linux/kernel/relay.c
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   1/*
   2 * Public API and common code for kernel->userspace relay file support.
   3 *
   4 * See Documentation/filesystems/relay.txt for an overview.
   5 *
   6 * Copyright (C) 2002-2005 - Tom Zanussi (zanussi@us.ibm.com), IBM Corp
   7 * Copyright (C) 1999-2005 - Karim Yaghmour (karim@opersys.com)
   8 *
   9 * Moved to kernel/relay.c by Paul Mundt, 2006.
  10 * November 2006 - CPU hotplug support by Mathieu Desnoyers
  11 *      (mathieu.desnoyers@polymtl.ca)
  12 *
  13 * This file is released under the GPL.
  14 */
  15#include <linux/errno.h>
  16#include <linux/stddef.h>
  17#include <linux/slab.h>
  18#include <linux/module.h>
  19#include <linux/string.h>
  20#include <linux/relay.h>
  21#include <linux/vmalloc.h>
  22#include <linux/mm.h>
  23#include <linux/cpu.h>
  24#include <linux/splice.h>
  25
  26/* list of open channels, for cpu hotplug */
  27static DEFINE_MUTEX(relay_channels_mutex);
  28static LIST_HEAD(relay_channels);
  29
  30/*
  31 * close() vm_op implementation for relay file mapping.
  32 */
  33static void relay_file_mmap_close(struct vm_area_struct *vma)
  34{
  35        struct rchan_buf *buf = vma->vm_private_data;
  36        buf->chan->cb->buf_unmapped(buf, vma->vm_file);
  37}
  38
  39/*
  40 * fault() vm_op implementation for relay file mapping.
  41 */
  42static int relay_buf_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
  43{
  44        struct page *page;
  45        struct rchan_buf *buf = vma->vm_private_data;
  46        pgoff_t pgoff = vmf->pgoff;
  47
  48        if (!buf)
  49                return VM_FAULT_OOM;
  50
  51        page = vmalloc_to_page(buf->start + (pgoff << PAGE_SHIFT));
  52        if (!page)
  53                return VM_FAULT_SIGBUS;
  54        get_page(page);
  55        vmf->page = page;
  56
  57        return 0;
  58}
  59
  60/*
  61 * vm_ops for relay file mappings.
  62 */
  63static struct vm_operations_struct relay_file_mmap_ops = {
  64        .fault = relay_buf_fault,
  65        .close = relay_file_mmap_close,
  66};
  67
  68/*
  69 * allocate an array of pointers of struct page
  70 */
  71static struct page **relay_alloc_page_array(unsigned int n_pages)
  72{
  73        struct page **array;
  74        size_t pa_size = n_pages * sizeof(struct page *);
  75
  76        if (pa_size > PAGE_SIZE) {
  77                array = vmalloc(pa_size);
  78                if (array)
  79                        memset(array, 0, pa_size);
  80        } else {
  81                array = kzalloc(pa_size, GFP_KERNEL);
  82        }
  83        return array;
  84}
  85
  86/*
  87 * free an array of pointers of struct page
  88 */
  89static void relay_free_page_array(struct page **array)
  90{
  91        if (is_vmalloc_addr(array))
  92                vfree(array);
  93        else
  94                kfree(array);
  95}
  96
  97/**
  98 *      relay_mmap_buf: - mmap channel buffer to process address space
  99 *      @buf: relay channel buffer
 100 *      @vma: vm_area_struct describing memory to be mapped
 101 *
 102 *      Returns 0 if ok, negative on error
 103 *
 104 *      Caller should already have grabbed mmap_sem.
 105 */
 106static int relay_mmap_buf(struct rchan_buf *buf, struct vm_area_struct *vma)
 107{
 108        unsigned long length = vma->vm_end - vma->vm_start;
 109        struct file *filp = vma->vm_file;
 110
 111        if (!buf)
 112                return -EBADF;
 113
 114        if (length != (unsigned long)buf->chan->alloc_size)
 115                return -EINVAL;
 116
 117        vma->vm_ops = &relay_file_mmap_ops;
 118        vma->vm_flags |= VM_DONTEXPAND;
 119        vma->vm_private_data = buf;
 120        buf->chan->cb->buf_mapped(buf, filp);
 121
 122        return 0;
 123}
 124
 125/**
 126 *      relay_alloc_buf - allocate a channel buffer
 127 *      @buf: the buffer struct
 128 *      @size: total size of the buffer
 129 *
 130 *      Returns a pointer to the resulting buffer, %NULL if unsuccessful. The
 131 *      passed in size will get page aligned, if it isn't already.
 132 */
 133static void *relay_alloc_buf(struct rchan_buf *buf, size_t *size)
 134{
 135        void *mem;
 136        unsigned int i, j, n_pages;
 137
 138        *size = PAGE_ALIGN(*size);
 139        n_pages = *size >> PAGE_SHIFT;
 140
 141        buf->page_array = relay_alloc_page_array(n_pages);
 142        if (!buf->page_array)
 143                return NULL;
 144
 145        for (i = 0; i < n_pages; i++) {
 146                buf->page_array[i] = alloc_page(GFP_KERNEL);
 147                if (unlikely(!buf->page_array[i]))
 148                        goto depopulate;
 149                set_page_private(buf->page_array[i], (unsigned long)buf);
 150        }
 151        mem = vmap(buf->page_array, n_pages, VM_MAP, PAGE_KERNEL);
 152        if (!mem)
 153                goto depopulate;
 154
 155        memset(mem, 0, *size);
 156        buf->page_count = n_pages;
 157        return mem;
 158
 159depopulate:
 160        for (j = 0; j < i; j++)
 161                __free_page(buf->page_array[j]);
 162        relay_free_page_array(buf->page_array);
 163        return NULL;
 164}
 165
 166/**
 167 *      relay_create_buf - allocate and initialize a channel buffer
 168 *      @chan: the relay channel
 169 *
 170 *      Returns channel buffer if successful, %NULL otherwise.
 171 */
 172static struct rchan_buf *relay_create_buf(struct rchan *chan)
 173{
 174        struct rchan_buf *buf = kzalloc(sizeof(struct rchan_buf), GFP_KERNEL);
 175        if (!buf)
 176                return NULL;
 177
 178        buf->padding = kmalloc(chan->n_subbufs * sizeof(size_t *), GFP_KERNEL);
 179        if (!buf->padding)
 180                goto free_buf;
 181
 182        buf->start = relay_alloc_buf(buf, &chan->alloc_size);
 183        if (!buf->start)
 184                goto free_buf;
 185
 186        buf->chan = chan;
 187        kref_get(&buf->chan->kref);
 188        return buf;
 189
 190free_buf:
 191        kfree(buf->padding);
 192        kfree(buf);
 193        return NULL;
 194}
 195
 196/**
 197 *      relay_destroy_channel - free the channel struct
 198 *      @kref: target kernel reference that contains the relay channel
 199 *
 200 *      Should only be called from kref_put().
 201 */
 202static void relay_destroy_channel(struct kref *kref)
 203{
 204        struct rchan *chan = container_of(kref, struct rchan, kref);
 205        kfree(chan);
 206}
 207
 208/**
 209 *      relay_destroy_buf - destroy an rchan_buf struct and associated buffer
 210 *      @buf: the buffer struct
 211 */
 212static void relay_destroy_buf(struct rchan_buf *buf)
 213{
 214        struct rchan *chan = buf->chan;
 215        unsigned int i;
 216
 217        if (likely(buf->start)) {
 218                vunmap(buf->start);
 219                for (i = 0; i < buf->page_count; i++)
 220                        __free_page(buf->page_array[i]);
 221                relay_free_page_array(buf->page_array);
 222        }
 223        chan->buf[buf->cpu] = NULL;
 224        kfree(buf->padding);
 225        kfree(buf);
 226        kref_put(&chan->kref, relay_destroy_channel);
 227}
 228
 229/**
 230 *      relay_remove_buf - remove a channel buffer
 231 *      @kref: target kernel reference that contains the relay buffer
 232 *
 233 *      Removes the file from the fileystem, which also frees the
 234 *      rchan_buf_struct and the channel buffer.  Should only be called from
 235 *      kref_put().
 236 */
 237static void relay_remove_buf(struct kref *kref)
 238{
 239        struct rchan_buf *buf = container_of(kref, struct rchan_buf, kref);
 240        buf->chan->cb->remove_buf_file(buf->dentry);
 241        relay_destroy_buf(buf);
 242}
 243
 244/**
 245 *      relay_buf_empty - boolean, is the channel buffer empty?
 246 *      @buf: channel buffer
 247 *
 248 *      Returns 1 if the buffer is empty, 0 otherwise.
 249 */
 250static int relay_buf_empty(struct rchan_buf *buf)
 251{
 252        return (buf->subbufs_produced - buf->subbufs_consumed) ? 0 : 1;
 253}
 254
 255/**
 256 *      relay_buf_full - boolean, is the channel buffer full?
 257 *      @buf: channel buffer
 258 *
 259 *      Returns 1 if the buffer is full, 0 otherwise.
 260 */
 261int relay_buf_full(struct rchan_buf *buf)
 262{
 263        size_t ready = buf->subbufs_produced - buf->subbufs_consumed;
 264        return (ready >= buf->chan->n_subbufs) ? 1 : 0;
 265}
 266EXPORT_SYMBOL_GPL(relay_buf_full);
 267
 268/*
 269 * High-level relay kernel API and associated functions.
 270 */
 271
 272/*
 273 * rchan_callback implementations defining default channel behavior.  Used
 274 * in place of corresponding NULL values in client callback struct.
 275 */
 276
 277/*
 278 * subbuf_start() default callback.  Does nothing.
 279 */
 280static int subbuf_start_default_callback (struct rchan_buf *buf,
 281                                          void *subbuf,
 282                                          void *prev_subbuf,
 283                                          size_t prev_padding)
 284{
 285        if (relay_buf_full(buf))
 286                return 0;
 287
 288        return 1;
 289}
 290
 291/*
 292 * buf_mapped() default callback.  Does nothing.
 293 */
 294static void buf_mapped_default_callback(struct rchan_buf *buf,
 295                                        struct file *filp)
 296{
 297}
 298
 299/*
 300 * buf_unmapped() default callback.  Does nothing.
 301 */
 302static void buf_unmapped_default_callback(struct rchan_buf *buf,
 303                                          struct file *filp)
 304{
 305}
 306
 307/*
 308 * create_buf_file_create() default callback.  Does nothing.
 309 */
 310static struct dentry *create_buf_file_default_callback(const char *filename,
 311                                                       struct dentry *parent,
 312                                                       int mode,
 313                                                       struct rchan_buf *buf,
 314                                                       int *is_global)
 315{
 316        return NULL;
 317}
 318
 319/*
 320 * remove_buf_file() default callback.  Does nothing.
 321 */
 322static int remove_buf_file_default_callback(struct dentry *dentry)
 323{
 324        return -EINVAL;
 325}
 326
 327/* relay channel default callbacks */
 328static struct rchan_callbacks default_channel_callbacks = {
 329        .subbuf_start = subbuf_start_default_callback,
 330        .buf_mapped = buf_mapped_default_callback,
 331        .buf_unmapped = buf_unmapped_default_callback,
 332        .create_buf_file = create_buf_file_default_callback,
 333        .remove_buf_file = remove_buf_file_default_callback,
 334};
 335
 336/**
 337 *      wakeup_readers - wake up readers waiting on a channel
 338 *      @data: contains the channel buffer
 339 *
 340 *      This is the timer function used to defer reader waking.
 341 */
 342static void wakeup_readers(unsigned long data)
 343{
 344        struct rchan_buf *buf = (struct rchan_buf *)data;
 345        wake_up_interruptible(&buf->read_wait);
 346}
 347
 348/**
 349 *      __relay_reset - reset a channel buffer
 350 *      @buf: the channel buffer
 351 *      @init: 1 if this is a first-time initialization
 352 *
 353 *      See relay_reset() for description of effect.
 354 */
 355static void __relay_reset(struct rchan_buf *buf, unsigned int init)
 356{
 357        size_t i;
 358
 359        if (init) {
 360                init_waitqueue_head(&buf->read_wait);
 361                kref_init(&buf->kref);
 362                setup_timer(&buf->timer, wakeup_readers, (unsigned long)buf);
 363        } else
 364                del_timer_sync(&buf->timer);
 365
 366        buf->subbufs_produced = 0;
 367        buf->subbufs_consumed = 0;
 368        buf->bytes_consumed = 0;
 369        buf->finalized = 0;
 370        buf->data = buf->start;
 371        buf->offset = 0;
 372
 373        for (i = 0; i < buf->chan->n_subbufs; i++)
 374                buf->padding[i] = 0;
 375
 376        buf->chan->cb->subbuf_start(buf, buf->data, NULL, 0);
 377}
 378
 379/**
 380 *      relay_reset - reset the channel
 381 *      @chan: the channel
 382 *
 383 *      This has the effect of erasing all data from all channel buffers
 384 *      and restarting the channel in its initial state.  The buffers
 385 *      are not freed, so any mappings are still in effect.
 386 *
 387 *      NOTE. Care should be taken that the channel isn't actually
 388 *      being used by anything when this call is made.
 389 */
 390void relay_reset(struct rchan *chan)
 391{
 392        unsigned int i;
 393
 394        if (!chan)
 395                return;
 396
 397        if (chan->is_global && chan->buf[0]) {
 398                __relay_reset(chan->buf[0], 0);
 399                return;
 400        }
 401
 402        mutex_lock(&relay_channels_mutex);
 403        for_each_online_cpu(i)
 404                if (chan->buf[i])
 405                        __relay_reset(chan->buf[i], 0);
 406        mutex_unlock(&relay_channels_mutex);
 407}
 408EXPORT_SYMBOL_GPL(relay_reset);
 409
 410/*
 411 *      relay_open_buf - create a new relay channel buffer
 412 *
 413 *      used by relay_open() and CPU hotplug.
 414 */
 415static struct rchan_buf *relay_open_buf(struct rchan *chan, unsigned int cpu)
 416{
 417        struct rchan_buf *buf = NULL;
 418        struct dentry *dentry;
 419        char *tmpname;
 420
 421        if (chan->is_global)
 422                return chan->buf[0];
 423
 424        tmpname = kzalloc(NAME_MAX + 1, GFP_KERNEL);
 425        if (!tmpname)
 426                goto end;
 427        snprintf(tmpname, NAME_MAX, "%s%d", chan->base_filename, cpu);
 428
 429        buf = relay_create_buf(chan);
 430        if (!buf)
 431                goto free_name;
 432
 433        buf->cpu = cpu;
 434        __relay_reset(buf, 1);
 435
 436        /* Create file in fs */
 437        dentry = chan->cb->create_buf_file(tmpname, chan->parent, S_IRUSR,
 438                                           buf, &chan->is_global);
 439        if (!dentry)
 440                goto free_buf;
 441
 442        buf->dentry = dentry;
 443
 444        if(chan->is_global) {
 445                chan->buf[0] = buf;
 446                buf->cpu = 0;
 447        }
 448
 449        goto free_name;
 450
 451free_buf:
 452        relay_destroy_buf(buf);
 453        buf = NULL;
 454free_name:
 455        kfree(tmpname);
 456end:
 457        return buf;
 458}
 459
 460/**
 461 *      relay_close_buf - close a channel buffer
 462 *      @buf: channel buffer
 463 *
 464 *      Marks the buffer finalized and restores the default callbacks.
 465 *      The channel buffer and channel buffer data structure are then freed
 466 *      automatically when the last reference is given up.
 467 */
 468static void relay_close_buf(struct rchan_buf *buf)
 469{
 470        buf->finalized = 1;
 471        del_timer_sync(&buf->timer);
 472        kref_put(&buf->kref, relay_remove_buf);
 473}
 474
 475static void setup_callbacks(struct rchan *chan,
 476                                   struct rchan_callbacks *cb)
 477{
 478        if (!cb) {
 479                chan->cb = &default_channel_callbacks;
 480                return;
 481        }
 482
 483        if (!cb->subbuf_start)
 484                cb->subbuf_start = subbuf_start_default_callback;
 485        if (!cb->buf_mapped)
 486                cb->buf_mapped = buf_mapped_default_callback;
 487        if (!cb->buf_unmapped)
 488                cb->buf_unmapped = buf_unmapped_default_callback;
 489        if (!cb->create_buf_file)
 490                cb->create_buf_file = create_buf_file_default_callback;
 491        if (!cb->remove_buf_file)
 492                cb->remove_buf_file = remove_buf_file_default_callback;
 493        chan->cb = cb;
 494}
 495
 496/**
 497 *      relay_hotcpu_callback - CPU hotplug callback
 498 *      @nb: notifier block
 499 *      @action: hotplug action to take
 500 *      @hcpu: CPU number
 501 *
 502 *      Returns the success/failure of the operation. (%NOTIFY_OK, %NOTIFY_BAD)
 503 */
 504static int __cpuinit relay_hotcpu_callback(struct notifier_block *nb,
 505                                unsigned long action,
 506                                void *hcpu)
 507{
 508        unsigned int hotcpu = (unsigned long)hcpu;
 509        struct rchan *chan;
 510
 511        switch(action) {
 512        case CPU_UP_PREPARE:
 513        case CPU_UP_PREPARE_FROZEN:
 514                mutex_lock(&relay_channels_mutex);
 515                list_for_each_entry(chan, &relay_channels, list) {
 516                        if (chan->buf[hotcpu])
 517                                continue;
 518                        chan->buf[hotcpu] = relay_open_buf(chan, hotcpu);
 519                        if(!chan->buf[hotcpu]) {
 520                                printk(KERN_ERR
 521                                        "relay_hotcpu_callback: cpu %d buffer "
 522                                        "creation failed\n", hotcpu);
 523                                mutex_unlock(&relay_channels_mutex);
 524                                return NOTIFY_BAD;
 525                        }
 526                }
 527                mutex_unlock(&relay_channels_mutex);
 528                break;
 529        case CPU_DEAD:
 530        case CPU_DEAD_FROZEN:
 531                /* No need to flush the cpu : will be flushed upon
 532                 * final relay_flush() call. */
 533                break;
 534        }
 535        return NOTIFY_OK;
 536}
 537
 538/**
 539 *      relay_open - create a new relay channel
 540 *      @base_filename: base name of files to create
 541 *      @parent: dentry of parent directory, %NULL for root directory
 542 *      @subbuf_size: size of sub-buffers
 543 *      @n_subbufs: number of sub-buffers
 544 *      @cb: client callback functions
 545 *      @private_data: user-defined data
 546 *
 547 *      Returns channel pointer if successful, %NULL otherwise.
 548 *
 549 *      Creates a channel buffer for each cpu using the sizes and
 550 *      attributes specified.  The created channel buffer files
 551 *      will be named base_filename0...base_filenameN-1.  File
 552 *      permissions will be %S_IRUSR.
 553 */
 554struct rchan *relay_open(const char *base_filename,
 555                         struct dentry *parent,
 556                         size_t subbuf_size,
 557                         size_t n_subbufs,
 558                         struct rchan_callbacks *cb,
 559                         void *private_data)
 560{
 561        unsigned int i;
 562        struct rchan *chan;
 563        if (!base_filename)
 564                return NULL;
 565
 566        if (!(subbuf_size && n_subbufs))
 567                return NULL;
 568
 569        chan = kzalloc(sizeof(struct rchan), GFP_KERNEL);
 570        if (!chan)
 571                return NULL;
 572
 573        chan->version = RELAYFS_CHANNEL_VERSION;
 574        chan->n_subbufs = n_subbufs;
 575        chan->subbuf_size = subbuf_size;
 576        chan->alloc_size = FIX_SIZE(subbuf_size * n_subbufs);
 577        chan->parent = parent;
 578        chan->private_data = private_data;
 579        strlcpy(chan->base_filename, base_filename, NAME_MAX);
 580        setup_callbacks(chan, cb);
 581        kref_init(&chan->kref);
 582
 583        mutex_lock(&relay_channels_mutex);
 584        for_each_online_cpu(i) {
 585                chan->buf[i] = relay_open_buf(chan, i);
 586                if (!chan->buf[i])
 587                        goto free_bufs;
 588        }
 589        list_add(&chan->list, &relay_channels);
 590        mutex_unlock(&relay_channels_mutex);
 591
 592        return chan;
 593
 594free_bufs:
 595        for_each_online_cpu(i) {
 596                if (!chan->buf[i])
 597                        break;
 598                relay_close_buf(chan->buf[i]);
 599        }
 600
 601        kref_put(&chan->kref, relay_destroy_channel);
 602        mutex_unlock(&relay_channels_mutex);
 603        return NULL;
 604}
 605EXPORT_SYMBOL_GPL(relay_open);
 606
 607/**
 608 *      relay_switch_subbuf - switch to a new sub-buffer
 609 *      @buf: channel buffer
 610 *      @length: size of current event
 611 *
 612 *      Returns either the length passed in or 0 if full.
 613 *
 614 *      Performs sub-buffer-switch tasks such as invoking callbacks,
 615 *      updating padding counts, waking up readers, etc.
 616 */
 617size_t relay_switch_subbuf(struct rchan_buf *buf, size_t length)
 618{
 619        void *old, *new;
 620        size_t old_subbuf, new_subbuf;
 621
 622        if (unlikely(length > buf->chan->subbuf_size))
 623                goto toobig;
 624
 625        if (buf->offset != buf->chan->subbuf_size + 1) {
 626                buf->prev_padding = buf->chan->subbuf_size - buf->offset;
 627                old_subbuf = buf->subbufs_produced % buf->chan->n_subbufs;
 628                buf->padding[old_subbuf] = buf->prev_padding;
 629                buf->subbufs_produced++;
 630                buf->dentry->d_inode->i_size += buf->chan->subbuf_size -
 631                        buf->padding[old_subbuf];
 632                smp_mb();
 633                if (waitqueue_active(&buf->read_wait))
 634                        /*
 635                         * Calling wake_up_interruptible() from here
 636                         * will deadlock if we happen to be logging
 637                         * from the scheduler (trying to re-grab
 638                         * rq->lock), so defer it.
 639                         */
 640                        __mod_timer(&buf->timer, jiffies + 1);
 641        }
 642
 643        old = buf->data;
 644        new_subbuf = buf->subbufs_produced % buf->chan->n_subbufs;
 645        new = buf->start + new_subbuf * buf->chan->subbuf_size;
 646        buf->offset = 0;
 647        if (!buf->chan->cb->subbuf_start(buf, new, old, buf->prev_padding)) {
 648                buf->offset = buf->chan->subbuf_size + 1;
 649                return 0;
 650        }
 651        buf->data = new;
 652        buf->padding[new_subbuf] = 0;
 653
 654        if (unlikely(length + buf->offset > buf->chan->subbuf_size))
 655                goto toobig;
 656
 657        return length;
 658
 659toobig:
 660        buf->chan->last_toobig = length;
 661        return 0;
 662}
 663EXPORT_SYMBOL_GPL(relay_switch_subbuf);
 664
 665/**
 666 *      relay_subbufs_consumed - update the buffer's sub-buffers-consumed count
 667 *      @chan: the channel
 668 *      @cpu: the cpu associated with the channel buffer to update
 669 *      @subbufs_consumed: number of sub-buffers to add to current buf's count
 670 *
 671 *      Adds to the channel buffer's consumed sub-buffer count.
 672 *      subbufs_consumed should be the number of sub-buffers newly consumed,
 673 *      not the total consumed.
 674 *
 675 *      NOTE. Kernel clients don't need to call this function if the channel
 676 *      mode is 'overwrite'.
 677 */
 678void relay_subbufs_consumed(struct rchan *chan,
 679                            unsigned int cpu,
 680                            size_t subbufs_consumed)
 681{
 682        struct rchan_buf *buf;
 683
 684        if (!chan)
 685                return;
 686
 687        if (cpu >= NR_CPUS || !chan->buf[cpu])
 688                return;
 689
 690        buf = chan->buf[cpu];
 691        buf->subbufs_consumed += subbufs_consumed;
 692        if (buf->subbufs_consumed > buf->subbufs_produced)
 693                buf->subbufs_consumed = buf->subbufs_produced;
 694}
 695EXPORT_SYMBOL_GPL(relay_subbufs_consumed);
 696
 697/**
 698 *      relay_close - close the channel
 699 *      @chan: the channel
 700 *
 701 *      Closes all channel buffers and frees the channel.
 702 */
 703void relay_close(struct rchan *chan)
 704{
 705        unsigned int i;
 706
 707        if (!chan)
 708                return;
 709
 710        mutex_lock(&relay_channels_mutex);
 711        if (chan->is_global && chan->buf[0])
 712                relay_close_buf(chan->buf[0]);
 713        else
 714                for_each_possible_cpu(i)
 715                        if (chan->buf[i])
 716                                relay_close_buf(chan->buf[i]);
 717
 718        if (chan->last_toobig)
 719                printk(KERN_WARNING "relay: one or more items not logged "
 720                       "[item size (%Zd) > sub-buffer size (%Zd)]\n",
 721                       chan->last_toobig, chan->subbuf_size);
 722
 723        list_del(&chan->list);
 724        kref_put(&chan->kref, relay_destroy_channel);
 725        mutex_unlock(&relay_channels_mutex);
 726}
 727EXPORT_SYMBOL_GPL(relay_close);
 728
 729/**
 730 *      relay_flush - close the channel
 731 *      @chan: the channel
 732 *
 733 *      Flushes all channel buffers, i.e. forces buffer switch.
 734 */
 735void relay_flush(struct rchan *chan)
 736{
 737        unsigned int i;
 738
 739        if (!chan)
 740                return;
 741
 742        if (chan->is_global && chan->buf[0]) {
 743                relay_switch_subbuf(chan->buf[0], 0);
 744                return;
 745        }
 746
 747        mutex_lock(&relay_channels_mutex);
 748        for_each_possible_cpu(i)
 749                if (chan->buf[i])
 750                        relay_switch_subbuf(chan->buf[i], 0);
 751        mutex_unlock(&relay_channels_mutex);
 752}
 753EXPORT_SYMBOL_GPL(relay_flush);
 754
 755/**
 756 *      relay_file_open - open file op for relay files
 757 *      @inode: the inode
 758 *      @filp: the file
 759 *
 760 *      Increments the channel buffer refcount.
 761 */
 762static int relay_file_open(struct inode *inode, struct file *filp)
 763{
 764        struct rchan_buf *buf = inode->i_private;
 765        kref_get(&buf->kref);
 766        filp->private_data = buf;
 767
 768        return nonseekable_open(inode, filp);
 769}
 770
 771/**
 772 *      relay_file_mmap - mmap file op for relay files
 773 *      @filp: the file
 774 *      @vma: the vma describing what to map
 775 *
 776 *      Calls upon relay_mmap_buf() to map the file into user space.
 777 */
 778static int relay_file_mmap(struct file *filp, struct vm_area_struct *vma)
 779{
 780        struct rchan_buf *buf = filp->private_data;
 781        return relay_mmap_buf(buf, vma);
 782}
 783
 784/**
 785 *      relay_file_poll - poll file op for relay files
 786 *      @filp: the file
 787 *      @wait: poll table
 788 *
 789 *      Poll implemention.
 790 */
 791static unsigned int relay_file_poll(struct file *filp, poll_table *wait)
 792{
 793        unsigned int mask = 0;
 794        struct rchan_buf *buf = filp->private_data;
 795
 796        if (buf->finalized)
 797                return POLLERR;
 798
 799        if (filp->f_mode & FMODE_READ) {
 800                poll_wait(filp, &buf->read_wait, wait);
 801                if (!relay_buf_empty(buf))
 802                        mask |= POLLIN | POLLRDNORM;
 803        }
 804
 805        return mask;
 806}
 807
 808/**
 809 *      relay_file_release - release file op for relay files
 810 *      @inode: the inode
 811 *      @filp: the file
 812 *
 813 *      Decrements the channel refcount, as the filesystem is
 814 *      no longer using it.
 815 */
 816static int relay_file_release(struct inode *inode, struct file *filp)
 817{
 818        struct rchan_buf *buf = filp->private_data;
 819        kref_put(&buf->kref, relay_remove_buf);
 820
 821        return 0;
 822}
 823
 824/*
 825 *      relay_file_read_consume - update the consumed count for the buffer
 826 */
 827static void relay_file_read_consume(struct rchan_buf *buf,
 828                                    size_t read_pos,
 829                                    size_t bytes_consumed)
 830{
 831        size_t subbuf_size = buf->chan->subbuf_size;
 832        size_t n_subbufs = buf->chan->n_subbufs;
 833        size_t read_subbuf;
 834
 835        if (buf->subbufs_produced == buf->subbufs_consumed &&
 836            buf->offset == buf->bytes_consumed)
 837                return;
 838
 839        if (buf->bytes_consumed + bytes_consumed > subbuf_size) {
 840                relay_subbufs_consumed(buf->chan, buf->cpu, 1);
 841                buf->bytes_consumed = 0;
 842        }
 843
 844        buf->bytes_consumed += bytes_consumed;
 845        if (!read_pos)
 846                read_subbuf = buf->subbufs_consumed % n_subbufs;
 847        else
 848                read_subbuf = read_pos / buf->chan->subbuf_size;
 849        if (buf->bytes_consumed + buf->padding[read_subbuf] == subbuf_size) {
 850                if ((read_subbuf == buf->subbufs_produced % n_subbufs) &&
 851                    (buf->offset == subbuf_size))
 852                        return;
 853                relay_subbufs_consumed(buf->chan, buf->cpu, 1);
 854                buf->bytes_consumed = 0;
 855        }
 856}
 857
 858/*
 859 *      relay_file_read_avail - boolean, are there unconsumed bytes available?
 860 */
 861static int relay_file_read_avail(struct rchan_buf *buf, size_t read_pos)
 862{
 863        size_t subbuf_size = buf->chan->subbuf_size;
 864        size_t n_subbufs = buf->chan->n_subbufs;
 865        size_t produced = buf->subbufs_produced;
 866        size_t consumed = buf->subbufs_consumed;
 867
 868        relay_file_read_consume(buf, read_pos, 0);
 869
 870        consumed = buf->subbufs_consumed;
 871
 872        if (unlikely(buf->offset > subbuf_size)) {
 873                if (produced == consumed)
 874                        return 0;
 875                return 1;
 876        }
 877
 878        if (unlikely(produced - consumed >= n_subbufs)) {
 879                consumed = produced - n_subbufs + 1;
 880                buf->subbufs_consumed = consumed;
 881                buf->bytes_consumed = 0;
 882        }
 883
 884        produced = (produced % n_subbufs) * subbuf_size + buf->offset;
 885        consumed = (consumed % n_subbufs) * subbuf_size + buf->bytes_consumed;
 886
 887        if (consumed > produced)
 888                produced += n_subbufs * subbuf_size;
 889
 890        if (consumed == produced) {
 891                if (buf->offset == subbuf_size &&
 892                    buf->subbufs_produced > buf->subbufs_consumed)
 893                        return 1;
 894                return 0;
 895        }
 896
 897        return 1;
 898}
 899
 900/**
 901 *      relay_file_read_subbuf_avail - return bytes available in sub-buffer
 902 *      @read_pos: file read position
 903 *      @buf: relay channel buffer
 904 */
 905static size_t relay_file_read_subbuf_avail(size_t read_pos,
 906                                           struct rchan_buf *buf)
 907{
 908        size_t padding, avail = 0;
 909        size_t read_subbuf, read_offset, write_subbuf, write_offset;
 910        size_t subbuf_size = buf->chan->subbuf_size;
 911
 912        write_subbuf = (buf->data - buf->start) / subbuf_size;
 913        write_offset = buf->offset > subbuf_size ? subbuf_size : buf->offset;
 914        read_subbuf = read_pos / subbuf_size;
 915        read_offset = read_pos % subbuf_size;
 916        padding = buf->padding[read_subbuf];
 917
 918        if (read_subbuf == write_subbuf) {
 919                if (read_offset + padding < write_offset)
 920                        avail = write_offset - (read_offset + padding);
 921        } else
 922                avail = (subbuf_size - padding) - read_offset;
 923
 924        return avail;
 925}
 926
 927/**
 928 *      relay_file_read_start_pos - find the first available byte to read
 929 *      @read_pos: file read position
 930 *      @buf: relay channel buffer
 931 *
 932 *      If the @read_pos is in the middle of padding, return the
 933 *      position of the first actually available byte, otherwise
 934 *      return the original value.
 935 */
 936static size_t relay_file_read_start_pos(size_t read_pos,
 937                                        struct rchan_buf *buf)
 938{
 939        size_t read_subbuf, padding, padding_start, padding_end;
 940        size_t subbuf_size = buf->chan->subbuf_size;
 941        size_t n_subbufs = buf->chan->n_subbufs;
 942        size_t consumed = buf->subbufs_consumed % n_subbufs;
 943
 944        if (!read_pos)
 945                read_pos = consumed * subbuf_size + buf->bytes_consumed;
 946        read_subbuf = read_pos / subbuf_size;
 947        padding = buf->padding[read_subbuf];
 948        padding_start = (read_subbuf + 1) * subbuf_size - padding;
 949        padding_end = (read_subbuf + 1) * subbuf_size;
 950        if (read_pos >= padding_start && read_pos < padding_end) {
 951                read_subbuf = (read_subbuf + 1) % n_subbufs;
 952                read_pos = read_subbuf * subbuf_size;
 953        }
 954
 955        return read_pos;
 956}
 957
 958/**
 959 *      relay_file_read_end_pos - return the new read position
 960 *      @read_pos: file read position
 961 *      @buf: relay channel buffer
 962 *      @count: number of bytes to be read
 963 */
 964static size_t relay_file_read_end_pos(struct rchan_buf *buf,
 965                                      size_t read_pos,
 966                                      size_t count)
 967{
 968        size_t read_subbuf, padding, end_pos;
 969        size_t subbuf_size = buf->chan->subbuf_size;
 970        size_t n_subbufs = buf->chan->n_subbufs;
 971
 972        read_subbuf = read_pos / subbuf_size;
 973        padding = buf->padding[read_subbuf];
 974        if (read_pos % subbuf_size + count + padding == subbuf_size)
 975                end_pos = (read_subbuf + 1) * subbuf_size;
 976        else
 977                end_pos = read_pos + count;
 978        if (end_pos >= subbuf_size * n_subbufs)
 979                end_pos = 0;
 980
 981        return end_pos;
 982}
 983
 984/*
 985 *      subbuf_read_actor - read up to one subbuf's worth of data
 986 */
 987static int subbuf_read_actor(size_t read_start,
 988                             struct rchan_buf *buf,
 989                             size_t avail,
 990                             read_descriptor_t *desc,
 991                             read_actor_t actor)
 992{
 993        void *from;
 994        int ret = 0;
 995
 996        from = buf->start + read_start;
 997        ret = avail;
 998        if (copy_to_user(desc->arg.buf, from, avail)) {
 999                desc->error = -EFAULT;
1000                ret = 0;
1001        }
1002        desc->arg.data += ret;
1003        desc->written += ret;
1004        desc->count -= ret;
1005
1006        return ret;
1007}
1008
1009typedef int (*subbuf_actor_t) (size_t read_start,
1010                               struct rchan_buf *buf,
1011                               size_t avail,
1012                               read_descriptor_t *desc,
1013                               read_actor_t actor);
1014
1015/*
1016 *      relay_file_read_subbufs - read count bytes, bridging subbuf boundaries
1017 */
1018static ssize_t relay_file_read_subbufs(struct file *filp, loff_t *ppos,
1019                                        subbuf_actor_t subbuf_actor,
1020                                        read_actor_t actor,
1021                                        read_descriptor_t *desc)
1022{
1023        struct rchan_buf *buf = filp->private_data;
1024        size_t read_start, avail;
1025        int ret;
1026
1027        if (!desc->count)
1028                return 0;
1029
1030        mutex_lock(&filp->f_path.dentry->d_inode->i_mutex);
1031        do {
1032                if (!relay_file_read_avail(buf, *ppos))
1033                        break;
1034
1035                read_start = relay_file_read_start_pos(*ppos, buf);
1036                avail = relay_file_read_subbuf_avail(read_start, buf);
1037                if (!avail)
1038                        break;
1039
1040                avail = min(desc->count, avail);
1041                ret = subbuf_actor(read_start, buf, avail, desc, actor);
1042                if (desc->error < 0)
1043                        break;
1044
1045                if (ret) {
1046                        relay_file_read_consume(buf, read_start, ret);
1047                        *ppos = relay_file_read_end_pos(buf, read_start, ret);
1048                }
1049        } while (desc->count && ret);
1050        mutex_unlock(&filp->f_path.dentry->d_inode->i_mutex);
1051
1052        return desc->written;
1053}
1054
1055static ssize_t relay_file_read(struct file *filp,
1056                               char __user *buffer,
1057                               size_t count,
1058                               loff_t *ppos)
1059{
1060        read_descriptor_t desc;
1061        desc.written = 0;
1062        desc.count = count;
1063        desc.arg.buf = buffer;
1064        desc.error = 0;
1065        return relay_file_read_subbufs(filp, ppos, subbuf_read_actor,
1066                                       NULL, &desc);
1067}
1068
1069static void relay_consume_bytes(struct rchan_buf *rbuf, int bytes_consumed)
1070{
1071        rbuf->bytes_consumed += bytes_consumed;
1072
1073        if (rbuf->bytes_consumed >= rbuf->chan->subbuf_size) {
1074                relay_subbufs_consumed(rbuf->chan, rbuf->cpu, 1);
1075                rbuf->bytes_consumed %= rbuf->chan->subbuf_size;
1076        }
1077}
1078
1079static void relay_pipe_buf_release(struct pipe_inode_info *pipe,
1080                                   struct pipe_buffer *buf)
1081{
1082        struct rchan_buf *rbuf;
1083
1084        rbuf = (struct rchan_buf *)page_private(buf->page);
1085        relay_consume_bytes(rbuf, buf->private);
1086}
1087
1088static struct pipe_buf_operations relay_pipe_buf_ops = {
1089        .can_merge = 0,
1090        .map = generic_pipe_buf_map,
1091        .unmap = generic_pipe_buf_unmap,
1092        .confirm = generic_pipe_buf_confirm,
1093        .release = relay_pipe_buf_release,
1094        .steal = generic_pipe_buf_steal,
1095        .get = generic_pipe_buf_get,
1096};
1097
1098static void relay_page_release(struct splice_pipe_desc *spd, unsigned int i)
1099{
1100}
1101
1102/*
1103 *      subbuf_splice_actor - splice up to one subbuf's worth of data
1104 */
1105static int subbuf_splice_actor(struct file *in,
1106                               loff_t *ppos,
1107                               struct pipe_inode_info *pipe,
1108                               size_t len,
1109                               unsigned int flags,
1110                               int *nonpad_ret)
1111{
1112        unsigned int pidx, poff, total_len, subbuf_pages, nr_pages, ret;
1113        struct rchan_buf *rbuf = in->private_data;
1114        unsigned int subbuf_size = rbuf->chan->subbuf_size;
1115        uint64_t pos = (uint64_t) *ppos;
1116        uint32_t alloc_size = (uint32_t) rbuf->chan->alloc_size;
1117        size_t read_start = (size_t) do_div(pos, alloc_size);
1118        size_t read_subbuf = read_start / subbuf_size;
1119        size_t padding = rbuf->padding[read_subbuf];
1120        size_t nonpad_end = read_subbuf * subbuf_size + subbuf_size - padding;
1121        struct page *pages[PIPE_BUFFERS];
1122        struct partial_page partial[PIPE_BUFFERS];
1123        struct splice_pipe_desc spd = {
1124                .pages = pages,
1125                .nr_pages = 0,
1126                .partial = partial,
1127                .flags = flags,
1128                .ops = &relay_pipe_buf_ops,
1129                .spd_release = relay_page_release,
1130        };
1131
1132        if (rbuf->subbufs_produced == rbuf->subbufs_consumed)
1133                return 0;
1134
1135        /*
1136         * Adjust read len, if longer than what is available
1137         */
1138        if (len > (subbuf_size - read_start % subbuf_size))
1139                len = subbuf_size - read_start % subbuf_size;
1140
1141        subbuf_pages = rbuf->chan->alloc_size >> PAGE_SHIFT;
1142        pidx = (read_start / PAGE_SIZE) % subbuf_pages;
1143        poff = read_start & ~PAGE_MASK;
1144        nr_pages = min_t(unsigned int, subbuf_pages, PIPE_BUFFERS);
1145
1146        for (total_len = 0; spd.nr_pages < nr_pages; spd.nr_pages++) {
1147                unsigned int this_len, this_end, private;
1148                unsigned int cur_pos = read_start + total_len;
1149
1150                if (!len)
1151                        break;
1152
1153                this_len = min_t(unsigned long, len, PAGE_SIZE - poff);
1154                private = this_len;
1155
1156                spd.pages[spd.nr_pages] = rbuf->page_array[pidx];
1157                spd.partial[spd.nr_pages].offset = poff;
1158
1159                this_end = cur_pos + this_len;
1160                if (this_end >= nonpad_end) {
1161                        this_len = nonpad_end - cur_pos;
1162                        private = this_len + padding;
1163                }
1164                spd.partial[spd.nr_pages].len = this_len;
1165                spd.partial[spd.nr_pages].private = private;
1166
1167                len -= this_len;
1168                total_len += this_len;
1169                poff = 0;
1170                pidx = (pidx + 1) % subbuf_pages;
1171
1172                if (this_end >= nonpad_end) {
1173                        spd.nr_pages++;
1174                        break;
1175                }
1176        }
1177
1178        if (!spd.nr_pages)
1179                return 0;
1180
1181        ret = *nonpad_ret = splice_to_pipe(pipe, &spd);
1182        if (ret < 0 || ret < total_len)
1183                return ret;
1184
1185        if (read_start + ret == nonpad_end)
1186                ret += padding;
1187
1188        return ret;
1189}
1190
1191static ssize_t relay_file_splice_read(struct file *in,
1192                                      loff_t *ppos,
1193                                      struct pipe_inode_info *pipe,
1194                                      size_t len,
1195                                      unsigned int flags)
1196{
1197        ssize_t spliced;
1198        int ret;
1199        int nonpad_ret = 0;
1200
1201        ret = 0;
1202        spliced = 0;
1203
1204        while (len && !spliced) {
1205                ret = subbuf_splice_actor(in, ppos, pipe, len, flags, &nonpad_ret);
1206                if (ret < 0)
1207                        break;
1208                else if (!ret) {
1209                        if (spliced)
1210                                break;
1211                        if (flags & SPLICE_F_NONBLOCK) {
1212                                ret = -EAGAIN;
1213                                break;
1214                        }
1215                }
1216
1217                *ppos += ret;
1218                if (ret > len)
1219                        len = 0;
1220                else
1221                        len -= ret;
1222                spliced += nonpad_ret;
1223                nonpad_ret = 0;
1224        }
1225
1226        if (spliced)
1227                return spliced;
1228
1229        return ret;
1230}
1231
1232const struct file_operations relay_file_operations = {
1233        .open           = relay_file_open,
1234        .poll           = relay_file_poll,
1235        .mmap           = relay_file_mmap,
1236        .read           = relay_file_read,
1237        .llseek         = no_llseek,
1238        .release        = relay_file_release,
1239        .splice_read    = relay_file_splice_read,
1240};
1241EXPORT_SYMBOL_GPL(relay_file_operations);
1242
1243static __init int relay_init(void)
1244{
1245
1246        hotcpu_notifier(relay_hotcpu_callback, 0);
1247        return 0;
1248}
1249
1250module_init(relay_init);
1251
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