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/*
 * Copyright (C) 2004 Jeff Dike (jdike@addtoit.com)
 * Licensed under the GPL
 */

#include <stdlib.h>
#include <unistd.h>
#include <signal.h>
#include <string.h>
#include <errno.h>
#include <sched.h>
#include <sys/syscall.h>
#include "os.h"
#include "helper.h"
#include "aio.h"
#include "init.h"
#include "user.h"
#include "mode.h"

static int aio_req_fd_r = -1;
static int aio_req_fd_w = -1;

static int update_aio(struct aio_context *aio, int res)
{
        if(res < 0)
                aio->len = res;
        else if((res == 0) && (aio->type == AIO_READ)){
                /* This is the EOF case - we have hit the end of the file
                 * and it ends in a partial block, so we fill the end of
                 * the block with zeros and claim success.
                 */
                memset(aio->data, 0, aio->len);
                aio->len = 0;
        }
        else if(res > 0){
                aio->len -= res;
                aio->data += res;
                aio->offset += res;
                return aio->len;
        }

        return 0;
}

#if defined(HAVE_AIO_ABI)
#include <linux/aio_abi.h>

/* If we have the headers, we are going to build with AIO enabled.
 * If we don't have aio in libc, we define the necessary stubs here.
 */

#if !defined(HAVE_AIO_LIBC)

static long io_setup(int n, aio_context_t *ctxp)
{
        return syscall(__NR_io_setup, n, ctxp);
}

static long io_submit(aio_context_t ctx, long nr, struct iocb **iocbpp)
{
        return syscall(__NR_io_submit, ctx, nr, iocbpp);
}

static long io_getevents(aio_context_t ctx_id, long min_nr, long nr,
                         struct io_event *events, struct timespec *timeout)
{
        return syscall(__NR_io_getevents, ctx_id, min_nr, nr, events, timeout);
}

#endif

/* The AIO_MMAP cases force the mmapped page into memory here
 * rather than in whatever place first touches the data.  I used
 * to do this by touching the page, but that's delicate because
 * gcc is prone to optimizing that away.  So, what's done here
 * is we read from the descriptor from which the page was
 * mapped.  The caller is required to pass an offset which is
 * inside the page that was mapped.  Thus, when the read
 * returns, we know that the page is in the page cache, and
 * that it now backs the mmapped area.
 */

static int do_aio(aio_context_t ctx, struct aio_context *aio)
{
        struct iocb iocb, *iocbp = &iocb;
        char c;
        int err;

        iocb = ((struct iocb) { .aio_data 	= (unsigned long) aio,
                                .aio_reqprio	= 0,
                                .aio_fildes	= aio->fd,
                                .aio_buf	= (unsigned long) aio->data,
                                .aio_nbytes	= aio->len,
                                .aio_offset	= aio->offset,
                                .aio_reserved1	= 0,
                                .aio_reserved2	= 0,
                                .aio_reserved3	= 0 });

        switch(aio->type){
        case AIO_READ:
                iocb.aio_lio_opcode = IOCB_CMD_PREAD;
                break;
        case AIO_WRITE:
                iocb.aio_lio_opcode = IOCB_CMD_PWRITE;
                break;
        case AIO_MMAP:
                iocb.aio_lio_opcode = IOCB_CMD_PREAD;
                iocb.aio_buf = (unsigned long) &c;
                iocb.aio_nbytes = sizeof(c);
                break;
        default:
                printk("Bogus op in do_aio - %d\n", aio->type);
                err = -EINVAL;
                goto out;
        }

        err = io_submit(ctx, 1, &iocbp);
        if(err > 0)
                err = 0;
	else
		err = -errno;

 out:
        return err;
}

static aio_context_t ctx = 0;

static int aio_thread(void *arg)
{
        struct aio_thread_reply reply;
        struct aio_context *aio;
        struct io_event event;
        int err, n;

        signal(SIGWINCH, SIG_IGN);

        while(1){
                n = io_getevents(ctx, 1, 1, &event, NULL);
                if(n < 0){
                        if(errno == EINTR)
                                continue;
                        printk("aio_thread - io_getevents failed, "
                               "errno = %d\n", errno);
                }
                else {
			/* This is safe as we've just a pointer here. */
			aio = (struct aio_context *) (long) event.data;
			if(update_aio(aio, event.res)){
				do_aio(ctx, aio);
				continue;
			}

                        reply = ((struct aio_thread_reply)
				{ .data = aio,
				  .err	= aio->len });
			err = os_write_file(aio->reply_fd, &reply,
					    sizeof(reply));
                        if(err != sizeof(reply))
				printk("aio_thread - write failed, "
				       "fd = %d, err = %d\n", aio->reply_fd,
				       -err);
                }
        }
        return 0;
}

#endif

static int do_not_aio(struct aio_context *aio)
{
        char c;
        int err;

        switch(aio->type){
        case AIO_READ:
                err = os_seek_file(aio->fd, aio->offset);
                if(err)
                        goto out;

                err = os_read_file(aio->fd, aio->data, aio->len);
                break;
        case AIO_WRITE:
                err = os_seek_file(aio->fd, aio->offset);
                if(err)
                        goto out;

                err = os_write_file(aio->fd, aio->data, aio->len);
                break;
        case AIO_MMAP:
                err = os_seek_file(aio->fd, aio->offset);
                if(err)
                        goto out;

                err = os_read_file(aio->fd, &c, sizeof(c));
                break;
        default:
                printk("do_not_aio - bad request type : %d\n", aio->type);
                err = -EINVAL;
                break;
        }

 out:
        return err;
}

static int not_aio_thread(void *arg)
{
        struct aio_context *aio;
        struct aio_thread_reply reply;
        int err;

        signal(SIGWINCH, SIG_IGN);
        while(1){
                err = os_read_file(aio_req_fd_r, &aio, sizeof(aio));
                if(err != sizeof(aio)){
                        if(err < 0)
                                printk("not_aio_thread - read failed, "
                                       "fd = %d, err = %d\n", aio_req_fd_r,
                                       -err);
                        else {
                                printk("not_aio_thread - short read, fd = %d, "
                                       "length = %d\n", aio_req_fd_r, err);
                        }
                        continue;
                }
 again:
                err = do_not_aio(aio);

                if(update_aio(aio, err))
                        goto again;

                reply = ((struct aio_thread_reply) { .data 	= aio,
                                                     .err	= aio->len });
                err = os_write_file(aio->reply_fd, &reply, sizeof(reply));
                if(err != sizeof(reply))
                        printk("not_aio_thread - write failed, fd = %d, "
                               "err = %d\n", aio_req_fd_r, -err);
        }
}

static int submit_aio_24(struct aio_context *aio)
{
        int err;

        err = os_write_file(aio_req_fd_w, &aio, sizeof(aio));
        if(err == sizeof(aio))
                err = 0;

        return err;
}

static int aio_pid = -1;
static int (*submit_proc)(struct aio_context *aio);

static int init_aio_24(void)
{
        unsigned long stack;
        int fds[2], err;

        err = os_pipe(fds, 1, 1);
        if(err)
                goto out;

        aio_req_fd_w = fds[0];
        aio_req_fd_r = fds[1];
        err = run_helper_thread(not_aio_thread, NULL,
                                CLONE_FILES | CLONE_VM | SIGCHLD, &stack, 0);
        if(err < 0)
                goto out_close_pipe;

        aio_pid = err;
        goto out;

 out_close_pipe:
        os_close_file(fds[0]);
        os_close_file(fds[1]);
        aio_req_fd_w = -1;
        aio_req_fd_r = -1;
 out:
#ifndef HAVE_AIO_ABI
	printk("/usr/include/linux/aio_abi.h not present during build\n");
#endif
	printk("2.6 host AIO support not used - falling back to I/O "
	       "thread\n");

	submit_proc = submit_aio_24;

        return 0;
}

#ifdef HAVE_AIO_ABI
#define DEFAULT_24_AIO 0
static int submit_aio_26(struct aio_context *aio)
{
	struct aio_thread_reply reply;
	int err;

	err = do_aio(ctx, aio);
	if(err){
		reply = ((struct aio_thread_reply) { .data = aio,
					             .err  = err });
		err = os_write_file(aio->reply_fd, &reply, sizeof(reply));
		if(err != sizeof(reply))
			printk("submit_aio_26 - write failed, "
			       "fd = %d, err = %d\n", aio->reply_fd, -err);
		else err = 0;
	}

	return err;
}

static int init_aio_26(void)
{
        unsigned long stack;
        int err;

        if(io_setup(256, &ctx)){
		err = -errno;
                printk("aio_thread failed to initialize context, err = %d\n",
                       errno);
                return err;
        }

        err = run_helper_thread(aio_thread, NULL,
                                CLONE_FILES | CLONE_VM | SIGCHLD, &stack, 0);
        if(err < 0)
                return err;

        aio_pid = err;

	printk("Using 2.6 host AIO\n");

	submit_proc = submit_aio_26;

        return 0;
}

#else
#define DEFAULT_24_AIO 1
static int submit_aio_26(struct aio_context *aio)
{
        return -ENOSYS;
}

static int init_aio_26(void)
{
	submit_proc = submit_aio_26;
        return -ENOSYS;
}
#endif

static int aio_24 = DEFAULT_24_AIO;

static int __init set_aio_24(char *name, int *add)
{
        aio_24 = 1;
        return 0;
}

__uml_setup("aio=2.4", set_aio_24,
"aio=2.4\n"
"    This is used to force UML to use 2.4-style AIO even when 2.6 AIO is\n"
"    available.  2.4 AIO is a single thread that handles one request at a\n"
"    time, synchronously.  2.6 AIO is a thread which uses the 2.6 AIO \n"
"    interface to handle an arbitrary number of pending requests.  2.6 AIO \n"
"    is not available in tt mode, on 2.4 hosts, or when UML is built with\n"
"    /usr/include/linux/aio_abi.h not available.  Many distributions don't\n"
"    include aio_abi.h, so you will need to copy it from a kernel tree to\n"
"    your /usr/include/linux in order to build an AIO-capable UML\n\n"
);

static int init_aio(void)
{
        int err;

        CHOOSE_MODE(({
                if(!aio_24){
                        printk("Disabling 2.6 AIO in tt mode\n");
                        aio_24 = 1;
                } }), (void) 0);

        if(!aio_24){
                err = init_aio_26();
                if(err && (errno == ENOSYS)){
                        printk("2.6 AIO not supported on the host - "
                               "reverting to 2.4 AIO\n");
                        aio_24 = 1;
                }
                else return err;
        }

        if(aio_24)
                return init_aio_24();

        return 0;
}

/* The reason for the __initcall/__uml_exitcall asymmetry is that init_aio
 * needs to be called when the kernel is running because it calls run_helper,
 * which needs get_free_page.  exit_aio is a __uml_exitcall because the generic
 * kernel does not run __exitcalls on shutdown, and can't because many of them
 * break when called outside of module unloading.
 */
__initcall(init_aio);

static void exit_aio(void)
{
        if(aio_pid != -1)
                os_kill_process(aio_pid, 1);
}

__uml_exitcall(exit_aio);

int submit_aio(struct aio_context *aio)
{
	return (*submit_proc)(aio);
}
loslav Trmac <mitr@redhat.com> 2007-07-16 02:40:56 -0400 committer Linus Torvalds <torvalds@woody.linux-foundation.org> 2007-07-16 12:05:47 -0400 Audit: add TTY input auditing' href='/cgit/cgit.cgi/litmus-rt-pandaboard.git/commit/kernel/audit.c?id=522ed7767e800cff6c650ec64b0ee0677303119c'>522ed7767e8
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/* audit.c -- Auditing support
 * Gateway between the kernel (e.g., selinux) and the user-space audit daemon.
 * System-call specific features have moved to auditsc.c
 *
 * Copyright 2003-2007 Red Hat Inc., Durham, North Carolina.
 * All Rights Reserved.
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
 *
 * Written by Rickard E. (Rik) Faith <faith@redhat.com>
 *
 * Goals: 1) Integrate fully with Security Modules.
 *	  2) Minimal run-time overhead:
 *	     a) Minimal when syscall auditing is disabled (audit_enable=0).
 *	     b) Small when syscall auditing is enabled and no audit record
 *		is generated (defer as much work as possible to record
 *		generation time):
 *		i) context is allocated,
 *		ii) names from getname are stored without a copy, and
 *		iii) inode information stored from path_lookup.
 *	  3) Ability to disable syscall auditing at boot time (audit=0).
 *	  4) Usable by other parts of the kernel (if audit_log* is called,
 *	     then a syscall record will be generated automatically for the
 *	     current syscall).
 *	  5) Netlink interface to user-space.
 *	  6) Support low-overhead kernel-based filtering to minimize the
 *	     information that must be passed to user-space.
 *
 * Example user-space utilities: http://people.redhat.com/sgrubb/audit/
 */

#include <linux/init.h>
#include <asm/types.h>
#include <asm/atomic.h>
#include <linux/mm.h>
#include <linux/module.h>
#include <linux/err.h>
#include <linux/kthread.h>

#include <linux/audit.h>

#include <net/sock.h>
#include <net/netlink.h>
#include <linux/skbuff.h>
#include <linux/netlink.h>
#include <linux/inotify.h>
#include <linux/freezer.h>
#include <linux/tty.h>

#include "audit.h"

/* No auditing will take place until audit_initialized == AUDIT_INITIALIZED.
 * (Initialization happens after skb_init is called.) */
#define AUDIT_DISABLED		-1
#define AUDIT_UNINITIALIZED	0
#define AUDIT_INITIALIZED	1
static int	audit_initialized;

#define AUDIT_OFF	0
#define AUDIT_ON	1
#define AUDIT_LOCKED	2
int		audit_enabled;
int		audit_ever_enabled;

/* Default state when kernel boots without any parameters. */
static int	audit_default;

/* If auditing cannot proceed, audit_failure selects what happens. */
static int	audit_failure = AUDIT_FAIL_PRINTK;

/*
 * If audit records are to be written to the netlink socket, audit_pid
 * contains the pid of the auditd process and audit_nlk_pid contains
 * the pid to use to send netlink messages to that process.
 */
int		audit_pid;
static int	audit_nlk_pid;

/* If audit_rate_limit is non-zero, limit the rate of sending audit records
 * to that number per second.  This prevents DoS attacks, but results in
 * audit records being dropped. */
static int	audit_rate_limit;

/* Number of outstanding audit_buffers allowed. */
static int	audit_backlog_limit = 64;
static int	audit_backlog_wait_time = 60 * HZ;
static int	audit_backlog_wait_overflow = 0;

/* The identity of the user shutting down the audit system. */
uid_t		audit_sig_uid = -1;
pid_t		audit_sig_pid = -1;
u32		audit_sig_sid = 0;

/* Records can be lost in several ways:
   0) [suppressed in audit_alloc]
   1) out of memory in audit_log_start [kmalloc of struct audit_buffer]
   2) out of memory in audit_log_move [alloc_skb]
   3) suppressed due to audit_rate_limit
   4) suppressed due to audit_backlog_limit
*/
static atomic_t    audit_lost = ATOMIC_INIT(0);

/* The netlink socket. */
static struct sock *audit_sock;

/* Inotify handle. */
struct inotify_handle *audit_ih;

/* Hash for inode-based rules */
struct list_head audit_inode_hash[AUDIT_INODE_BUCKETS];

/* The audit_freelist is a list of pre-allocated audit buffers (if more
 * than AUDIT_MAXFREE are in use, the audit buffer is freed instead of
 * being placed on the freelist). */
static DEFINE_SPINLOCK(audit_freelist_lock);
static int	   audit_freelist_count;
static LIST_HEAD(audit_freelist);

static struct sk_buff_head audit_skb_queue;
/* queue of skbs to send to auditd when/if it comes back */
static struct sk_buff_head audit_skb_hold_queue;
static struct task_struct *kauditd_task;
static DECLARE_WAIT_QUEUE_HEAD(kauditd_wait);
static DECLARE_WAIT_QUEUE_HEAD(audit_backlog_wait);

/* Serialize requests from userspace. */
static DEFINE_MUTEX(audit_cmd_mutex);

/* AUDIT_BUFSIZ is the size of the temporary buffer used for formatting
 * audit records.  Since printk uses a 1024 byte buffer, this buffer
 * should be at least that large. */
#define AUDIT_BUFSIZ 1024

/* AUDIT_MAXFREE is the number of empty audit_buffers we keep on the
 * audit_freelist.  Doing so eliminates many kmalloc/kfree calls. */
#define AUDIT_MAXFREE  (2*NR_CPUS)

/* The audit_buffer is used when formatting an audit record.  The caller
 * locks briefly to get the record off the freelist or to allocate the
 * buffer, and locks briefly to send the buffer to the netlink layer or
 * to place it on a transmit queue.  Multiple audit_buffers can be in
 * use simultaneously. */
struct audit_buffer {
	struct list_head     list;
	struct sk_buff       *skb;	/* formatted skb ready to send */
	struct audit_context *ctx;	/* NULL or associated context */
	gfp_t		     gfp_mask;
};

struct audit_reply {
	int pid;
	struct sk_buff *skb;
};

static void audit_set_pid(struct audit_buffer *ab, pid_t pid)
{
	if (ab) {
		struct nlmsghdr *nlh = nlmsg_hdr(ab->skb);
		nlh->nlmsg_pid = pid;
	}
}

void audit_panic(const char *message)
{
	switch (audit_failure)
	{
	case AUDIT_FAIL_SILENT:
		break;
	case AUDIT_FAIL_PRINTK:
		if (printk_ratelimit())
			printk(KERN_ERR "audit: %s\n", message);
		break;
	case AUDIT_FAIL_PANIC:
		/* test audit_pid since printk is always losey, why bother? */
		if (audit_pid)
			panic("audit: %s\n", message);
		break;
	}
}

static inline int audit_rate_check(void)
{
	static unsigned long	last_check = 0;
	static int		messages   = 0;
	static DEFINE_SPINLOCK(lock);
	unsigned long		flags;
	unsigned long		now;
	unsigned long		elapsed;
	int			retval	   = 0;

	if (!audit_rate_limit) return 1;

	spin_lock_irqsave(&lock, flags);
	if (++messages < audit_rate_limit) {
		retval = 1;
	} else {
		now     = jiffies;
		elapsed = now - last_check;
		if (elapsed > HZ) {
			last_check = now;
			messages   = 0;
			retval     = 1;
		}
	}
	spin_unlock_irqrestore(&lock, flags);

	return retval;
}

/**
 * audit_log_lost - conditionally log lost audit message event
 * @message: the message stating reason for lost audit message
 *
 * Emit at least 1 message per second, even if audit_rate_check is
 * throttling.
 * Always increment the lost messages counter.
*/
void audit_log_lost(const char *message)
{
	static unsigned long	last_msg = 0;
	static DEFINE_SPINLOCK(lock);
	unsigned long		flags;
	unsigned long		now;
	int			print;

	atomic_inc(&audit_lost);

	print = (audit_failure == AUDIT_FAIL_PANIC || !audit_rate_limit);

	if (!print) {
		spin_lock_irqsave(&lock, flags);
		now = jiffies;
		if (now - last_msg > HZ) {
			print = 1;
			last_msg = now;
		}
		spin_unlock_irqrestore(&lock, flags);
	}

	if (print) {
		if (printk_ratelimit())
			printk(KERN_WARNING
				"audit: audit_lost=%d audit_rate_limit=%d "
				"audit_backlog_limit=%d\n",
				atomic_read(&audit_lost),
				audit_rate_limit,
				audit_backlog_limit);
		audit_panic(message);
	}
}

static int audit_log_config_change(char *function_name, int new, int old,
				   uid_t loginuid, u32 sessionid, u32 sid,
				   int allow_changes)
{
	struct audit_buffer *ab;
	int rc = 0;

	ab = audit_log_start(NULL, GFP_KERNEL, AUDIT_CONFIG_CHANGE);
	audit_log_format(ab, "%s=%d old=%d auid=%u ses=%u", function_name, new,
			 old, loginuid, sessionid);
	if (sid) {
		char *ctx = NULL;
		u32 len;

		rc = security_secid_to_secctx(sid, &ctx, &len);
		if (rc) {
			audit_log_format(ab, " sid=%u", sid);
			allow_changes = 0; /* Something weird, deny request */
		} else {
			audit_log_format(ab, " subj=%s", ctx);
			security_release_secctx(ctx, len);
		}
	}
	audit_log_format(ab, " res=%d", allow_changes);
	audit_log_end(ab);
	return rc;
}

static int audit_do_config_change(char *function_name, int *to_change,
				  int new, uid_t loginuid, u32 sessionid,
				  u32 sid)
{
	int allow_changes, rc = 0, old = *to_change;

	/* check if we are locked */
	if (audit_enabled == AUDIT_LOCKED)
		allow_changes = 0;
	else
		allow_changes = 1;

	if (audit_enabled != AUDIT_OFF) {
		rc = audit_log_config_change(function_name, new, old, loginuid,
					     sessionid, sid, allow_changes);
		if (rc)
			allow_changes = 0;
	}

	/* If we are allowed, make the change */
	if (allow_changes == 1)
		*to_change = new;
	/* Not allowed, update reason */
	else if (rc == 0)
		rc = -EPERM;
	return rc;
}

static int audit_set_rate_limit(int limit, uid_t loginuid, u32 sessionid,
				u32 sid)
{
	return audit_do_config_change("audit_rate_limit", &audit_rate_limit,
				      limit, loginuid, sessionid, sid);
}

static int audit_set_backlog_limit(int limit, uid_t loginuid, u32 sessionid,
				   u32 sid)
{
	return audit_do_config_change("audit_backlog_limit", &audit_backlog_limit,
				      limit, loginuid, sessionid, sid);
}

static int audit_set_enabled(int state, uid_t loginuid, u32 sessionid, u32 sid)
{
	int rc;
	if (state < AUDIT_OFF || state > AUDIT_LOCKED)
		return -EINVAL;

	rc =  audit_do_config_change("audit_enabled", &audit_enabled, state,
				     loginuid, sessionid, sid);

	if (!rc)
		audit_ever_enabled |= !!state;

	return rc;
}

static int audit_set_failure(int state, uid_t loginuid, u32 sessionid, u32 sid)
{
	if (state != AUDIT_FAIL_SILENT
	    && state != AUDIT_FAIL_PRINTK
	    && state != AUDIT_FAIL_PANIC)
		return -EINVAL;

	return audit_do_config_change("audit_failure", &audit_failure, state,
				      loginuid, sessionid, sid);
}

/*
 * Queue skbs to be sent to auditd when/if it comes back.  These skbs should
 * already have been sent via prink/syslog and so if these messages are dropped
 * it is not a huge concern since we already passed the audit_log_lost()
 * notification and stuff.  This is just nice to get audit messages during
 * boot before auditd is running or messages generated while auditd is stopped.
 * This only holds messages is audit_default is set, aka booting with audit=1
 * or building your kernel that way.
 */
static void audit_hold_skb(struct sk_buff *skb)
{
	if (audit_default &&
	    skb_queue_len(&audit_skb_hold_queue) < audit_backlog_limit)
		skb_queue_tail(&audit_skb_hold_queue, skb);
	else
		kfree_skb(skb);
}

static void kauditd_send_skb(struct sk_buff *skb)
{
	int err;
	/* take a reference in case we can't send it and we want to hold it */
	skb_get(skb);
	err = netlink_unicast(audit_sock, skb, audit_nlk_pid, 0);
	if (err < 0) {
		BUG_ON(err != -ECONNREFUSED); /* Shoudn't happen */
		printk(KERN_ERR "audit: *NO* daemon at audit_pid=%d\n", audit_pid);
		audit_log_lost("auditd dissapeared\n");
		audit_pid = 0;
		/* we might get lucky and get this in the next auditd */
		audit_hold_skb(skb);
	} else
		/* drop the extra reference if sent ok */
		kfree_skb(skb);
}

static int kauditd_thread(void *dummy)
{
	struct sk_buff *skb;

	set_freezable();
	while (!kthread_should_stop()) {
		/*
		 * if auditd just started drain the queue of messages already
		 * sent to syslog/printk.  remember loss here is ok.  we already
		 * called audit_log_lost() if it didn't go out normally.  so the
		 * race between the skb_dequeue and the next check for audit_pid
		 * doesn't matter.
		 *
		 * if you ever find kauditd to be too slow we can get a perf win
		 * by doing our own locking and keeping better track if there
		 * are messages in this queue.  I don't see the need now, but
		 * in 5 years when I want to play with this again I'll see this
		 * note and still have no friggin idea what i'm thinking today.
		 */
		if (audit_default && audit_pid) {
			skb = skb_dequeue(&audit_skb_hold_queue);
			if (unlikely(skb)) {
				while (skb && audit_pid) {
					kauditd_send_skb(skb);
					skb = skb_dequeue(&audit_skb_hold_queue);
				}
			}
		}

		skb = skb_dequeue(&audit_skb_queue);
		wake_up(&audit_backlog_wait);
		if (skb) {
			if (audit_pid)
				kauditd_send_skb(skb);
			else {
				if (printk_ratelimit())
					printk(KERN_NOTICE "%s\n", skb->data + NLMSG_SPACE(0));
				else
					audit_log_lost("printk limit exceeded\n");

				audit_hold_skb(skb);
			}
		} else {
			DECLARE_WAITQUEUE(wait, current);
			set_current_state(TASK_INTERRUPTIBLE);
			add_wait_queue(&kauditd_wait, &wait);

			if (!skb_queue_len(&audit_skb_queue)) {
				try_to_freeze();
				schedule();
			}

			__set_current_state(TASK_RUNNING);
			remove_wait_queue(&kauditd_wait, &wait);
		}
	}
	return 0;
}

static int audit_prepare_user_tty(pid_t pid, uid_t loginuid, u32 sessionid)
{
	struct task_struct *tsk;
	int err;

	read_lock(&tasklist_lock);
	tsk = find_task_by_vpid(pid);
	err = -ESRCH;
	if (!tsk)
		goto out;
	err = 0;

	spin_lock_irq(&tsk->sighand->siglock);
	if (!tsk->signal->audit_tty)
		err = -EPERM;
	spin_unlock_irq(&tsk->sighand->siglock);
	if (err)
		goto out;

	tty_audit_push_task(tsk, loginuid, sessionid);
out:
	read_unlock(&tasklist_lock);
	return err;
}

int audit_send_list(void *_dest)
{
	struct audit_netlink_list *dest = _dest;
	int pid = dest->pid;
	struct sk_buff *skb;

	/* wait for parent to finish and send an ACK */
	mutex_lock(&audit_cmd_mutex);
	mutex_unlock(&audit_cmd_mutex);

	while ((skb = __skb_dequeue(&dest->q)) != NULL)
		netlink_unicast(audit_sock, skb, pid, 0);

	kfree(dest);

	return 0;
}

#ifdef CONFIG_AUDIT_TREE
static int prune_tree_thread(void *unused)
{
	mutex_lock(&audit_cmd_mutex);
	audit_prune_trees();
	mutex_unlock(&audit_cmd_mutex);
	return 0;
}

void audit_schedule_prune(void)
{
	kthread_run(prune_tree_thread, NULL, "audit_prune_tree");
}
#endif

struct sk_buff *audit_make_reply(int pid, int seq, int type, int done,
				 int multi, void *payload, int size)
{
	struct sk_buff	*skb;
	struct nlmsghdr	*nlh;
	int		len = NLMSG_SPACE(size);
	void		*data;
	int		flags = multi ? NLM_F_MULTI : 0;
	int		t     = done  ? NLMSG_DONE  : type;

	skb = alloc_skb(len, GFP_KERNEL);
	if (!skb)
		return NULL;

	nlh		 = NLMSG_PUT(skb, pid, seq, t, size);
	nlh->nlmsg_flags = flags;
	data		 = NLMSG_DATA(nlh);
	memcpy(data, payload, size);
	return skb;

nlmsg_failure:			/* Used by NLMSG_PUT */
	if (skb)
		kfree_skb(skb);
	return NULL;
}

static int audit_send_reply_thread(void *arg)
{
	struct audit_reply *reply = (struct audit_reply *)arg;

	mutex_lock(&audit_cmd_mutex);
	mutex_unlock(&audit_cmd_mutex);

	/* Ignore failure. It'll only happen if the sender goes away,
	   because our timeout is set to infinite. */
	netlink_unicast(audit_sock, reply->skb, reply->pid, 0);
	kfree(reply);
	return 0;
}
/**
 * audit_send_reply - send an audit reply message via netlink
 * @pid: process id to send reply to
 * @seq: sequence number
 * @type: audit message type
 * @done: done (last) flag
 * @multi: multi-part message flag
 * @payload: payload data
 * @size: payload size
 *
 * Allocates an skb, builds the netlink message, and sends it to the pid.
 * No failure notifications.
 */
void audit_send_reply(int pid, int seq, int type, int done, int multi,
		      void *payload, int size)
{
	struct sk_buff *skb;
	struct task_struct *tsk;
	struct audit_reply *reply = kmalloc(sizeof(struct audit_reply),
					    GFP_KERNEL);

	if (!reply)
		return;

	skb = audit_make_reply(pid, seq, type, done, multi, payload, size);
	if (!skb)
		goto out;

	reply->pid = pid;
	reply->skb = skb;

	tsk = kthread_run(audit_send_reply_thread, reply, "audit_send_reply");
	if (!IS_ERR(tsk))
		return;
	kfree_skb(skb);
out:
	kfree(reply);
}

/*
 * Check for appropriate CAP_AUDIT_ capabilities on incoming audit
 * control messages.
 */
static int audit_netlink_ok(struct sk_buff *skb, u16 msg_type)
{
	int err = 0;

	switch (msg_type) {
	case AUDIT_GET:
	case AUDIT_LIST:
	case AUDIT_LIST_RULES:
	case AUDIT_SET:
	case AUDIT_ADD:
	case AUDIT_ADD_RULE:
	case AUDIT_DEL:
	case AUDIT_DEL_RULE:
	case AUDIT_SIGNAL_INFO:
	case AUDIT_TTY_GET:
	case AUDIT_TTY_SET:
	case AUDIT_TRIM:
	case AUDIT_MAKE_EQUIV:
		if (security_netlink_recv(skb, CAP_AUDIT_CONTROL))
			err = -EPERM;
		break;
	case AUDIT_USER:
	case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG:
	case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2:
		if (security_netlink_recv(skb, CAP_AUDIT_WRITE))
			err = -EPERM;
		break;
	default:  /* bad msg */
		err = -EINVAL;
	}

	return err;
}

static int audit_log_common_recv_msg(struct audit_buffer **ab, u16 msg_type,
				     u32 pid, u32 uid, uid_t auid, u32 ses,
				     u32 sid)
{
	int rc = 0;
	char *ctx = NULL;
	u32 len;

	if (!audit_enabled) {
		*ab = NULL;
		return rc;
	}

	*ab = audit_log_start(NULL, GFP_KERNEL, msg_type);
	audit_log_format(*ab, "user pid=%d uid=%u auid=%u ses=%u",
			 pid, uid, auid, ses);
	if (sid) {
		rc = security_secid_to_secctx(sid, &ctx, &len);
		if (rc)
			audit_log_format(*ab, " ssid=%u", sid);
		else {
			audit_log_format(*ab, " subj=%s", ctx);
			security_release_secctx(ctx, len);
		}
	}

	return rc;
}

static int audit_receive_msg(struct sk_buff *skb, struct nlmsghdr *nlh)
{
	u32			uid, pid, seq, sid;
	void			*data;
	struct audit_status	*status_get, status_set;
	int			err;
	struct audit_buffer	*ab;
	u16			msg_type = nlh->nlmsg_type;
	uid_t			loginuid; /* loginuid of sender */
	u32			sessionid;
	struct audit_sig_info   *sig_data;
	char			*ctx = NULL;
	u32			len;

	err = audit_netlink_ok(skb, msg_type);
	if (err)
		return err;

	/* As soon as there's any sign of userspace auditd,
	 * start kauditd to talk to it */
	if (!kauditd_task)
		kauditd_task = kthread_run(kauditd_thread, NULL, "kauditd");
	if (IS_ERR(kauditd_task)) {
		err = PTR_ERR(kauditd_task);
		kauditd_task = NULL;
		return err;
	}

	pid  = NETLINK_CREDS(skb)->pid;
	uid  = NETLINK_CREDS(skb)->uid;
	loginuid = NETLINK_CB(skb).loginuid;
	sessionid = NETLINK_CB(skb).sessionid;
	sid  = NETLINK_CB(skb).sid;
	seq  = nlh->nlmsg_seq;
	data = NLMSG_DATA(nlh);

	switch (msg_type) {
	case AUDIT_GET:
		status_set.enabled	 = audit_enabled;
		status_set.failure	 = audit_failure;
		status_set.pid		 = audit_pid;
		status_set.rate_limit	 = audit_rate_limit;
		status_set.backlog_limit = audit_backlog_limit;
		status_set.lost		 = atomic_read(&audit_lost);
		status_set.backlog	 = skb_queue_len(&audit_skb_queue);
		audit_send_reply(NETLINK_CB(skb).pid, seq, AUDIT_GET, 0, 0,
				 &status_set, sizeof(status_set));
		break;
	case AUDIT_SET:
		if (nlh->nlmsg_len < sizeof(struct audit_status))
			return -EINVAL;
		status_get   = (struct audit_status *)data;
		if (status_get->mask & AUDIT_STATUS_ENABLED) {
			err = audit_set_enabled(status_get->enabled,
						loginuid, sessionid, sid);
			if (err < 0)
				return err;
		}
		if (status_get->mask & AUDIT_STATUS_FAILURE) {
			err = audit_set_failure(status_get->failure,
						loginuid, sessionid, sid);
			if (err < 0)
				return err;
		}
		if (status_get->mask & AUDIT_STATUS_PID) {
			int new_pid = status_get->pid;

			if (audit_enabled != AUDIT_OFF)
				audit_log_config_change("audit_pid", new_pid,
							audit_pid, loginuid,
							sessionid, sid, 1);

			audit_pid = new_pid;
			audit_nlk_pid = NETLINK_CB(skb).pid;
		}
		if (status_get->mask & AUDIT_STATUS_RATE_LIMIT) {
			err = audit_set_rate_limit(status_get->rate_limit,
						   loginuid, sessionid, sid);
			if (err < 0)
				return err;
		}
		if (status_get->mask & AUDIT_STATUS_BACKLOG_LIMIT)
			err = audit_set_backlog_limit(status_get->backlog_limit,
						      loginuid, sessionid, sid);
		break;
	case AUDIT_USER:
	case AUDIT_FIRST_USER_MSG ... AUDIT_LAST_USER_MSG:
	case AUDIT_FIRST_USER_MSG2 ... AUDIT_LAST_USER_MSG2:
		if (!audit_enabled && msg_type != AUDIT_USER_AVC)
			return 0;

		err = audit_filter_user(&NETLINK_CB(skb));
		if (err == 1) {
			err = 0;
			if (msg_type == AUDIT_USER_TTY) {
				err = audit_prepare_user_tty(pid, loginuid,
							     sessionid);
				if (err)
					break;
			}
			audit_log_common_recv_msg(&ab, msg_type, pid, uid,
						  loginuid, sessionid, sid);

			if (msg_type != AUDIT_USER_TTY)
				audit_log_format(ab, " msg='%.1024s'",
						 (char *)data);
			else {
				int size;

				audit_log_format(ab, " msg=");
				size = nlmsg_len(nlh);
				if (size > 0 &&
				    ((unsigned char *)data)[size - 1] == '\0')
					size--;
				audit_log_n_untrustedstring(ab, data, size);
			}
			audit_set_pid(ab, pid);
			audit_log_end(ab);