commoncap.c 37.6 KB
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James Morris 已提交
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/* Common capabilities, needed by capability.o.
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Linus Torvalds 已提交
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 *
 *	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.
 *
 */

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#include <linux/capability.h>
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#include <linux/audit.h>
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#include <linux/module.h>
#include <linux/init.h>
#include <linux/kernel.h>
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#include <linux/lsm_hooks.h>
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#include <linux/file.h>
#include <linux/mm.h>
#include <linux/mman.h>
#include <linux/pagemap.h>
#include <linux/swap.h>
#include <linux/skbuff.h>
#include <linux/netlink.h>
#include <linux/ptrace.h>
#include <linux/xattr.h>
#include <linux/hugetlb.h>
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#include <linux/mount.h>
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#include <linux/sched.h>
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#include <linux/prctl.h>
#include <linux/securebits.h>
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#include <linux/user_namespace.h>
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#include <linux/binfmts.h>
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#include <linux/personality.h>
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/*
 * If a non-root user executes a setuid-root binary in
 * !secure(SECURE_NOROOT) mode, then we raise capabilities.
 * However if fE is also set, then the intent is for only
 * the file capabilities to be applied, and the setuid-root
 * bit is left on either to change the uid (plausible) or
 * to get full privilege on a kernel without file capabilities
 * support.  So in that case we do not raise capabilities.
 *
 * Warn if that happens, once per boot.
 */
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static void warn_setuid_and_fcaps_mixed(const char *fname)
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{
	static int warned;
	if (!warned) {
		printk(KERN_INFO "warning: `%s' has both setuid-root and"
			" effective capabilities. Therefore not raising all"
			" capabilities.\n", fname);
		warned = 1;
	}
}

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/**
 * cap_capable - Determine whether a task has a particular effective capability
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 * @cred: The credentials to use
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 * @ns:  The user namespace in which we need the capability
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 * @cap: The capability to check for
 * @audit: Whether to write an audit message or not
 *
 * Determine whether the nominated task has the specified capability amongst
 * its effective set, returning 0 if it does, -ve if it does not.
 *
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 * NOTE WELL: cap_has_capability() cannot be used like the kernel's capable()
 * and has_capability() functions.  That is, it has the reverse semantics:
 * cap_has_capability() returns 0 when a task has a capability, but the
 * kernel's capable() and has_capability() returns 1 for this case.
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 */
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int cap_capable(const struct cred *cred, struct user_namespace *targ_ns,
		int cap, int audit)
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{
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	struct user_namespace *ns = targ_ns;
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	/* See if cred has the capability in the target user namespace
	 * by examining the target user namespace and all of the target
	 * user namespace's parents.
	 */
	for (;;) {
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		/* Do we have the necessary capabilities? */
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		if (ns == cred->user_ns)
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			return cap_raised(cred->cap_effective, cap) ? 0 : -EPERM;

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		/*
		 * If we're already at a lower level than we're looking for,
		 * we're done searching.
		 */
		if (ns->level <= cred->user_ns->level)
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			return -EPERM;

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		/* 
		 * The owner of the user namespace in the parent of the
		 * user namespace has all caps.
		 */
		if ((ns->parent == cred->user_ns) && uid_eq(ns->owner, cred->euid))
			return 0;

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		/*
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		 * If you have a capability in a parent user ns, then you have
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		 * it over all children user namespaces as well.
		 */
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		ns = ns->parent;
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	}

	/* We never get here */
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}

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/**
 * cap_settime - Determine whether the current process may set the system clock
 * @ts: The time to set
 * @tz: The timezone to set
 *
 * Determine whether the current process may set the system clock and timezone
 * information, returning 0 if permission granted, -ve if denied.
 */
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int cap_settime(const struct timespec64 *ts, const struct timezone *tz)
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{
	if (!capable(CAP_SYS_TIME))
		return -EPERM;
	return 0;
}

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/**
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 * cap_ptrace_access_check - Determine whether the current process may access
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 *			   another
 * @child: The process to be accessed
 * @mode: The mode of attachment.
 *
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 * If we are in the same or an ancestor user_ns and have all the target
 * task's capabilities, then ptrace access is allowed.
 * If we have the ptrace capability to the target user_ns, then ptrace
 * access is allowed.
 * Else denied.
 *
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 * Determine whether a process may access another, returning 0 if permission
 * granted, -ve if denied.
 */
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int cap_ptrace_access_check(struct task_struct *child, unsigned int mode)
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{
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	int ret = 0;
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	const struct cred *cred, *child_cred;
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	const kernel_cap_t *caller_caps;
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	rcu_read_lock();
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	cred = current_cred();
	child_cred = __task_cred(child);
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	if (mode & PTRACE_MODE_FSCREDS)
		caller_caps = &cred->cap_effective;
	else
		caller_caps = &cred->cap_permitted;
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	if (cred->user_ns == child_cred->user_ns &&
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	    cap_issubset(child_cred->cap_permitted, *caller_caps))
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		goto out;
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	if (ns_capable(child_cred->user_ns, CAP_SYS_PTRACE))
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		goto out;
	ret = -EPERM;
out:
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	rcu_read_unlock();
	return ret;
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}

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/**
 * cap_ptrace_traceme - Determine whether another process may trace the current
 * @parent: The task proposed to be the tracer
 *
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 * If parent is in the same or an ancestor user_ns and has all current's
 * capabilities, then ptrace access is allowed.
 * If parent has the ptrace capability to current's user_ns, then ptrace
 * access is allowed.
 * Else denied.
 *
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 * Determine whether the nominated task is permitted to trace the current
 * process, returning 0 if permission is granted, -ve if denied.
 */
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int cap_ptrace_traceme(struct task_struct *parent)
{
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	int ret = 0;
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	const struct cred *cred, *child_cred;
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	rcu_read_lock();
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	cred = __task_cred(parent);
	child_cred = current_cred();
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	if (cred->user_ns == child_cred->user_ns &&
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	    cap_issubset(child_cred->cap_permitted, cred->cap_permitted))
		goto out;
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	if (has_ns_capability(parent, child_cred->user_ns, CAP_SYS_PTRACE))
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		goto out;
	ret = -EPERM;
out:
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	rcu_read_unlock();
	return ret;
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}

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/**
 * cap_capget - Retrieve a task's capability sets
 * @target: The task from which to retrieve the capability sets
 * @effective: The place to record the effective set
 * @inheritable: The place to record the inheritable set
 * @permitted: The place to record the permitted set
 *
 * This function retrieves the capabilities of the nominated task and returns
 * them to the caller.
 */
int cap_capget(struct task_struct *target, kernel_cap_t *effective,
	       kernel_cap_t *inheritable, kernel_cap_t *permitted)
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{
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	const struct cred *cred;
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	/* Derived from kernel/capability.c:sys_capget. */
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	rcu_read_lock();
	cred = __task_cred(target);
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	*effective   = cred->cap_effective;
	*inheritable = cred->cap_inheritable;
	*permitted   = cred->cap_permitted;
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	rcu_read_unlock();
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	return 0;
}

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/*
 * Determine whether the inheritable capabilities are limited to the old
 * permitted set.  Returns 1 if they are limited, 0 if they are not.
 */
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static inline int cap_inh_is_capped(void)
{

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	/* they are so limited unless the current task has the CAP_SETPCAP
	 * capability
	 */
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	if (cap_capable(current_cred(), current_cred()->user_ns,
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			CAP_SETPCAP, SECURITY_CAP_AUDIT) == 0)
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		return 0;
	return 1;
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}
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/**
 * cap_capset - Validate and apply proposed changes to current's capabilities
 * @new: The proposed new credentials; alterations should be made here
 * @old: The current task's current credentials
 * @effective: A pointer to the proposed new effective capabilities set
 * @inheritable: A pointer to the proposed new inheritable capabilities set
 * @permitted: A pointer to the proposed new permitted capabilities set
 *
 * This function validates and applies a proposed mass change to the current
 * process's capability sets.  The changes are made to the proposed new
 * credentials, and assuming no error, will be committed by the caller of LSM.
 */
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int cap_capset(struct cred *new,
	       const struct cred *old,
	       const kernel_cap_t *effective,
	       const kernel_cap_t *inheritable,
	       const kernel_cap_t *permitted)
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{
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	if (cap_inh_is_capped() &&
	    !cap_issubset(*inheritable,
			  cap_combine(old->cap_inheritable,
				      old->cap_permitted)))
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		/* incapable of using this inheritable set */
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		return -EPERM;
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	if (!cap_issubset(*inheritable,
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			  cap_combine(old->cap_inheritable,
				      old->cap_bset)))
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		/* no new pI capabilities outside bounding set */
		return -EPERM;
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	/* verify restrictions on target's new Permitted set */
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	if (!cap_issubset(*permitted, old->cap_permitted))
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		return -EPERM;

	/* verify the _new_Effective_ is a subset of the _new_Permitted_ */
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	if (!cap_issubset(*effective, *permitted))
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		return -EPERM;

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	new->cap_effective   = *effective;
	new->cap_inheritable = *inheritable;
	new->cap_permitted   = *permitted;
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	/*
	 * Mask off ambient bits that are no longer both permitted and
	 * inheritable.
	 */
	new->cap_ambient = cap_intersect(new->cap_ambient,
					 cap_intersect(*permitted,
						       *inheritable));
	if (WARN_ON(!cap_ambient_invariant_ok(new)))
		return -EINVAL;
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	return 0;
}

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/**
 * cap_inode_need_killpriv - Determine if inode change affects privileges
 * @dentry: The inode/dentry in being changed with change marked ATTR_KILL_PRIV
 *
 * Determine if an inode having a change applied that's marked ATTR_KILL_PRIV
 * affects the security markings on that inode, and if it is, should
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 * inode_killpriv() be invoked or the change rejected.
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 *
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 * Returns 1 if security.capability has a value, meaning inode_killpriv()
 * is required, 0 otherwise, meaning inode_killpriv() is not required.
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 */
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int cap_inode_need_killpriv(struct dentry *dentry)
{
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	struct inode *inode = d_backing_inode(dentry);
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	int error;

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	error = __vfs_getxattr(dentry, inode, XATTR_NAME_CAPS, NULL, 0);
	return error > 0;
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}

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/**
 * cap_inode_killpriv - Erase the security markings on an inode
 * @dentry: The inode/dentry to alter
 *
 * Erase the privilege-enhancing security markings on an inode.
 *
 * Returns 0 if successful, -ve on error.
 */
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int cap_inode_killpriv(struct dentry *dentry)
{
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	int error;
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	error = __vfs_removexattr(dentry, XATTR_NAME_CAPS);
	if (error == -EOPNOTSUPP)
		error = 0;
	return error;
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}

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static bool rootid_owns_currentns(kuid_t kroot)
{
	struct user_namespace *ns;

	if (!uid_valid(kroot))
		return false;

	for (ns = current_user_ns(); ; ns = ns->parent) {
		if (from_kuid(ns, kroot) == 0)
			return true;
		if (ns == &init_user_ns)
			break;
	}

	return false;
}

static __u32 sansflags(__u32 m)
{
	return m & ~VFS_CAP_FLAGS_EFFECTIVE;
}

static bool is_v2header(size_t size, __le32 magic)
{
	__u32 m = le32_to_cpu(magic);
	if (size != XATTR_CAPS_SZ_2)
		return false;
	return sansflags(m) == VFS_CAP_REVISION_2;
}

static bool is_v3header(size_t size, __le32 magic)
{
	__u32 m = le32_to_cpu(magic);

	if (size != XATTR_CAPS_SZ_3)
		return false;
	return sansflags(m) == VFS_CAP_REVISION_3;
}

/*
 * getsecurity: We are called for security.* before any attempt to read the
 * xattr from the inode itself.
 *
 * This gives us a chance to read the on-disk value and convert it.  If we
 * return -EOPNOTSUPP, then vfs_getxattr() will call the i_op handler.
 *
 * Note we are not called by vfs_getxattr_alloc(), but that is only called
 * by the integrity subsystem, which really wants the unconverted values -
 * so that's good.
 */
int cap_inode_getsecurity(struct inode *inode, const char *name, void **buffer,
			  bool alloc)
{
	int size, ret;
	kuid_t kroot;
	uid_t root, mappedroot;
	char *tmpbuf = NULL;
	struct vfs_cap_data *cap;
	struct vfs_ns_cap_data *nscap;
	struct dentry *dentry;
	struct user_namespace *fs_ns;

	if (strcmp(name, "capability") != 0)
		return -EOPNOTSUPP;

	dentry = d_find_alias(inode);
	if (!dentry)
		return -EINVAL;

	size = sizeof(struct vfs_ns_cap_data);
	ret = (int) vfs_getxattr_alloc(dentry, XATTR_NAME_CAPS,
				 &tmpbuf, size, GFP_NOFS);
	dput(dentry);

	if (ret < 0)
		return ret;

	fs_ns = inode->i_sb->s_user_ns;
	cap = (struct vfs_cap_data *) tmpbuf;
	if (is_v2header((size_t) ret, cap->magic_etc)) {
		/* If this is sizeof(vfs_cap_data) then we're ok with the
		 * on-disk value, so return that.  */
		if (alloc)
			*buffer = tmpbuf;
		else
			kfree(tmpbuf);
		return ret;
	} else if (!is_v3header((size_t) ret, cap->magic_etc)) {
		kfree(tmpbuf);
		return -EINVAL;
	}

	nscap = (struct vfs_ns_cap_data *) tmpbuf;
	root = le32_to_cpu(nscap->rootid);
	kroot = make_kuid(fs_ns, root);

	/* If the root kuid maps to a valid uid in current ns, then return
	 * this as a nscap. */
	mappedroot = from_kuid(current_user_ns(), kroot);
	if (mappedroot != (uid_t)-1 && mappedroot != (uid_t)0) {
		if (alloc) {
			*buffer = tmpbuf;
			nscap->rootid = cpu_to_le32(mappedroot);
		} else
			kfree(tmpbuf);
		return size;
	}

	if (!rootid_owns_currentns(kroot)) {
		kfree(tmpbuf);
		return -EOPNOTSUPP;
	}

	/* This comes from a parent namespace.  Return as a v2 capability */
	size = sizeof(struct vfs_cap_data);
	if (alloc) {
		*buffer = kmalloc(size, GFP_ATOMIC);
		if (*buffer) {
			struct vfs_cap_data *cap = *buffer;
			__le32 nsmagic, magic;
			magic = VFS_CAP_REVISION_2;
			nsmagic = le32_to_cpu(nscap->magic_etc);
			if (nsmagic & VFS_CAP_FLAGS_EFFECTIVE)
				magic |= VFS_CAP_FLAGS_EFFECTIVE;
			memcpy(&cap->data, &nscap->data, sizeof(__le32) * 2 * VFS_CAP_U32);
			cap->magic_etc = cpu_to_le32(magic);
		}
	}
	kfree(tmpbuf);
	return size;
}

static kuid_t rootid_from_xattr(const void *value, size_t size,
				struct user_namespace *task_ns)
{
	const struct vfs_ns_cap_data *nscap = value;
	uid_t rootid = 0;

	if (size == XATTR_CAPS_SZ_3)
		rootid = le32_to_cpu(nscap->rootid);

	return make_kuid(task_ns, rootid);
}

static bool validheader(size_t size, __le32 magic)
{
	return is_v2header(size, magic) || is_v3header(size, magic);
}

/*
 * User requested a write of security.capability.  If needed, update the
 * xattr to change from v2 to v3, or to fixup the v3 rootid.
 *
 * If all is ok, we return the new size, on error return < 0.
 */
int cap_convert_nscap(struct dentry *dentry, void **ivalue, size_t size)
{
	struct vfs_ns_cap_data *nscap;
	uid_t nsrootid;
	const struct vfs_cap_data *cap = *ivalue;
	__u32 magic, nsmagic;
	struct inode *inode = d_backing_inode(dentry);
	struct user_namespace *task_ns = current_user_ns(),
		*fs_ns = inode->i_sb->s_user_ns;
	kuid_t rootid;
	size_t newsize;

	if (!*ivalue)
		return -EINVAL;
	if (!validheader(size, cap->magic_etc))
		return -EINVAL;
	if (!capable_wrt_inode_uidgid(inode, CAP_SETFCAP))
		return -EPERM;
	if (size == XATTR_CAPS_SZ_2)
		if (ns_capable(inode->i_sb->s_user_ns, CAP_SETFCAP))
			/* user is privileged, just write the v2 */
			return size;

	rootid = rootid_from_xattr(*ivalue, size, task_ns);
	if (!uid_valid(rootid))
		return -EINVAL;

	nsrootid = from_kuid(fs_ns, rootid);
	if (nsrootid == -1)
		return -EINVAL;

	newsize = sizeof(struct vfs_ns_cap_data);
	nscap = kmalloc(newsize, GFP_ATOMIC);
	if (!nscap)
		return -ENOMEM;
	nscap->rootid = cpu_to_le32(nsrootid);
	nsmagic = VFS_CAP_REVISION_3;
	magic = le32_to_cpu(cap->magic_etc);
	if (magic & VFS_CAP_FLAGS_EFFECTIVE)
		nsmagic |= VFS_CAP_FLAGS_EFFECTIVE;
	nscap->magic_etc = cpu_to_le32(nsmagic);
	memcpy(&nscap->data, &cap->data, sizeof(__le32) * 2 * VFS_CAP_U32);

	kvfree(*ivalue);
	*ivalue = nscap;
	return newsize;
}

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/*
 * Calculate the new process capability sets from the capability sets attached
 * to a file.
 */
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static inline int bprm_caps_from_vfs_caps(struct cpu_vfs_cap_data *caps,
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					  struct linux_binprm *bprm,
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					  bool *effective,
					  bool *has_cap)
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{
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	struct cred *new = bprm->cred;
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	unsigned i;
	int ret = 0;

	if (caps->magic_etc & VFS_CAP_FLAGS_EFFECTIVE)
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		*effective = true;
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	if (caps->magic_etc & VFS_CAP_REVISION_MASK)
		*has_cap = true;

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	CAP_FOR_EACH_U32(i) {
		__u32 permitted = caps->permitted.cap[i];
		__u32 inheritable = caps->inheritable.cap[i];

		/*
		 * pP' = (X & fP) | (pI & fI)
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		 * The addition of pA' is handled later.
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		 */
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		new->cap_permitted.cap[i] =
			(new->cap_bset.cap[i] & permitted) |
			(new->cap_inheritable.cap[i] & inheritable);
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		if (permitted & ~new->cap_permitted.cap[i])
			/* insufficient to execute correctly */
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			ret = -EPERM;
	}

	/*
	 * For legacy apps, with no internal support for recognizing they
	 * do not have enough capabilities, we return an error if they are
	 * missing some "forced" (aka file-permitted) capabilities.
	 */
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	return *effective ? ret : 0;
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}

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/*
 * Extract the on-exec-apply capability sets for an executable file.
 */
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int get_vfs_caps_from_disk(const struct dentry *dentry, struct cpu_vfs_cap_data *cpu_caps)
{
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	struct inode *inode = d_backing_inode(dentry);
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	__u32 magic_etc;
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	unsigned tocopy, i;
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	int size;
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	struct vfs_ns_cap_data data, *nscaps = &data;
	struct vfs_cap_data *caps = (struct vfs_cap_data *) &data;
	kuid_t rootkuid;
	struct user_namespace *fs_ns = inode->i_sb->s_user_ns;
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	memset(cpu_caps, 0, sizeof(struct cpu_vfs_cap_data));

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	if (!inode)
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		return -ENODATA;

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	size = __vfs_getxattr((struct dentry *)dentry, inode,
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			      XATTR_NAME_CAPS, &data, XATTR_CAPS_SZ);
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	if (size == -ENODATA || size == -EOPNOTSUPP)
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		/* no data, that's ok */
		return -ENODATA;
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	if (size < 0)
		return size;
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	if (size < sizeof(magic_etc))
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		return -EINVAL;

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	cpu_caps->magic_etc = magic_etc = le32_to_cpu(caps->magic_etc);
608

609
	rootkuid = make_kuid(fs_ns, 0);
610
	switch (magic_etc & VFS_CAP_REVISION_MASK) {
611 612 613 614 615 616 617 618 619 620
	case VFS_CAP_REVISION_1:
		if (size != XATTR_CAPS_SZ_1)
			return -EINVAL;
		tocopy = VFS_CAP_U32_1;
		break;
	case VFS_CAP_REVISION_2:
		if (size != XATTR_CAPS_SZ_2)
			return -EINVAL;
		tocopy = VFS_CAP_U32_2;
		break;
621 622 623 624 625 626 627
	case VFS_CAP_REVISION_3:
		if (size != XATTR_CAPS_SZ_3)
			return -EINVAL;
		tocopy = VFS_CAP_U32_3;
		rootkuid = make_kuid(fs_ns, le32_to_cpu(nscaps->rootid));
		break;

628 629 630
	default:
		return -EINVAL;
	}
631 632 633 634 635
	/* Limit the caps to the mounter of the filesystem
	 * or the more limited uid specified in the xattr.
	 */
	if (!rootid_owns_currentns(rootkuid))
		return -ENODATA;
636

637
	CAP_FOR_EACH_U32(i) {
638 639
		if (i >= tocopy)
			break;
640 641
		cpu_caps->permitted.cap[i] = le32_to_cpu(caps->data[i].permitted);
		cpu_caps->inheritable.cap[i] = le32_to_cpu(caps->data[i].inheritable);
642
	}
643

644 645 646
	cpu_caps->permitted.cap[CAP_LAST_U32] &= CAP_LAST_U32_VALID_MASK;
	cpu_caps->inheritable.cap[CAP_LAST_U32] &= CAP_LAST_U32_VALID_MASK;

647
	return 0;
648 649
}

D
David Howells 已提交
650 651 652 653 654
/*
 * Attempt to get the on-exec apply capability sets for an executable file from
 * its xattrs and, if present, apply them to the proposed credentials being
 * constructed by execve().
 */
655
static int get_file_caps(struct linux_binprm *bprm, bool *effective, bool *has_cap)
656 657
{
	int rc = 0;
658
	struct cpu_vfs_cap_data vcaps;
659

660
	cap_clear(bprm->cred->cap_permitted);
661

662 663 664
	if (!file_caps_enabled)
		return 0;

665
	if (!mnt_may_suid(bprm->file->f_path.mnt))
666
		return 0;
667 668 669 670 671 672

	/*
	 * This check is redundant with mnt_may_suid() but is kept to make
	 * explicit that capability bits are limited to s_user_ns and its
	 * descendants.
	 */
673 674
	if (!current_in_userns(bprm->file->f_path.mnt->mnt_sb->s_user_ns))
		return 0;
675

676
	rc = get_vfs_caps_from_disk(bprm->file->f_path.dentry, &vcaps);
677 678
	if (rc < 0) {
		if (rc == -EINVAL)
679 680
			printk(KERN_NOTICE "Invalid argument reading file caps for %s\n",
					bprm->filename);
681 682
		else if (rc == -ENODATA)
			rc = 0;
683 684 685
		goto out;
	}

686
	rc = bprm_caps_from_vfs_caps(&vcaps, bprm, effective, has_cap);
687 688 689
	if (rc == -EINVAL)
		printk(KERN_NOTICE "%s: cap_from_disk returned %d for %s\n",
		       __func__, rc, bprm->filename);
690 691 692

out:
	if (rc)
693
		cap_clear(bprm->cred->cap_permitted);
694 695 696 697

	return rc;
}

698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743
/*
 * handle_privileged_root - Handle case of privileged root
 * @bprm: The execution parameters, including the proposed creds
 * @has_fcap: Are any file capabilities set?
 * @effective: Do we have effective root privilege?
 * @root_uid: This namespace' root UID WRT initial USER namespace
 *
 * Handle the case where root is privileged and hasn't been neutered by
 * SECURE_NOROOT.  If file capabilities are set, they won't be combined with
 * set UID root and nothing is changed.  If we are root, cap_permitted is
 * updated.  If we have become set UID root, the effective bit is set.
 */
static void handle_privileged_root(struct linux_binprm *bprm, bool has_cap,
				   bool *effective, kuid_t root_uid)
{
	const struct cred *old = current_cred();
	struct cred *new = bprm->cred;

	if (issecure(SECURE_NOROOT))
		return;
	/*
	 * If the legacy file capability is set, then don't set privs
	 * for a setuid root binary run by a non-root user.  Do set it
	 * for a root user just to cause least surprise to an admin.
	 */
	if (has_cap && !uid_eq(new->uid, root_uid) && uid_eq(new->euid, root_uid)) {
		warn_setuid_and_fcaps_mixed(bprm->filename);
		return;
	}
	/*
	 * To support inheritance of root-permissions and suid-root
	 * executables under compatibility mode, we override the
	 * capability sets for the file.
	 */
	if (uid_eq(new->euid, root_uid) || uid_eq(new->uid, root_uid)) {
		/* pP' = (cap_bset & ~0) | (pI & ~0) */
		new->cap_permitted = cap_combine(old->cap_bset,
						 old->cap_inheritable);
	}
	/*
	 * If only the real uid is 0, we do not set the effective bit.
	 */
	if (uid_eq(new->euid, root_uid))
		*effective = true;
}

D
David Howells 已提交
744 745 746 747 748 749 750
/**
 * cap_bprm_set_creds - Set up the proposed credentials for execve().
 * @bprm: The execution parameters, including the proposed creds
 *
 * Set up the proposed credentials for a new execution context being
 * constructed by execve().  The proposed creds in @bprm->cred is altered,
 * which won't take effect immediately.  Returns 0 if successful, -ve on error.
751 752
 */
int cap_bprm_set_creds(struct linux_binprm *bprm)
L
Linus Torvalds 已提交
753
{
754 755
	const struct cred *old = current_cred();
	struct cred *new = bprm->cred;
756
	bool effective = false, has_cap = false, is_setid;
757
	int ret;
758
	kuid_t root_uid;
L
Linus Torvalds 已提交
759

760 761 762
	if (WARN_ON(!cap_ambient_invariant_ok(old)))
		return -EPERM;

763
	ret = get_file_caps(bprm, &effective, &has_cap);
764 765
	if (ret < 0)
		return ret;
L
Linus Torvalds 已提交
766

767 768
	root_uid = make_kuid(new->user_ns, 0);

769
	handle_privileged_root(bprm, has_cap, &effective, root_uid);
770

771 772 773 774 775
	/* if we have fs caps, clear dangerous personality flags */
	if (!cap_issubset(new->cap_permitted, old->cap_permitted))
		bprm->per_clear |= PER_CLEAR_ON_SETID;


776
	/* Don't let someone trace a set[ug]id/setpcap binary with the revised
777 778 779
	 * credentials unless they have the appropriate permit.
	 *
	 * In addition, if NO_NEW_PRIVS, then ensure we get no new privs.
780
	 */
781 782 783
	is_setid = !uid_eq(new->euid, old->uid) || !gid_eq(new->egid, old->gid);

	if ((is_setid ||
784
	     !cap_issubset(new->cap_permitted, old->cap_permitted)) &&
785
	    ((bprm->unsafe & ~LSM_UNSAFE_PTRACE) ||
786
	     !ptracer_capable(current, new->user_ns))) {
787
		/* downgrade; they get no more than they had, and maybe less */
788
		if (!ns_capable(new->user_ns, CAP_SETUID) ||
789
		    (bprm->unsafe & LSM_UNSAFE_NO_NEW_PRIVS)) {
790 791
			new->euid = new->uid;
			new->egid = new->gid;
L
Linus Torvalds 已提交
792
		}
793 794
		new->cap_permitted = cap_intersect(new->cap_permitted,
						   old->cap_permitted);
L
Linus Torvalds 已提交
795 796
	}

797 798
	new->suid = new->fsuid = new->euid;
	new->sgid = new->fsgid = new->egid;
L
Linus Torvalds 已提交
799

800 801 802 803 804 805 806 807 808 809 810 811 812 813
	/* File caps or setid cancels ambient. */
	if (has_cap || is_setid)
		cap_clear(new->cap_ambient);

	/*
	 * Now that we've computed pA', update pP' to give:
	 *   pP' = (X & fP) | (pI & fI) | pA'
	 */
	new->cap_permitted = cap_combine(new->cap_permitted, new->cap_ambient);

	/*
	 * Set pE' = (fE ? pP' : pA').  Because pA' is zero if fE is set,
	 * this is the same as pE' = (fE ? pP' : 0) | pA'.
	 */
814 815 816
	if (effective)
		new->cap_effective = new->cap_permitted;
	else
817 818 819 820 821
		new->cap_effective = new->cap_ambient;

	if (WARN_ON(!cap_ambient_invariant_ok(new)))
		return -EPERM;

822 823 824 825 826 827 828 829 830 831 832 833
	/*
	 * Audit candidate if current->cap_effective is set
	 *
	 * We do not bother to audit if 3 things are true:
	 *   1) cap_effective has all caps
	 *   2) we are root
	 *   3) root is supposed to have all caps (SECURE_NOROOT)
	 * Since this is just a normal root execing a process.
	 *
	 * Number 1 above might fail if you don't have a full bset, but I think
	 * that is interesting information to audit.
	 */
834
	if (!cap_issubset(new->cap_effective, new->cap_ambient)) {
D
David Howells 已提交
835
		if (!cap_issubset(CAP_FULL_SET, new->cap_effective) ||
836
		    !uid_eq(new->euid, root_uid) || !uid_eq(new->uid, root_uid) ||
837 838 839 840 841
		    issecure(SECURE_NOROOT)) {
			ret = audit_log_bprm_fcaps(bprm, new, old);
			if (ret < 0)
				return ret;
		}
842
	}
L
Linus Torvalds 已提交
843

D
David Howells 已提交
844
	new->securebits &= ~issecure_mask(SECURE_KEEP_CAPS);
845 846 847 848

	if (WARN_ON(!cap_ambient_invariant_ok(new)))
		return -EPERM;

849
	/* Check for privilege-elevated exec. */
850 851 852 853 854 855 856
	bprm->cap_elevated = 0;
	if (is_setid) {
		bprm->cap_elevated = 1;
	} else if (!uid_eq(new->uid, root_uid)) {
		if (effective ||
		    !cap_issubset(new->cap_permitted, new->cap_ambient))
			bprm->cap_elevated = 1;
857 858
	}

859
	return 0;
L
Linus Torvalds 已提交
860 861
}

D
David Howells 已提交
862 863 864 865 866 867 868 869 870 871 872 873 874 875
/**
 * cap_inode_setxattr - Determine whether an xattr may be altered
 * @dentry: The inode/dentry being altered
 * @name: The name of the xattr to be changed
 * @value: The value that the xattr will be changed to
 * @size: The size of value
 * @flags: The replacement flag
 *
 * Determine whether an xattr may be altered or set on an inode, returning 0 if
 * permission is granted, -ve if denied.
 *
 * This is used to make sure security xattrs don't get updated or set by those
 * who aren't privileged to do so.
 */
876 877
int cap_inode_setxattr(struct dentry *dentry, const char *name,
		       const void *value, size_t size, int flags)
L
Linus Torvalds 已提交
878
{
879 880 881 882 883 884 885 886 887 888
	/* Ignore non-security xattrs */
	if (strncmp(name, XATTR_SECURITY_PREFIX,
			sizeof(XATTR_SECURITY_PREFIX) - 1) != 0)
		return 0;

	/*
	 * For XATTR_NAME_CAPS the check will be done in
	 * cap_convert_nscap(), called by setxattr()
	 */
	if (strcmp(name, XATTR_NAME_CAPS) == 0)
889
		return 0;
D
David Howells 已提交
890

891
	if (!capable(CAP_SYS_ADMIN))
L
Linus Torvalds 已提交
892 893 894 895
		return -EPERM;
	return 0;
}

D
David Howells 已提交
896 897 898 899 900 901 902 903 904 905 906
/**
 * cap_inode_removexattr - Determine whether an xattr may be removed
 * @dentry: The inode/dentry being altered
 * @name: The name of the xattr to be changed
 *
 * Determine whether an xattr may be removed from an inode, returning 0 if
 * permission is granted, -ve if denied.
 *
 * This is used to make sure security xattrs don't get removed by those who
 * aren't privileged to remove them.
 */
907
int cap_inode_removexattr(struct dentry *dentry, const char *name)
L
Linus Torvalds 已提交
908
{
909 910 911 912 913 914 915 916 917 918 919
	/* Ignore non-security xattrs */
	if (strncmp(name, XATTR_SECURITY_PREFIX,
			sizeof(XATTR_SECURITY_PREFIX) - 1) != 0)
		return 0;

	if (strcmp(name, XATTR_NAME_CAPS) == 0) {
		/* security.capability gets namespaced */
		struct inode *inode = d_backing_inode(dentry);
		if (!inode)
			return -EINVAL;
		if (!capable_wrt_inode_uidgid(inode, CAP_SETFCAP))
920 921
			return -EPERM;
		return 0;
D
David Howells 已提交
922 923
	}

924
	if (!capable(CAP_SYS_ADMIN))
L
Linus Torvalds 已提交
925 926 927 928
		return -EPERM;
	return 0;
}

929
/*
L
Linus Torvalds 已提交
930 931 932 933 934 935 936 937 938 939 940 941 942
 * cap_emulate_setxuid() fixes the effective / permitted capabilities of
 * a process after a call to setuid, setreuid, or setresuid.
 *
 *  1) When set*uiding _from_ one of {r,e,s}uid == 0 _to_ all of
 *  {r,e,s}uid != 0, the permitted and effective capabilities are
 *  cleared.
 *
 *  2) When set*uiding _from_ euid == 0 _to_ euid != 0, the effective
 *  capabilities of the process are cleared.
 *
 *  3) When set*uiding _from_ euid != 0 _to_ euid == 0, the effective
 *  capabilities are set to the permitted capabilities.
 *
943
 *  fsuid is handled elsewhere. fsuid == 0 and {r,e,s}uid!= 0 should
L
Linus Torvalds 已提交
944 945
 *  never happen.
 *
946
 *  -astor
L
Linus Torvalds 已提交
947 948 949 950 951 952 953 954 955 956 957
 *
 * cevans - New behaviour, Oct '99
 * A process may, via prctl(), elect to keep its capabilities when it
 * calls setuid() and switches away from uid==0. Both permitted and
 * effective sets will be retained.
 * Without this change, it was impossible for a daemon to drop only some
 * of its privilege. The call to setuid(!=0) would drop all privileges!
 * Keeping uid 0 is not an option because uid 0 owns too many vital
 * files..
 * Thanks to Olaf Kirch and Peter Benie for spotting this.
 */
D
David Howells 已提交
958
static inline void cap_emulate_setxuid(struct cred *new, const struct cred *old)
L
Linus Torvalds 已提交
959
{
960 961 962 963 964 965 966
	kuid_t root_uid = make_kuid(old->user_ns, 0);

	if ((uid_eq(old->uid, root_uid) ||
	     uid_eq(old->euid, root_uid) ||
	     uid_eq(old->suid, root_uid)) &&
	    (!uid_eq(new->uid, root_uid) &&
	     !uid_eq(new->euid, root_uid) &&
967 968 969 970 971 972 973 974 975 976 977 978
	     !uid_eq(new->suid, root_uid))) {
		if (!issecure(SECURE_KEEP_CAPS)) {
			cap_clear(new->cap_permitted);
			cap_clear(new->cap_effective);
		}

		/*
		 * Pre-ambient programs expect setresuid to nonroot followed
		 * by exec to drop capabilities.  We should make sure that
		 * this remains the case.
		 */
		cap_clear(new->cap_ambient);
L
Linus Torvalds 已提交
979
	}
980
	if (uid_eq(old->euid, root_uid) && !uid_eq(new->euid, root_uid))
D
David Howells 已提交
981
		cap_clear(new->cap_effective);
982
	if (!uid_eq(old->euid, root_uid) && uid_eq(new->euid, root_uid))
D
David Howells 已提交
983
		new->cap_effective = new->cap_permitted;
L
Linus Torvalds 已提交
984 985
}

D
David Howells 已提交
986 987 988 989 990 991 992 993 994
/**
 * cap_task_fix_setuid - Fix up the results of setuid() call
 * @new: The proposed credentials
 * @old: The current task's current credentials
 * @flags: Indications of what has changed
 *
 * Fix up the results of setuid() call before the credential changes are
 * actually applied, returning 0 to grant the changes, -ve to deny them.
 */
D
David Howells 已提交
995
int cap_task_fix_setuid(struct cred *new, const struct cred *old, int flags)
L
Linus Torvalds 已提交
996 997 998 999 1000
{
	switch (flags) {
	case LSM_SETID_RE:
	case LSM_SETID_ID:
	case LSM_SETID_RES:
D
David Howells 已提交
1001 1002
		/* juggle the capabilities to follow [RES]UID changes unless
		 * otherwise suppressed */
D
David Howells 已提交
1003 1004
		if (!issecure(SECURE_NO_SETUID_FIXUP))
			cap_emulate_setxuid(new, old);
L
Linus Torvalds 已提交
1005 1006
		break;

D
David Howells 已提交
1007 1008 1009 1010
	case LSM_SETID_FS:
		/* juggle the capabilties to follow FSUID changes, unless
		 * otherwise suppressed
		 *
D
David Howells 已提交
1011 1012 1013 1014
		 * FIXME - is fsuser used for all CAP_FS_MASK capabilities?
		 *          if not, we might be a bit too harsh here.
		 */
		if (!issecure(SECURE_NO_SETUID_FIXUP)) {
1015 1016
			kuid_t root_uid = make_kuid(old->user_ns, 0);
			if (uid_eq(old->fsuid, root_uid) && !uid_eq(new->fsuid, root_uid))
D
David Howells 已提交
1017 1018
				new->cap_effective =
					cap_drop_fs_set(new->cap_effective);
D
David Howells 已提交
1019

1020
			if (!uid_eq(old->fsuid, root_uid) && uid_eq(new->fsuid, root_uid))
D
David Howells 已提交
1021 1022 1023
				new->cap_effective =
					cap_raise_fs_set(new->cap_effective,
							 new->cap_permitted);
L
Linus Torvalds 已提交
1024
		}
D
David Howells 已提交
1025
		break;
D
David Howells 已提交
1026

L
Linus Torvalds 已提交
1027 1028 1029 1030 1031 1032 1033
	default:
		return -EINVAL;
	}

	return 0;
}

1034 1035 1036 1037 1038 1039 1040 1041 1042 1043
/*
 * Rationale: code calling task_setscheduler, task_setioprio, and
 * task_setnice, assumes that
 *   . if capable(cap_sys_nice), then those actions should be allowed
 *   . if not capable(cap_sys_nice), but acting on your own processes,
 *   	then those actions should be allowed
 * This is insufficient now since you can call code without suid, but
 * yet with increased caps.
 * So we check for increased caps on the target process.
 */
1044
static int cap_safe_nice(struct task_struct *p)
1045
{
1046
	int is_subset, ret = 0;
1047 1048 1049 1050

	rcu_read_lock();
	is_subset = cap_issubset(__task_cred(p)->cap_permitted,
				 current_cred()->cap_permitted);
1051 1052
	if (!is_subset && !ns_capable(__task_cred(p)->user_ns, CAP_SYS_NICE))
		ret = -EPERM;
1053 1054
	rcu_read_unlock();

1055
	return ret;
1056 1057
}

D
David Howells 已提交
1058 1059 1060 1061 1062 1063 1064
/**
 * cap_task_setscheduler - Detemine if scheduler policy change is permitted
 * @p: The task to affect
 *
 * Detemine if the requested scheduler policy change is permitted for the
 * specified task, returning 0 if permission is granted, -ve if denied.
 */
1065
int cap_task_setscheduler(struct task_struct *p)
1066 1067 1068 1069
{
	return cap_safe_nice(p);
}

D
David Howells 已提交
1070 1071 1072 1073 1074 1075 1076 1077 1078
/**
 * cap_task_ioprio - Detemine if I/O priority change is permitted
 * @p: The task to affect
 * @ioprio: The I/O priority to set
 *
 * Detemine if the requested I/O priority change is permitted for the specified
 * task, returning 0 if permission is granted, -ve if denied.
 */
int cap_task_setioprio(struct task_struct *p, int ioprio)
1079 1080 1081 1082
{
	return cap_safe_nice(p);
}

D
David Howells 已提交
1083 1084 1085 1086 1087 1088 1089 1090 1091
/**
 * cap_task_ioprio - Detemine if task priority change is permitted
 * @p: The task to affect
 * @nice: The nice value to set
 *
 * Detemine if the requested task priority change is permitted for the
 * specified task, returning 0 if permission is granted, -ve if denied.
 */
int cap_task_setnice(struct task_struct *p, int nice)
1092 1093 1094 1095
{
	return cap_safe_nice(p);
}

1096
/*
D
David Howells 已提交
1097 1098
 * Implement PR_CAPBSET_DROP.  Attempt to remove the specified capability from
 * the current task's bounding set.  Returns 0 on success, -ve on error.
1099
 */
1100
static int cap_prctl_drop(unsigned long cap)
1101
{
1102 1103
	struct cred *new;

1104
	if (!ns_capable(current_user_ns(), CAP_SETPCAP))
1105 1106 1107
		return -EPERM;
	if (!cap_valid(cap))
		return -EINVAL;
D
David Howells 已提交
1108

1109 1110 1111
	new = prepare_creds();
	if (!new)
		return -ENOMEM;
D
David Howells 已提交
1112
	cap_lower(new->cap_bset, cap);
1113
	return commit_creds(new);
1114
}
1115

D
David Howells 已提交
1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127
/**
 * cap_task_prctl - Implement process control functions for this security module
 * @option: The process control function requested
 * @arg2, @arg3, @arg4, @arg5: The argument data for this function
 *
 * Allow process control functions (sys_prctl()) to alter capabilities; may
 * also deny access to other functions not otherwise implemented here.
 *
 * Returns 0 or +ve on success, -ENOSYS if this function is not implemented
 * here, other -ve on error.  If -ENOSYS is returned, sys_prctl() and other LSM
 * modules will consider performing the function.
 */
1128
int cap_task_prctl(int option, unsigned long arg2, unsigned long arg3,
D
David Howells 已提交
1129
		   unsigned long arg4, unsigned long arg5)
1130
{
1131
	const struct cred *old = current_cred();
D
David Howells 已提交
1132 1133
	struct cred *new;

1134 1135 1136
	switch (option) {
	case PR_CAPBSET_READ:
		if (!cap_valid(arg2))
1137 1138
			return -EINVAL;
		return !!cap_raised(old->cap_bset, arg2);
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1139

1140
	case PR_CAPBSET_DROP:
1141
		return cap_prctl_drop(arg2);
1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162

	/*
	 * The next four prctl's remain to assist with transitioning a
	 * system from legacy UID=0 based privilege (when filesystem
	 * capabilities are not in use) to a system using filesystem
	 * capabilities only - as the POSIX.1e draft intended.
	 *
	 * Note:
	 *
	 *  PR_SET_SECUREBITS =
	 *      issecure_mask(SECURE_KEEP_CAPS_LOCKED)
	 *    | issecure_mask(SECURE_NOROOT)
	 *    | issecure_mask(SECURE_NOROOT_LOCKED)
	 *    | issecure_mask(SECURE_NO_SETUID_FIXUP)
	 *    | issecure_mask(SECURE_NO_SETUID_FIXUP_LOCKED)
	 *
	 * will ensure that the current process and all of its
	 * children will be locked into a pure
	 * capability-based-privilege environment.
	 */
	case PR_SET_SECUREBITS:
1163 1164 1165
		if ((((old->securebits & SECURE_ALL_LOCKS) >> 1)
		     & (old->securebits ^ arg2))			/*[1]*/
		    || ((old->securebits & SECURE_ALL_LOCKS & ~arg2))	/*[2]*/
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		    || (arg2 & ~(SECURE_ALL_LOCKS | SECURE_ALL_BITS))	/*[3]*/
1167
		    || (cap_capable(current_cred(),
1168
				    current_cred()->user_ns, CAP_SETPCAP,
1169
				    SECURITY_CAP_AUDIT) != 0)		/*[4]*/
1170 1171 1172 1173 1174 1175 1176
			/*
			 * [1] no changing of bits that are locked
			 * [2] no unlocking of locks
			 * [3] no setting of unsupported bits
			 * [4] doing anything requires privilege (go read about
			 *     the "sendmail capabilities bug")
			 */
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		    )
			/* cannot change a locked bit */
1179 1180 1181 1182 1183
			return -EPERM;

		new = prepare_creds();
		if (!new)
			return -ENOMEM;
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		new->securebits = arg2;
1185
		return commit_creds(new);
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1186

1187
	case PR_GET_SECUREBITS:
1188
		return old->securebits;
1189 1190

	case PR_GET_KEEPCAPS:
1191
		return !!issecure(SECURE_KEEP_CAPS);
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1193 1194
	case PR_SET_KEEPCAPS:
		if (arg2 > 1) /* Note, we rely on arg2 being unsigned here */
1195
			return -EINVAL;
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		if (issecure(SECURE_KEEP_CAPS_LOCKED))
1197 1198 1199 1200 1201
			return -EPERM;

		new = prepare_creds();
		if (!new)
			return -ENOMEM;
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		if (arg2)
			new->securebits |= issecure_mask(SECURE_KEEP_CAPS);
1204
		else
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			new->securebits &= ~issecure_mask(SECURE_KEEP_CAPS);
1206
		return commit_creds(new);
1207

1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231
	case PR_CAP_AMBIENT:
		if (arg2 == PR_CAP_AMBIENT_CLEAR_ALL) {
			if (arg3 | arg4 | arg5)
				return -EINVAL;

			new = prepare_creds();
			if (!new)
				return -ENOMEM;
			cap_clear(new->cap_ambient);
			return commit_creds(new);
		}

		if (((!cap_valid(arg3)) | arg4 | arg5))
			return -EINVAL;

		if (arg2 == PR_CAP_AMBIENT_IS_SET) {
			return !!cap_raised(current_cred()->cap_ambient, arg3);
		} else if (arg2 != PR_CAP_AMBIENT_RAISE &&
			   arg2 != PR_CAP_AMBIENT_LOWER) {
			return -EINVAL;
		} else {
			if (arg2 == PR_CAP_AMBIENT_RAISE &&
			    (!cap_raised(current_cred()->cap_permitted, arg3) ||
			     !cap_raised(current_cred()->cap_inheritable,
1232 1233
					 arg3) ||
			     issecure(SECURE_NO_CAP_AMBIENT_RAISE)))
1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245
				return -EPERM;

			new = prepare_creds();
			if (!new)
				return -ENOMEM;
			if (arg2 == PR_CAP_AMBIENT_RAISE)
				cap_raise(new->cap_ambient, arg3);
			else
				cap_lower(new->cap_ambient, arg3);
			return commit_creds(new);
		}

1246 1247
	default:
		/* No functionality available - continue with default */
1248
		return -ENOSYS;
1249
	}
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}

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/**
 * cap_vm_enough_memory - Determine whether a new virtual mapping is permitted
 * @mm: The VM space in which the new mapping is to be made
 * @pages: The size of the mapping
 *
 * Determine whether the allocation of a new virtual mapping by the current
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 * task is permitted, returning 1 if permission is granted, 0 if not.
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 */
1260
int cap_vm_enough_memory(struct mm_struct *mm, long pages)
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{
	int cap_sys_admin = 0;

1264
	if (cap_capable(current_cred(), &init_user_ns, CAP_SYS_ADMIN,
1265
			SECURITY_CAP_NOAUDIT) == 0)
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		cap_sys_admin = 1;
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	return cap_sys_admin;
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1268
}
1269 1270

/*
1271
 * cap_mmap_addr - check if able to map given addr
1272 1273
 * @addr: address attempting to be mapped
 *
1274
 * If the process is attempting to map memory below dac_mmap_min_addr they need
1275 1276 1277 1278
 * CAP_SYS_RAWIO.  The other parameters to this function are unused by the
 * capability security module.  Returns 0 if this mapping should be allowed
 * -EPERM if not.
 */
1279
int cap_mmap_addr(unsigned long addr)
1280 1281 1282
{
	int ret = 0;

1283
	if (addr < dac_mmap_min_addr) {
1284
		ret = cap_capable(current_cred(), &init_user_ns, CAP_SYS_RAWIO,
1285 1286 1287 1288 1289 1290 1291
				  SECURITY_CAP_AUDIT);
		/* set PF_SUPERPRIV if it turns out we allow the low mmap */
		if (ret == 0)
			current->flags |= PF_SUPERPRIV;
	}
	return ret;
}
1292

1293 1294
int cap_mmap_file(struct file *file, unsigned long reqprot,
		  unsigned long prot, unsigned long flags)
1295
{
1296
	return 0;
1297
}
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#ifdef CONFIG_SECURITY

1301
struct security_hook_list capability_hooks[] __lsm_ro_after_init = {
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	LSM_HOOK_INIT(capable, cap_capable),
	LSM_HOOK_INIT(settime, cap_settime),
	LSM_HOOK_INIT(ptrace_access_check, cap_ptrace_access_check),
	LSM_HOOK_INIT(ptrace_traceme, cap_ptrace_traceme),
	LSM_HOOK_INIT(capget, cap_capget),
	LSM_HOOK_INIT(capset, cap_capset),
	LSM_HOOK_INIT(bprm_set_creds, cap_bprm_set_creds),
	LSM_HOOK_INIT(inode_need_killpriv, cap_inode_need_killpriv),
	LSM_HOOK_INIT(inode_killpriv, cap_inode_killpriv),
1311
	LSM_HOOK_INIT(inode_getsecurity, cap_inode_getsecurity),
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	LSM_HOOK_INIT(mmap_addr, cap_mmap_addr),
	LSM_HOOK_INIT(mmap_file, cap_mmap_file),
	LSM_HOOK_INIT(task_fix_setuid, cap_task_fix_setuid),
	LSM_HOOK_INIT(task_prctl, cap_task_prctl),
	LSM_HOOK_INIT(task_setscheduler, cap_task_setscheduler),
	LSM_HOOK_INIT(task_setioprio, cap_task_setioprio),
	LSM_HOOK_INIT(task_setnice, cap_task_setnice),
	LSM_HOOK_INIT(vm_enough_memory, cap_vm_enough_memory),
};

void __init capability_add_hooks(void)
{
1324 1325
	security_add_hooks(capability_hooks, ARRAY_SIZE(capability_hooks),
				"capability");
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}

#endif /* CONFIG_SECURITY */