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Kernel v2.6.24 /kernel/cpuset.c

Filename:/kernel/cpuset.c
Lines Added:628
Lines Deleted:1108
Also changed in: (Previous) 2.6.24-rc8  2.6.24-rc7  2.6.24-rc6  2.6.24-rc5  2.6.24-rc4  2.6.24-rc3 
(Following) 2.6.24-git2  2.6.24-git3  2.6.24-git4  2.6.24-git5  2.6.24-git6  2.6.24-git7 

Location
[  2.6.24
  [  kernel
     o  cpuset.c

Patch

diff --git a/kernel/cpuset.c b/kernel/cpuset.c
index 57e6448..50f5dc4 100644
--- a/kernel/cpuset.c
+++ b/kernel/cpuset.c
@@ -4,7 +4,8 @@
  *  Processor and Memory placement constraints for sets of tasks.
  *
  *  Copyright (C) 2003 BULL SA.
- *  Copyright (C) 2004-2006 Silicon Graphics, Inc.
+ *  Copyright (C) 2004-2007 Silicon Graphics, Inc.
+ *  Copyright (C) 2006 Google, Inc
  *
  *  Portions derived from Patrick Mochel's sysfs code.
  *  sysfs is Copyright (c) 2001-3 Patrick Mochel
@@ -12,6 +13,7 @@
  *  2003-10-10 Written by Simon Derr.
  *  2003-10-22 Updates by Stephen Hemminger.
  *  2004 May-July Rework by Paul Jackson.
+ *  2006 Rework by Paul Menage to use generic cgroups
  *
  *  This file is subject to the terms and conditions of the GNU General Public
  *  License.  See the file COPYING in the main directory of the Linux
@@ -36,6 +38,7 @@
 #include <linux/mount.h>
 #include <linux/namei.h>
 #include <linux/pagemap.h>
+#include <linux/prio_heap.h>
 #include <linux/proc_fs.h>
 #include <linux/rcupdate.h>
 #include <linux/sched.h>
@@ -52,8 +55,7 @@
 #include <asm/uaccess.h>
 #include <asm/atomic.h>
 #include <linux/mutex.h>
-
-#define CPUSET_SUPER_MAGIC      0x27e0eb
+#include <linux/kfifo.h>
 
 /*
  * Tracks how many cpusets are currently defined in system.
@@ -62,6 +64,10 @@
  */
 int number_of_cpusets __read_mostly;
 
+/* Retrieve the cpuset from a cgroup */
+struct cgroup_subsys cpuset_subsys;
+struct cpuset;
+
 /* See "Frequency meter" comments, below. */
 
 struct fmeter {
@@ -72,24 +78,13 @@ struct fmeter {
 };
 
 struct cpuset {
+   struct cgroup_subsys_state css;
+
    unsigned long flags;      /* "unsigned long" so bitops work */
    cpumask_t cpus_allowed;      /* CPUs allowed to tasks in cpuset */
    nodemask_t mems_allowed;   /* Memory Nodes allowed to tasks */
 
-   /*
-    * Count is atomic so can incr (fork) or decr (exit) without a lock.
-    */
-   atomic_t count;         /* count tasks using this cpuset */
-
-   /*
-    * We link our 'sibling' struct into our parents 'children'.
-    * Our children link their 'sibling' into our 'children'.
-    */
-   struct list_head sibling;   /* my parents children */
-   struct list_head children;   /* my children */
-
    struct cpuset *parent;      /* my parent */
-   struct dentry *dentry;      /* cpuset fs entry */
 
    /*
     * Copy of global cpuset_mems_generation as of the most
@@ -98,15 +93,32 @@ struct cpuset {
    int mems_generation;
 
    struct fmeter fmeter;      /* memory_pressure filter */
+
+   /* partition number for rebuild_sched_domains() */
+   int pn;
 };
 
+/* Retrieve the cpuset for a cgroup */
+static inline struct cpuset *cgroup_cs(struct cgroup *cont)
+{
+   return container_of(cgroup_subsys_state(cont, cpuset_subsys_id),
+             struct cpuset, css);
+}
+
+/* Retrieve the cpuset for a task */
+static inline struct cpuset *task_cs(struct task_struct *task)
+{
+   return container_of(task_subsys_state(task, cpuset_subsys_id),
+             struct cpuset, css);
+}
+
+
 /* bits in struct cpuset flags field */
 typedef enum {
    CS_CPU_EXCLUSIVE,
    CS_MEM_EXCLUSIVE,
    CS_MEMORY_MIGRATE,
-   CS_REMOVED,
-   CS_NOTIFY_ON_RELEASE,
+   CS_SCHED_LOAD_BALANCE,
    CS_SPREAD_PAGE,
    CS_SPREAD_SLAB,
 } cpuset_flagbits_t;
@@ -122,14 +134,9 @@ static inline int is_mem_exclusive(const struct cpuset *cs)
    return test_bit(CS_MEM_EXCLUSIVE, &cs->flags);
 }
 
-static inline int is_removed(const struct cpuset *cs)
+static inline int is_sched_load_balance(const struct cpuset *cs)
 {
-   return test_bit(CS_REMOVED, &cs->flags);
-}
-
-static inline int notify_on_release(const struct cpuset *cs)
-{
-   return test_bit(CS_NOTIFY_ON_RELEASE, &cs->flags);
+   return test_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
 }
 
 static inline int is_memory_migrate(const struct cpuset *cs)
@@ -172,14 +179,8 @@ static struct cpuset top_cpuset = {
    .flags = ((1 << CS_CPU_EXCLUSIVE) | (1 << CS_MEM_EXCLUSIVE)),
    .cpus_allowed = CPU_MASK_ALL,
    .mems_allowed = NODE_MASK_ALL,
-   .count = ATOMIC_INIT(0),
-   .sibling = LIST_HEAD_INIT(top_cpuset.sibling),
-   .children = LIST_HEAD_INIT(top_cpuset.children),
 };
 
-static struct vfsmount *cpuset_mount;
-static struct super_block *cpuset_sb;
-
 /*
  * We have two global cpuset mutexes below.  They can nest.
  * It is ok to first take manage_mutex, then nest callback_mutex.  We also
@@ -263,297 +264,33 @@ static struct super_block *cpuset_sb;
  * the routine cpuset_update_task_memory_state().
  */
 
-static DEFINE_MUTEX(manage_mutex);
 static DEFINE_MUTEX(callback_mutex);
 
-/*
- * A couple of forward declarations required, due to cyclic reference loop:
- *  cpuset_mkdir -> cpuset_create -> cpuset_populate_dir -> cpuset_add_file
- *  -> cpuset_create_file -> cpuset_dir_inode_operations -> cpuset_mkdir.
- */
-
-static int cpuset_mkdir(struct inode *dir, struct dentry *dentry, int mode);
-static int cpuset_rmdir(struct inode *unused_dir, struct dentry *dentry);
-
-static struct backing_dev_info cpuset_backing_dev_info = {
-   .ra_pages = 0,      /* No readahead */
-   .capabilities   = BDI_CAP_NO_ACCT_DIRTY | BDI_CAP_NO_WRITEBACK,
-};
-
-static struct inode *cpuset_new_inode(mode_t mode)
-{
-   struct inode *inode = new_inode(cpuset_sb);
-
-   if (inode) {
-      inode->i_mode = mode;
-      inode->i_uid = current->fsuid;
-      inode->i_gid = current->fsgid;
-      inode->i_blocks = 0;
-      inode->i_atime = inode->i_mtime = inode->i_ctime = CURRENT_TIME;
-      inode->i_mapping->backing_dev_info = &cpuset_backing_dev_info;
-   }
-   return inode;
-}
-
-static void cpuset_diput(struct dentry *dentry, struct inode *inode)
-{
-   /* is dentry a directory ? if so, kfree() associated cpuset */
-   if (S_ISDIR(inode->i_mode)) {
-      struct cpuset *cs = dentry->d_fsdata;
-      BUG_ON(!(is_removed(cs)));
-      kfree(cs);
-   }
-   iput(inode);
-}
-
-static struct dentry_operations cpuset_dops = {
-   .d_iput = cpuset_diput,
-};
-
-static struct dentry *cpuset_get_dentry(struct dentry *parent, const char *name)
-{
-   struct dentry *d = lookup_one_len(name, parent, strlen(name));
-   if (!IS_ERR(d))
-      d->d_op = &cpuset_dops;
-   return d;
-}
-
-static void remove_dir(struct dentry *d)
-{
-   struct dentry *parent = dget(d->d_parent);
-
-   d_delete(d);
-   simple_rmdir(parent->d_inode, d);
-   dput(parent);
-}
-
-/*
- * NOTE : the dentry must have been dget()'ed
- */
-static void cpuset_d_remove_dir(struct dentry *dentry)
-{
-   struct list_head *node;
-
-   spin_lock(&dcache_lock);
-   node = dentry->d_subdirs.next;
-   while (node != &dentry->d_subdirs) {
-      struct dentry *d = list_entry(node, struct dentry, d_u.d_child);
-      list_del_init(node);
-      if (d->d_inode) {
-         d = dget_locked(d);
-         spin_unlock(&dcache_lock);
-         d_delete(d);
-         simple_unlink(dentry->d_inode, d);
-         dput(d);
-         spin_lock(&dcache_lock);
-      }
-      node = dentry->d_subdirs.next;
-   }
-   list_del_init(&dentry->d_u.d_child);
-   spin_unlock(&dcache_lock);
-   remove_dir(dentry);
-}
-
-static struct super_operations cpuset_ops = {
-   .statfs = simple_statfs,
-   .drop_inode = generic_delete_inode,
-};
-
-static int cpuset_fill_super(struct super_block *sb, void *unused_data,
-                     int unused_silent)
-{
-   struct inode *inode;
-   struct dentry *root;
-
-   sb->s_blocksize = PAGE_CACHE_SIZE;
-   sb->s_blocksize_bits = PAGE_CACHE_SHIFT;
-   sb->s_magic = CPUSET_SUPER_MAGIC;
-   sb->s_op = &cpuset_ops;
-   cpuset_sb = sb;
-
-   inode = cpuset_new_inode(S_IFDIR | S_IRUGO | S_IXUGO | S_IWUSR);
-   if (inode) {
-      inode->i_op = &simple_dir_inode_operations;
-      inode->i_fop = &simple_dir_operations;
-      /* directories start off with i_nlink == 2 (for "." entry) */
-      inc_nlink(inode);
-   } else {
-      return -ENOMEM;
-   }
-
-   root = d_alloc_root(inode);
-   if (!root) {
-      iput(inode);
-      return -ENOMEM;
-   }
-   sb->s_root = root;
-   return 0;
-}
-
+/* This is ugly, but preserves the userspace API for existing cpuset
+ * users. If someone tries to mount the "cpuset" filesystem, we
+ * silently switch it to mount "cgroup" instead */
 static int cpuset_get_sb(struct file_system_type *fs_type,
           int flags, const char *unused_dev_name,
           void *data, struct vfsmount *mnt)
 {
-   return get_sb_single(fs_type, flags, data, cpuset_fill_super, mnt);
+   struct file_system_type *cgroup_fs = get_fs_type("cgroup");
+   int ret = -ENODEV;
+   if (cgroup_fs) {
+      char mountopts[] =
+         "cpuset,noprefix,"
+         "release_agent=/sbin/cpuset_release_agent";
+      ret = cgroup_fs->get_sb(cgroup_fs, flags,
+                  unused_dev_name, mountopts, mnt);
+      put_filesystem(cgroup_fs);
+   }
+   return ret;
 }
 
 static struct file_system_type cpuset_fs_type = {
    .name = "cpuset",
    .get_sb = cpuset_get_sb,
-   .kill_sb = kill_litter_super,
-};
-
-/* struct cftype:
- *
- * The files in the cpuset filesystem mostly have a very simple read/write
- * handling, some common function will take care of it. Nevertheless some cases
- * (read tasks) are special and therefore I define this structure for every
- * kind of file.
- *
- *
- * When reading/writing to a file:
- *   - the cpuset to use in file->f_path.dentry->d_parent->d_fsdata
- *   - the 'cftype' of the file is file->f_path.dentry->d_fsdata
- */
-
-struct cftype {
-   char *name;
-   int private;
-   int (*open) (struct inode *inode, struct file *file);
-   ssize_t (*read) (struct file *file, char __user *buf, size_t nbytes,
-                     loff_t *ppos);
-   int (*write) (struct file *file, const char __user *buf, size_t nbytes,
-                     loff_t *ppos);
-   int (*release) (struct inode *inode, struct file *file);
 };
 
-static inline struct cpuset *__d_cs(struct dentry *dentry)
-{
-   return dentry->d_fsdata;
-}
-
-static inline struct cftype *__d_cft(struct dentry *dentry)
-{
-   return dentry->d_fsdata;
-}
-
-/*
- * Call with manage_mutex held.  Writes path of cpuset into buf.
- * Returns 0 on success, -errno on error.
- */
-
-static int cpuset_path(const struct cpuset *cs, char *buf, int buflen)
-{
-   char *start;
-
-   start = buf + buflen;
-
-   *--start = '\0';
-   for (;;) {
-      int len = cs->dentry->d_name.len;
-      if ((start -= len) < buf)
-         return -ENAMETOOLONG;
-      memcpy(start, cs->dentry->d_name.name, len);
-      cs = cs->parent;
-      if (!cs)
-         break;
-      if (!cs->parent)
-         continue;
-      if (--start < buf)
-         return -ENAMETOOLONG;
-      *start = '/';
-   }
-   memmove(buf, start, buf + buflen - start);
-   return 0;
-}
-
-/*
- * Notify userspace when a cpuset is released, by running
- * /sbin/cpuset_release_agent with the name of the cpuset (path
- * relative to the root of cpuset file system) as the argument.
- *
- * Most likely, this user command will try to rmdir this cpuset.
- *
- * This races with the possibility that some other task will be
- * attached to this cpuset before it is removed, or that some other
- * user task will 'mkdir' a child cpuset of this cpuset.  That's ok.
- * The presumed 'rmdir' will fail quietly if this cpuset is no longer
- * unused, and this cpuset will be reprieved from its death sentence,
- * to continue to serve a useful existence.  Next time it's released,
- * we will get notified again, if it still has 'notify_on_release' set.
- *
- * The final arg to call_usermodehelper() is 0, which means don't
- * wait.  The separate /sbin/cpuset_release_agent task is forked by
- * call_usermodehelper(), then control in this thread returns here,
- * without waiting for the release agent task.  We don't bother to
- * wait because the caller of this routine has no use for the exit
- * status of the /sbin/cpuset_release_agent task, so no sense holding
- * our caller up for that.
- *
- * When we had only one cpuset mutex, we had to call this
- * without holding it, to avoid deadlock when call_usermodehelper()
- * allocated memory.  With two locks, we could now call this while
- * holding manage_mutex, but we still don't, so as to minimize
- * the time manage_mutex is held.
- */
-
-static void cpuset_release_agent(const char *pathbuf)
-{
-   char *argv[3], *envp[3];
-   int i;
-
-   if (!pathbuf)
-      return;
-
-   i = 0;
-   argv[i++] = "/sbin/cpuset_release_agent";
-   argv[i++] = (char *)pathbuf;
-   argv[i] = NULL;
-
-   i = 0;
-   /* minimal command environment */
-   envp[i++] = "HOME=/";
-   envp[i++] = "PATH=/sbin:/bin:/usr/sbin:/usr/bin";
-   envp[i] = NULL;
-
-   call_usermodehelper(argv[0], argv, envp, UMH_WAIT_EXEC);
-   kfree(pathbuf);
-}
-
-/*
- * Either cs->count of using tasks transitioned to zero, or the
- * cs->children list of child cpusets just became empty.  If this
- * cs is notify_on_release() and now both the user count is zero and
- * the list of children is empty, prepare cpuset path in a kmalloc'd
- * buffer, to be returned via ppathbuf, so that the caller can invoke
- * cpuset_release_agent() with it later on, once manage_mutex is dropped.
- * Call here with manage_mutex held.
- *
- * This check_for_release() routine is responsible for kmalloc'ing
- * pathbuf.  The above cpuset_release_agent() is responsible for
- * kfree'ing pathbuf.  The caller of these routines is responsible
- * for providing a pathbuf pointer, initialized to NULL, then
- * calling check_for_release() with manage_mutex held and the address
- * of the pathbuf pointer, then dropping manage_mutex, then calling
- * cpuset_release_agent() with pathbuf, as set by check_for_release().
- */
-
-static void check_for_release(struct cpuset *cs, char **ppathbuf)
-{
-   if (notify_on_release(cs) && atomic_read(&cs->count) == 0 &&
-       list_empty(&cs->children)) {
-      char *buf;
-
-      buf = kmalloc(PAGE_SIZE, GFP_KERNEL);
-      if (!buf)
-         return;
-      if (cpuset_path(cs, buf, PAGE_SIZE) < 0)
-         kfree(buf);
-      else
-         *ppathbuf = buf;
-   }
-}
-
 /*
  * Return in *pmask the portion of a cpusets's cpus_allowed that
  * are online.  If none are online, walk up the cpuset hierarchy
@@ -581,26 +318,28 @@ static void guarantee_online_cpus(const struct cpuset *cs, cpumask_t *pmask)
 
 /*
  * Return in *pmask the portion of a cpusets's mems_allowed that
- * are online.  If none are online, walk up the cpuset hierarchy
- * until we find one that does have some online mems.  If we get
- * all the way to the top and still haven't found any online mems,
- * return node_online_map.
+ * are online, with memory.  If none are online with memory, walk
+ * up the cpuset hierarchy until we find one that does have some
+ * online mems.  If we get all the way to the top and still haven't
+ * found any online mems, return node_states[N_HIGH_MEMORY].
  *
  * One way or another, we guarantee to return some non-empty subset
- * of node_online_map.
+ * of node_states[N_HIGH_MEMORY].
  *
  * Call with callback_mutex held.
  */
 
 static void guarantee_online_mems(const struct cpuset *cs, nodemask_t *pmask)
 {
-   while (cs && !nodes_intersects(cs->mems_allowed, node_online_map))
+   while (cs && !nodes_intersects(cs->mems_allowed,
+               node_states[N_HIGH_MEMORY]))
       cs = cs->parent;
    if (cs)
-      nodes_and(*pmask, cs->mems_allowed, node_online_map);
+      nodes_and(*pmask, cs->mems_allowed,
+               node_states[N_HIGH_MEMORY]);
    else
-      *pmask = node_online_map;
-   BUG_ON(!nodes_intersects(*pmask, node_online_map));
+      *pmask = node_states[N_HIGH_MEMORY];
+   BUG_ON(!nodes_intersects(*pmask, node_states[N_HIGH_MEMORY]));
 }
 
 /**
@@ -651,20 +390,19 @@ void cpuset_update_task_memory_state(void)
    struct task_struct *tsk = current;
    struct cpuset *cs;
 
-   if (tsk->cpuset == &top_cpuset) {
+   if (task_cs(tsk) == &top_cpuset) {
       /* Don't need rcu for top_cpuset.  It's never freed. */
       my_cpusets_mem_gen = top_cpuset.mems_generation;
    } else {
       rcu_read_lock();
-      cs = rcu_dereference(tsk->cpuset);
-      my_cpusets_mem_gen = cs->mems_generation;
+      my_cpusets_mem_gen = task_cs(current)->mems_generation;
       rcu_read_unlock();
    }
 
    if (my_cpusets_mem_gen != tsk->cpuset_mems_generation) {
       mutex_lock(&callback_mutex);
       task_lock(tsk);
-      cs = tsk->cpuset;   /* Maybe changed when task not locked */
+      cs = task_cs(tsk); /* Maybe changed when task not locked */
       guarantee_online_mems(cs, &tsk->mems_allowed);
       tsk->cpuset_mems_generation = cs->mems_generation;
       if (is_spread_page(cs))
@@ -719,11 +457,12 @@ static int is_cpuset_subset(const struct cpuset *p, const struct cpuset *q)
 
 static int validate_change(const struct cpuset *cur, const struct cpuset *trial)
 {
+   struct cgroup *cont;
    struct cpuset *c, *par;
 
    /* Each of our child cpusets must be a subset of us */
-   list_for_each_entry(c, &cur->children, sibling) {
-      if (!is_cpuset_subset(c, trial))
+   list_for_each_entry(cont, &cur->css.cgroup->children, sibling) {
+      if (!is_cpuset_subset(cgroup_cs(cont), trial))
          return -EBUSY;
    }
 
@@ -738,7 +477,8 @@ static int validate_change(const struct cpuset *cur, const struct cpuset *trial)
       return -EACCES;
 
    /* If either I or some sibling (!= me) is exclusive, we can't overlap */
-   list_for_each_entry(c, &par->children, sibling) {
+   list_for_each_entry(cont, &par->css.cgroup->children, sibling) {
+      c = cgroup_cs(cont);
       if ((is_cpu_exclusive(trial) || is_cpu_exclusive(c)) &&
           c != cur &&
           cpus_intersects(trial->cpus_allowed, c->cpus_allowed))
@@ -749,62 +489,247 @@ static int validate_change(const struct cpuset *cur, const struct cpuset *trial)
          return -EINVAL;
    }
 
+   /* Cpusets with tasks can't have empty cpus_allowed or mems_allowed */
+   if (cgroup_task_count(cur->css.cgroup)) {
+      if (cpus_empty(trial->cpus_allowed) ||
+          nodes_empty(trial->mems_allowed)) {
+         return -ENOSPC;
+      }
+   }
+
    return 0;
 }
 
 /*
- * For a given cpuset cur, partition the system as follows
- * a. All cpus in the parent cpuset's cpus_allowed that are not part of any
- *    exclusive child cpusets
- * b. All cpus in the current cpuset's cpus_allowed that are not part of any
- *    exclusive child cpusets
- * Build these two partitions by calling partition_sched_domains
- *
- * Call with manage_mutex held.  May nest a call to the
- * lock_cpu_hotplug()/unlock_cpu_hotplug() pair.
- * Must not be called holding callback_mutex, because we must
- * not call lock_cpu_hotplug() while holding callback_mutex.
+ * Helper routine for rebuild_sched_domains().
+ * Do cpusets a, b have overlapping cpus_allowed masks?
  */
 
-static void update_cpu_domains(struct cpuset *cur)
+static int cpusets_overlap(struct cpuset *a, struct cpuset *b)
 {
-   struct cpuset *c, *par = cur->parent;
-   cpumask_t pspan, cspan;
+   return cpus_intersects(a->cpus_allowed, b->cpus_allowed);
+}
 
-   if (par == NULL || cpus_empty(cur->cpus_allowed))
-      return;
+/*
+ * rebuild_sched_domains()
+ *
+ * If the flag 'sched_load_balance' of any cpuset with non-empty
+ * 'cpus' changes, or if the 'cpus' allowed changes in any cpuset
+ * which has that flag enabled, or if any cpuset with a non-empty
+ * 'cpus' is removed, then call this routine to rebuild the
+ * scheduler's dynamic sched domains.
+ *
+ * This routine builds a partial partition of the systems CPUs
+ * (the set of non-overlappping cpumask_t's in the array 'part'
+ * below), and passes that partial partition to the kernel/sched.c
+ * partition_sched_domains() routine, which will rebuild the
+ * schedulers load balancing domains (sched domains) as specified
+ * by that partial partition.  A 'partial partition' is a set of
+ * non-overlapping subsets whose union is a subset of that set.
+ *
+ * See "What is sched_load_balance" in Documentation/cpusets.txt
+ * for a background explanation of this.
+ *
+ * Does not return errors, on the theory that the callers of this
+ * routine would rather not worry about failures to rebuild sched
+ * domains when operating in the severe memory shortage situations
+ * that could cause allocation failures below.
+ *
+ * Call with cgroup_mutex held.  May take callback_mutex during
+ * call due to the kfifo_alloc() and kmalloc() calls.  May nest
+ * a call to the lock_cpu_hotplug()/unlock_cpu_hotplug() pair.
+ * Must not be called holding callback_mutex, because we must not
+ * call lock_cpu_hotplug() while holding callback_mutex.  Elsewhere
+ * the kernel nests callback_mutex inside lock_cpu_hotplug() calls.
+ * So the reverse nesting would risk an ABBA deadlock.
+ *
+ * The three key local variables below are:
+ *    q  - a kfifo queue of cpuset pointers, used to implement a
+ *      top-down scan of all cpusets.  This scan loads a pointer
+ *      to each cpuset marked is_sched_load_balance into the
+ *      array 'csa'.  For our purposes, rebuilding the schedulers
+ *      sched domains, we can ignore !is_sched_load_balance cpusets.
+ *  csa  - (for CpuSet Array) Array of pointers to all the cpusets
+ *      that need to be load balanced, for convenient iterative
+ *      access by the subsequent code that finds the best partition,
+ *      i.e the set of domains (subsets) of CPUs such that the
+ *      cpus_allowed of every cpuset marked is_sched_load_balance
+ *      is a subset of one of these domains, while there are as
+ *      many such domains as possible, each as small as possible.
+ * doms  - Conversion of 'csa' to an array of cpumasks, for passing to
+ *      the kernel/sched.c routine partition_sched_domains() in a
+ *      convenient format, that can be easily compared to the prior
+ *      value to determine what partition elements (sched domains)
+ *      were changed (added or removed.)
+ *
+ * Finding the best partition (set of domains):
+ *   The triple nested loops below over i, j, k scan over the
+ *   load balanced cpusets (using the array of cpuset pointers in
+ *   csa[]) looking for pairs of cpusets that have overlapping
+ *   cpus_allowed, but which don't have the same 'pn' partition
+ *   number and gives them in the same partition number.  It keeps
+ *   looping on the 'restart' label until it can no longer find
+ *   any such pairs.
+ *
+ *   The union of the cpus_allowed masks from the set of
+ *   all cpusets having the same 'pn' value then form the one
+ *   element of the partition (one sched domain) to be passed to
+ *   partition_sched_domains().
+ */
 
-   /*
-    * Get all cpus from parent's cpus_allowed not part of exclusive
-    * children
-    */
-   pspan = par->cpus_allowed;
-   list_for_each_entry(c, &par->children, sibling) {
-      if (is_cpu_exclusive(c))
-         cpus_andnot(pspan, pspan, c->cpus_allowed);
+static void rebuild_sched_domains(void)
+{
+   struct kfifo *q;   /* queue of cpusets to be scanned */
+   struct cpuset *cp;   /* scans q */
+   struct cpuset **csa;   /* array of all cpuset ptrs */
+   int csn;      /* how many cpuset ptrs in csa so far */
+   int i, j, k;      /* indices for partition finding loops */
+   cpumask_t *doms;   /* resulting partition; i.e. sched domains */
+   int ndoms;      /* number of sched domains in result */
+   int nslot;      /* next empty doms[] cpumask_t slot */
+
+   q = NULL;
+   csa = NULL;
+   doms = NULL;
+
+   /* Special case for the 99% of systems with one, full, sched domain */
+   if (is_sched_load_balance(&top_cpuset)) {
+      ndoms = 1;
+      doms = kmalloc(sizeof(cpumask_t), GFP_KERNEL);
+      if (!doms)
+         goto rebuild;
+      *doms = top_cpuset.cpus_allowed;
+      goto rebuild;
    }
-   if (!is_cpu_exclusive(cur)) {
-      cpus_or(pspan, pspan, cur->cpus_allowed);
-      if (cpus_equal(pspan, cur->cpus_allowed))
-         return;
-      cspan = CPU_MASK_NONE;
-   } else {
-      if (cpus_empty(pspan))
-         return;
-      cspan = cur->cpus_allowed;
-      /*
-       * Get all cpus from current cpuset's cpus_allowed not part
-       * of exclusive children
-       */
-      list_for_each_entry(c, &cur->children, sibling) {
-         if (is_cpu_exclusive(c))
-            cpus_andnot(cspan, cspan, c->cpus_allowed);
+
+   q = kfifo_alloc(number_of_cpusets * sizeof(cp), GFP_KERNEL, NULL);
+   if (IS_ERR(q))
+      goto done;
+   csa = kmalloc(number_of_cpusets * sizeof(cp), GFP_KERNEL);
+   if (!csa)
+      goto done;
+   csn = 0;
+
+   cp = &top_cpuset;
+   __kfifo_put(q, (void *)&cp, sizeof(cp));
+   while (__kfifo_get(q, (void *)&cp, sizeof(cp))) {
+      struct cgroup *cont;
+      struct cpuset *child;   /* scans child cpusets of cp */
+      if (is_sched_load_balance(cp))
+         csa[csn++] = cp;
+      list_for_each_entry(cont, &cp->css.cgroup->children, sibling) {
+         child = cgroup_cs(cont);
+         __kfifo_put(q, (void *)&child, sizeof(cp));
+      }
+     }
+
+   for (i = 0; i < csn; i++)
+      csa[i]->pn = i;
+   ndoms = csn;
+
+restart:
+   /* Find the best partition (set of sched domains) */
+   for (i = 0; i < csn; i++) {
+      struct cpuset *a = csa[i];
+      int apn = a->pn;
+
+      for (j = 0; j < csn; j++) {
+         struct cpuset *b = csa[j];
+         int bpn = b->pn;
+
+         if (apn != bpn && cpusets_overlap(a, b)) {
+            for (k = 0; k < csn; k++) {
+               struct cpuset *c = csa[k];
+
+               if (c->pn == bpn)
+                  c->pn = apn;
+            }
+            ndoms--;   /* one less element */
+            goto restart;
+         }
+      }
+   }
+
+   /* Convert <csn, csa> to <ndoms, doms> */
+   doms = kmalloc(ndoms * sizeof(cpumask_t), GFP_KERNEL);
+   if (!doms)
+      goto rebuild;
+
+   for (nslot = 0, i = 0; i < csn; i++) {
+      struct cpuset *a = csa[i];
+      int apn = a->pn;
+
+      if (apn >= 0) {
+         cpumask_t *dp = doms + nslot;
+
+         if (nslot == ndoms) {
+            static int warnings = 10;
+            if (warnings) {
+               printk(KERN_WARNING
+                "rebuild_sched_domains confused:"
+                 " nslot %d, ndoms %d, csn %d, i %d,"
+                 " apn %d\n",
+                 nslot, ndoms, csn, i, apn);
+               warnings--;
+            }
+            continue;
+         }
+
+         cpus_clear(*dp);
+         for (j = i; j < csn; j++) {
+            struct cpuset *b = csa[j];
+
+            if (apn == b->pn) {
+               cpus_or(*dp, *dp, b->cpus_allowed);
+               b->pn = -1;
+            }
+         }
+         nslot++;
       }
    }
+   BUG_ON(nslot != ndoms);
 
+rebuild:
+   /* Have scheduler rebuild sched domains */
    lock_cpu_hotplug();
-   partition_sched_domains(&pspan, &cspan);
+   partition_sched_domains(ndoms, doms);
    unlock_cpu_hotplug();
+
+done:
+   if (q && !IS_ERR(q))
+      kfifo_free(q);
+   kfree(csa);
+   /* Don't kfree(doms) -- partition_sched_domains() does that. */
+}
+
+static inline int started_after_time(struct task_struct *t1,
+                 struct timespec *time,
+                 struct task_struct *t2)
+{
+   int start_diff = timespec_compare(&t1->start_time, time);
+   if (start_diff > 0) {
+      return 1;
+   } else if (start_diff < 0) {
+      return 0;
+   } else {
+      /*
+       * Arbitrarily, if two processes started at the same
+       * time, we'll say that the lower pointer value
+       * started first. Note that t2 may have exited by now
+       * so this may not be a valid pointer any longer, but
+       * that's fine - it still serves to distinguish
+       * between two tasks started (effectively)
+       * simultaneously.
+       */
+      return t1 > t2;
+   }
+}
+
+static inline int started_after(void *p1, void *p2)
+{
+   struct task_struct *t1 = p1;
+   struct task_struct *t2 = p2;
+   return started_after_time(t1, &t2->start_time, t2);
 }
 
 /*
@@ -814,7 +739,15 @@ static void update_cpu_domains(struct cpuset *cur)
 static int update_cpumask(struct cpuset *cs, char *buf)
 {
    struct cpuset trialcs;
-   int retval, cpus_unchanged;
+   int retval, i;
+   int is_load_balanced;
+   struct cgroup_iter it;
+   struct cgroup *cgrp = cs->css.cgroup;
+   struct task_struct *p, *dropped;
+   /* Never dereference latest_task, since it's not refcounted */
+   struct task_struct *latest_task = NULL;
+   struct ptr_heap heap;
+   struct timespec latest_time = { 0, 0 };
 
    /* top_cpuset.cpus_allowed tracks cpu_online_map; it's read-only */
    if (cs == &top_cpuset)
@@ -823,11 +756,13 @@ static int update_cpumask(struct cpuset *cs, char *buf)
    trialcs = *cs;
 
    /*
-    * We allow a cpuset's cpus_allowed to be empty; if it has attached
-    * tasks, we'll catch it later when we validate the change and return
-    * -ENOSPC.
+    * An empty cpus_allowed is ok iff there are no tasks in the cpuset.
+    * Since cpulist_parse() fails on an empty mask, we special case
+    * that parsing.  The validate_change() call ensures that cpusets
+    * with tasks have cpus.
     */
-   if (!buf[0] || (buf[0] == '\n' && !buf[1])) {
+   buf = strstrip(buf);
+   if (!*buf) {
       cpus_clear(trialcs.cpus_allowed);
    } else {
       retval = cpulist_parse(buf, trialcs.cpus_allowed);
@@ -835,18 +770,79 @@ static int update_cpumask(struct cpuset *cs, char *buf)
          return retval;
    }
    cpus_and(trialcs.cpus_allowed, trialcs.cpus_allowed, cpu_online_map);
-   /* cpus_allowed cannot be empty for a cpuset with attached tasks. */
-   if (atomic_read(&cs->count) && cpus_empty(trialcs.cpus_allowed))
-      return -ENOSPC;
    retval = validate_change(cs, &trialcs);
    if (retval < 0)
       return retval;
-   cpus_unchanged = cpus_equal(cs->cpus_allowed, trialcs.cpus_allowed);
+
+   /* Nothing to do if the cpus didn't change */
+   if (cpus_equal(cs->cpus_allowed, trialcs.cpus_allowed))
+      return 0;
+   retval = heap_init(&heap, PAGE_SIZE, GFP_KERNEL, &started_after);
+   if (retval)
+      return retval;
+
+   is_load_balanced = is_sched_load_balance(&trialcs);
+
    mutex_lock(&callback_mutex);
    cs->cpus_allowed = trialcs.cpus_allowed;
    mutex_unlock(&callback_mutex);
-   if (is_cpu_exclusive(cs) && !cpus_unchanged)
-      update_cpu_domains(cs);
+
+ again:
+   /*
+    * Scan tasks in the cpuset, and update the cpumasks of any
+    * that need an update. Since we can't call set_cpus_allowed()
+    * while holding tasklist_lock, gather tasks to be processed
+    * in a heap structure. If the statically-sized heap fills up,
+    * overflow tasks that started later, and in future iterations
+    * only consider tasks that started after the latest task in
+    * the previous pass. This guarantees forward progress and
+    * that we don't miss any tasks
+    */
+   heap.size = 0;
+   cgroup_iter_start(cgrp, &it);
+   while ((p = cgroup_iter_next(cgrp, &it))) {
+      /* Only affect tasks that don't have the right cpus_allowed */
+      if (cpus_equal(p->cpus_allowed, cs->cpus_allowed))
+         continue;
+      /*
+       * Only process tasks that started after the last task
+       * we processed
+       */
+      if (!started_after_time(p, &latest_time, latest_task))
+         continue;
+      dropped = heap_insert(&heap, p);
+      if (dropped == NULL) {
+         get_task_struct(p);
+      } else if (dropped != p) {
+         get_task_struct(p);
+         put_task_struct(dropped);
+      }
+   }
+   cgroup_iter_end(cgrp, &it);
+   if (heap.size) {
+      for (i = 0; i < heap.size; i++) {
+         struct task_struct *p = heap.ptrs[i];
+         if (i == 0) {
+            latest_time = p->start_time;
+            latest_task = p;
+         }
+         set_cpus_allowed(p, cs->cpus_allowed);
+         put_task_struct(p);
+      }
+      /*
+       * If we had to process any tasks at all, scan again
+       * in case some of them were in the middle of forking
+       * children that didn't notice the new cpumask
+       * restriction.  Not the most efficient way to do it,
+       * but it avoids having to take callback_mutex in the
+       * fork path
+       */
+      goto again;
+   }
+   heap_free(&heap);
+   if (is_load_balanced)
+      rebuild_sched_domains();
+
    return 0;
 }
 
@@ -895,7 +891,7 @@ static void cpuset_migrate_mm(struct mm_struct *mm, const nodemask_t *from,
    do_migrate_pages(mm, from, to, MPOL_MF_MOVE_ALL);
 
    mutex_lock(&callback_mutex);
-   guarantee_online_mems(tsk->cpuset, &tsk->mems_allowed);
+   guarantee_online_mems(task_cs(tsk),&tsk->mems_allowed);
    mutex_unlock(&callback_mutex);
 }
 
@@ -913,46 +909,50 @@ static void cpuset_migrate_mm(struct mm_struct *mm, const nodemask_t *from,
  * their mempolicies to the cpusets new mems_allowed.
  */
 
+static void *cpuset_being_rebound;
+
 static int update_nodemask(struct cpuset *cs, char *buf)
 {
    struct cpuset trialcs;
    nodemask_t oldmem;
-   struct task_struct *g, *p;
+   struct task_struct *p;
    struct mm_struct **mmarray;
    int i, n, ntasks;
    int migrate;
    int fudge;
    int retval;
+   struct cgroup_iter it;
 
-   /* top_cpuset.mems_allowed tracks node_online_map; it's read-only */
+   /*
+    * top_cpuset.mems_allowed tracks node_stats[N_HIGH_MEMORY];
+    * it's read-only
+    */
    if (cs == &top_cpuset)
       return -EACCES;
 
    trialcs = *cs;
 
    /*
-    * We allow a cpuset's mems_allowed to be empty; if it has attached
-    * tasks, we'll catch it later when we validate the change and return
-    * -ENOSPC.
+    * An empty mems_allowed is ok iff there are no tasks in the cpuset.
+    * Since nodelist_parse() fails on an empty mask, we special case
+    * that parsing.  The validate_change() call ensures that cpusets
+    * with tasks have memory.
     */
-   if (!buf[0] || (buf[0] == '\n' && !buf[1])) {
+   buf = strstrip(buf);
+   if (!*buf) {
       nodes_clear(trialcs.mems_allowed);
    } else {
       retval = nodelist_parse(buf, trialcs.mems_allowed);
       if (retval < 0)
          goto done;
    }
-   nodes_and(trialcs.mems_allowed, trialcs.mems_allowed, node_online_map);
+   nodes_and(trialcs.mems_allowed, trialcs.mems_allowed,
+                  node_states[N_HIGH_MEMORY]);
    oldmem = cs->mems_allowed;
    if (nodes_equal(oldmem, trialcs.mems_allowed)) {
       retval = 0;      /* Too easy - nothing to do */
       goto done;
    }
-   /* mems_allowed cannot be empty for a cpuset with attached tasks. */
-   if (atomic_read(&cs->count) && nodes_empty(trialcs.mems_allowed)) {
-      retval = -ENOSPC;
-      goto done;
-   }
    retval = validate_change(cs, &trialcs);
    if (retval < 0)
       goto done;
@@ -962,7 +962,7 @@ static int update_nodemask(struct cpuset *cs, char *buf)
    cs->mems_generation = cpuset_mems_generation++;
    mutex_unlock(&callback_mutex);
 
-   set_cpuset_being_rebound(cs);      /* causes mpol_copy() rebind */
+   cpuset_being_rebound = cs;      /* causes mpol_copy() rebind */
 
    fudge = 10;            /* spare mmarray[] slots */
    fudge += cpus_weight(cs->cpus_allowed);   /* imagine one fork-bomb/cpu */
@@ -976,13 +976,13 @@ static int update_nodemask(struct cpuset *cs, char *buf)
     * enough mmarray[] w/o using GFP_ATOMIC.
     */
    while (1) {
-      ntasks = atomic_read(&cs->count);   /* guess */
+      ntasks = cgroup_task_count(cs->css.cgroup);  /* guess */
       ntasks += fudge;
       mmarray = kmalloc(ntasks * sizeof(*mmarray), GFP_KERNEL);
       if (!mmarray)
          goto done;
       read_lock(&tasklist_lock);      /* block fork */
-      if (atomic_read(&cs->count) <= ntasks)
+      if (cgroup_task_count(cs->css.cgroup) <= ntasks)
          break;            /* got enough */
       read_unlock(&tasklist_lock);      /* try again */
       kfree(mmarray);
@@ -991,21 +991,21 @@ static int update_nodemask(struct cpuset *cs, char *buf)
    n = 0;
 
    /* Load up mmarray[] with mm reference for each task in cpuset. */
-   do_each_thread(g, p) {
+   cgroup_iter_start(cs->css.cgroup, &it);
+   while ((p = cgroup_iter_next(cs->css.cgroup, &it))) {
       struct mm_struct *mm;
 
       if (n >= ntasks) {
          printk(KERN_WARNING
             "Cpuset mempolicy rebind incomplete.\n");
-         continue;
+         break;
       }
-      if (p->cpuset != cs)
-         continue;
       mm = get_task_mm(p);
       if (!mm)
          continue;
       mmarray[n++] = mm;
-   } while_each_thread(g, p);
+   }
+   cgroup_iter_end(cs->css.cgroup, &it);
    read_unlock(&tasklist_lock);
 
    /*
@@ -1033,12 +1033,17 @@ static int update_nodemask(struct cpuset *cs, char *buf)
 
    /* We're done rebinding vma's to this cpusets new mems_allowed. */
    kfree(mmarray);
-   set_cpuset_being_rebound(NULL);
+   cpuset_being_rebound = NULL;
    retval = 0;
 done:
    return retval;
 }
 
+int current_cpuset_is_being_rebound(void)
+{
+   return task_cs(current) == cpuset_being_rebound;
+}
+
 /*
  * Call with manage_mutex held.
  */
@@ -1055,6 +1060,7 @@ static int update_memory_pressure_enabled(struct cpuset *cs, char *buf)
 /*
  * update_flag - read a 0 or a 1 in a file and update associated flag
  * bit:   the bit to update (CS_CPU_EXCLUSIVE, CS_MEM_EXCLUSIVE,
+ *            CS_SCHED_LOAD_BALANCE,
  *            CS_NOTIFY_ON_RELEASE, CS_MEMORY_MIGRATE,
  *            CS_SPREAD_PAGE, CS_SPREAD_SLAB)
  * cs:   the cpuset to update
@@ -1067,7 +1073,8 @@ static int update_flag(cpuset_flagbits_t bit, struct cpuset *cs, char *buf)
 {
    int turning_on;
    struct cpuset trialcs;
-   int err, cpu_exclusive_changed;
+   int err;
+   int cpus_nonempty, balance_flag_changed;
 
    turning_on = (simple_strtoul(buf, NULL, 10) != 0);
 
@@ -1080,14 +1087,18 @@ static int update_flag(cpuset_flagbits_t bit, struct cpuset *cs, char *buf)
    err = validate_change(cs, &trialcs);
    if (err < 0)
       return err;
-   cpu_exclusive_changed =
-      (is_cpu_exclusive(cs) != is_cpu_exclusive(&trialcs));
+
+   cpus_nonempty = !cpus_empty(trialcs.cpus_allowed);
+   balance_flag_changed = (is_sched_load_balance(cs) !=
+                is_sched_load_balance(&trialcs));
+
    mutex_lock(&callback_mutex);
    cs->flags = trialcs.flags;
    mutex_unlock(&callback_mutex);
 
-   if (cpu_exclusive_changed)
-                update_cpu_domains(cs);
+   if (cpus_nonempty && balance_flag_changed)
+      rebuild_sched_domains();
+
    return 0;
 }
 
@@ -1189,85 +1200,34 @@ static int fmeter_getrate(struct fmeter *fmp)
    return val;
 }
 
-/*
- * Attack task specified by pid in 'pidbuf' to cpuset 'cs', possibly
- * writing the path of the old cpuset in 'ppathbuf' if it needs to be
- * notified on release.
- *
- * Call holding manage_mutex.  May take callback_mutex and task_lock of
- * the task 'pid' during call.
- */
-
-static int attach_task(struct cpuset *cs, char *pidbuf, char **ppathbuf)
+static int cpuset_can_attach(struct cgroup_subsys *ss,
+              struct cgroup *cont, struct task_struct *tsk)
 {
-   pid_t pid;
-   struct task_struct *tsk;
-   struct cpuset *oldcs;
-   cpumask_t cpus;
-   nodemask_t from, to;
-   struct mm_struct *mm;
-   int retval;
+   struct cpuset *cs = cgroup_cs(cont);
 
-   if (sscanf(pidbuf, "%d", &pid) != 1)
-      return -EIO;
    if (cpus_empty(cs->cpus_allowed) || nodes_empty(cs->mems_allowed))
       return -ENOSPC;
 
-   if (pid) {
-      read_lock(&tasklist_lock);
-
-      tsk = find_task_by_pid(pid);
-      if (!tsk || tsk->flags & PF_EXITING) {
-         read_unlock(&tasklist_lock);
-         return -ESRCH;
-      }
-
-      get_task_struct(tsk);
-      read_unlock(&tasklist_lock);
-
-      if ((current->euid) && (current->euid != tsk->uid)
-          && (current->euid != tsk->suid)) {
-         put_task_struct(tsk);
-         return -EACCES;
-      }
-   } else {
-      tsk = current;
-      get_task_struct(tsk);
-   }
+   return security_task_setscheduler(tsk, 0, NULL);
+}
 
-   retval = security_task_setscheduler(tsk, 0, NULL);
-   if (retval) {
-      put_task_struct(tsk);
-      return retval;
-   }
+static void cpuset_attach(struct cgroup_subsys *ss,
+           struct cgroup *cont, struct cgroup *oldcont,
+           struct task_struct *tsk)
+{
+   cpumask_t cpus;
+   nodemask_t from, to;
+   struct mm_struct *mm;
+   struct cpuset *cs = cgroup_cs(cont);
+   struct cpuset *oldcs = cgroup_cs(oldcont);
 
    mutex_lock(&callback_mutex);
-
-   task_lock(tsk);
-   oldcs = tsk->cpuset;
-   /*
-    * After getting 'oldcs' cpuset ptr, be sure still not exiting.
-    * If 'oldcs' might be the top_cpuset due to the_top_cpuset_hack
-    * then fail this attach_task(), to avoid breaking top_cpuset.count.
-    */
-   if (tsk->flags & PF_EXITING) {
-      task_unlock(tsk);
-      mutex_unlock(&callback_mutex);
-      put_task_struct(tsk);
-      return -ESRCH;
-   }
-   atomic_inc(&cs->count);
-   rcu_assign_pointer(tsk->cpuset, cs);
-   task_unlock(tsk);
-
    guarantee_online_cpus(cs, &cpus);
    set_cpus_allowed(tsk, cpus);
+   mutex_unlock(&callback_mutex);
 
    from = oldcs->mems_allowed;
    to = cs->mems_allowed;
-
-   mutex_unlock(&callback_mutex);
-
    mm = get_task_mm(tsk);
    if (mm) {
       mpol_rebind_mm(mm, &to);
@@ -1276,44 +1236,36 @@ static int attach_task(struct cpuset *cs, char *pidbuf, char **ppathbuf)
       mmput(mm);
    }
 
-   put_task_struct(tsk);
-   synchronize_rcu();
-   if (atomic_dec_and_test(&oldcs->count))
-      check_for_release(oldcs, ppathbuf);
-   return 0;
 }
 
 /* The various types of files and directories in a cpuset file system */
 
 typedef enum {
-   FILE_ROOT,
-   FILE_DIR,
    FILE_MEMORY_MIGRATE,
    FILE_CPULIST,
    FILE_MEMLIST,
    FILE_CPU_EXCLUSIVE,
    FILE_MEM_EXCLUSIVE,
-   FILE_NOTIFY_ON_RELEASE,
+   FILE_SCHED_LOAD_BALANCE,
    FILE_MEMORY_PRESSURE_ENABLED,
    FILE_MEMORY_PRESSURE,
    FILE_SPREAD_PAGE,
    FILE_SPREAD_SLAB,
-   FILE_TASKLIST,
 } cpuset_filetype_t;
 
-static ssize_t cpuset_common_file_write(struct file *file,
+static ssize_t cpuset_common_file_write(struct cgroup *cont,
+               struct cftype *cft,
+               struct file *file,
                const char __user *userbuf,
                size_t nbytes, loff_t *unused_ppos)
 {
-   struct cpuset *cs = __d_cs(file->f_path.dentry->d_parent);
-   struct cftype *cft = __d_cft(file->f_path.dentry);
+   struct cpuset *cs = cgroup_cs(cont);
    cpuset_filetype_t type = cft->private;
    char *buffer;
-   char *pathbuf = NULL;
    int retval = 0;
 
    /* Crude upper limit on largest legitimate cpulist user might write. */
-   if (nbytes > 100 + 6 * max(NR_CPUS, MAX_NUMNODES))
+   if (nbytes > 100U + 6 * max(NR_CPUS, MAX_NUMNODES))
       return -E2BIG;
 
    /* +1 for nul-terminator */
@@ -1326,9 +1278,9 @@ static ssize_t cpuset_common_file_write(struct file *file,
    }
    buffer[nbytes] = 0;   /* nul-terminate */
 
-   mutex_lock(&manage_mutex);
+   cgroup_lock();
 
-   if (is_removed(cs)) {
+   if (cgroup_is_removed(cont)) {
       retval = -ENODEV;
       goto out2;
    }
@@ -1346,8 +1298,8 @@ static ssize_t cpuset_common_file_write(struct file *file,
    case FILE_MEM_EXCLUSIVE:
       retval = update_flag(CS_MEM_EXCLUSIVE, cs, buffer);
       break;
-   case FILE_NOTIFY_ON_RELEASE:
-      retval = update_flag(CS_NOTIFY_ON_RELEASE, cs, buffer);
+   case FILE_SCHED_LOAD_BALANCE:
+      retval = update_flag(CS_SCHED_LOAD_BALANCE, cs, buffer);
       break;
    case FILE_MEMORY_MIGRATE:
       retval = update_flag(CS_MEMORY_MIGRATE, cs, buffer);
@@ -1366,9 +1318,6 @@ static ssize_t cpuset_common_file_write(struct file *file,
       retval = update_flag(CS_SPREAD_SLAB, cs, buffer);
       cs->mems_generation = cpuset_mems_generation++;
       break;
-   case FILE_TASKLIST:
-      retval = attach_task(cs, buffer, &pathbuf);
-      break;
    default:
       retval = -EINVAL;
       goto out2;
@@ -1377,30 +1326,12 @@ static ssize_t cpuset_common_file_write(struct file *file,
    if (retval == 0)
       retval = nbytes;
 out2:
-   mutex_unlock(&manage_mutex);
-   cpuset_release_agent(pathbuf);
+   cgroup_unlock();
 out1:
    kfree(buffer);
    return retval;
 }
 
-static ssize_t cpuset_file_write(struct file *file, const char __user *buf,
-                  size_t nbytes, loff_t *ppos)
-{
-   ssize_t retval = 0;
-   struct cftype *cft = __d_cft(file->f_path.dentry);
-   if (!cft)
-      return -ENODEV;
-
-   /* special function ? */
-   if (cft->write)
-      retval = cft->write(file, buf, nbytes, ppos);
-   else
-      retval = cpuset_common_file_write(file, buf, nbytes, ppos);
-
-   return retval;
-}
-
 /*
  * These ascii lists should be read in a single call, by using a user
  * buffer large enough to hold the entire map.  If read in smaller
@@ -1435,17 +1366,19 @@ static int cpuset_sprintf_memlist(char *page, struct cpuset *cs)
    return nodelist_scnprintf(page, PAGE_SIZE, mask);
 }
 
-static ssize_t cpuset_common_file_read(struct file *file, char __user *buf,
-            size_t nbytes, loff_t *ppos)
+static ssize_t cpuset_common_file_read(struct cgroup *cont,
+                   struct cftype *cft,
+                   struct file *file,
+                   char __user *buf,
+                   size_t nbytes, loff_t *ppos)
 {
-   struct cftype *cft = __d_cft(file->f_path.dentry);
-   struct cpuset *cs = __d_cs(file->f_path.dentry->d_parent);
+   struct cpuset *cs = cgroup_cs(cont);
    cpuset_filetype_t type = cft->private;
    char *page;
    ssize_t retval = 0;
    char *s;
 
-   if (!(page = (char *)__get_free_page(GFP_KERNEL)))
+   if (!(page = (char *)__get_free_page(GFP_TEMPORARY)))
       return -ENOMEM;
 
    s = page;
@@ -1463,8 +1396,8 @@ static ssize_t cpuset_common_file_read(struct file *file, char __user *buf,
    case FILE_MEM_EXCLUSIVE:
       *s++ = is_mem_exclusive(cs) ? '1' : '0';
       break;
-   case FILE_NOTIFY_ON_RELEASE:
-      *s++ = notify_on_release(cs) ? '1' : '0';
+   case FILE_SCHED_LOAD_BALANCE:
+      *s++ = is_sched_load_balance(cs) ? '1' : '0';
       break;
    case FILE_MEMORY_MIGRATE:
       *s++ = is_memory_migrate(cs) ? '1' : '0';
@@ -1493,390 +1426,150 @@ out:
    return retval;
 }
 
-static ssize_t cpuset_file_read(struct file *file, char __user *buf, size_t nbytes,
-                        loff_t *ppos)
-{
-   ssize_t retval = 0;
-   struct cftype *cft = __d_cft(file->f_path.dentry);
-   if (!cft)
-      return -ENODEV;
 
-   /* special function ? */
-   if (cft->read)
-      retval = cft->read(file, buf, nbytes, ppos);
-   else
-      retval = cpuset_common_file_read(file, buf, nbytes, ppos);
 
-   return retval;
-}
 
-static int cpuset_file_open(struct inode *inode, struct file *file)
-{
-   int err;
-   struct cftype *cft;
-
-   err = generic_file_open(inode, file);
-   if (err)
-      return err;
-
-   cft = __d_cft(file->f_path.dentry);
-   if (!cft)
-      return -ENODEV;
-   if (cft->open)
-      err = cft->open(inode, file);
-   else
-      err = 0;
-
-   return err;
-}
-
-static int cpuset_file_release(struct inode *inode, struct file *file)
-{
-   struct cftype *cft = __d_cft(file->f_path.dentry);
-   if (cft->release)
-      return cft->release(inode, file);
-   return 0;
-}
-
-/*
- * cpuset_rename - Only allow simple rename of directories in place.
- */
-static int cpuset_rename(struct inode *old_dir, struct dentry *old_dentry,
-                  struct inode *new_dir, struct dentry *new_dentry)
-{
-   if (!S_ISDIR(old_dentry->d_inode->i_mode))
-      return -ENOTDIR;
-   if (new_dentry->d_inode)
-      return -EEXIST;
-   if (old_dir != new_dir)
-      return -EIO;
-   return simple_rename(old_dir, old_dentry, new_dir, new_dentry);
-}
-
-static const struct file_operations cpuset_file_operations = {
-   .read = cpuset_file_read,
-   .write = cpuset_file_write,
-   .llseek = generic_file_llseek,
-   .open = cpuset_file_open,
-   .release = cpuset_file_release,
-};
-
-static const struct inode_operations cpuset_dir_inode_operations = {
-   .lookup = simple_lookup,
-   .mkdir = cpuset_mkdir,
-   .rmdir = cpuset_rmdir,
-   .rename = cpuset_rename,
-};
-
-static int cpuset_create_file(struct dentry *dentry, int mode)
-{
-   struct inode *inode;
-
-   if (!dentry)
-      return -ENOENT;
-   if (dentry->d_inode)
-      return -EEXIST;
-
-   inode = cpuset_new_inode(mode);
-   if (!inode)
-      return -ENOMEM;
-
-   if (S_ISDIR(mode)) {
-      inode->i_op = &cpuset_dir_inode_operations;
-      inode->i_fop = &simple_dir_operations;
-
-      /* start off with i_nlink == 2 (for "." entry) */
-      inc_nlink(inode);
-   } else if (S_ISREG(mode)) {
-      inode->i_size = 0;
-      inode->i_fop = &cpuset_file_operations;
-   }
-
-   d_instantiate(dentry, inode);
-   dget(dentry);   /* Extra count - pin the dentry in core */
-   return 0;
-}
-
-/*
- *   cpuset_create_dir - create a directory for an object.
- *   cs:   the cpuset we create the directory for.
- *      It must have a valid ->parent field
- *      And we are going to fill its ->dentry field.
- *   name:   The name to give to the cpuset directory. Will be copied.
- *   mode:   mode to set on new directory.
- */
-
-static int cpuset_create_dir(struct cpuset *cs, const char *name, int mode)
-{
-   struct dentry *dentry = NULL;
-   struct dentry *parent;
-   int error = 0;
-
-   parent = cs->parent->dentry;
-   dentry = cpuset_get_dentry(parent, name);
-   if (IS_ERR(dentry))
-      return PTR_ERR(dentry);
-   error = cpuset_create_file(dentry, S_IFDIR | mode);
-   if (!error) {
-      dentry->d_fsdata = cs;
-      inc_nlink(parent->d_inode);
-      cs->dentry = dentry;
-   }
-   dput(dentry);
-
-   return error;
-}
-
-static int cpuset_add_file(struct dentry *dir, const struct cftype *cft)
-{
-   struct dentry *dentry;
-   int error;
-
-   mutex_lock(&dir->d_inode->i_mutex);
-   dentry = cpuset_get_dentry(dir, cft->name);
-   if (!IS_ERR(dentry)) {
-      error = cpuset_create_file(dentry, 0644 | S_IFREG);
-      if (!error)
-         dentry->d_fsdata = (void *)cft;
-      dput(dentry);
-   } else
-      error = PTR_ERR(dentry);
-   mutex_unlock(&dir->d_inode->i_mutex);
-   return error;
-}
-
-/*
- * Stuff for reading the 'tasks' file.
- *
- * Reading this file can return large amounts of data if a cpuset has
- * *lots* of attached tasks. So it may need several calls to read(),
- * but we cannot guarantee that the information we produce is correct
- * unless we produce it entirely atomically.
- *
- * Upon tasks file open(), a struct ctr_struct is allocated, that
- * will have a pointer to an array (also allocated here).  The struct
- * ctr_struct * is stored in file->private_data.  Its resources will
- * be freed by release() when the file is closed.  The array is used
- * to sprintf the PIDs and then used by read().
- */
-
-/* cpusets_tasks_read array */
-
-struct ctr_struct {
-   char *buf;
-   int bufsz;
-};
-
-/*
- * Load into 'pidarray' up to 'npids' of the tasks using cpuset 'cs'.
- * Return actual number of pids loaded.  No need to task_lock(p)
- * when reading out p->cpuset, as we don't really care if it changes
- * on the next cycle, and we are not going to try to dereference it.
- */
-static int pid_array_load(pid_t *pidarray, int npids, struct cpuset *cs)
-{
-   int n = 0;
-   struct task_struct *g, *p;
-
-   read_lock(&tasklist_lock);
-
-   do_each_thread(g, p) {
-      if (p->cpuset == cs) {
-         if (unlikely(n == npids))
-            goto array_full;
-         pidarray[n++] = p->pid;
-      }
-   } while_each_thread(g, p);
-
-array_full:
-   read_unlock(&tasklist_lock);
-   return n;
-}
-
-static int cmppid(const void *a, const void *b)
-{
-   return *(pid_t *)a - *(pid_t *)b;
-}
-
-/*
- * Convert array 'a' of 'npids' pid_t's to a string of newline separated
- * decimal pids in 'buf'.  Don't write more than 'sz' chars, but return
- * count 'cnt' of how many chars would be written if buf were large enough.
- */
-static int pid_array_to_buf(char *buf, int sz, pid_t *a, int npids)
-{
-   int cnt = 0;
-   int i;
-
-   for (i = 0; i < npids; i++)
-      cnt += snprintf(buf + cnt, max(sz - cnt, 0), "%d\n", a[i]);
-   return cnt;
-}
-
-/*
- * Handle an open on 'tasks' file.  Prepare a buffer listing the
- * process id's of tasks currently attached to the cpuset being opened.
- *
- * Does not require any specific cpuset mutexes, and does not take any.
- */
-static int cpuset_tasks_open(struct inode *unused, struct file *file)
-{
-   struct cpuset *cs = __d_cs(file->f_path.dentry->d_parent);
-   struct ctr_struct *ctr;
-   pid_t *pidarray;
-   int npids;
-   char c;
-
-   if (!(file->f_mode & FMODE_READ))
-      return 0;
-
-   ctr = kmalloc(sizeof(*ctr), GFP_KERNEL);
-   if (!ctr)
-      goto err0;
-
-   /*
-    * If cpuset gets more users after we read count, we won't have
-    * enough space - tough.  This race is indistinguishable to the
-    * caller from the case that the additional cpuset users didn't
-    * show up until sometime later on.
-    */
-   npids = atomic_read(&cs->count);
-   pidarray = kmalloc(npids * sizeof(pid_t), GFP_KERNEL);
-   if (!pidarray)
-      goto err1;
-
-   npids = pid_array_load(pidarray, npids, cs);
-   sort(pidarray, npids, sizeof(pid_t), cmppid, NULL);
-
-   /* Call pid_array_to_buf() twice, first just to get bufsz */
-   ctr->bufsz = pid_array_to_buf(&c, sizeof(c), pidarray, npids) + 1;
-   ctr->buf = kmalloc(ctr->bufsz, GFP_KERNEL);
-   if (!ctr->buf)
-      goto err2;
-   ctr->bufsz = pid_array_to_buf(ctr->buf, ctr->bufsz, pidarray, npids);
-
-   kfree(pidarray);
-   file->private_data = ctr;
-   return 0;
-
-err2:
-   kfree(pidarray);
-err1:
-   kfree(ctr);
-err0:
-   return -ENOMEM;
-}
-
-static ssize_t cpuset_tasks_read(struct file *file, char __user *buf,
-                  size_t nbytes, loff_t *ppos)
-{
-   struct ctr_struct *ctr = file->private_data;
-
-   return simple_read_from_buffer(buf, nbytes, ppos, ctr->buf, ctr->bufsz);
-}
-
-static int cpuset_tasks_release(struct inode *unused_inode, struct file *file)
-{
-   struct ctr_struct *ctr;
-
-   if (file->f_mode & FMODE_READ) {
-      ctr = file->private_data;
-      kfree(ctr->buf);
-      kfree(ctr);
-   }
-   return 0;
-}
 
 /*
  * for the common functions, 'private' gives the type of file
  */
 
-static struct cftype cft_tasks = {
-   .name = "tasks",
-   .open = cpuset_tasks_open,
-   .read = cpuset_tasks_read,
-   .release = cpuset_tasks_release,
-   .private = FILE_TASKLIST,
-};
-
 static struct cftype cft_cpus = {
    .name = "cpus",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_CPULIST,
 };
 
 static struct cftype cft_mems = {
    .name = "mems",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_MEMLIST,
 };
 
 static struct cftype cft_cpu_exclusive = {
    .name = "cpu_exclusive",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_CPU_EXCLUSIVE,
 };
 
 static struct cftype cft_mem_exclusive = {
    .name = "mem_exclusive",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_MEM_EXCLUSIVE,
 };
 
-static struct cftype cft_notify_on_release = {
-   .name = "notify_on_release",
-   .private = FILE_NOTIFY_ON_RELEASE,
+static struct cftype cft_sched_load_balance = {
+   .name = "sched_load_balance",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
+   .private = FILE_SCHED_LOAD_BALANCE,
 };
 
 static struct cftype cft_memory_migrate = {
    .name = "memory_migrate",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_MEMORY_MIGRATE,
 };
 
 static struct cftype cft_memory_pressure_enabled = {
    .name = "memory_pressure_enabled",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_MEMORY_PRESSURE_ENABLED,
 };
 
 static struct cftype cft_memory_pressure = {
    .name = "memory_pressure",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_MEMORY_PRESSURE,
 };
 
 static struct cftype cft_spread_page = {
    .name = "memory_spread_page",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_SPREAD_PAGE,
 };
 
 static struct cftype cft_spread_slab = {
    .name = "memory_spread_slab",
+   .read = cpuset_common_file_read,
+   .write = cpuset_common_file_write,
    .private = FILE_SPREAD_SLAB,
 };
 
-static int cpuset_populate_dir(struct dentry *cs_dentry)
+static int cpuset_populate(struct cgroup_subsys *ss, struct cgroup *cont)
 {
    int err;
 
-   if ((err = cpuset_add_file(cs_dentry, &cft_cpus)) < 0)
-      return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_mems)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_cpus)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_cpu_exclusive)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_mems)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_mem_exclusive)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_cpu_exclusive)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_notify_on_release)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_mem_exclusive)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_memory_migrate)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_memory_migrate)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_memory_pressure)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_sched_load_balance)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_spread_page)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_memory_pressure)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_spread_slab)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_spread_page)) < 0)
       return err;
-   if ((err = cpuset_add_file(cs_dentry, &cft_tasks)) < 0)
+   if ((err = cgroup_add_file(cont, ss, &cft_spread_slab)) < 0)
       return err;
+   /* memory_pressure_enabled is in root cpuset only */
+   if (err == 0 && !cont->parent)
+      err = cgroup_add_file(cont, ss,
+                &cft_memory_pressure_enabled);
    return 0;
 }
 
 /*
+ * post_clone() is called at the end of cgroup_clone().
+ * 'cgroup' was just created automatically as a result of
+ * a cgroup_clone(), and the current task is about to
+ * be moved into 'cgroup'.
+ *
+ * Currently we refuse to set up the cgroup - thereby
+ * refusing the task to be entered, and as a result refusing
+ * the sys_unshare() or clone() which initiated it - if any
+ * sibling cpusets have exclusive cpus or mem.
+ *
+ * If this becomes a problem for some users who wish to
+ * allow that scenario, then cpuset_post_clone() could be
+ * changed to grant parent->cpus_allowed-sibling_cpus_exclusive
+ * (and likewise for mems) to the new cgroup.
+ */
+static void cpuset_post_clone(struct cgroup_subsys *ss,
+               struct cgroup *cgroup)
+{
+   struct cgroup *parent, *child;
+   struct cpuset *cs, *parent_cs;
+
+   parent = cgroup->parent;
+   list_for_each_entry(child, &parent->children, sibling) {
+      cs = cgroup_cs(child);
+      if (is_mem_exclusive(cs) || is_cpu_exclusive(cs))
+         return;
+   }
+   cs = cgroup_cs(cgroup);
+   parent_cs = cgroup_cs(parent);
+
+   cs->mems_allowed = parent_cs->mems_allowed;
+   cs->cpus_allowed = parent_cs->cpus_allowed;
+   return;
+}
+
+/*
  *   cpuset_create - create a cpuset
  *   parent:   cpuset that will be parent of the new cpuset.
  *   name:      name of the new cpuset. Will be strcpy'ed.
@@ -1885,124 +1578,77 @@ static int cpuset_populate_dir(struct dentry *cs_dentry)
  *   Must be called with the mutex on the parent inode held
  */
 
-static long cpuset_create(struct cpuset *parent, const char *name, int mode)
+static struct cgroup_subsys_state *cpuset_create(
+   struct cgroup_subsys *ss,
+   struct cgroup *cont)
 {
    struct cpuset *cs;
-   int err;
+   struct cpuset *parent;
 
+   if (!cont->parent) {
+      /* This is early initialization for the top cgroup */
+      top_cpuset.mems_generation = cpuset_mems_generation++;
+      return &top_cpuset.css;
+   }
+   parent = cgroup_cs(cont->parent);
    cs = kmalloc(sizeof(*cs), GFP_KERNEL);
    if (!cs)
-      return -ENOMEM;
+      return ERR_PTR(-ENOMEM);
 
-   mutex_lock(&manage_mutex);
    cpuset_update_task_memory_state();
    cs->flags = 0;
-   if (notify_on_release(parent))
-      set_bit(CS_NOTIFY_ON_RELEASE, &cs->flags);
    if (is_spread_page(parent))
       set_bit(CS_SPREAD_PAGE, &cs->flags);
    if (is_spread_slab(parent))
       set_bit(CS_SPREAD_SLAB, &cs->flags);
+   set_bit(CS_SCHED_LOAD_BALANCE, &cs->flags);
    cs->cpus_allowed = CPU_MASK_NONE;
    cs->mems_allowed = NODE_MASK_NONE;
-   atomic_set(&cs->count, 0);
-   INIT_LIST_HEAD(&cs->sibling);
-   INIT_LIST_HEAD(&cs->children);
    cs->mems_generation = cpuset_mems_generation++;
    fmeter_init(&cs->fmeter);
 
    cs->parent = parent;
-
-   mutex_lock(&callback_mutex);
-   list_add(&cs->sibling, &cs->parent->children);
    number_of_cpusets++;
-   mutex_unlock(&callback_mutex);
-
-   err = cpuset_create_dir(cs, name, mode);
-   if (err < 0)
-      goto err;
-
-   /*
-    * Release manage_mutex before cpuset_populate_dir() because it
-    * will down() this new directory's i_mutex and if we race with
-    * another mkdir, we might deadlock.
-    */
-   mutex_unlock(&manage_mutex);
-
-   err = cpuset_populate_dir(cs->dentry);
-   /* If err < 0, we have a half-filled directory - oh well ;) */
-   return 0;
-err:
-   list_del(&cs->sibling);
-   mutex_unlock(&manage_mutex);
-   kfree(cs);
-   return err;
-}
-
-static int cpuset_mkdir(struct inode *dir, struct dentry *dentry, int mode)
-{
-   struct cpuset *c_parent = dentry->d_parent->d_fsdata;
-
-   /* the vfs holds inode->i_mutex already */
-   return cpuset_create(c_parent, dentry->d_name.name, mode | S_IFDIR);
+   return &cs->css ;
 }
 
 /*
  * Locking note on the strange update_flag() call below:
  *
- * If the cpuset being removed is marked cpu_exclusive, then simulate
- * turning cpu_exclusive off, which will call update_cpu_domains().
- * The lock_cpu_hotplug() call in update_cpu_domains() must not be
- * made while holding callback_mutex.  Elsewhere the kernel nests
- * callback_mutex inside lock_cpu_hotplug() calls.  So the reverse
- * nesting would risk an ABBA deadlock.
+ * If the cpuset being removed has its flag 'sched_load_balance'
+ * enabled, then simulate turning sched_load_balance off, which
+ * will call rebuild_sched_domains().  The lock_cpu_hotplug()
+ * call in rebuild_sched_domains() must not be made while holding
+ * callback_mutex.  Elsewhere the kernel nests callback_mutex inside
+ * lock_cpu_hotplug() calls.  So the reverse nesting would risk an
+ * ABBA deadlock.
  */
 
-static int cpuset_rmdir(struct inode *unused_dir, struct dentry *dentry)
+static void cpuset_destroy(struct cgroup_subsys *ss, struct cgroup *cont)
 {
-   struct cpuset *cs = dentry->d_fsdata;
-   struct dentry *d;
-   struct cpuset *parent;
-   char *pathbuf = NULL;
-
-   /* the vfs holds both inode->i_mutex already */
+   struct cpuset *cs = cgroup_cs(cont);
 
-   mutex_lock(&manage_mutex);
    cpuset_update_task_memory_state();
-   if (atomic_read(&cs->count) > 0) {
-      mutex_unlock(&manage_mutex);
-      return -EBUSY;
-   }
-   if (!list_empty(&cs->children)) {
-      mutex_unlock(&manage_mutex);
-      return -EBUSY;
-   }
-   if (is_cpu_exclusive(cs)) {
-      int retval = update_flag(CS_CPU_EXCLUSIVE, cs, "0");
-      if (retval < 0) {
-         mutex_unlock(&manage_mutex);
-         return retval;
-      }
-   }
-   parent = cs->parent;
-   mutex_lock(&callback_mutex);
-   set_bit(CS_REMOVED, &cs->flags);
-   list_del(&cs->sibling);   /* delete my sibling from parent->children */
-   spin_lock(&cs->dentry->d_lock);
-   d = dget(cs->dentry);
-   cs->dentry = NULL;
-   spin_unlock(&d->d_lock);
-   cpuset_d_remove_dir(d);
-   dput(d);
+
+   if (is_sched_load_balance(cs))
+      update_flag(CS_SCHED_LOAD_BALANCE, cs, "0");
+
    number_of_cpusets--;
-   mutex_unlock(&callback_mutex);
-   if (list_empty(&parent->children))
-      check_for_release(parent, &pathbuf);
-   mutex_unlock(&manage_mutex);
-   cpuset_release_agent(pathbuf);
-   return 0;
+   kfree(cs);
 }
 
+struct cgroup_subsys cpuset_subsys = {
+   .name = "cpuset",
+   .create = cpuset_create,
+   .destroy  = cpuset_destroy,
+   .can_attach = cpuset_can_attach,
+   .attach = cpuset_attach,
+   .populate = cpuset_populate,
+   .post_clone = cpuset_post_clone,
+   .subsys_id = cpuset_subsys_id,
+   .early_init = 1,
+};
+
 /*
  * cpuset_init_early - just enough so that the calls to
  * cpuset_update_task_memory_state() in early init code
@@ -2011,13 +1657,11 @@ static int cpuset_rmdir(struct inode *unused_dir, struct dentry *dentry)
 
 int __init cpuset_init_early(void)
 {
-   struct task_struct *tsk = current;
-
-   tsk->cpuset = &top_cpuset;
-   tsk->cpuset->mems_generation = cpuset_mems_generation++;
+   top_cpuset.mems_generation = cpuset_mems_generation++;
    return 0;
 }
 
+
 /**
  * cpuset_init - initialize cpusets at system boot
  *
@@ -2026,39 +1670,21 @@ int __init cpuset_init_early(void)
 
 int __init cpuset_init(void)
 {
-   struct dentry *root;
-   int err;
+   int err = 0;
 
    top_cpuset.cpus_allowed = CPU_MASK_ALL;
    top_cpuset.mems_allowed = NODE_MASK_ALL;
 
    fmeter_init(&top_cpuset.fmeter);
    top_cpuset.mems_generation = cpuset_mems_generation++;
-
-   init_task.cpuset = &top_cpuset;
+   set_bit(CS_SCHED_LOAD_BALANCE, &top_cpuset.flags);
 
    err = register_filesystem(&cpuset_fs_type);
    if (err < 0)
-      goto out;
-   cpuset_mount = kern_mount(&cpuset_fs_type);
-   if (IS_ERR(cpuset_mount)) {
-      printk(KERN_ERR "cpuset: could not mount!\n");
-      err = PTR_ERR(cpuset_mount);
-      cpuset_mount = NULL;
-      goto out;
-   }
-   root = cpuset_mount->mnt_sb->s_root;
-   root->d_fsdata = &top_cpuset;
-   inc_nlink(root->d_inode);
-   top_cpuset.dentry = root;
-   root->d_inode->i_op = &cpuset_dir_inode_operations;
+      return err;
+
    number_of_cpusets = 1;
-   err = cpuset_populate_dir(root);
-   /* memory_pressure_enabled is in root cpuset only */
-   if (err == 0)
-      err = cpuset_add_file(root, &cft_memory_pressure_enabled);
-out:
-   return err;
+   return 0;
 }
 
 /*
@@ -2084,10 +1710,12 @@ out:
 
 static void guarantee_online_cpus_mems_in_subtree(const struct cpuset *cur)
 {
+   struct cgroup *cont;
    struct cpuset *c;
 
    /* Each of our child cpusets mems must be online */
-   list_for_each_entry(c, &cur->children, sibling) {
+   list_for_each_entry(cont, &cur->css.cgroup->children, sibling) {
+      c = cgroup_cs(cont);
       guarantee_online_cpus_mems_in_subtree(c);
       if (!cpus_empty(c->cpus_allowed))
          guarantee_online_cpus(c, &c->cpus_allowed);
@@ -2098,8 +1726,9 @@ static void guarantee_online_cpus_mems_in_subtree(const struct cpuset *cur)
 
 /*
  * The cpus_allowed and mems_allowed nodemasks in the top_cpuset track
- * cpu_online_map and node_online_map.  Force the top cpuset to track
- * whats online after any CPU or memory node hotplug or unplug event.
+ * cpu_online_map and node_states[N_HIGH_MEMORY].  Force the top cpuset to
+ * track what's online after any CPU or memory node hotplug or unplug
+ * event.
  *
  * To ensure that we don't remove a CPU or node from the top cpuset
  * that is currently in use by a child cpuset (which would violate
@@ -2114,15 +1743,15 @@ static void guarantee_online_cpus_mems_in_subtree(const struct cpuset *cur)
 
 static void common_cpu_mem_hotplug_unplug(void)
 {
-   mutex_lock(&manage_mutex);
+   cgroup_lock();
    mutex_lock(&callback_mutex);
 
    guarantee_online_cpus_mems_in_subtree(&top_cpuset);
    top_cpuset.cpus_allowed = cpu_online_map;
-   top_cpuset.mems_allowed = node_online_map;
+   top_cpuset.mems_allowed = node_states[N_HIGH_MEMORY];
 
    mutex_unlock(&callback_mutex);
-   mutex_unlock(&manage_mutex);
+   cgroup_unlock();
 }
 
 /*
@@ -2135,8 +1764,8 @@ static void common_cpu_mem_hotplug_unplug(void)
  * cpu_online_map on each CPU hotplug (cpuhp) event.
  */
 
-static int cpuset_handle_cpuhp(struct notifier_block *nb,
-            unsigned long phase, void *cpu)
+static int cpuset_handle_cpuhp(struct notifier_block *unused_nb,
+            unsigned long phase, void *unused_cpu)
 {
    if (phase == CPU_DYING || phase == CPU_DYING_FROZEN)
       return NOTIFY_DONE;
@@ -2147,8 +1776,9 @@ static int cpuset_handle_cpuhp(struct notifier_block *nb,
 
 #ifdef CONFIG_MEMORY_HOTPLUG
 /*
- * Keep top_cpuset.mems_allowed tracking node_online_map.
- * Call this routine anytime after you change node_online_map.
+ * Keep top_cpuset.mems_allowed tracking node_states[N_HIGH_MEMORY].
+ * Call this routine anytime after you change
+ * node_states[N_HIGH_MEMORY].
  * See also the previous routine cpuset_handle_cpuhp().
  */
 
@@ -2167,115 +1797,13 @@ void cpuset_track_online_nodes(void)
 void __init cpuset_init_smp(void)
 {
    top_cpuset.cpus_allowed = cpu_online_map;
-   top_cpuset.mems_allowed = node_online_map;
+   top_cpuset.mems_allowed = node_states[N_HIGH_MEMORY];
 
    hotcpu_notifier(cpuset_handle_cpuhp, 0);
 }
 
 /**
- * cpuset_fork - attach newly forked task to its parents cpuset.
- * @tsk: pointer to task_struct of forking parent process.
- *
- * Description: A task inherits its parent's cpuset at fork().
- *
- * A pointer to the shared cpuset was automatically copied in fork.c
- * by dup_task_struct().  However, we ignore that copy, since it was
- * not made under the protection of task_lock(), so might no longer be
- * a valid cpuset pointer.  attach_task() might have already changed
- * current->cpuset, allowing the previously referenced cpuset to
- * be removed and freed.  Instead, we task_lock(current) and copy
- * its present value of current->cpuset for our freshly forked child.
- *
- * At the point that cpuset_fork() is called, 'current' is the parent
- * task, and the passed argument 'child' points to the child task.
- **/
-
-void cpuset_fork(struct task_struct *child)
-{
-   task_lock(current);
-   child->cpuset = current->cpuset;
-   atomic_inc(&child->cpuset->count);
-   task_unlock(current);
-}
-
-/**
- * cpuset_exit - detach cpuset from exiting task
- * @tsk: pointer to task_struct of exiting process
- *
- * Description: Detach cpuset from @tsk and release it.
- *
- * Note that cpusets marked notify_on_release force every task in
- * them to take the global manage_mutex mutex when exiting.
- * This could impact scaling on very large systems.  Be reluctant to
- * use notify_on_release cpusets where very high task exit scaling
- * is required on large systems.
- *
- * Don't even think about derefencing 'cs' after the cpuset use count
- * goes to zero, except inside a critical section guarded by manage_mutex
- * or callback_mutex.   Otherwise a zero cpuset use count is a license to
- * any other task to nuke the cpuset immediately, via cpuset_rmdir().
- *
- * This routine has to take manage_mutex, not callback_mutex, because
- * it is holding that mutex while calling check_for_release(),
- * which calls kmalloc(), so can't be called holding callback_mutex().
- *
- * the_top_cpuset_hack:
- *
- *    Set the exiting tasks cpuset to the root cpuset (top_cpuset).
- *
- *    Don't leave a task unable to allocate memory, as that is an
- *    accident waiting to happen should someone add a callout in
- *    do_exit() after the cpuset_exit() call that might allocate.
- *    If a task tries to allocate memory with an invalid cpuset,
- *    it will oops in cpuset_update_task_memory_state().
- *
- *    We call cpuset_exit() while the task is still competent to
- *    handle notify_on_release(), then leave the task attached to
- *    the root cpuset (top_cpuset) for the remainder of its exit.
- *
- *    To do this properly, we would increment the reference count on
- *    top_cpuset, and near the very end of the kernel/exit.c do_exit()
- *    code we would add a second cpuset function call, to drop that
- *    reference.  This would just create an unnecessary hot spot on
- *    the top_cpuset reference count, to no avail.
- *
- *    Normally, holding a reference to a cpuset without bumping its
- *    count is unsafe.   The cpuset could go away, or someone could
- *    attach us to a different cpuset, decrementing the count on
- *    the first cpuset that we never incremented.  But in this case,
- *    top_cpuset isn't going away, and either task has PF_EXITING set,
- *    which wards off any attach_task() attempts, or task is a failed
- *    fork, never visible to attach_task.
- *
- *    Another way to do this would be to set the cpuset pointer
- *    to NULL here, and check in cpuset_update_task_memory_state()
- *    for a NULL pointer.  This hack avoids that NULL check, for no
- *    cost (other than this way too long comment ;).
- **/
-
-void cpuset_exit(struct task_struct *tsk)
-{
-   struct cpuset *cs;
-
-   task_lock(current);
-   cs = tsk->cpuset;
-   tsk->cpuset = &top_cpuset;   /* the_top_cpuset_hack - see above */
-   task_unlock(current);
-
-   if (notify_on_release(cs)) {
-      char *pathbuf = NULL;
-
-      mutex_lock(&manage_mutex);
-      if (atomic_dec_and_test(&cs->count))
-         check_for_release(cs, &pathbuf);
-      mutex_unlock(&manage_mutex);
-      cpuset_release_agent(pathbuf);
-   } else {
-      atomic_dec(&cs->count);
-   }
-}
 
-/**
  * cpuset_cpus_allowed - return cpus_allowed mask from a tasks cpuset.
  * @tsk: pointer to task_struct from which to obtain cpuset->cpus_allowed.
  *
@@ -2290,10 +1818,23 @@ cpumask_t cpuset_cpus_allowed(struct task_struct *tsk)
    cpumask_t mask;
 
    mutex_lock(&callback_mutex);
+   mask = cpuset_cpus_allowed_locked(tsk);
+   mutex_unlock(&callback_mutex);
+
+   return mask;
+}
+
+/**
+ * cpuset_cpus_allowed_locked - return cpus_allowed mask from a tasks cpuset.
+ * Must be  called with callback_mutex held.
+ **/
+cpumask_t cpuset_cpus_allowed_locked(struct task_struct *tsk)
+{
+   cpumask_t mask;
+
    task_lock(tsk);
-   guarantee_online_cpus(tsk->cpuset, &mask);
+   guarantee_online_cpus(task_cs(tsk), &mask);
    task_unlock(tsk);
-   mutex_unlock(&callback_mutex);
 
    return mask;
 }
@@ -2309,7 +1850,7 @@ void cpuset_init_current_mems_allowed(void)
  *
  * Description: Returns the nodemask_t mems_allowed of the cpuset
  * attached to the specified @tsk.  Guaranteed to return some non-empty
- * subset of node_online_map, even if this means going outside the
+ * subset of node_states[N_HIGH_MEMORY], even if this means going outside the
  * tasks cpuset.
  **/
 
@@ -2319,7 +1860,7 @@ nodemask_t cpuset_mems_allowed(struct task_struct *tsk)
 
    mutex_lock(&callback_mutex);
    task_lock(tsk);
-   guarantee_online_mems(tsk->cpuset, &mask);
+   guarantee_online_mems(task_cs(tsk), &mask);
    task_unlock(tsk);
    mutex_unlock(&callback_mutex);
 
@@ -2450,7 +1991,7 @@ int __cpuset_zone_allowed_softwall(struct zone *z, gfp_t gfp_mask)
    mutex_lock(&callback_mutex);
 
    task_lock(current);
-   cs = nearest_exclusive_ancestor(current->cpuset);
+   cs = nearest_exclusive_ancestor(task_cs(current));
    task_unlock(current);
 
    allowed = node_isset(node, cs->mems_allowed);
@@ -2491,12 +2032,12 @@ int __cpuset_zone_allowed_hardwall(struct zone *z, gfp_t gfp_mask)
    node = zone_to_nid(z);
    if (node_isset(node, current->mems_allowed))
       return 1;
-        /*
-         * Allow tasks that have access to memory reserves because they have
-         * been OOM killed to get memory anywhere.
-         */
-        if (unlikely(test_thread_flag(TIF_MEMDIE)))
-                return 1;
+   /*
+    * Allow tasks that have access to memory reserves because they have
+    * been OOM killed to get memory anywhere.
+    */
+   if (unlikely(test_thread_flag(TIF_MEMDIE)))
+      return 1;
    return 0;
 }
 
@@ -2566,41 +2107,20 @@ int cpuset_mem_spread_node(void)
 EXPORT_SYMBOL_GPL(cpuset_mem_spread_node);
 
 /**
- * cpuset_excl_nodes_overlap - Do we overlap @p's mem_exclusive ancestors?
- * @p: pointer to task_struct of some other task.
- *
- * Description: Return true if the nearest mem_exclusive ancestor
- * cpusets of tasks @p and current overlap.  Used by oom killer to
- * determine if task @p's memory usage might impact the memory
- * available to the current task.
- *
- * Call while holding callback_mutex.
+ * cpuset_mems_allowed_intersects - Does @tsk1's mems_allowed intersect @tsk2's?
+ * @tsk1: pointer to task_struct of some task.
+ * @tsk2: pointer to task_struct of some other task.
+ *
+ * Description: Return true if @tsk1's mems_allowed intersects the
+ * mems_allowed of @tsk2.  Used by the OOM killer to determine if
+ * one of the task's memory usage might impact the memory available
+ * to the other.
  **/
 
-int cpuset_excl_nodes_overlap(const struct task_struct *p)
+int cpuset_mems_allowed_intersects(const struct task_struct *tsk1,
+               const struct task_struct *tsk2)
 {
-   const struct cpuset *cs1, *cs2;   /* my and p's cpuset ancestors */
-   int overlap = 1;      /* do cpusets overlap? */
-
-   task_lock(current);
-   if (current->flags & PF_EXITING) {
-      task_unlock(current);
-      goto done;
-   }
-   cs1 = nearest_exclusive_ancestor(current->cpuset);
-   task_unlock(current);
-
-   task_lock((struct task_struct *)p);
-   if (p->flags & PF_EXITING) {
-      task_unlock((struct task_struct *)p);
-      goto done;
-   }
-   cs2 = nearest_exclusive_ancestor(p->cpuset);
-   task_unlock((struct task_struct *)p);
-
-   overlap = nodes_intersects(cs1->mems_allowed, cs2->mems_allowed);
-done:
-   return overlap;
+   return nodes_intersects(tsk1->mems_allowed, tsk2->mems_allowed);
 }
 
 /*
@@ -2631,14 +2151,12 @@ int cpuset_memory_pressure_enabled __read_mostly;
 
 void __cpuset_memory_pressure_bump(void)
 {
-   struct cpuset *cs;
-
    task_lock(current);
-   cs = current->cpuset;
-   fmeter_markevent(&cs->fmeter);
+   fmeter_markevent(&task_cs(current)->fmeter);
    task_unlock(current);
 }
 
+#ifdef CONFIG_PROC_PID_CPUSET
 /*
  * proc_cpuset_show()
  *  - Print tasks cpuset path into seq_file.
@@ -2650,11 +2168,12 @@ void __cpuset_memory_pressure_bump(void)
  *    the_top_cpuset_hack in cpuset_exit(), which sets an exiting tasks
  *    cpuset to top_cpuset.
  */
-static int proc_cpuset_show(struct seq_file *m, void *v)
+static int proc_cpuset_show(struct seq_file *m, void *unused_v)
 {
    struct pid *pid;
    struct task_struct *tsk;
    char *buf;
+   struct cgroup_subsys_state *css;
    int retval;
 
    retval = -ENOMEM;
@@ -2669,15 +2188,15 @@ static int proc_cpuset_show(struct seq_file *m, void *v)
       goto out_free;
 
    retval = -EINVAL;
-   mutex_lock(&manage_mutex);
-
-   retval = cpuset_path(tsk->cpuset, buf, PAGE_SIZE);
+   cgroup_lock();
+   css = task_subsys_state(tsk, cpuset_subsys_id);
+   retval = cgroup_path(css->cgroup, buf, PAGE_SIZE);
    if (retval < 0)
       goto out_unlock;
    seq_puts(m, buf);
    seq_putc(m, '\n');
 out_unlock:
-   mutex_unlock(&manage_mutex);
+   cgroup_unlock();
    put_task_struct(tsk);
 out_free:
    kfree(buf);
@@ -2697,6 +2216,7 @@ const struct file_operations proc_cpuset_operations = {
    .llseek      = seq_lseek,
    .release   = single_release,
 };
+#endif /* CONFIG_PROC_PID_CPUSET */
 
 /* Display task cpus_allowed, mems_allowed in /proc/<pid>/status file. */
 char *cpuset_task_status_allowed(struct task_struct *task, char *buffer)


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