affinity of a process. */ int linux_sched_setaffinity(struct thread *td, struct linux_sched_setaffinity_args *args) { struct thread *tdt; cpuset_t *mask; int cpu, error; size_t len; id_t tid; tdt = linux_tdfind(td, args->pid, -1); if (tdt == NULL) return (ESRCH); tid = tdt->td_tid; PROC_UNLOCK(tdt->td_proc); len = min(args->len, sizeof(cpuset_t)); mask = malloc(sizeof(cpuset_t), M_TEMP, M_WAITOK | M_ZERO);; error = copyin(args->user_mask_ptr, mask, len); if (error != 0) goto out; /* Linux ignore high bits */ CPU_FOREACH_ISSET(cpu, mask) if (cpu > mp_maxid) CPU_CLR(cpu, mask); error = kern_cpuset_setaffinity(td, CPU_LEVEL_WHICH, CPU_WHICH_TID, tid, mask); if (error == EDEADLK) error = EINVAL; out: free(mask, M_TEMP); return (error); } struct linux_rlimit64 { uint64_t rlim_cur; uint64_t rlim_max; }; int linux_prlimit64(struct thread *td, struct linux_prlimit64_args *args) { struct rlimit rlim, nrlim; struct linux_rlimit64 lrlim; struct proc *p; u_int which; int flags; int error; if (args->new == NULL && args->old != NULL) { if (linux_get_dummy_limit(args->resource, &rlim)) { lrlim.rlim_cur = rlim.rlim_cur; lrlim.rlim_max = rlim.rlim_max; return (copyout(&lrlim, args->old, sizeof(lrlim))); } } if (args->resource >= LINUX_RLIM_NLIMITS) return (EINVAL); which = linux_to_bsd_resource[args->resource]; if (which == -1) return (EINVAL); if (args->new != NULL) { /* * Note. Unlike FreeBSD where rlim is signed 64-bit Linux * rlim is unsigned 64-bit. FreeBSD treats negative limits * as INFINITY so we do not need a conversion even. */ error = copyin(args->new, &nrlim, sizeof(nrlim)); if (error != 0) return (error); } flags = PGET_HOLD | PGET_NOTWEXIT; if (args->new != NULL) flags |= PGET_CANDEBUG; else flags |= PGET_CANSEE; if (args->pid == 0) { p = td->td_proc; PHOLD(p); } else { error = pget(args->pid, flags, &p); if (error != 0) return (error); } if (args->old != NULL) { PROC_LOCK(p); lim_rlimit_proc(p, which, &rlim); PROC_UNLOCK(p); if (rlim.rlim_cur == RLIM_INFINITY) lrlim.rlim_cur = LINUX_RLIM_INFINITY; else lrlim.rlim_cur = rlim.rlim_cur; if (rlim.rlim_max == RLIM_INFINITY) lrlim.rlim_max = LINUX_RLIM_INFINITY; else lrlim.rlim_max = rlim.rlim_max; error = copyout(&lrlim, args->old, sizeof(lrlim)); if (error != 0) goto out; } if (args->new != NULL) error = kern_proc_setrlimit(td, p, which, &nrlim); out: PRELE(p); return (error); } int linux_pselect6(struct thread *td, struct linux_pselect6_args *args) { struct timespec ts, *tsp; int error; if (args->tsp != NULL) { error = linux_get_timespec(&ts, args->tsp); if (error != 0) return (error); tsp = &ts; } else tsp = NULL; error = linux_common_pselect6(td, args->nfds, args->readfds, args->writefds, args->exceptfds, tsp, args->sig); if (args->tsp != NULL) linux_put_timespec(&ts, args->tsp); return (error); } static int linux_common_pselect6(struct thread *td, l_int nfds, l_fd_set *readfds, l_fd_set *writefds, l_fd_set *exceptfds, struct timespec *tsp, l_uintptr_t *sig) { struct timeval utv, tv0, tv1, *tvp; struct l_pselect6arg lpse6; sigset_t *ssp; sigset_t ss; int error; ssp = NULL; if (sig != NULL) { error = copyin(sig, &lpse6, sizeof(lpse6)); if (error != 0) return (error); error = linux_copyin_sigset(td, PTRIN(lpse6.ss), lpse6.ss_len, &ss, &ssp); if (error != 0) return (error); } else ssp = NULL; /* * Currently glibc changes nanosecond number to microsecond. * This mean losing precision but for now it is hardly seen. */ if (tsp != NULL) { TIMESPEC_TO_TIMEVAL(&utv, tsp); if (itimerfix(&utv)) return (EINVAL); microtime(&tv0); tvp = &utv; } else tvp = NULL; error = kern_pselect(td, nfds, readfds, writefds, exceptfds, tvp, ssp, LINUX_NFDBITS); if (tsp != NULL) { /* * Compute how much time was left of the timeout, * by subtracting the current time and the time * before we started the call, and subtracting * that result from the user-supplied value. */ microtime(&tv1); timevalsub(&tv1, &tv0); timevalsub(&utv, &tv1); if (utv.tv_sec < 0) timevalclear(&utv); TIMEVAL_TO_TIMESPEC(&utv, tsp); } return (error); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_pselect6_time64(struct thread *td, struct linux_pselect6_time64_args *args) { struct timespec ts, *tsp; int error; if (args->tsp != NULL) { error = linux_get_timespec64(&ts, args->tsp); if (error != 0) return (error); tsp = &ts; } else tsp = NULL; error = linux_common_pselect6(td, args->nfds, args->readfds, args->writefds, args->exceptfds, tsp, args->sig); if (args->tsp != NULL) linux_put_timespec64(&ts, args->tsp); return (error); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ int linux_ppoll(struct thread *td, struct linux_ppoll_args *args) { struct timespec uts, *tsp; int error; if (args->tsp != NULL) { error = linux_get_timespec(&uts, args->tsp); if (error != 0) return (error); tsp = &uts; } else tsp = NULL; error = linux_common_ppoll(td, args->fds, args->nfds, tsp, args->sset, args->ssize); if (error == 0 && args->tsp != NULL) error = linux_put_timespec(&uts, args->tsp); return (error); } static int linux_common_ppoll(struct thread *td, struct pollfd *fds, uint32_t nfds, struct timespec *tsp, l_sigset_t *sset, l_size_t ssize) { struct timespec ts0, ts1; struct pollfd stackfds[32]; struct pollfd *kfds; sigset_t *ssp; sigset_t ss; int error; if (kern_poll_maxfds(nfds)) return (EINVAL); if (sset != NULL) { error = linux_copyin_sigset(td, sset, ssize, &ss, &ssp); if (error != 0) return (error); } else ssp = NULL; if (tsp != NULL) nanotime(&ts0); if (nfds > nitems(stackfds)) kfds = mallocarray(nfds, sizeof(*kfds), M_TEMP, M_WAITOK); else kfds = stackfds; error = linux_pollin(td, kfds, fds, nfds); if (error != 0) goto out; error = kern_poll_kfds(td, kfds, nfds, tsp, ssp); if (error == 0) error = linux_pollout(td, kfds, fds, nfds); if (error == 0 && tsp != NULL) { if (td->td_retval[0]) { nanotime(&ts1); timespecsub(&ts1, &ts0, &ts1); timespecsub(tsp, &ts1, tsp); if (tsp->tv_sec < 0) timespecclear(tsp); } else timespecclear(tsp); } out: if (nfds > nitems(stackfds)) free(kfds, M_TEMP); return (error); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_ppoll_time64(struct thread *td, struct linux_ppoll_time64_args *args) { struct timespec uts, *tsp; int error; if (args->tsp != NULL) { error = linux_get_timespec64(&uts, args->tsp); if (error != 0) return (error); tsp = &uts; } else tsp = NULL; error = linux_common_ppoll(td, args->fds, args->nfds, tsp, args->sset, args->ssize); if (error == 0 && args->tsp != NULL) error = linux_put_timespec64(&uts, args->tsp); return (error); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ static int linux_pollin(struct thread *td, struct pollfd *fds, struct pollfd *ufds, u_int nfd) { int error; u_int i; error = copyin(ufds, fds, nfd * sizeof(*fds)); if (error != 0) return (error); for (i = 0; i < nfd; i++) { if (fds->events != 0) linux_to_bsd_poll_events(td, fds->fd, fds->events, &fds->events); fds++; } return (0); } static int linux_pollout(struct thread *td, struct pollfd *fds, struct pollfd *ufds, u_int nfd) { int error = 0; u_int i, n = 0; for (i = 0; i < nfd; i++) { if (fds->revents != 0) { bsd_to_linux_poll_events(fds->revents, &fds->revents); n++; } error = copyout(&fds->revents, &ufds->revents, sizeof(ufds->revents)); if (error) return (error); fds++; ufds++; } td->td_retval[0] = n; return (0); } static int linux_sched_rr_get_interval_common(struct thread *td, pid_t pid, struct timespec *ts) { struct thread *tdt; int error; /* * According to man in case the invalid pid specified * EINVAL should be returned. */ if (pid < 0) return (EINVAL); tdt = linux_tdfind(td, pid, -1); if (tdt == NULL) return (ESRCH); error = kern_sched_rr_get_interval_td(td, tdt, ts); PROC_UNLOCK(tdt->td_proc); return (error); } int linux_sched_rr_get_interval(struct thread *td, struct linux_sched_rr_get_interval_args *uap) { struct timespec ts; int error; error = linux_sched_rr_get_interval_common(td, uap->pid, &ts); if (error != 0) return (error); return (linux_put_timespec(&ts, uap->interval)); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_sched_rr_get_interval_time64(struct thread *td, struct linux_sched_rr_get_interval_time64_args *uap) { struct timespec ts; int error; error = linux_sched_rr_get_interval_common(td, uap->pid, &ts); if (error != 0) return (error); return (linux_put_timespec64(&ts, uap->interval)); } #endif /* * In case when the Linux thread is the initial thread in * the thread group thread id is equal to the process id. * Glibc depends on this magic (assert in pthread_getattr_np.c). */ struct thread * linux_tdfind(struct thread *td, lwpid_t tid, pid_t pid) { struct linux_emuldata *em; struct thread *tdt; struct proc *p; tdt = NULL; if (tid == 0 || tid == td->td_tid) { if (pid != -1 && td->td_proc->p_pid != pid) return (NULL); PROC_LOCK(td->td_proc); return (td); } else if (tid > PID_MAX) return (tdfind(tid, pid)); /* * Initial thread where the tid equal to the pid. */ p = pfind(tid); if (p != NULL) { if (SV_PROC_ABI(p) != SV_ABI_LINUX || (pid != -1 && tid != pid)) { /* * p is not a Linuxulator process. */ PROC_UNLOCK(p); return (NULL); } FOREACH_THREAD_IN_PROC(p, tdt) { em = em_find(tdt); if (tid == em->em_tid) return (tdt); } PROC_UNLOCK(p); } return (NULL); } void linux_to_bsd_waitopts(int options, int *bsdopts) { if (options & LINUX_WNOHANG) *bsdopts |= WNOHANG; if (options & LINUX_WUNTRACED) *bsdopts |= WUNTRACED; if (options & LINUX_WEXITED) *bsdopts |= WEXITED; if (options & LINUX_WCONTINUED) *bsdopts |= WCONTINUED; if (options & LINUX_WNOWAIT) *bsdopts |= WNOWAIT; if (options & __WCLONE) *bsdopts |= WLINUXCLONE; } int linux_getrandom(struct thread *td, struct linux_getrandom_args *args) { struct uio uio; struct iovec iov; int error; if (args->flags & ~(LINUX_GRND_NONBLOCK|LINUX_GRND_RANDOM)) return (EINVAL); if (args->count > INT_MAX) args->count = INT_MAX; iov.iov_base = args->buf; iov.iov_len = args->count; uio.uio_iov = &iov; uio.uio_iovcnt = 1; uio.uio_resid = iov.iov_len; uio.uio_segflg = UIO_USERSPACE; uio.uio_rw = UIO_READ; uio.uio_td = td; error = read_random_uio(&uio, args->flags & LINUX_GRND_NONBLOCK); if (error == 0) td->td_retval[0] = args->count - uio.uio_resid; return (error); } int linux_mincore(struct thread *td, struct linux_mincore_args *args) { /* Needs to be page-aligned */ if (args->start & PAGE_MASK) return (EINVAL); return (kern_mincore(td, args->start, args->len, args->vec)); } #define SYSLOG_TAG "<6>" int linux_syslog(struct thread *td, struct linux_syslog_args *args) { char buf[128], *src, *dst; u_int seq; int buflen, error; if (args->type != LINUX_SYSLOG_ACTION_READ_ALL) { linux_msg(td, "syslog unsupported type 0x%x", args->type); return (EINVAL); } if (args->len < 6) { td->td_retval[0] = 0; return (0); } error = priv_check(td, PRIV_MSGBUF); if (error) return (error); mtx_lock(&msgbuf_lock); msgbuf_peekbytes(msgbufp, NULL, 0, &seq); mtx_unlock(&msgbuf_lock); dst = args->buf; error = copyout(&SYSLOG_TAG, dst, sizeof(SYSLOG_TAG)); /* The -1 is to skip the trailing '\0'. */ dst += sizeof(SYSLOG_TAG) - 1; while (error == 0) { mtx_lock(&msgbuf_lock); buflen = msgbuf_peekbytes(msgbufp, buf, sizeof(buf), &seq); mtx_unlock(&msgbuf_lock); if (buflen == 0) break; for (src = buf; src < buf + buflen && error == 0; src++) { if (*src == '\0') continue; if (dst >= args->buf + args->len) goto out; error = copyout(src, dst, 1); dst++; if (*src == '\n' && *(src + 1) != '<' && dst + sizeof(SYSLOG_TAG) < args->buf + args->len) { error = copyout(&SYSLOG_TAG, dst, sizeof(SYSLOG_TAG)); dst += sizeof(SYSLOG_TAG) - 1; } } } out: td->td_retval[0] = dst - args->buf; return (error); } int linux_getcpu(struct thread *td, struct linux_getcpu_args *args) { int cpu, error, node; cpu = td->td_oncpu; /* Make sure it doesn't change during copyout(9) */ error = 0; node = cpuid_to_pcpu[cpu]->pc_domain; if (args->cpu != NULL) error = copyout(&cpu, args->cpu, sizeof(l_int)); if (args->node != NULL) error = copyout(&node, args->node, sizeof(l_int)); return (error); } #if defined(__i386__) || defined(__amd64__) int linux_poll(struct thread *td, struct linux_poll_args *args) { struct timespec ts, *tsp; if (args->timeout != INFTIM) { if (args->timeout < 0) return (EINVAL); ts.tv_sec = args->timeout / 1000; ts.tv_nsec = (args->timeout % 1000) * 1000000; tsp = &ts; } else tsp = NULL; return (linux_common_ppoll(td, args->fds, args->nfds, tsp, NULL, 0)); } #endif /* __i386__ || __amd64__ */ int linux_seccomp(struct thread *td, struct linux_seccomp_args *args) { switch (args->op) { case LINUX_SECCOMP_GET_ACTION_AVAIL: return (EOPNOTSUPP); default: /* * Ignore unknown operations, just like Linux kernel built * without CONFIG_SECCOMP. */ return (EINVAL); } } #ifndef COMPAT_LINUX32 int linux_execve(struct thread *td, struct linux_execve_args *args) { struct image_args eargs; char *path; int error; LINUX_CTR(execve); if (!LUSECONVPATH(td)) { error = exec_copyin_args(&eargs, args->path, UIO_USERSPACE, args->argp, args->envp); } else { LCONVPATHEXIST(args->path, &path); error = exec_copyin_args(&eargs, path, UIO_SYSSPACE, args->argp, args->envp); LFREEPATH(path); } if (error == 0) error = linux_common_execve(td, &eargs); AUDIT_SYSCALL_EXIT(error == EJUSTRETURN ? 0 : error, td); return (error); } #endif diff --git a/sys/compat/linux/linux_socket.c b/sys/compat/linux/linux_socket.c index 4bf528943d4f..d0648f88d549 100644 --- a/sys/compat/linux/linux_socket.c +++ b/sys/compat/linux/linux_socket.c @@ -1,2567 +1,2566 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 1995 Søren Schmidt * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include "opt_inet6.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include -#include #include #include #include #include #include #include #include #include #include #include #include #ifdef INET6 #include #include #endif #ifdef COMPAT_LINUX32 #include #include #else #include #include #endif #include #include #include #include #include #include #include #define SECURITY_CONTEXT_STRING "unconfined" static int linux_sendmsg_common(struct thread *, l_int, struct l_msghdr *, l_uint); static int linux_recvmsg_common(struct thread *, l_int, struct l_msghdr *, l_uint, struct msghdr *); static int linux_set_socket_flags(int, int *); #define SOL_NETLINK 270 static int linux_to_bsd_sockopt_level(int level) { if (level == LINUX_SOL_SOCKET) return (SOL_SOCKET); /* Remaining values are RFC-defined protocol numbers. */ return (level); } static int bsd_to_linux_sockopt_level(int level) { if (level == SOL_SOCKET) return (LINUX_SOL_SOCKET); return (level); } static int linux_to_bsd_ip_sockopt(int opt) { switch (opt) { /* known and translated sockopts */ case LINUX_IP_TOS: return (IP_TOS); case LINUX_IP_TTL: return (IP_TTL); case LINUX_IP_HDRINCL: return (IP_HDRINCL); case LINUX_IP_OPTIONS: return (IP_OPTIONS); case LINUX_IP_RECVOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_RECVOPTS"); return (IP_RECVOPTS); case LINUX_IP_RETOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_REETOPTS"); return (IP_RETOPTS); case LINUX_IP_RECVTTL: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_RECVTTL"); return (IP_RECVTTL); case LINUX_IP_RECVTOS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_RECVTOS"); return (IP_RECVTOS); case LINUX_IP_FREEBIND: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_FREEBIND"); return (IP_BINDANY); case LINUX_IP_IPSEC_POLICY: /* we have this option, but not documented in ip(4) manpage */ LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_IPSEC_POLICY"); return (IP_IPSEC_POLICY); case LINUX_IP_MINTTL: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MINTTL"); return (IP_MINTTL); case LINUX_IP_MULTICAST_IF: return (IP_MULTICAST_IF); case LINUX_IP_MULTICAST_TTL: return (IP_MULTICAST_TTL); case LINUX_IP_MULTICAST_LOOP: return (IP_MULTICAST_LOOP); case LINUX_IP_ADD_MEMBERSHIP: return (IP_ADD_MEMBERSHIP); case LINUX_IP_DROP_MEMBERSHIP: return (IP_DROP_MEMBERSHIP); case LINUX_IP_UNBLOCK_SOURCE: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_UNBLOCK_SOURCE"); return (IP_UNBLOCK_SOURCE); case LINUX_IP_BLOCK_SOURCE: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_BLOCK_SOURCE"); return (IP_BLOCK_SOURCE); case LINUX_IP_ADD_SOURCE_MEMBERSHIP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_ADD_SOURCE_MEMBERSHIP"); return (IP_ADD_SOURCE_MEMBERSHIP); case LINUX_IP_DROP_SOURCE_MEMBERSHIP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_DROP_SOURCE_MEMBERSHIP"); return (IP_DROP_SOURCE_MEMBERSHIP); case LINUX_MCAST_JOIN_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_JOIN_GROUP"); return (MCAST_JOIN_GROUP); case LINUX_MCAST_LEAVE_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_LEAVE_GROUP"); return (MCAST_LEAVE_GROUP); case LINUX_MCAST_JOIN_SOURCE_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_JOIN_SOURCE_GROUP"); return (MCAST_JOIN_SOURCE_GROUP); case LINUX_MCAST_LEAVE_SOURCE_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv4 socket option IP_MCAST_LEAVE_SOURCE_GROUP"); return (MCAST_LEAVE_SOURCE_GROUP); case LINUX_IP_RECVORIGDSTADDR: return (IP_RECVORIGDSTADDR); /* known but not implemented sockopts */ case LINUX_IP_ROUTER_ALERT: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_ROUTER_ALERT (%d), you can not do user-space routing from linux programs", opt); return (-2); case LINUX_IP_PKTINFO: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_PKTINFO (%d), you can not get extended packet info for datagram sockets in linux programs", opt); return (-2); case LINUX_IP_PKTOPTIONS: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_PKTOPTIONS (%d)", opt); return (-2); case LINUX_IP_MTU_DISCOVER: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_MTU_DISCOVER (%d), your linux program can not control path-MTU discovery", opt); return (-2); case LINUX_IP_RECVERR: /* needed by steam */ LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_RECVERR (%d), you can not get extended reliability info in linux programs", opt); return (-2); case LINUX_IP_MTU: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_MTU (%d), your linux program can not control the MTU on this socket", opt); return (-2); case LINUX_IP_XFRM_POLICY: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_XFRM_POLICY (%d)", opt); return (-2); case LINUX_IP_PASSSEC: /* needed by steam */ LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_PASSSEC (%d), you can not get IPSEC related credential information associated with this socket in linux programs -- if you do not use IPSEC, you can ignore this", opt); return (-2); case LINUX_IP_TRANSPARENT: /* IP_BINDANY or more? */ LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_TRANSPARENT (%d), you can not enable transparent proxying in linux programs -- note, IP_FREEBIND is supported, no idea if the FreeBSD IP_BINDANY is equivalent to the Linux IP_TRANSPARENT or not, any info is welcome", opt); return (-2); case LINUX_IP_NODEFRAG: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_NODEFRAG (%d)", opt); return (-2); case LINUX_IP_CHECKSUM: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_CHECKSUM (%d)", opt); return (-2); case LINUX_IP_BIND_ADDRESS_NO_PORT: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_BIND_ADDRESS_NO_PORT (%d)", opt); return (-2); case LINUX_IP_RECVFRAGSIZE: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_RECVFRAGSIZE (%d)", opt); return (-2); case LINUX_MCAST_MSFILTER: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_MCAST_MSFILTER (%d)", opt); return (-2); case LINUX_IP_MULTICAST_ALL: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_MULTICAST_ALL (%d), your linux program will not see all multicast groups joined by the entire system, only those the program joined itself on this socket", opt); return (-2); case LINUX_IP_UNICAST_IF: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv4 socket option IP_UNICAST_IF (%d)", opt); return (-2); /* unknown sockopts */ default: return (-1); } } static int linux_to_bsd_ip6_sockopt(int opt) { switch (opt) { /* known and translated sockopts */ case LINUX_IPV6_2292PKTINFO: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292PKTINFO"); return (IPV6_2292PKTINFO); case LINUX_IPV6_2292HOPOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292HOPOPTS"); return (IPV6_2292HOPOPTS); case LINUX_IPV6_2292DSTOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292DSTOPTS"); return (IPV6_2292DSTOPTS); case LINUX_IPV6_2292RTHDR: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292RTHDR"); return (IPV6_2292RTHDR); case LINUX_IPV6_2292PKTOPTIONS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292PKTOPTIONS"); return (IPV6_2292PKTOPTIONS); case LINUX_IPV6_CHECKSUM: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_CHECKSUM"); return (IPV6_CHECKSUM); case LINUX_IPV6_2292HOPLIMIT: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_2292HOPLIMIT"); return (IPV6_2292HOPLIMIT); case LINUX_IPV6_NEXTHOP: return (IPV6_NEXTHOP); case LINUX_IPV6_UNICAST_HOPS: return (IPV6_UNICAST_HOPS); case LINUX_IPV6_MULTICAST_IF: return (IPV6_MULTICAST_IF); case LINUX_IPV6_MULTICAST_HOPS: return (IPV6_MULTICAST_HOPS); case LINUX_IPV6_MULTICAST_LOOP: return (IPV6_MULTICAST_LOOP); case LINUX_IPV6_ADD_MEMBERSHIP: return (IPV6_JOIN_GROUP); case LINUX_IPV6_DROP_MEMBERSHIP: return (IPV6_LEAVE_GROUP); case LINUX_IPV6_V6ONLY: return (IPV6_V6ONLY); case LINUX_IPV6_IPSEC_POLICY: /* we have this option, but not documented in ip6(4) manpage */ LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_IPSEC_POLICY"); return (IPV6_IPSEC_POLICY); case LINUX_MCAST_JOIN_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_JOIN_GROUP"); return (IPV6_JOIN_GROUP); case LINUX_MCAST_LEAVE_GROUP: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_LEAVE_GROUP"); return (IPV6_LEAVE_GROUP); case LINUX_IPV6_RECVPKTINFO: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVPKTINFO"); return (IPV6_RECVPKTINFO); case LINUX_IPV6_PKTINFO: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_PKTINFO"); return (IPV6_PKTINFO); case LINUX_IPV6_RECVHOPLIMIT: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVHOPLIMIT"); return (IPV6_RECVHOPLIMIT); case LINUX_IPV6_HOPLIMIT: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_HOPLIMIT"); return (IPV6_HOPLIMIT); case LINUX_IPV6_RECVHOPOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVHOPOPTS"); return (IPV6_RECVHOPOPTS); case LINUX_IPV6_HOPOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_HOPOPTS"); return (IPV6_HOPOPTS); case LINUX_IPV6_RTHDRDSTOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RTHDRDSTOPTS"); return (IPV6_RTHDRDSTOPTS); case LINUX_IPV6_RECVRTHDR: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVRTHDR"); return (IPV6_RECVRTHDR); case LINUX_IPV6_RTHDR: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RTHDR"); return (IPV6_RTHDR); case LINUX_IPV6_RECVDSTOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVDSTOPTS"); return (IPV6_RECVDSTOPTS); case LINUX_IPV6_DSTOPTS: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_DSTOPTS"); return (IPV6_DSTOPTS); case LINUX_IPV6_RECVPATHMTU: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_RECVPATHMTU"); return (IPV6_RECVPATHMTU); case LINUX_IPV6_PATHMTU: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_PATHMTU"); return (IPV6_PATHMTU); case LINUX_IPV6_DONTFRAG: return (IPV6_DONTFRAG); case LINUX_IPV6_AUTOFLOWLABEL: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_AUTOFLOWLABEL"); return (IPV6_AUTOFLOWLABEL); case LINUX_IPV6_ORIGDSTADDR: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_ORIGDSTADDR"); return (IPV6_ORIGDSTADDR); case LINUX_IPV6_FREEBIND: LINUX_RATELIMIT_MSG_NOTTESTED("IPv6 socket option IPV6_FREEBIND"); return (IPV6_BINDANY); /* known but not implemented sockopts */ case LINUX_IPV6_ADDRFORM: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_ADDRFORM (%d), you linux program can not convert the socket to IPv4", opt); return (-2); case LINUX_IPV6_AUTHHDR: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_AUTHHDR (%d), your linux program can not get the authentication header info of IPv6 packets", opt); return (-2); case LINUX_IPV6_FLOWINFO: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_FLOWINFO (%d), your linux program can not get the flowid of IPv6 packets", opt); return (-2); case LINUX_IPV6_ROUTER_ALERT: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_ROUTER_ALERT (%d), you can not do user-space routing from linux programs", opt); return (-2); case LINUX_IPV6_MTU_DISCOVER: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_MTU_DISCOVER (%d), your linux program can not control path-MTU discovery", opt); return (-2); case LINUX_IPV6_MTU: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_MTU (%d), your linux program can not control the MTU on this socket", opt); return (-2); case LINUX_IPV6_JOIN_ANYCAST: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_JOIN_ANYCAST (%d)", opt); return (-2); case LINUX_IPV6_LEAVE_ANYCAST: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_LEAVE_ANYCAST (%d)", opt); return (-2); case LINUX_IPV6_MULTICAST_ALL: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_MULTICAST_ALL (%d)", opt); return (-2); case LINUX_IPV6_ROUTER_ALERT_ISOLATE: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_ROUTER_ALERT_ISOLATE (%d)", opt); return (-2); case LINUX_IPV6_FLOWLABEL_MGR: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_FLOWLABEL_MGR (%d)", opt); return (-2); case LINUX_IPV6_FLOWINFO_SEND: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_FLOWINFO_SEND (%d)", opt); return (-2); case LINUX_IPV6_XFRM_POLICY: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_XFRM_POLICY (%d)", opt); return (-2); case LINUX_IPV6_HDRINCL: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_HDRINCL (%d)", opt); return (-2); case LINUX_MCAST_BLOCK_SOURCE: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option MCAST_BLOCK_SOURCE (%d), your linux program may see more multicast stuff than it wants", opt); return (-2); case LINUX_MCAST_UNBLOCK_SOURCE: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option MCAST_UNBLOCK_SOURCE (%d), your linux program may not see all the multicast stuff it wants", opt); return (-2); case LINUX_MCAST_JOIN_SOURCE_GROUP: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option MCAST_JOIN_SOURCE_GROUP (%d), your linux program is not able to join a multicast source group", opt); return (-2); case LINUX_MCAST_LEAVE_SOURCE_GROUP: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option MCAST_LEAVE_SOURCE_GROUP (%d), your linux program is not able to leave a multicast source group -- but it was also not able to join one, so no issue", opt); return (-2); case LINUX_MCAST_MSFILTER: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option MCAST_MSFILTER (%d), your linux program can not manipulate the multicast filter, it may see more multicast data than it wants to see", opt); return (-2); case LINUX_IPV6_ADDR_PREFERENCES: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_ADDR_PREFERENCES (%d)", opt); return (-2); case LINUX_IPV6_MINHOPCOUNT: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_MINHOPCOUNT (%d)", opt); return (-2); case LINUX_IPV6_TRANSPARENT: /* IP_BINDANY or more? */ LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_TRANSPARENT (%d), you can not enable transparent proxying in linux programs -- note, IP_FREEBIND is supported, no idea if the FreeBSD IP_BINDANY is equivalent to the Linux IP_TRANSPARENT or not, any info is welcome", opt); return (-2); case LINUX_IPV6_UNICAST_IF: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_UNICAST_IF (%d)", opt); return (-2); case LINUX_IPV6_RECVFRAGSIZE: LINUX_RATELIMIT_MSG_OPT1( "unsupported IPv6 socket option IPV6_RECVFRAGSIZE (%d)", opt); return (-2); /* unknown sockopts */ default: return (-1); } } static int linux_to_bsd_so_sockopt(int opt) { switch (opt) { case LINUX_SO_DEBUG: return (SO_DEBUG); case LINUX_SO_REUSEADDR: return (SO_REUSEADDR); case LINUX_SO_TYPE: return (SO_TYPE); case LINUX_SO_ERROR: return (SO_ERROR); case LINUX_SO_DONTROUTE: return (SO_DONTROUTE); case LINUX_SO_BROADCAST: return (SO_BROADCAST); case LINUX_SO_SNDBUF: case LINUX_SO_SNDBUFFORCE: return (SO_SNDBUF); case LINUX_SO_RCVBUF: case LINUX_SO_RCVBUFFORCE: return (SO_RCVBUF); case LINUX_SO_KEEPALIVE: return (SO_KEEPALIVE); case LINUX_SO_OOBINLINE: return (SO_OOBINLINE); case LINUX_SO_LINGER: return (SO_LINGER); case LINUX_SO_REUSEPORT: return (SO_REUSEPORT_LB); case LINUX_SO_PASSCRED: return (LOCAL_CREDS_PERSISTENT); case LINUX_SO_PEERCRED: return (LOCAL_PEERCRED); case LINUX_SO_RCVLOWAT: return (SO_RCVLOWAT); case LINUX_SO_SNDLOWAT: return (SO_SNDLOWAT); case LINUX_SO_RCVTIMEO: return (SO_RCVTIMEO); case LINUX_SO_SNDTIMEO: return (SO_SNDTIMEO); case LINUX_SO_TIMESTAMPO: case LINUX_SO_TIMESTAMPN: return (SO_TIMESTAMP); case LINUX_SO_TIMESTAMPNSO: case LINUX_SO_TIMESTAMPNSN: return (SO_BINTIME); case LINUX_SO_ACCEPTCONN: return (SO_ACCEPTCONN); case LINUX_SO_PROTOCOL: return (SO_PROTOCOL); case LINUX_SO_DOMAIN: return (SO_DOMAIN); } return (-1); } static int linux_to_bsd_tcp_sockopt(int opt) { switch (opt) { case LINUX_TCP_NODELAY: return (TCP_NODELAY); case LINUX_TCP_MAXSEG: return (TCP_MAXSEG); case LINUX_TCP_CORK: return (TCP_NOPUSH); case LINUX_TCP_KEEPIDLE: return (TCP_KEEPIDLE); case LINUX_TCP_KEEPINTVL: return (TCP_KEEPINTVL); case LINUX_TCP_KEEPCNT: return (TCP_KEEPCNT); case LINUX_TCP_INFO: LINUX_RATELIMIT_MSG_OPT1( "unsupported TCP socket option TCP_INFO (%d)", opt); return (-2); case LINUX_TCP_MD5SIG: return (TCP_MD5SIG); } return (-1); } static int linux_to_bsd_msg_flags(int flags) { int ret_flags = 0; if (flags & LINUX_MSG_OOB) ret_flags |= MSG_OOB; if (flags & LINUX_MSG_PEEK) ret_flags |= MSG_PEEK; if (flags & LINUX_MSG_DONTROUTE) ret_flags |= MSG_DONTROUTE; if (flags & LINUX_MSG_CTRUNC) ret_flags |= MSG_CTRUNC; if (flags & LINUX_MSG_TRUNC) ret_flags |= MSG_TRUNC; if (flags & LINUX_MSG_DONTWAIT) ret_flags |= MSG_DONTWAIT; if (flags & LINUX_MSG_EOR) ret_flags |= MSG_EOR; if (flags & LINUX_MSG_WAITALL) ret_flags |= MSG_WAITALL; if (flags & LINUX_MSG_NOSIGNAL) ret_flags |= MSG_NOSIGNAL; if (flags & LINUX_MSG_PROXY) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_PROXY (%d) not handled", LINUX_MSG_PROXY); if (flags & LINUX_MSG_FIN) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_FIN (%d) not handled", LINUX_MSG_FIN); if (flags & LINUX_MSG_SYN) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_SYN (%d) not handled", LINUX_MSG_SYN); if (flags & LINUX_MSG_CONFIRM) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_CONFIRM (%d) not handled", LINUX_MSG_CONFIRM); if (flags & LINUX_MSG_RST) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_RST (%d) not handled", LINUX_MSG_RST); if (flags & LINUX_MSG_ERRQUEUE) LINUX_RATELIMIT_MSG_OPT1("socket message flag MSG_ERRQUEUE (%d) not handled", LINUX_MSG_ERRQUEUE); return (ret_flags); } static int linux_to_bsd_cmsg_type(int cmsg_type) { switch (cmsg_type) { case LINUX_SCM_RIGHTS: return (SCM_RIGHTS); case LINUX_SCM_CREDENTIALS: return (SCM_CREDS); } return (-1); } static int bsd_to_linux_ip_cmsg_type(int cmsg_type) { switch (cmsg_type) { case IP_RECVORIGDSTADDR: return (LINUX_IP_RECVORIGDSTADDR); } return (-1); } static int bsd_to_linux_cmsg_type(struct proc *p, int cmsg_type, int cmsg_level) { struct linux_pemuldata *pem; if (cmsg_level == IPPROTO_IP) return (bsd_to_linux_ip_cmsg_type(cmsg_type)); if (cmsg_level != SOL_SOCKET) return (-1); pem = pem_find(p); switch (cmsg_type) { case SCM_RIGHTS: return (LINUX_SCM_RIGHTS); case SCM_CREDS: return (LINUX_SCM_CREDENTIALS); case SCM_CREDS2: return (LINUX_SCM_CREDENTIALS); case SCM_TIMESTAMP: return (pem->so_timestamp); case SCM_BINTIME: return (pem->so_timestampns); } return (-1); } static int linux_to_bsd_msghdr(struct msghdr *bhdr, const struct l_msghdr *lhdr) { if (lhdr->msg_controllen > INT_MAX) return (ENOBUFS); bhdr->msg_name = PTRIN(lhdr->msg_name); bhdr->msg_namelen = lhdr->msg_namelen; bhdr->msg_iov = PTRIN(lhdr->msg_iov); bhdr->msg_iovlen = lhdr->msg_iovlen; bhdr->msg_control = PTRIN(lhdr->msg_control); /* * msg_controllen is skipped since BSD and LINUX control messages * are potentially different sizes (e.g. the cred structure used * by SCM_CREDS is different between the two operating system). * * The caller can set it (if necessary) after converting all the * control messages. */ bhdr->msg_flags = linux_to_bsd_msg_flags(lhdr->msg_flags); return (0); } static int bsd_to_linux_msghdr(const struct msghdr *bhdr, struct l_msghdr *lhdr) { lhdr->msg_name = PTROUT(bhdr->msg_name); lhdr->msg_namelen = bhdr->msg_namelen; lhdr->msg_iov = PTROUT(bhdr->msg_iov); lhdr->msg_iovlen = bhdr->msg_iovlen; lhdr->msg_control = PTROUT(bhdr->msg_control); /* * msg_controllen is skipped since BSD and LINUX control messages * are potentially different sizes (e.g. the cred structure used * by SCM_CREDS is different between the two operating system). * * The caller can set it (if necessary) after converting all the * control messages. */ /* msg_flags skipped */ return (0); } static int linux_set_socket_flags(int lflags, int *flags) { if (lflags & ~(LINUX_SOCK_CLOEXEC | LINUX_SOCK_NONBLOCK)) return (EINVAL); if (lflags & LINUX_SOCK_NONBLOCK) *flags |= SOCK_NONBLOCK; if (lflags & LINUX_SOCK_CLOEXEC) *flags |= SOCK_CLOEXEC; return (0); } static int linux_copyout_sockaddr(const struct sockaddr *sa, void *uaddr, size_t len) { struct l_sockaddr *lsa; int error; error = bsd_to_linux_sockaddr(sa, &lsa, len); if (error != 0) return (error); error = copyout(lsa, uaddr, len); free(lsa, M_LINUX); return (error); } static int linux_sendit(struct thread *td, int s, struct msghdr *mp, int flags, struct mbuf *control, enum uio_seg segflg) { struct sockaddr *to; int error, len; if (mp->msg_name != NULL) { len = mp->msg_namelen; error = linux_to_bsd_sockaddr(mp->msg_name, &to, &len); if (error != 0) return (error); mp->msg_name = to; } else to = NULL; error = kern_sendit(td, s, mp, linux_to_bsd_msg_flags(flags), control, segflg); if (to) free(to, M_SONAME); return (error); } /* Return 0 if IP_HDRINCL is set for the given socket. */ static int linux_check_hdrincl(struct thread *td, int s) { int error, optval; socklen_t size_val; size_val = sizeof(optval); error = kern_getsockopt(td, s, IPPROTO_IP, IP_HDRINCL, &optval, UIO_SYSSPACE, &size_val); if (error != 0) return (error); return (optval == 0); } /* * Updated sendto() when IP_HDRINCL is set: * tweak endian-dependent fields in the IP packet. */ static int linux_sendto_hdrincl(struct thread *td, struct linux_sendto_args *linux_args) { /* * linux_ip_copysize defines how many bytes we should copy * from the beginning of the IP packet before we customize it for BSD. * It should include all the fields we modify (ip_len and ip_off). */ #define linux_ip_copysize 8 struct ip *packet; struct msghdr msg; struct iovec aiov[1]; int error; /* Check that the packet isn't too big or too small. */ if (linux_args->len < linux_ip_copysize || linux_args->len > IP_MAXPACKET) return (EINVAL); packet = (struct ip *)malloc(linux_args->len, M_LINUX, M_WAITOK); /* Make kernel copy of the packet to be sent */ if ((error = copyin(PTRIN(linux_args->msg), packet, linux_args->len))) goto goout; /* Convert fields from Linux to BSD raw IP socket format */ packet->ip_len = linux_args->len; packet->ip_off = ntohs(packet->ip_off); /* Prepare the msghdr and iovec structures describing the new packet */ msg.msg_name = PTRIN(linux_args->to); msg.msg_namelen = linux_args->tolen; msg.msg_iov = aiov; msg.msg_iovlen = 1; msg.msg_control = NULL; msg.msg_flags = 0; aiov[0].iov_base = (char *)packet; aiov[0].iov_len = linux_args->len; error = linux_sendit(td, linux_args->s, &msg, linux_args->flags, NULL, UIO_SYSSPACE); goout: free(packet, M_LINUX); return (error); } static const char *linux_netlink_names[] = { [LINUX_NETLINK_ROUTE] = "ROUTE", [LINUX_NETLINK_SOCK_DIAG] = "SOCK_DIAG", [LINUX_NETLINK_NFLOG] = "NFLOG", [LINUX_NETLINK_SELINUX] = "SELINUX", [LINUX_NETLINK_AUDIT] = "AUDIT", [LINUX_NETLINK_FIB_LOOKUP] = "FIB_LOOKUP", [LINUX_NETLINK_NETFILTER] = "NETFILTER", [LINUX_NETLINK_KOBJECT_UEVENT] = "KOBJECT_UEVENT", }; int linux_socket(struct thread *td, struct linux_socket_args *args) { int domain, retval_socket, type; type = args->type & LINUX_SOCK_TYPE_MASK; if (type < 0 || type > LINUX_SOCK_MAX) return (EINVAL); retval_socket = linux_set_socket_flags(args->type & ~LINUX_SOCK_TYPE_MASK, &type); if (retval_socket != 0) return (retval_socket); domain = linux_to_bsd_domain(args->domain); if (domain == -1) { /* Mask off SOCK_NONBLOCK / CLOEXEC for error messages. */ type = args->type & LINUX_SOCK_TYPE_MASK; if (args->domain == LINUX_AF_NETLINK && args->protocol == LINUX_NETLINK_AUDIT) { ; /* Do nothing, quietly. */ } else if (args->domain == LINUX_AF_NETLINK) { const char *nl_name; if (args->protocol >= 0 && args->protocol < nitems(linux_netlink_names)) nl_name = linux_netlink_names[args->protocol]; else nl_name = NULL; if (nl_name != NULL) linux_msg(curthread, "unsupported socket(AF_NETLINK, %d, " "NETLINK_%s)", type, nl_name); else linux_msg(curthread, "unsupported socket(AF_NETLINK, %d, %d)", type, args->protocol); } else { linux_msg(curthread, "unsupported socket domain %d, " "type %d, protocol %d", args->domain, type, args->protocol); } return (EAFNOSUPPORT); } retval_socket = kern_socket(td, domain, type, args->protocol); if (retval_socket) return (retval_socket); if (type == SOCK_RAW && (args->protocol == IPPROTO_RAW || args->protocol == 0) && domain == PF_INET) { /* It's a raw IP socket: set the IP_HDRINCL option. */ int hdrincl; hdrincl = 1; /* We ignore any error returned by kern_setsockopt() */ kern_setsockopt(td, td->td_retval[0], IPPROTO_IP, IP_HDRINCL, &hdrincl, UIO_SYSSPACE, sizeof(hdrincl)); } #ifdef INET6 /* * Linux AF_INET6 socket has IPV6_V6ONLY setsockopt set to 0 by default * and some apps depend on this. So, set V6ONLY to 0 for Linux apps. * For simplicity we do this unconditionally of the net.inet6.ip6.v6only * sysctl value. */ if (domain == PF_INET6) { int v6only; v6only = 0; /* We ignore any error returned by setsockopt() */ kern_setsockopt(td, td->td_retval[0], IPPROTO_IPV6, IPV6_V6ONLY, &v6only, UIO_SYSSPACE, sizeof(v6only)); } #endif return (retval_socket); } int linux_bind(struct thread *td, struct linux_bind_args *args) { struct sockaddr *sa; int error; error = linux_to_bsd_sockaddr(PTRIN(args->name), &sa, &args->namelen); if (error != 0) return (error); error = kern_bindat(td, AT_FDCWD, args->s, sa); free(sa, M_SONAME); /* XXX */ if (error == EADDRNOTAVAIL && args->namelen != sizeof(struct sockaddr_in)) return (EINVAL); return (error); } int linux_connect(struct thread *td, struct linux_connect_args *args) { struct socket *so; struct sockaddr *sa; struct file *fp; int error; error = linux_to_bsd_sockaddr(PTRIN(args->name), &sa, &args->namelen); if (error != 0) return (error); error = kern_connectat(td, AT_FDCWD, args->s, sa); free(sa, M_SONAME); if (error != EISCONN) return (error); /* * Linux doesn't return EISCONN the first time it occurs, * when on a non-blocking socket. Instead it returns the * error getsockopt(SOL_SOCKET, SO_ERROR) would return on BSD. */ error = getsock(td, args->s, &cap_connect_rights, &fp); if (error != 0) return (error); error = EISCONN; so = fp->f_data; if (atomic_load_int(&fp->f_flag) & FNONBLOCK) { SOCK_LOCK(so); if (so->so_emuldata == 0) error = so->so_error; so->so_emuldata = (void *)1; SOCK_UNLOCK(so); } fdrop(fp, td); return (error); } int linux_listen(struct thread *td, struct linux_listen_args *args) { return (kern_listen(td, args->s, args->backlog)); } static int linux_accept_common(struct thread *td, int s, l_uintptr_t addr, l_uintptr_t namelen, int flags) { struct sockaddr *sa; struct file *fp, *fp1; int bflags, len; struct socket *so; int error, error1; bflags = 0; fp = NULL; sa = NULL; error = linux_set_socket_flags(flags, &bflags); if (error != 0) return (error); if (PTRIN(addr) == NULL) { len = 0; error = kern_accept4(td, s, NULL, NULL, bflags, NULL); } else { error = copyin(PTRIN(namelen), &len, sizeof(len)); if (error != 0) return (error); if (len < 0) return (EINVAL); error = kern_accept4(td, s, &sa, &len, bflags, &fp); } /* * Translate errno values into ones used by Linux. */ if (error != 0) { /* * XXX. This is wrong, different sockaddr structures * have different sizes. */ switch (error) { case EFAULT: if (namelen != sizeof(struct sockaddr_in)) error = EINVAL; break; case EINVAL: error1 = getsock(td, s, &cap_accept_rights, &fp1); if (error1 != 0) { error = error1; break; } so = fp1->f_data; if (so->so_type == SOCK_DGRAM) error = EOPNOTSUPP; fdrop(fp1, td); break; } return (error); } if (len != 0) { error = linux_copyout_sockaddr(sa, PTRIN(addr), len); if (error == 0) error = copyout(&len, PTRIN(namelen), sizeof(len)); if (error != 0) { fdclose(td, fp, td->td_retval[0]); td->td_retval[0] = 0; } } if (fp != NULL) fdrop(fp, td); free(sa, M_SONAME); return (error); } int linux_accept(struct thread *td, struct linux_accept_args *args) { return (linux_accept_common(td, args->s, args->addr, args->namelen, 0)); } int linux_accept4(struct thread *td, struct linux_accept4_args *args) { return (linux_accept_common(td, args->s, args->addr, args->namelen, args->flags)); } int linux_getsockname(struct thread *td, struct linux_getsockname_args *args) { struct sockaddr *sa; int len, error; error = copyin(PTRIN(args->namelen), &len, sizeof(len)); if (error != 0) return (error); error = kern_getsockname(td, args->s, &sa, &len); if (error != 0) return (error); if (len != 0) error = linux_copyout_sockaddr(sa, PTRIN(args->addr), len); free(sa, M_SONAME); if (error == 0) error = copyout(&len, PTRIN(args->namelen), sizeof(len)); return (error); } int linux_getpeername(struct thread *td, struct linux_getpeername_args *args) { struct sockaddr *sa; int len, error; error = copyin(PTRIN(args->namelen), &len, sizeof(len)); if (error != 0) return (error); if (len < 0) return (EINVAL); error = kern_getpeername(td, args->s, &sa, &len); if (error != 0) return (error); if (len != 0) error = linux_copyout_sockaddr(sa, PTRIN(args->addr), len); free(sa, M_SONAME); if (error == 0) error = copyout(&len, PTRIN(args->namelen), sizeof(len)); return (error); } int linux_socketpair(struct thread *td, struct linux_socketpair_args *args) { int domain, error, sv[2], type; domain = linux_to_bsd_domain(args->domain); if (domain != PF_LOCAL) return (EAFNOSUPPORT); type = args->type & LINUX_SOCK_TYPE_MASK; if (type < 0 || type > LINUX_SOCK_MAX) return (EINVAL); error = linux_set_socket_flags(args->type & ~LINUX_SOCK_TYPE_MASK, &type); if (error != 0) return (error); if (args->protocol != 0 && args->protocol != PF_UNIX) { /* * Use of PF_UNIX as protocol argument is not right, * but Linux does it. * Do not map PF_UNIX as its Linux value is identical * to FreeBSD one. */ return (EPROTONOSUPPORT); } error = kern_socketpair(td, domain, type, 0, sv); if (error != 0) return (error); error = copyout(sv, PTRIN(args->rsv), 2 * sizeof(int)); if (error != 0) { (void)kern_close(td, sv[0]); (void)kern_close(td, sv[1]); } return (error); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) struct linux_send_args { register_t s; register_t msg; register_t len; register_t flags; }; static int linux_send(struct thread *td, struct linux_send_args *args) { struct sendto_args /* { int s; caddr_t buf; int len; int flags; caddr_t to; int tolen; } */ bsd_args; struct file *fp; int error; bsd_args.s = args->s; bsd_args.buf = (caddr_t)PTRIN(args->msg); bsd_args.len = args->len; bsd_args.flags = linux_to_bsd_msg_flags(args->flags); bsd_args.to = NULL; bsd_args.tolen = 0; error = sys_sendto(td, &bsd_args); if (error == ENOTCONN) { /* * Linux doesn't return ENOTCONN for non-blocking sockets. * Instead it returns the EAGAIN. */ error = getsock(td, args->s, &cap_send_rights, &fp); if (error == 0) { if (atomic_load_int(&fp->f_flag) & FNONBLOCK) error = EAGAIN; fdrop(fp, td); } } return (error); } struct linux_recv_args { register_t s; register_t msg; register_t len; register_t flags; }; static int linux_recv(struct thread *td, struct linux_recv_args *args) { struct recvfrom_args /* { int s; caddr_t buf; int len; int flags; struct sockaddr *from; socklen_t fromlenaddr; } */ bsd_args; bsd_args.s = args->s; bsd_args.buf = (caddr_t)PTRIN(args->msg); bsd_args.len = args->len; bsd_args.flags = linux_to_bsd_msg_flags(args->flags); bsd_args.from = NULL; bsd_args.fromlenaddr = 0; return (sys_recvfrom(td, &bsd_args)); } #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ int linux_sendto(struct thread *td, struct linux_sendto_args *args) { struct msghdr msg; struct iovec aiov; struct socket *so; struct file *fp; int error; if (linux_check_hdrincl(td, args->s) == 0) /* IP_HDRINCL set, tweak the packet before sending */ return (linux_sendto_hdrincl(td, args)); bzero(&msg, sizeof(msg)); error = getsock(td, args->s, &cap_send_connect_rights, &fp); if (error != 0) return (error); so = fp->f_data; if ((so->so_state & (SS_ISCONNECTED|SS_ISCONNECTING)) == 0) { msg.msg_name = PTRIN(args->to); msg.msg_namelen = args->tolen; } msg.msg_iov = &aiov; msg.msg_iovlen = 1; aiov.iov_base = PTRIN(args->msg); aiov.iov_len = args->len; fdrop(fp, td); return (linux_sendit(td, args->s, &msg, args->flags, NULL, UIO_USERSPACE)); } int linux_recvfrom(struct thread *td, struct linux_recvfrom_args *args) { struct sockaddr *sa; struct msghdr msg; struct iovec aiov; int error, fromlen; if (PTRIN(args->fromlen) != NULL) { error = copyin(PTRIN(args->fromlen), &fromlen, sizeof(fromlen)); if (error != 0) return (error); if (fromlen < 0) return (EINVAL); fromlen = min(fromlen, SOCK_MAXADDRLEN); sa = malloc(fromlen, M_SONAME, M_WAITOK); } else { fromlen = 0; sa = NULL; } msg.msg_name = sa; msg.msg_namelen = fromlen; msg.msg_iov = &aiov; msg.msg_iovlen = 1; aiov.iov_base = PTRIN(args->buf); aiov.iov_len = args->len; msg.msg_control = 0; msg.msg_flags = linux_to_bsd_msg_flags(args->flags); error = kern_recvit(td, args->s, &msg, UIO_SYSSPACE, NULL); if (error != 0) goto out; /* * XXX. Seems that FreeBSD is different from Linux here. Linux * fill source address if underlying protocol provides it, while * FreeBSD fill it if underlying protocol is not connection-oriented. * So, kern_recvit() set msg.msg_namelen to 0 if protocol pr_flags * does not contains PR_ADDR flag. */ if (PTRIN(args->from) != NULL && msg.msg_namelen != 0) error = linux_copyout_sockaddr(sa, PTRIN(args->from), msg.msg_namelen); if (error == 0 && PTRIN(args->fromlen) != NULL) error = copyout(&msg.msg_namelen, PTRIN(args->fromlen), sizeof(msg.msg_namelen)); out: free(sa, M_SONAME); return (error); } static int linux_sendmsg_common(struct thread *td, l_int s, struct l_msghdr *msghdr, l_uint flags) { struct cmsghdr *cmsg; struct mbuf *control; struct msghdr msg; struct l_cmsghdr linux_cmsg; struct l_cmsghdr *ptr_cmsg; struct l_msghdr linux_msghdr; struct iovec *iov; socklen_t datalen; struct sockaddr *sa; struct socket *so; sa_family_t sa_family; struct file *fp; void *data; l_size_t len; l_size_t clen; int error; error = copyin(msghdr, &linux_msghdr, sizeof(linux_msghdr)); if (error != 0) return (error); /* * Some Linux applications (ping) define a non-NULL control data * pointer, but a msg_controllen of 0, which is not allowed in the * FreeBSD system call interface. NULL the msg_control pointer in * order to handle this case. This should be checked, but allows the * Linux ping to work. */ if (PTRIN(linux_msghdr.msg_control) != NULL && linux_msghdr.msg_controllen == 0) linux_msghdr.msg_control = PTROUT(NULL); error = linux_to_bsd_msghdr(&msg, &linux_msghdr); if (error != 0) return (error); #ifdef COMPAT_LINUX32 error = linux32_copyiniov(PTRIN(msg.msg_iov), msg.msg_iovlen, &iov, EMSGSIZE); #else error = copyiniov(msg.msg_iov, msg.msg_iovlen, &iov, EMSGSIZE); #endif if (error != 0) return (error); control = NULL; error = kern_getsockname(td, s, &sa, &datalen); if (error != 0) goto bad; sa_family = sa->sa_family; free(sa, M_SONAME); if (flags & LINUX_MSG_OOB) { error = EOPNOTSUPP; if (sa_family == AF_UNIX) goto bad; error = getsock(td, s, &cap_send_rights, &fp); if (error != 0) goto bad; so = fp->f_data; if (so->so_type != SOCK_STREAM) error = EOPNOTSUPP; fdrop(fp, td); if (error != 0) goto bad; } if (linux_msghdr.msg_controllen >= sizeof(struct l_cmsghdr)) { error = ENOBUFS; control = m_get(M_WAITOK, MT_CONTROL); MCLGET(control, M_WAITOK); data = mtod(control, void *); datalen = 0; ptr_cmsg = PTRIN(linux_msghdr.msg_control); clen = linux_msghdr.msg_controllen; do { error = copyin(ptr_cmsg, &linux_cmsg, sizeof(struct l_cmsghdr)); if (error != 0) goto bad; error = EINVAL; if (linux_cmsg.cmsg_len < sizeof(struct l_cmsghdr) || linux_cmsg.cmsg_len > clen) goto bad; if (datalen + CMSG_HDRSZ > MCLBYTES) goto bad; /* * Now we support only SCM_RIGHTS and SCM_CRED, * so return EINVAL in any other cmsg_type */ cmsg = data; cmsg->cmsg_type = linux_to_bsd_cmsg_type(linux_cmsg.cmsg_type); cmsg->cmsg_level = linux_to_bsd_sockopt_level(linux_cmsg.cmsg_level); if (cmsg->cmsg_type == -1 || cmsg->cmsg_level != SOL_SOCKET) { linux_msg(curthread, "unsupported sendmsg cmsg level %d type %d", linux_cmsg.cmsg_level, linux_cmsg.cmsg_type); goto bad; } /* * Some applications (e.g. pulseaudio) attempt to * send ancillary data even if the underlying protocol * doesn't support it which is not allowed in the * FreeBSD system call interface. */ if (sa_family != AF_UNIX) goto next; if (cmsg->cmsg_type == SCM_CREDS) { len = sizeof(struct cmsgcred); if (datalen + CMSG_SPACE(len) > MCLBYTES) goto bad; /* * The lower levels will fill in the structure */ memset(CMSG_DATA(data), 0, len); } else { len = linux_cmsg.cmsg_len - L_CMSG_HDRSZ; if (datalen + CMSG_SPACE(len) < datalen || datalen + CMSG_SPACE(len) > MCLBYTES) goto bad; error = copyin(LINUX_CMSG_DATA(ptr_cmsg), CMSG_DATA(data), len); if (error != 0) goto bad; } cmsg->cmsg_len = CMSG_LEN(len); data = (char *)data + CMSG_SPACE(len); datalen += CMSG_SPACE(len); next: if (clen <= LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len)) break; clen -= LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len); ptr_cmsg = (struct l_cmsghdr *)((char *)ptr_cmsg + LINUX_CMSG_ALIGN(linux_cmsg.cmsg_len)); } while(clen >= sizeof(struct l_cmsghdr)); control->m_len = datalen; if (datalen == 0) { m_freem(control); control = NULL; } } msg.msg_iov = iov; msg.msg_flags = 0; error = linux_sendit(td, s, &msg, flags, control, UIO_USERSPACE); control = NULL; bad: m_freem(control); free(iov, M_IOV); return (error); } int linux_sendmsg(struct thread *td, struct linux_sendmsg_args *args) { return (linux_sendmsg_common(td, args->s, PTRIN(args->msg), args->flags)); } int linux_sendmmsg(struct thread *td, struct linux_sendmmsg_args *args) { struct l_mmsghdr *msg; l_uint retval; int error, datagrams; if (args->vlen > UIO_MAXIOV) args->vlen = UIO_MAXIOV; msg = PTRIN(args->msg); datagrams = 0; while (datagrams < args->vlen) { error = linux_sendmsg_common(td, args->s, &msg->msg_hdr, args->flags); if (error != 0) break; retval = td->td_retval[0]; error = copyout(&retval, &msg->msg_len, sizeof(msg->msg_len)); if (error != 0) break; ++msg; ++datagrams; } if (error == 0) td->td_retval[0] = datagrams; return (error); } static int recvmsg_scm_rights(struct thread *td, l_uint flags, socklen_t *datalen, void **data, void **udata) { int i, fd, fds, *fdp; if (flags & LINUX_MSG_CMSG_CLOEXEC) { fds = *datalen / sizeof(int); fdp = *data; for (i = 0; i < fds; i++) { fd = *fdp++; (void)kern_fcntl(td, fd, F_SETFD, FD_CLOEXEC); } } return (0); } static int recvmsg_scm_creds(socklen_t *datalen, void **data, void **udata) { struct cmsgcred *cmcred; struct l_ucred lu; cmcred = *data; lu.pid = cmcred->cmcred_pid; lu.uid = cmcred->cmcred_uid; lu.gid = cmcred->cmcred_gid; memmove(*data, &lu, sizeof(lu)); *datalen = sizeof(lu); return (0); } _Static_assert(sizeof(struct cmsgcred) >= sizeof(struct l_ucred), "scm_creds sizeof l_ucred"); static int recvmsg_scm_creds2(socklen_t *datalen, void **data, void **udata) { struct sockcred2 *scred; struct l_ucred lu; scred = *data; lu.pid = scred->sc_pid; lu.uid = scred->sc_uid; lu.gid = scred->sc_gid; memmove(*data, &lu, sizeof(lu)); *datalen = sizeof(lu); return (0); } _Static_assert(sizeof(struct sockcred2) >= sizeof(struct l_ucred), "scm_creds2 sizeof l_ucred"); #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) static int recvmsg_scm_timestamp(l_int msg_type, socklen_t *datalen, void **data, void **udata) { l_sock_timeval ltv64; l_timeval ltv; struct timeval *tv; socklen_t len; void *buf; if (*datalen != sizeof(struct timeval)) return (EMSGSIZE); tv = *data; #if defined(COMPAT_LINUX32) if (msg_type == LINUX_SCM_TIMESTAMPO && (tv->tv_sec > INT_MAX || tv->tv_sec < INT_MIN)) return (EOVERFLOW); #endif if (msg_type == LINUX_SCM_TIMESTAMPN) len = sizeof(ltv64); else len = sizeof(ltv); buf = malloc(len, M_LINUX, M_WAITOK); if (msg_type == LINUX_SCM_TIMESTAMPN) { ltv64.tv_sec = tv->tv_sec; ltv64.tv_usec = tv->tv_usec; memmove(buf, <v64, len); } else { ltv.tv_sec = tv->tv_sec; ltv.tv_usec = tv->tv_usec; memmove(buf, <v, len); } *data = *udata = buf; *datalen = len; return (0); } #else _Static_assert(sizeof(struct timeval) == sizeof(l_timeval), "scm_timestamp sizeof l_timeval"); #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) static int recvmsg_scm_timestampns(l_int msg_type, socklen_t *datalen, void **data, void **udata) { struct l_timespec64 ts64; struct l_timespec ts32; struct timespec ts; socklen_t len; void *buf; if (msg_type == LINUX_SCM_TIMESTAMPNSO) len = sizeof(ts32); else len = sizeof(ts64); buf = malloc(len, M_LINUX, M_WAITOK); bintime2timespec(*data, &ts); if (msg_type == LINUX_SCM_TIMESTAMPNSO) { ts32.tv_sec = ts.tv_sec; ts32.tv_nsec = ts.tv_nsec; memmove(buf, &ts32, len); } else { ts64.tv_sec = ts.tv_sec; ts64.tv_nsec = ts.tv_nsec; memmove(buf, &ts64, len); } *data = *udata = buf; *datalen = len; return (0); } #else static int recvmsg_scm_timestampns(l_int msg_type, socklen_t *datalen, void **data, void **udata) { struct timespec ts; bintime2timespec(*data, &ts); memmove(*data, &ts, sizeof(struct timespec)); *datalen = sizeof(struct timespec); return (0); } _Static_assert(sizeof(struct bintime) >= sizeof(struct timespec), "scm_timestampns sizeof timespec"); #endif /* __i386__ || (__amd64__ && COMPAT_LINUX32) */ static int recvmsg_scm_ip_origdstaddr(socklen_t *datalen, void **data, void **udata) { struct l_sockaddr *lsa; int error; error = bsd_to_linux_sockaddr(*data, &lsa, *datalen); if (error == 0) { *data = *udata = lsa; *datalen = sizeof(*lsa); } return (error); } static int linux_recvmsg_common(struct thread *td, l_int s, struct l_msghdr *msghdr, l_uint flags, struct msghdr *msg) { struct proc *p = td->td_proc; struct cmsghdr *cm; struct l_cmsghdr *lcm = NULL; socklen_t datalen, maxlen, outlen; struct l_msghdr l_msghdr; struct iovec *iov, *uiov; struct mbuf *m, *control = NULL; struct mbuf **controlp; struct sockaddr *sa; caddr_t outbuf; void *data, *udata; int error; error = copyin(msghdr, &l_msghdr, sizeof(l_msghdr)); if (error != 0) return (error); /* * Pass user-supplied recvmsg() flags in msg_flags field, * following sys_recvmsg() convention. */ l_msghdr.msg_flags = flags; error = linux_to_bsd_msghdr(msg, &l_msghdr); if (error != 0) return (error); #ifdef COMPAT_LINUX32 error = linux32_copyiniov(PTRIN(msg->msg_iov), msg->msg_iovlen, &iov, EMSGSIZE); #else error = copyiniov(msg->msg_iov, msg->msg_iovlen, &iov, EMSGSIZE); #endif if (error != 0) return (error); if (msg->msg_name != NULL && msg->msg_namelen > 0) { msg->msg_namelen = min(msg->msg_namelen, SOCK_MAXADDRLEN); sa = malloc(msg->msg_namelen, M_SONAME, M_WAITOK); msg->msg_name = sa; } else { sa = NULL; msg->msg_name = NULL; } uiov = msg->msg_iov; msg->msg_iov = iov; controlp = (msg->msg_control != NULL) ? &control : NULL; error = kern_recvit(td, s, msg, UIO_SYSSPACE, controlp); msg->msg_iov = uiov; if (error != 0) goto bad; /* * Note that kern_recvit() updates msg->msg_namelen. */ if (msg->msg_name != NULL && msg->msg_namelen > 0) { msg->msg_name = PTRIN(l_msghdr.msg_name); error = linux_copyout_sockaddr(sa, msg->msg_name, msg->msg_namelen); if (error != 0) goto bad; } error = bsd_to_linux_msghdr(msg, &l_msghdr); if (error != 0) goto bad; maxlen = l_msghdr.msg_controllen; l_msghdr.msg_controllen = 0; if (control == NULL) goto out; lcm = malloc(L_CMSG_HDRSZ, M_LINUX, M_WAITOK | M_ZERO); msg->msg_control = mtod(control, struct cmsghdr *); msg->msg_controllen = control->m_len; outbuf = PTRIN(l_msghdr.msg_control); outlen = 0; for (m = control; m != NULL; m = m->m_next) { cm = mtod(m, struct cmsghdr *); lcm->cmsg_type = bsd_to_linux_cmsg_type(p, cm->cmsg_type, cm->cmsg_level); lcm->cmsg_level = bsd_to_linux_sockopt_level(cm->cmsg_level); data = CMSG_DATA(cm); datalen = (caddr_t)cm + cm->cmsg_len - (caddr_t)data; udata = NULL; error = 0; /* Process non SOL_SOCKET types. */ if (cm->cmsg_level == IPPROTO_IP && lcm->cmsg_type == LINUX_IP_ORIGDSTADDR) { error = recvmsg_scm_ip_origdstaddr(&datalen, &data, &udata); goto cont; } if (lcm->cmsg_type == -1 || cm->cmsg_level != SOL_SOCKET) { LINUX_RATELIMIT_MSG_OPT2( "unsupported recvmsg cmsg level %d type %d", cm->cmsg_level, cm->cmsg_type); error = EINVAL; goto bad; } switch (cm->cmsg_type) { case SCM_RIGHTS: error = recvmsg_scm_rights(td, flags, &datalen, &data, &udata); break; case SCM_CREDS: error = recvmsg_scm_creds(&datalen, &data, &udata); break; case SCM_CREDS2: error = recvmsg_scm_creds2(&datalen, &data, &udata); break; case SCM_TIMESTAMP: #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) error = recvmsg_scm_timestamp(lcm->cmsg_type, &datalen, &data, &udata); #endif break; case SCM_BINTIME: error = recvmsg_scm_timestampns(lcm->cmsg_type, &datalen, &data, &udata); break; } cont: if (error != 0) goto bad; if (outlen + LINUX_CMSG_LEN(datalen) > maxlen) { if (outlen == 0) { error = EMSGSIZE; goto err; } else { l_msghdr.msg_flags |= LINUX_MSG_CTRUNC; m_dispose_extcontrolm(control); free(udata, M_LINUX); goto out; } } lcm->cmsg_len = LINUX_CMSG_LEN(datalen); error = copyout(lcm, outbuf, L_CMSG_HDRSZ); if (error == 0) { outbuf += L_CMSG_HDRSZ; error = copyout(data, outbuf, datalen); if (error == 0) { outbuf += LINUX_CMSG_ALIGN(datalen); outlen += LINUX_CMSG_LEN(datalen); } } err: free(udata, M_LINUX); if (error != 0) goto bad; } l_msghdr.msg_controllen = outlen; out: error = copyout(&l_msghdr, msghdr, sizeof(l_msghdr)); bad: if (control != NULL) { if (error != 0) m_dispose_extcontrolm(control); m_freem(control); } free(iov, M_IOV); free(lcm, M_LINUX); free(sa, M_SONAME); return (error); } int linux_recvmsg(struct thread *td, struct linux_recvmsg_args *args) { struct msghdr bsd_msg; struct file *fp; int error; error = getsock(td, args->s, &cap_recv_rights, &fp); if (error != 0) return (error); fdrop(fp, td); return (linux_recvmsg_common(td, args->s, PTRIN(args->msg), args->flags, &bsd_msg)); } static int linux_recvmmsg_common(struct thread *td, l_int s, struct l_mmsghdr *msg, l_uint vlen, l_uint flags, struct timespec *tts) { struct msghdr bsd_msg; struct timespec ts; struct file *fp; l_uint retval; int error, datagrams; error = getsock(td, s, &cap_recv_rights, &fp); if (error != 0) return (error); datagrams = 0; while (datagrams < vlen) { error = linux_recvmsg_common(td, s, &msg->msg_hdr, flags & ~LINUX_MSG_WAITFORONE, &bsd_msg); if (error != 0) break; retval = td->td_retval[0]; error = copyout(&retval, &msg->msg_len, sizeof(msg->msg_len)); if (error != 0) break; ++msg; ++datagrams; /* * MSG_WAITFORONE turns on MSG_DONTWAIT after one packet. */ if (flags & LINUX_MSG_WAITFORONE) flags |= LINUX_MSG_DONTWAIT; /* * See BUGS section of recvmmsg(2). */ if (tts) { getnanotime(&ts); timespecsub(&ts, tts, &ts); if (!timespecisset(&ts) || ts.tv_sec > 0) break; } /* Out of band data, return right away. */ if (bsd_msg.msg_flags & MSG_OOB) break; } if (error == 0) td->td_retval[0] = datagrams; fdrop(fp, td); return (error); } int linux_recvmmsg(struct thread *td, struct linux_recvmmsg_args *args) { struct timespec ts, tts, *ptts; int error; if (args->timeout) { error = linux_get_timespec(&ts, args->timeout); if (error != 0) return (error); getnanotime(&tts); timespecadd(&tts, &ts, &tts); ptts = &tts; } else ptts = NULL; return (linux_recvmmsg_common(td, args->s, PTRIN(args->msg), args->vlen, args->flags, ptts)); } #if defined(__i386__) || (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_recvmmsg_time64(struct thread *td, struct linux_recvmmsg_time64_args *args) { struct timespec ts, tts, *ptts; int error; if (args->timeout) { error = linux_get_timespec64(&ts, args->timeout); if (error != 0) return (error); getnanotime(&tts); timespecadd(&tts, &ts, &tts); ptts = &tts; } else ptts = NULL; return (linux_recvmmsg_common(td, args->s, PTRIN(args->msg), args->vlen, args->flags, ptts)); } #endif int linux_shutdown(struct thread *td, struct linux_shutdown_args *args) { return (kern_shutdown(td, args->s, args->how)); } int linux_setsockopt(struct thread *td, struct linux_setsockopt_args *args) { struct proc *p = td->td_proc; struct linux_pemuldata *pem; l_timeval linux_tv; struct sockaddr *sa; struct timeval tv; socklen_t len; int error, level, name, val; level = linux_to_bsd_sockopt_level(args->level); switch (level) { case SOL_SOCKET: name = linux_to_bsd_so_sockopt(args->optname); switch (name) { case LOCAL_CREDS_PERSISTENT: level = SOL_LOCAL; break; case SO_RCVTIMEO: /* FALLTHROUGH */ case SO_SNDTIMEO: error = copyin(PTRIN(args->optval), &linux_tv, sizeof(linux_tv)); if (error != 0) return (error); tv.tv_sec = linux_tv.tv_sec; tv.tv_usec = linux_tv.tv_usec; return (kern_setsockopt(td, args->s, level, name, &tv, UIO_SYSSPACE, sizeof(tv))); /* NOTREACHED */ case SO_TIMESTAMP: /* overwrite SO_BINTIME */ val = 0; error = kern_setsockopt(td, args->s, level, SO_BINTIME, &val, UIO_SYSSPACE, sizeof(val)); if (error != 0) return (error); pem = pem_find(p); pem->so_timestamp = args->optname; break; case SO_BINTIME: /* overwrite SO_TIMESTAMP */ val = 0; error = kern_setsockopt(td, args->s, level, SO_TIMESTAMP, &val, UIO_SYSSPACE, sizeof(val)); if (error != 0) return (error); pem = pem_find(p); pem->so_timestampns = args->optname; break; default: break; } break; case IPPROTO_IP: if (args->optname == LINUX_IP_RECVERR && linux_ignore_ip_recverr) { /* * XXX: This is a hack to unbreak DNS resolution * with glibc 2.30 and above. */ return (0); } name = linux_to_bsd_ip_sockopt(args->optname); break; case IPPROTO_IPV6: name = linux_to_bsd_ip6_sockopt(args->optname); break; case IPPROTO_TCP: name = linux_to_bsd_tcp_sockopt(args->optname); break; case SOL_NETLINK: level = SOL_SOCKET; name = args->optname; break; default: name = -1; break; } if (name < 0) { if (name == -1) linux_msg(curthread, "unsupported setsockopt level %d optname %d", args->level, args->optname); return (ENOPROTOOPT); } if (name == IPV6_NEXTHOP) { len = args->optlen; error = linux_to_bsd_sockaddr(PTRIN(args->optval), &sa, &len); if (error != 0) return (error); error = kern_setsockopt(td, args->s, level, name, sa, UIO_SYSSPACE, len); free(sa, M_SONAME); } else { error = kern_setsockopt(td, args->s, level, name, PTRIN(args->optval), UIO_USERSPACE, args->optlen); } return (error); } static int linux_sockopt_copyout(struct thread *td, void *val, socklen_t len, struct linux_getsockopt_args *args) { int error; error = copyout(val, PTRIN(args->optval), len); if (error == 0) error = copyout(&len, PTRIN(args->optlen), sizeof(len)); return (error); } static int linux_getsockopt_so_peergroups(struct thread *td, struct linux_getsockopt_args *args) { struct xucred xu; socklen_t xulen, len; int error, i; xulen = sizeof(xu); error = kern_getsockopt(td, args->s, 0, LOCAL_PEERCRED, &xu, UIO_SYSSPACE, &xulen); if (error != 0) return (error); len = xu.cr_ngroups * sizeof(l_gid_t); if (args->optlen < len) { error = copyout(&len, PTRIN(args->optlen), sizeof(len)); if (error == 0) error = ERANGE; return (error); } /* * "- 1" to skip the primary group. */ for (i = 0; i < xu.cr_ngroups - 1; i++) { error = copyout(xu.cr_groups + i + 1, (void *)(args->optval + i * sizeof(l_gid_t)), sizeof(l_gid_t)); if (error != 0) return (error); } error = copyout(&len, PTRIN(args->optlen), sizeof(len)); return (error); } static int linux_getsockopt_so_peersec(struct thread *td, struct linux_getsockopt_args *args) { socklen_t len; int error; len = sizeof(SECURITY_CONTEXT_STRING); if (args->optlen < len) { error = copyout(&len, PTRIN(args->optlen), sizeof(len)); if (error == 0) error = ERANGE; return (error); } return (linux_sockopt_copyout(td, SECURITY_CONTEXT_STRING, len, args)); } static int linux_getsockopt_so_linger(struct thread *td, struct linux_getsockopt_args *args) { struct linger ling; socklen_t len; int error; len = sizeof(ling); error = kern_getsockopt(td, args->s, SOL_SOCKET, SO_LINGER, &ling, UIO_SYSSPACE, &len); if (error != 0) return (error); ling.l_onoff = ((ling.l_onoff & SO_LINGER) != 0); return (linux_sockopt_copyout(td, &ling, len, args)); } int linux_getsockopt(struct thread *td, struct linux_getsockopt_args *args) { l_timeval linux_tv; struct timeval tv; socklen_t tv_len, xulen, len; struct sockaddr *sa; struct xucred xu; struct l_ucred lxu; int error, level, name, newval; level = linux_to_bsd_sockopt_level(args->level); switch (level) { case SOL_SOCKET: switch (args->optname) { case LINUX_SO_PEERGROUPS: return (linux_getsockopt_so_peergroups(td, args)); case LINUX_SO_PEERSEC: return (linux_getsockopt_so_peersec(td, args)); default: break; } name = linux_to_bsd_so_sockopt(args->optname); switch (name) { case LOCAL_CREDS_PERSISTENT: level = SOL_LOCAL; break; case SO_RCVTIMEO: /* FALLTHROUGH */ case SO_SNDTIMEO: tv_len = sizeof(tv); error = kern_getsockopt(td, args->s, level, name, &tv, UIO_SYSSPACE, &tv_len); if (error != 0) return (error); linux_tv.tv_sec = tv.tv_sec; linux_tv.tv_usec = tv.tv_usec; return (linux_sockopt_copyout(td, &linux_tv, sizeof(linux_tv), args)); /* NOTREACHED */ case LOCAL_PEERCRED: if (args->optlen < sizeof(lxu)) return (EINVAL); /* * LOCAL_PEERCRED is not served at the SOL_SOCKET level, * but by the Unix socket's level 0. */ level = 0; xulen = sizeof(xu); error = kern_getsockopt(td, args->s, level, name, &xu, UIO_SYSSPACE, &xulen); if (error != 0) return (error); lxu.pid = xu.cr_pid; lxu.uid = xu.cr_uid; lxu.gid = xu.cr_gid; return (linux_sockopt_copyout(td, &lxu, sizeof(lxu), args)); /* NOTREACHED */ case SO_ERROR: len = sizeof(newval); error = kern_getsockopt(td, args->s, level, name, &newval, UIO_SYSSPACE, &len); if (error != 0) return (error); newval = -bsd_to_linux_errno(newval); return (linux_sockopt_copyout(td, &newval, len, args)); /* NOTREACHED */ case SO_DOMAIN: len = sizeof(newval); error = kern_getsockopt(td, args->s, level, name, &newval, UIO_SYSSPACE, &len); if (error != 0) return (error); newval = bsd_to_linux_domain(newval); if (newval == -1) return (ENOPROTOOPT); return (linux_sockopt_copyout(td, &newval, len, args)); /* NOTREACHED */ case SO_LINGER: return (linux_getsockopt_so_linger(td, args)); /* NOTREACHED */ default: break; } break; case IPPROTO_IP: name = linux_to_bsd_ip_sockopt(args->optname); break; case IPPROTO_IPV6: name = linux_to_bsd_ip6_sockopt(args->optname); break; case IPPROTO_TCP: name = linux_to_bsd_tcp_sockopt(args->optname); break; default: name = -1; break; } if (name < 0) { if (name == -1) linux_msg(curthread, "unsupported getsockopt level %d optname %d", args->level, args->optname); return (EINVAL); } if (name == IPV6_NEXTHOP) { error = copyin(PTRIN(args->optlen), &len, sizeof(len)); if (error != 0) return (error); sa = malloc(len, M_SONAME, M_WAITOK); error = kern_getsockopt(td, args->s, level, name, sa, UIO_SYSSPACE, &len); if (error != 0) goto out; error = linux_copyout_sockaddr(sa, PTRIN(args->optval), len); if (error == 0) error = copyout(&len, PTRIN(args->optlen), sizeof(len)); out: free(sa, M_SONAME); } else { if (args->optval) { error = copyin(PTRIN(args->optlen), &len, sizeof(len)); if (error != 0) return (error); } error = kern_getsockopt(td, args->s, level, name, PTRIN(args->optval), UIO_USERSPACE, &len); if (error == 0) error = copyout(&len, PTRIN(args->optlen), sizeof(len)); } return (error); } static int linux_sendfile_common(struct thread *td, l_int out, l_int in, l_loff_t *offset, l_size_t count) { off_t bytes_read; int error; l_loff_t current_offset; struct file *fp; AUDIT_ARG_FD(in); error = fget_read(td, in, &cap_pread_rights, &fp); if (error != 0) return (error); if (offset != NULL) { current_offset = *offset; } else { error = (fp->f_ops->fo_flags & DFLAG_SEEKABLE) != 0 ? fo_seek(fp, 0, SEEK_CUR, td) : ESPIPE; if (error != 0) goto drop; current_offset = td->td_uretoff.tdu_off; } bytes_read = 0; /* Linux cannot have 0 count. */ if (count <= 0 || current_offset < 0) { error = EINVAL; goto drop; } error = fo_sendfile(fp, out, NULL, NULL, current_offset, count, &bytes_read, 0, td); if (error != 0) goto drop; current_offset += bytes_read; if (offset != NULL) { *offset = current_offset; } else { error = fo_seek(fp, current_offset, SEEK_SET, td); if (error != 0) goto drop; } td->td_retval[0] = (ssize_t)bytes_read; drop: fdrop(fp, td); if (error == ENOTSOCK) error = EINVAL; return (error); } int linux_sendfile(struct thread *td, struct linux_sendfile_args *arg) { /* * Differences between FreeBSD and Linux sendfile: * - Linux doesn't send anything when count is 0 (FreeBSD uses 0 to * mean send the whole file.) In linux_sendfile given fds are still * checked for validity when the count is 0. * - Linux can send to any fd whereas FreeBSD only supports sockets. * The same restriction follows for linux_sendfile. * - Linux doesn't have an equivalent for FreeBSD's flags and sf_hdtr. * - Linux takes an offset pointer and updates it to the read location. * FreeBSD takes in an offset and a 'bytes read' parameter which is * only filled if it isn't NULL. We use this parameter to update the * offset pointer if it exists. * - Linux sendfile returns bytes read on success while FreeBSD * returns 0. We use the 'bytes read' parameter to get this value. */ l_loff_t offset64; l_long offset; int ret; int error; if (arg->offset != NULL) { error = copyin(arg->offset, &offset, sizeof(offset)); if (error != 0) return (error); offset64 = (l_loff_t)offset; } ret = linux_sendfile_common(td, arg->out, arg->in, arg->offset != NULL ? &offset64 : NULL, arg->count); if (arg->offset != NULL) { #if defined(__i386__) || defined(__arm__) || \ (defined(__amd64__) && defined(COMPAT_LINUX32)) if (offset64 > INT32_MAX) return (EOVERFLOW); #endif offset = (l_long)offset64; error = copyout(&offset, arg->offset, sizeof(offset)); if (error != 0) return (error); } return (ret); } #if defined(__i386__) || defined(__arm__) || \ (defined(__amd64__) && defined(COMPAT_LINUX32)) int linux_sendfile64(struct thread *td, struct linux_sendfile64_args *arg) { l_loff_t offset; int ret; int error; if (arg->offset != NULL) { error = copyin(arg->offset, &offset, sizeof(offset)); if (error != 0) return (error); } ret = linux_sendfile_common(td, arg->out, arg->in, arg->offset != NULL ? &offset : NULL, arg->count); if (arg->offset != NULL) { error = copyout(&offset, arg->offset, sizeof(offset)); if (error != 0) return (error); } return (ret); } /* Argument list sizes for linux_socketcall */ static const unsigned char lxs_args_cnt[] = { 0 /* unused*/, 3 /* socket */, 3 /* bind */, 3 /* connect */, 2 /* listen */, 3 /* accept */, 3 /* getsockname */, 3 /* getpeername */, 4 /* socketpair */, 4 /* send */, 4 /* recv */, 6 /* sendto */, 6 /* recvfrom */, 2 /* shutdown */, 5 /* setsockopt */, 5 /* getsockopt */, 3 /* sendmsg */, 3 /* recvmsg */, 4 /* accept4 */, 5 /* recvmmsg */, 4 /* sendmmsg */, 4 /* sendfile */ }; #define LINUX_ARGS_CNT (nitems(lxs_args_cnt) - 1) #define LINUX_ARG_SIZE(x) (lxs_args_cnt[x] * sizeof(l_ulong)) int linux_socketcall(struct thread *td, struct linux_socketcall_args *args) { l_ulong a[6]; #if defined(__amd64__) && defined(COMPAT_LINUX32) register_t l_args[6]; #endif void *arg; int error; if (args->what < LINUX_SOCKET || args->what > LINUX_ARGS_CNT) return (EINVAL); error = copyin(PTRIN(args->args), a, LINUX_ARG_SIZE(args->what)); if (error != 0) return (error); #if defined(__amd64__) && defined(COMPAT_LINUX32) for (int i = 0; i < lxs_args_cnt[args->what]; ++i) l_args[i] = a[i]; arg = l_args; #else arg = a; #endif switch (args->what) { case LINUX_SOCKET: return (linux_socket(td, arg)); case LINUX_BIND: return (linux_bind(td, arg)); case LINUX_CONNECT: return (linux_connect(td, arg)); case LINUX_LISTEN: return (linux_listen(td, arg)); case LINUX_ACCEPT: return (linux_accept(td, arg)); case LINUX_GETSOCKNAME: return (linux_getsockname(td, arg)); case LINUX_GETPEERNAME: return (linux_getpeername(td, arg)); case LINUX_SOCKETPAIR: return (linux_socketpair(td, arg)); case LINUX_SEND: return (linux_send(td, arg)); case LINUX_RECV: return (linux_recv(td, arg)); case LINUX_SENDTO: return (linux_sendto(td, arg)); case LINUX_RECVFROM: return (linux_recvfrom(td, arg)); case LINUX_SHUTDOWN: return (linux_shutdown(td, arg)); case LINUX_SETSOCKOPT: return (linux_setsockopt(td, arg)); case LINUX_GETSOCKOPT: return (linux_getsockopt(td, arg)); case LINUX_SENDMSG: return (linux_sendmsg(td, arg)); case LINUX_RECVMSG: return (linux_recvmsg(td, arg)); case LINUX_ACCEPT4: return (linux_accept4(td, arg)); case LINUX_RECVMMSG: return (linux_recvmmsg(td, arg)); case LINUX_SENDMMSG: return (linux_sendmmsg(td, arg)); case LINUX_SENDFILE: return (linux_sendfile(td, arg)); } linux_msg(td, "socket type %d not implemented", args->what); return (ENOSYS); } #endif /* __i386__ || __arm__ || (__amd64__ && COMPAT_LINUX32) */