linux/fs/cifs/misc.c
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   1// SPDX-License-Identifier: LGPL-2.1
   2/*
   3 *
   4 *   Copyright (C) International Business Machines  Corp., 2002,2008
   5 *   Author(s): Steve French (sfrench@us.ibm.com)
   6 *
   7 */
   8
   9#include <linux/slab.h>
  10#include <linux/ctype.h>
  11#include <linux/mempool.h>
  12#include <linux/vmalloc.h>
  13#include "cifspdu.h"
  14#include "cifsglob.h"
  15#include "cifsproto.h"
  16#include "cifs_debug.h"
  17#include "smberr.h"
  18#include "nterr.h"
  19#include "cifs_unicode.h"
  20#include "smb2pdu.h"
  21#include "cifsfs.h"
  22#ifdef CONFIG_CIFS_DFS_UPCALL
  23#include "dns_resolve.h"
  24#endif
  25#include "fs_context.h"
  26
  27extern mempool_t *cifs_sm_req_poolp;
  28extern mempool_t *cifs_req_poolp;
  29
  30/* The xid serves as a useful identifier for each incoming vfs request,
  31   in a similar way to the mid which is useful to track each sent smb,
  32   and CurrentXid can also provide a running counter (although it
  33   will eventually wrap past zero) of the total vfs operations handled
  34   since the cifs fs was mounted */
  35
  36unsigned int
  37_get_xid(void)
  38{
  39        unsigned int xid;
  40
  41        spin_lock(&GlobalMid_Lock);
  42        GlobalTotalActiveXid++;
  43
  44        /* keep high water mark for number of simultaneous ops in filesystem */
  45        if (GlobalTotalActiveXid > GlobalMaxActiveXid)
  46                GlobalMaxActiveXid = GlobalTotalActiveXid;
  47        if (GlobalTotalActiveXid > 65000)
  48                cifs_dbg(FYI, "warning: more than 65000 requests active\n");
  49        xid = GlobalCurrentXid++;
  50        spin_unlock(&GlobalMid_Lock);
  51        return xid;
  52}
  53
  54void
  55_free_xid(unsigned int xid)
  56{
  57        spin_lock(&GlobalMid_Lock);
  58        /* if (GlobalTotalActiveXid == 0)
  59                BUG(); */
  60        GlobalTotalActiveXid--;
  61        spin_unlock(&GlobalMid_Lock);
  62}
  63
  64struct cifs_ses *
  65sesInfoAlloc(void)
  66{
  67        struct cifs_ses *ret_buf;
  68
  69        ret_buf = kzalloc(sizeof(struct cifs_ses), GFP_KERNEL);
  70        if (ret_buf) {
  71                atomic_inc(&sesInfoAllocCount);
  72                ret_buf->status = CifsNew;
  73                ++ret_buf->ses_count;
  74                INIT_LIST_HEAD(&ret_buf->smb_ses_list);
  75                INIT_LIST_HEAD(&ret_buf->tcon_list);
  76                mutex_init(&ret_buf->session_mutex);
  77                spin_lock_init(&ret_buf->iface_lock);
  78        }
  79        return ret_buf;
  80}
  81
  82void
  83sesInfoFree(struct cifs_ses *buf_to_free)
  84{
  85        if (buf_to_free == NULL) {
  86                cifs_dbg(FYI, "Null buffer passed to sesInfoFree\n");
  87                return;
  88        }
  89
  90        atomic_dec(&sesInfoAllocCount);
  91        kfree(buf_to_free->serverOS);
  92        kfree(buf_to_free->serverDomain);
  93        kfree(buf_to_free->serverNOS);
  94        kfree_sensitive(buf_to_free->password);
  95        kfree(buf_to_free->user_name);
  96        kfree(buf_to_free->domainName);
  97        kfree_sensitive(buf_to_free->auth_key.response);
  98        kfree(buf_to_free->iface_list);
  99        kfree_sensitive(buf_to_free);
 100}
 101
 102struct cifs_tcon *
 103tconInfoAlloc(void)
 104{
 105        struct cifs_tcon *ret_buf;
 106
 107        ret_buf = kzalloc(sizeof(*ret_buf), GFP_KERNEL);
 108        if (!ret_buf)
 109                return NULL;
 110        ret_buf->crfid.fid = kzalloc(sizeof(*ret_buf->crfid.fid), GFP_KERNEL);
 111        if (!ret_buf->crfid.fid) {
 112                kfree(ret_buf);
 113                return NULL;
 114        }
 115
 116        atomic_inc(&tconInfoAllocCount);
 117        ret_buf->tidStatus = CifsNew;
 118        ++ret_buf->tc_count;
 119        INIT_LIST_HEAD(&ret_buf->openFileList);
 120        INIT_LIST_HEAD(&ret_buf->tcon_list);
 121        spin_lock_init(&ret_buf->open_file_lock);
 122        mutex_init(&ret_buf->crfid.fid_mutex);
 123        spin_lock_init(&ret_buf->stat_lock);
 124        atomic_set(&ret_buf->num_local_opens, 0);
 125        atomic_set(&ret_buf->num_remote_opens, 0);
 126
 127        return ret_buf;
 128}
 129
 130void
 131tconInfoFree(struct cifs_tcon *buf_to_free)
 132{
 133        if (buf_to_free == NULL) {
 134                cifs_dbg(FYI, "Null buffer passed to tconInfoFree\n");
 135                return;
 136        }
 137        atomic_dec(&tconInfoAllocCount);
 138        kfree(buf_to_free->nativeFileSystem);
 139        kfree_sensitive(buf_to_free->password);
 140        kfree(buf_to_free->crfid.fid);
 141#ifdef CONFIG_CIFS_DFS_UPCALL
 142        kfree(buf_to_free->dfs_path);
 143#endif
 144        kfree(buf_to_free);
 145}
 146
 147struct smb_hdr *
 148cifs_buf_get(void)
 149{
 150        struct smb_hdr *ret_buf = NULL;
 151        /*
 152         * SMB2 header is bigger than CIFS one - no problems to clean some
 153         * more bytes for CIFS.
 154         */
 155        size_t buf_size = sizeof(struct smb2_sync_hdr);
 156
 157        /*
 158         * We could use negotiated size instead of max_msgsize -
 159         * but it may be more efficient to always alloc same size
 160         * albeit slightly larger than necessary and maxbuffersize
 161         * defaults to this and can not be bigger.
 162         */
 163        ret_buf = mempool_alloc(cifs_req_poolp, GFP_NOFS);
 164
 165        /* clear the first few header bytes */
 166        /* for most paths, more is cleared in header_assemble */
 167        memset(ret_buf, 0, buf_size + 3);
 168        atomic_inc(&bufAllocCount);
 169#ifdef CONFIG_CIFS_STATS2
 170        atomic_inc(&totBufAllocCount);
 171#endif /* CONFIG_CIFS_STATS2 */
 172
 173        return ret_buf;
 174}
 175
 176void
 177cifs_buf_release(void *buf_to_free)
 178{
 179        if (buf_to_free == NULL) {
 180                /* cifs_dbg(FYI, "Null buffer passed to cifs_buf_release\n");*/
 181                return;
 182        }
 183        mempool_free(buf_to_free, cifs_req_poolp);
 184
 185        atomic_dec(&bufAllocCount);
 186        return;
 187}
 188
 189struct smb_hdr *
 190cifs_small_buf_get(void)
 191{
 192        struct smb_hdr *ret_buf = NULL;
 193
 194/* We could use negotiated size instead of max_msgsize -
 195   but it may be more efficient to always alloc same size
 196   albeit slightly larger than necessary and maxbuffersize
 197   defaults to this and can not be bigger */
 198        ret_buf = mempool_alloc(cifs_sm_req_poolp, GFP_NOFS);
 199        /* No need to clear memory here, cleared in header assemble */
 200        /*      memset(ret_buf, 0, sizeof(struct smb_hdr) + 27);*/
 201        atomic_inc(&smBufAllocCount);
 202#ifdef CONFIG_CIFS_STATS2
 203        atomic_inc(&totSmBufAllocCount);
 204#endif /* CONFIG_CIFS_STATS2 */
 205
 206        return ret_buf;
 207}
 208
 209void
 210cifs_small_buf_release(void *buf_to_free)
 211{
 212
 213        if (buf_to_free == NULL) {
 214                cifs_dbg(FYI, "Null buffer passed to cifs_small_buf_release\n");
 215                return;
 216        }
 217        mempool_free(buf_to_free, cifs_sm_req_poolp);
 218
 219        atomic_dec(&smBufAllocCount);
 220        return;
 221}
 222
 223void
 224free_rsp_buf(int resp_buftype, void *rsp)
 225{
 226        if (resp_buftype == CIFS_SMALL_BUFFER)
 227                cifs_small_buf_release(rsp);
 228        else if (resp_buftype == CIFS_LARGE_BUFFER)
 229                cifs_buf_release(rsp);
 230}
 231
 232/* NB: MID can not be set if treeCon not passed in, in that
 233   case it is responsbility of caller to set the mid */
 234void
 235header_assemble(struct smb_hdr *buffer, char smb_command /* command */ ,
 236                const struct cifs_tcon *treeCon, int word_count
 237                /* length of fixed section (word count) in two byte units  */)
 238{
 239        char *temp = (char *) buffer;
 240
 241        memset(temp, 0, 256); /* bigger than MAX_CIFS_HDR_SIZE */
 242
 243        buffer->smb_buf_length = cpu_to_be32(
 244            (2 * word_count) + sizeof(struct smb_hdr) -
 245            4 /*  RFC 1001 length field does not count */  +
 246            2 /* for bcc field itself */) ;
 247
 248        buffer->Protocol[0] = 0xFF;
 249        buffer->Protocol[1] = 'S';
 250        buffer->Protocol[2] = 'M';
 251        buffer->Protocol[3] = 'B';
 252        buffer->Command = smb_command;
 253        buffer->Flags = 0x00;   /* case sensitive */
 254        buffer->Flags2 = SMBFLG2_KNOWS_LONG_NAMES;
 255        buffer->Pid = cpu_to_le16((__u16)current->tgid);
 256        buffer->PidHigh = cpu_to_le16((__u16)(current->tgid >> 16));
 257        if (treeCon) {
 258                buffer->Tid = treeCon->tid;
 259                if (treeCon->ses) {
 260                        if (treeCon->ses->capabilities & CAP_UNICODE)
 261                                buffer->Flags2 |= SMBFLG2_UNICODE;
 262                        if (treeCon->ses->capabilities & CAP_STATUS32)
 263                                buffer->Flags2 |= SMBFLG2_ERR_STATUS;
 264
 265                        /* Uid is not converted */
 266                        buffer->Uid = treeCon->ses->Suid;
 267                        if (treeCon->ses->server)
 268                                buffer->Mid = get_next_mid(treeCon->ses->server);
 269                }
 270                if (treeCon->Flags & SMB_SHARE_IS_IN_DFS)
 271                        buffer->Flags2 |= SMBFLG2_DFS;
 272                if (treeCon->nocase)
 273                        buffer->Flags  |= SMBFLG_CASELESS;
 274                if ((treeCon->ses) && (treeCon->ses->server))
 275                        if (treeCon->ses->server->sign)
 276                                buffer->Flags2 |= SMBFLG2_SECURITY_SIGNATURE;
 277        }
 278
 279/*  endian conversion of flags is now done just before sending */
 280        buffer->WordCount = (char) word_count;
 281        return;
 282}
 283
 284static int
 285check_smb_hdr(struct smb_hdr *smb)
 286{
 287        /* does it have the right SMB "signature" ? */
 288        if (*(__le32 *) smb->Protocol != cpu_to_le32(0x424d53ff)) {
 289                cifs_dbg(VFS, "Bad protocol string signature header 0x%x\n",
 290                         *(unsigned int *)smb->Protocol);
 291                return 1;
 292        }
 293
 294        /* if it's a response then accept */
 295        if (smb->Flags & SMBFLG_RESPONSE)
 296                return 0;
 297
 298        /* only one valid case where server sends us request */
 299        if (smb->Command == SMB_COM_LOCKING_ANDX)
 300                return 0;
 301
 302        cifs_dbg(VFS, "Server sent request, not response. mid=%u\n",
 303                 get_mid(smb));
 304        return 1;
 305}
 306
 307int
 308checkSMB(char *buf, unsigned int total_read, struct TCP_Server_Info *server)
 309{
 310        struct smb_hdr *smb = (struct smb_hdr *)buf;
 311        __u32 rfclen = be32_to_cpu(smb->smb_buf_length);
 312        __u32 clc_len;  /* calculated length */
 313        cifs_dbg(FYI, "checkSMB Length: 0x%x, smb_buf_length: 0x%x\n",
 314                 total_read, rfclen);
 315
 316        /* is this frame too small to even get to a BCC? */
 317        if (total_read < 2 + sizeof(struct smb_hdr)) {
 318                if ((total_read >= sizeof(struct smb_hdr) - 1)
 319                            && (smb->Status.CifsError != 0)) {
 320                        /* it's an error return */
 321                        smb->WordCount = 0;
 322                        /* some error cases do not return wct and bcc */
 323                        return 0;
 324                } else if ((total_read == sizeof(struct smb_hdr) + 1) &&
 325                                (smb->WordCount == 0)) {
 326                        char *tmp = (char *)smb;
 327                        /* Need to work around a bug in two servers here */
 328                        /* First, check if the part of bcc they sent was zero */
 329                        if (tmp[sizeof(struct smb_hdr)] == 0) {
 330                                /* some servers return only half of bcc
 331                                 * on simple responses (wct, bcc both zero)
 332                                 * in particular have seen this on
 333                                 * ulogoffX and FindClose. This leaves
 334                                 * one byte of bcc potentially unitialized
 335                                 */
 336                                /* zero rest of bcc */
 337                                tmp[sizeof(struct smb_hdr)+1] = 0;
 338                                return 0;
 339                        }
 340                        cifs_dbg(VFS, "rcvd invalid byte count (bcc)\n");
 341                } else {
 342                        cifs_dbg(VFS, "Length less than smb header size\n");
 343                }
 344                return -EIO;
 345        }
 346
 347        /* otherwise, there is enough to get to the BCC */
 348        if (check_smb_hdr(smb))
 349                return -EIO;
 350        clc_len = smbCalcSize(smb, server);
 351
 352        if (4 + rfclen != total_read) {
 353                cifs_dbg(VFS, "Length read does not match RFC1001 length %d\n",
 354                         rfclen);
 355                return -EIO;
 356        }
 357
 358        if (4 + rfclen != clc_len) {
 359                __u16 mid = get_mid(smb);
 360                /* check if bcc wrapped around for large read responses */
 361                if ((rfclen > 64 * 1024) && (rfclen > clc_len)) {
 362                        /* check if lengths match mod 64K */
 363                        if (((4 + rfclen) & 0xFFFF) == (clc_len & 0xFFFF))
 364                                return 0; /* bcc wrapped */
 365                }
 366                cifs_dbg(FYI, "Calculated size %u vs length %u mismatch for mid=%u\n",
 367                         clc_len, 4 + rfclen, mid);
 368
 369                if (4 + rfclen < clc_len) {
 370                        cifs_dbg(VFS, "RFC1001 size %u smaller than SMB for mid=%u\n",
 371                                 rfclen, mid);
 372                        return -EIO;
 373                } else if (rfclen > clc_len + 512) {
 374                        /*
 375                         * Some servers (Windows XP in particular) send more
 376                         * data than the lengths in the SMB packet would
 377                         * indicate on certain calls (byte range locks and
 378                         * trans2 find first calls in particular). While the
 379                         * client can handle such a frame by ignoring the
 380                         * trailing data, we choose limit the amount of extra
 381                         * data to 512 bytes.
 382                         */
 383                        cifs_dbg(VFS, "RFC1001 size %u more than 512 bytes larger than SMB for mid=%u\n",
 384                                 rfclen, mid);
 385                        return -EIO;
 386                }
 387        }
 388        return 0;
 389}
 390
 391bool
 392is_valid_oplock_break(char *buffer, struct TCP_Server_Info *srv)
 393{
 394        struct smb_hdr *buf = (struct smb_hdr *)buffer;
 395        struct smb_com_lock_req *pSMB = (struct smb_com_lock_req *)buf;
 396        struct list_head *tmp, *tmp1, *tmp2;
 397        struct cifs_ses *ses;
 398        struct cifs_tcon *tcon;
 399        struct cifsInodeInfo *pCifsInode;
 400        struct cifsFileInfo *netfile;
 401
 402        cifs_dbg(FYI, "Checking for oplock break or dnotify response\n");
 403        if ((pSMB->hdr.Command == SMB_COM_NT_TRANSACT) &&
 404           (pSMB->hdr.Flags & SMBFLG_RESPONSE)) {
 405                struct smb_com_transaction_change_notify_rsp *pSMBr =
 406                        (struct smb_com_transaction_change_notify_rsp *)buf;
 407                struct file_notify_information *pnotify;
 408                __u32 data_offset = 0;
 409                size_t len = srv->total_read - sizeof(pSMBr->hdr.smb_buf_length);
 410
 411                if (get_bcc(buf) > sizeof(struct file_notify_information)) {
 412                        data_offset = le32_to_cpu(pSMBr->DataOffset);
 413
 414                        if (data_offset >
 415                            len - sizeof(struct file_notify_information)) {
 416                                cifs_dbg(FYI, "Invalid data_offset %u\n",
 417                                         data_offset);
 418                                return true;
 419                        }
 420                        pnotify = (struct file_notify_information *)
 421                                ((char *)&pSMBr->hdr.Protocol + data_offset);
 422                        cifs_dbg(FYI, "dnotify on %s Action: 0x%x\n",
 423                                 pnotify->FileName, pnotify->Action);
 424                        /*   cifs_dump_mem("Rcvd notify Data: ",buf,
 425                                sizeof(struct smb_hdr)+60); */
 426                        return true;
 427                }
 428                if (pSMBr->hdr.Status.CifsError) {
 429                        cifs_dbg(FYI, "notify err 0x%x\n",
 430                                 pSMBr->hdr.Status.CifsError);
 431                        return true;
 432                }
 433                return false;
 434        }
 435        if (pSMB->hdr.Command != SMB_COM_LOCKING_ANDX)
 436                return false;
 437        if (pSMB->hdr.Flags & SMBFLG_RESPONSE) {
 438                /* no sense logging error on invalid handle on oplock
 439                   break - harmless race between close request and oplock
 440                   break response is expected from time to time writing out
 441                   large dirty files cached on the client */
 442                if ((NT_STATUS_INVALID_HANDLE) ==
 443                   le32_to_cpu(pSMB->hdr.Status.CifsError)) {
 444                        cifs_dbg(FYI, "Invalid handle on oplock break\n");
 445                        return true;
 446                } else if (ERRbadfid ==
 447                   le16_to_cpu(pSMB->hdr.Status.DosError.Error)) {
 448                        return true;
 449                } else {
 450                        return false; /* on valid oplock brk we get "request" */
 451                }
 452        }
 453        if (pSMB->hdr.WordCount != 8)
 454                return false;
 455
 456        cifs_dbg(FYI, "oplock type 0x%x level 0x%x\n",
 457                 pSMB->LockType, pSMB->OplockLevel);
 458        if (!(pSMB->LockType & LOCKING_ANDX_OPLOCK_RELEASE))
 459                return false;
 460
 461        /* look up tcon based on tid & uid */
 462        spin_lock(&cifs_tcp_ses_lock);
 463        list_for_each(tmp, &srv->smb_ses_list) {
 464                ses = list_entry(tmp, struct cifs_ses, smb_ses_list);
 465                list_for_each(tmp1, &ses->tcon_list) {
 466                        tcon = list_entry(tmp1, struct cifs_tcon, tcon_list);
 467                        if (tcon->tid != buf->Tid)
 468                                continue;
 469
 470                        cifs_stats_inc(&tcon->stats.cifs_stats.num_oplock_brks);
 471                        spin_lock(&tcon->open_file_lock);
 472                        list_for_each(tmp2, &tcon->openFileList) {
 473                                netfile = list_entry(tmp2, struct cifsFileInfo,
 474                                                     tlist);
 475                                if (pSMB->Fid != netfile->fid.netfid)
 476                                        continue;
 477
 478                                cifs_dbg(FYI, "file id match, oplock break\n");
 479                                pCifsInode = CIFS_I(d_inode(netfile->dentry));
 480
 481                                set_bit(CIFS_INODE_PENDING_OPLOCK_BREAK,
 482                                        &pCifsInode->flags);
 483
 484                                netfile->oplock_epoch = 0;
 485                                netfile->oplock_level = pSMB->OplockLevel;
 486                                netfile->oplock_break_cancelled = false;
 487                                cifs_queue_oplock_break(netfile);
 488
 489                                spin_unlock(&tcon->open_file_lock);
 490                                spin_unlock(&cifs_tcp_ses_lock);
 491                                return true;
 492                        }
 493                        spin_unlock(&tcon->open_file_lock);
 494                        spin_unlock(&cifs_tcp_ses_lock);
 495                        cifs_dbg(FYI, "No matching file for oplock break\n");
 496                        return true;
 497                }
 498        }
 499        spin_unlock(&cifs_tcp_ses_lock);
 500        cifs_dbg(FYI, "Can not process oplock break for non-existent connection\n");
 501        return true;
 502}
 503
 504void
 505dump_smb(void *buf, int smb_buf_length)
 506{
 507        if (traceSMB == 0)
 508                return;
 509
 510        print_hex_dump(KERN_DEBUG, "", DUMP_PREFIX_NONE, 8, 2, buf,
 511                       smb_buf_length, true);
 512}
 513
 514void
 515cifs_autodisable_serverino(struct cifs_sb_info *cifs_sb)
 516{
 517        if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_SERVER_INUM) {
 518                struct cifs_tcon *tcon = NULL;
 519
 520                if (cifs_sb->master_tlink)
 521                        tcon = cifs_sb_master_tcon(cifs_sb);
 522
 523                cifs_sb->mnt_cifs_flags &= ~CIFS_MOUNT_SERVER_INUM;
 524                cifs_sb->mnt_cifs_serverino_autodisabled = true;
 525                cifs_dbg(VFS, "Autodisabling the use of server inode numbers on %s\n",
 526                         tcon ? tcon->treeName : "new server");
 527                cifs_dbg(VFS, "The server doesn't seem to support them properly or the files might be on different servers (DFS)\n");
 528                cifs_dbg(VFS, "Hardlinks will not be recognized on this mount. Consider mounting with the \"noserverino\" option to silence this message.\n");
 529
 530        }
 531}
 532
 533void cifs_set_oplock_level(struct cifsInodeInfo *cinode, __u32 oplock)
 534{
 535        oplock &= 0xF;
 536
 537        if (oplock == OPLOCK_EXCLUSIVE) {
 538                cinode->oplock = CIFS_CACHE_WRITE_FLG | CIFS_CACHE_READ_FLG;
 539                cifs_dbg(FYI, "Exclusive Oplock granted on inode %p\n",
 540                         &cinode->vfs_inode);
 541        } else if (oplock == OPLOCK_READ) {
 542                cinode->oplock = CIFS_CACHE_READ_FLG;
 543                cifs_dbg(FYI, "Level II Oplock granted on inode %p\n",
 544                         &cinode->vfs_inode);
 545        } else
 546                cinode->oplock = 0;
 547}
 548
 549/*
 550 * We wait for oplock breaks to be processed before we attempt to perform
 551 * writes.
 552 */
 553int cifs_get_writer(struct cifsInodeInfo *cinode)
 554{
 555        int rc;
 556
 557start:
 558        rc = wait_on_bit(&cinode->flags, CIFS_INODE_PENDING_OPLOCK_BREAK,
 559                         TASK_KILLABLE);
 560        if (rc)
 561                return rc;
 562
 563        spin_lock(&cinode->writers_lock);
 564        if (!cinode->writers)
 565                set_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
 566        cinode->writers++;
 567        /* Check to see if we have started servicing an oplock break */
 568        if (test_bit(CIFS_INODE_PENDING_OPLOCK_BREAK, &cinode->flags)) {
 569                cinode->writers--;
 570                if (cinode->writers == 0) {
 571                        clear_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
 572                        wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_WRITERS);
 573                }
 574                spin_unlock(&cinode->writers_lock);
 575                goto start;
 576        }
 577        spin_unlock(&cinode->writers_lock);
 578        return 0;
 579}
 580
 581void cifs_put_writer(struct cifsInodeInfo *cinode)
 582{
 583        spin_lock(&cinode->writers_lock);
 584        cinode->writers--;
 585        if (cinode->writers == 0) {
 586                clear_bit(CIFS_INODE_PENDING_WRITERS, &cinode->flags);
 587                wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_WRITERS);
 588        }
 589        spin_unlock(&cinode->writers_lock);
 590}
 591
 592/**
 593 * cifs_queue_oplock_break - queue the oplock break handler for cfile
 594 * @cfile: The file to break the oplock on
 595 *
 596 * This function is called from the demultiplex thread when it
 597 * receives an oplock break for @cfile.
 598 *
 599 * Assumes the tcon->open_file_lock is held.
 600 * Assumes cfile->file_info_lock is NOT held.
 601 */
 602void cifs_queue_oplock_break(struct cifsFileInfo *cfile)
 603{
 604        /*
 605         * Bump the handle refcount now while we hold the
 606         * open_file_lock to enforce the validity of it for the oplock
 607         * break handler. The matching put is done at the end of the
 608         * handler.
 609         */
 610        cifsFileInfo_get(cfile);
 611
 612        queue_work(cifsoplockd_wq, &cfile->oplock_break);
 613}
 614
 615void cifs_done_oplock_break(struct cifsInodeInfo *cinode)
 616{
 617        clear_bit(CIFS_INODE_PENDING_OPLOCK_BREAK, &cinode->flags);
 618        wake_up_bit(&cinode->flags, CIFS_INODE_PENDING_OPLOCK_BREAK);
 619}
 620
 621bool
 622backup_cred(struct cifs_sb_info *cifs_sb)
 623{
 624        if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_CIFS_BACKUPUID) {
 625                if (uid_eq(cifs_sb->ctx->backupuid, current_fsuid()))
 626                        return true;
 627        }
 628        if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_CIFS_BACKUPGID) {
 629                if (in_group_p(cifs_sb->ctx->backupgid))
 630                        return true;
 631        }
 632
 633        return false;
 634}
 635
 636void
 637cifs_del_pending_open(struct cifs_pending_open *open)
 638{
 639        spin_lock(&tlink_tcon(open->tlink)->open_file_lock);
 640        list_del(&open->olist);
 641        spin_unlock(&tlink_tcon(open->tlink)->open_file_lock);
 642}
 643
 644void
 645cifs_add_pending_open_locked(struct cifs_fid *fid, struct tcon_link *tlink,
 646                             struct cifs_pending_open *open)
 647{
 648        memcpy(open->lease_key, fid->lease_key, SMB2_LEASE_KEY_SIZE);
 649        open->oplock = CIFS_OPLOCK_NO_CHANGE;
 650        open->tlink = tlink;
 651        fid->pending_open = open;
 652        list_add_tail(&open->olist, &tlink_tcon(tlink)->pending_opens);
 653}
 654
 655void
 656cifs_add_pending_open(struct cifs_fid *fid, struct tcon_link *tlink,
 657                      struct cifs_pending_open *open)
 658{
 659        spin_lock(&tlink_tcon(tlink)->open_file_lock);
 660        cifs_add_pending_open_locked(fid, tlink, open);
 661        spin_unlock(&tlink_tcon(open->tlink)->open_file_lock);
 662}
 663
 664/*
 665 * Critical section which runs after acquiring deferred_lock.
 666 * As there is no reference count on cifs_deferred_close, pdclose
 667 * should not be used outside deferred_lock.
 668 */
 669bool
 670cifs_is_deferred_close(struct cifsFileInfo *cfile, struct cifs_deferred_close **pdclose)
 671{
 672        struct cifs_deferred_close *dclose;
 673
 674        list_for_each_entry(dclose, &CIFS_I(d_inode(cfile->dentry))->deferred_closes, dlist) {
 675                if ((dclose->netfid == cfile->fid.netfid) &&
 676                        (dclose->persistent_fid == cfile->fid.persistent_fid) &&
 677                        (dclose->volatile_fid == cfile->fid.volatile_fid)) {
 678                        *pdclose = dclose;
 679                        return true;
 680                }
 681        }
 682        return false;
 683}
 684
 685/*
 686 * Critical section which runs after acquiring deferred_lock.
 687 */
 688void
 689cifs_add_deferred_close(struct cifsFileInfo *cfile, struct cifs_deferred_close *dclose)
 690{
 691        bool is_deferred = false;
 692        struct cifs_deferred_close *pdclose;
 693
 694        is_deferred = cifs_is_deferred_close(cfile, &pdclose);
 695        if (is_deferred) {
 696                kfree(dclose);
 697                return;
 698        }
 699
 700        dclose->tlink = cfile->tlink;
 701        dclose->netfid = cfile->fid.netfid;
 702        dclose->persistent_fid = cfile->fid.persistent_fid;
 703        dclose->volatile_fid = cfile->fid.volatile_fid;
 704        list_add_tail(&dclose->dlist, &CIFS_I(d_inode(cfile->dentry))->deferred_closes);
 705}
 706
 707/*
 708 * Critical section which runs after acquiring deferred_lock.
 709 */
 710void
 711cifs_del_deferred_close(struct cifsFileInfo *cfile)
 712{
 713        bool is_deferred = false;
 714        struct cifs_deferred_close *dclose;
 715
 716        is_deferred = cifs_is_deferred_close(cfile, &dclose);
 717        if (!is_deferred)
 718                return;
 719        list_del(&dclose->dlist);
 720        kfree(dclose);
 721}
 722
 723void
 724cifs_close_deferred_file(struct cifsInodeInfo *cifs_inode)
 725{
 726        struct cifsFileInfo *cfile = NULL;
 727        struct file_list *tmp_list, *tmp_next_list;
 728        struct list_head file_head;
 729
 730        if (cifs_inode == NULL)
 731                return;
 732
 733        INIT_LIST_HEAD(&file_head);
 734        spin_lock(&cifs_inode->open_file_lock);
 735        list_for_each_entry(cfile, &cifs_inode->openFileList, flist) {
 736                if (delayed_work_pending(&cfile->deferred)) {
 737                        if (cancel_delayed_work(&cfile->deferred)) {
 738                                tmp_list = kmalloc(sizeof(struct file_list), GFP_ATOMIC);
 739                                if (tmp_list == NULL)
 740                                        break;
 741                                tmp_list->cfile = cfile;
 742                                list_add_tail(&tmp_list->list, &file_head);
 743                        }
 744                }
 745        }
 746        spin_unlock(&cifs_inode->open_file_lock);
 747
 748        list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
 749                _cifsFileInfo_put(tmp_list->cfile, true, false);
 750                list_del(&tmp_list->list);
 751                kfree(tmp_list);
 752        }
 753}
 754
 755void
 756cifs_close_all_deferred_files(struct cifs_tcon *tcon)
 757{
 758        struct cifsFileInfo *cfile;
 759        struct list_head *tmp;
 760        struct file_list *tmp_list, *tmp_next_list;
 761        struct list_head file_head;
 762
 763        INIT_LIST_HEAD(&file_head);
 764        spin_lock(&tcon->open_file_lock);
 765        list_for_each(tmp, &tcon->openFileList) {
 766                cfile = list_entry(tmp, struct cifsFileInfo, tlist);
 767                if (delayed_work_pending(&cfile->deferred)) {
 768                        if (cancel_delayed_work(&cfile->deferred)) {
 769                                tmp_list = kmalloc(sizeof(struct file_list), GFP_ATOMIC);
 770                                if (tmp_list == NULL)
 771                                        break;
 772                                tmp_list->cfile = cfile;
 773                                list_add_tail(&tmp_list->list, &file_head);
 774                        }
 775                }
 776        }
 777        spin_unlock(&tcon->open_file_lock);
 778
 779        list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
 780                _cifsFileInfo_put(tmp_list->cfile, true, false);
 781                list_del(&tmp_list->list);
 782                kfree(tmp_list);
 783        }
 784}
 785void
 786cifs_close_deferred_file_under_dentry(struct cifs_tcon *tcon, const char *path)
 787{
 788        struct cifsFileInfo *cfile;
 789        struct list_head *tmp;
 790        struct file_list *tmp_list, *tmp_next_list;
 791        struct list_head file_head;
 792        void *page;
 793        const char *full_path;
 794
 795        INIT_LIST_HEAD(&file_head);
 796        page = alloc_dentry_path();
 797        spin_lock(&tcon->open_file_lock);
 798        list_for_each(tmp, &tcon->openFileList) {
 799                cfile = list_entry(tmp, struct cifsFileInfo, tlist);
 800                full_path = build_path_from_dentry(cfile->dentry, page);
 801                if (strstr(full_path, path)) {
 802                        if (delayed_work_pending(&cfile->deferred)) {
 803                                if (cancel_delayed_work(&cfile->deferred)) {
 804                                        tmp_list = kmalloc(sizeof(struct file_list), GFP_ATOMIC);
 805                                        if (tmp_list == NULL)
 806                                                break;
 807                                        tmp_list->cfile = cfile;
 808                                        list_add_tail(&tmp_list->list, &file_head);
 809                                }
 810                        }
 811                }
 812        }
 813        spin_unlock(&tcon->open_file_lock);
 814
 815        list_for_each_entry_safe(tmp_list, tmp_next_list, &file_head, list) {
 816                _cifsFileInfo_put(tmp_list->cfile, true, false);
 817                list_del(&tmp_list->list);
 818                kfree(tmp_list);
 819        }
 820        free_dentry_path(page);
 821}
 822
 823/* parses DFS refferal V3 structure
 824 * caller is responsible for freeing target_nodes
 825 * returns:
 826 * - on success - 0
 827 * - on failure - errno
 828 */
 829int
 830parse_dfs_referrals(struct get_dfs_referral_rsp *rsp, u32 rsp_size,
 831                    unsigned int *num_of_nodes,
 832                    struct dfs_info3_param **target_nodes,
 833                    const struct nls_table *nls_codepage, int remap,
 834                    const char *searchName, bool is_unicode)
 835{
 836        int i, rc = 0;
 837        char *data_end;
 838        struct dfs_referral_level_3 *ref;
 839
 840        *num_of_nodes = le16_to_cpu(rsp->NumberOfReferrals);
 841
 842        if (*num_of_nodes < 1) {
 843                cifs_dbg(VFS, "num_referrals: must be at least > 0, but we get num_referrals = %d\n",
 844                         *num_of_nodes);
 845                rc = -EINVAL;
 846                goto parse_DFS_referrals_exit;
 847        }
 848
 849        ref = (struct dfs_referral_level_3 *) &(rsp->referrals);
 850        if (ref->VersionNumber != cpu_to_le16(3)) {
 851                cifs_dbg(VFS, "Referrals of V%d version are not supported, should be V3\n",
 852                         le16_to_cpu(ref->VersionNumber));
 853                rc = -EINVAL;
 854                goto parse_DFS_referrals_exit;
 855        }
 856
 857        /* get the upper boundary of the resp buffer */
 858        data_end = (char *)rsp + rsp_size;
 859
 860        cifs_dbg(FYI, "num_referrals: %d dfs flags: 0x%x ...\n",
 861                 *num_of_nodes, le32_to_cpu(rsp->DFSFlags));
 862
 863        *target_nodes = kcalloc(*num_of_nodes, sizeof(struct dfs_info3_param),
 864                                GFP_KERNEL);
 865        if (*target_nodes == NULL) {
 866                rc = -ENOMEM;
 867                goto parse_DFS_referrals_exit;
 868        }
 869
 870        /* collect necessary data from referrals */
 871        for (i = 0; i < *num_of_nodes; i++) {
 872                char *temp;
 873                int max_len;
 874                struct dfs_info3_param *node = (*target_nodes)+i;
 875
 876                node->flags = le32_to_cpu(rsp->DFSFlags);
 877                if (is_unicode) {
 878                        __le16 *tmp = kmalloc(strlen(searchName)*2 + 2,
 879                                                GFP_KERNEL);
 880                        if (tmp == NULL) {
 881                                rc = -ENOMEM;
 882                                goto parse_DFS_referrals_exit;
 883                        }
 884                        cifsConvertToUTF16((__le16 *) tmp, searchName,
 885                                           PATH_MAX, nls_codepage, remap);
 886                        node->path_consumed = cifs_utf16_bytes(tmp,
 887                                        le16_to_cpu(rsp->PathConsumed),
 888                                        nls_codepage);
 889                        kfree(tmp);
 890                } else
 891                        node->path_consumed = le16_to_cpu(rsp->PathConsumed);
 892
 893                node->server_type = le16_to_cpu(ref->ServerType);
 894                node->ref_flag = le16_to_cpu(ref->ReferralEntryFlags);
 895
 896                /* copy DfsPath */
 897                temp = (char *)ref + le16_to_cpu(ref->DfsPathOffset);
 898                max_len = data_end - temp;
 899                node->path_name = cifs_strndup_from_utf16(temp, max_len,
 900                                                is_unicode, nls_codepage);
 901                if (!node->path_name) {
 902                        rc = -ENOMEM;
 903                        goto parse_DFS_referrals_exit;
 904                }
 905
 906                /* copy link target UNC */
 907                temp = (char *)ref + le16_to_cpu(ref->NetworkAddressOffset);
 908                max_len = data_end - temp;
 909                node->node_name = cifs_strndup_from_utf16(temp, max_len,
 910                                                is_unicode, nls_codepage);
 911                if (!node->node_name) {
 912                        rc = -ENOMEM;
 913                        goto parse_DFS_referrals_exit;
 914                }
 915
 916                node->ttl = le32_to_cpu(ref->TimeToLive);
 917
 918                ref++;
 919        }
 920
 921parse_DFS_referrals_exit:
 922        if (rc) {
 923                free_dfs_info_array(*target_nodes, *num_of_nodes);
 924                *target_nodes = NULL;
 925                *num_of_nodes = 0;
 926        }
 927        return rc;
 928}
 929
 930struct cifs_aio_ctx *
 931cifs_aio_ctx_alloc(void)
 932{
 933        struct cifs_aio_ctx *ctx;
 934
 935        /*
 936         * Must use kzalloc to initialize ctx->bv to NULL and ctx->direct_io
 937         * to false so that we know when we have to unreference pages within
 938         * cifs_aio_ctx_release()
 939         */
 940        ctx = kzalloc(sizeof(struct cifs_aio_ctx), GFP_KERNEL);
 941        if (!ctx)
 942                return NULL;
 943
 944        INIT_LIST_HEAD(&ctx->list);
 945        mutex_init(&ctx->aio_mutex);
 946        init_completion(&ctx->done);
 947        kref_init(&ctx->refcount);
 948        return ctx;
 949}
 950
 951void
 952cifs_aio_ctx_release(struct kref *refcount)
 953{
 954        struct cifs_aio_ctx *ctx = container_of(refcount,
 955                                        struct cifs_aio_ctx, refcount);
 956
 957        cifsFileInfo_put(ctx->cfile);
 958
 959        /*
 960         * ctx->bv is only set if setup_aio_ctx_iter() was call successfuly
 961         * which means that iov_iter_get_pages() was a success and thus that
 962         * we have taken reference on pages.
 963         */
 964        if (ctx->bv) {
 965                unsigned i;
 966
 967                for (i = 0; i < ctx->npages; i++) {
 968                        if (ctx->should_dirty)
 969                                set_page_dirty(ctx->bv[i].bv_page);
 970                        put_page(ctx->bv[i].bv_page);
 971                }
 972                kvfree(ctx->bv);
 973        }
 974
 975        kfree(ctx);
 976}
 977
 978#define CIFS_AIO_KMALLOC_LIMIT (1024 * 1024)
 979
 980int
 981setup_aio_ctx_iter(struct cifs_aio_ctx *ctx, struct iov_iter *iter, int rw)
 982{
 983        ssize_t rc;
 984        unsigned int cur_npages;
 985        unsigned int npages = 0;
 986        unsigned int i;
 987        size_t len;
 988        size_t count = iov_iter_count(iter);
 989        unsigned int saved_len;
 990        size_t start;
 991        unsigned int max_pages = iov_iter_npages(iter, INT_MAX);
 992        struct page **pages = NULL;
 993        struct bio_vec *bv = NULL;
 994
 995        if (iov_iter_is_kvec(iter)) {
 996                memcpy(&ctx->iter, iter, sizeof(*iter));
 997                ctx->len = count;
 998                iov_iter_advance(iter, count);
 999                return 0;
1000        }
1001
1002        if (array_size(max_pages, sizeof(*bv)) <= CIFS_AIO_KMALLOC_LIMIT)
1003                bv = kmalloc_array(max_pages, sizeof(*bv), GFP_KERNEL);
1004
1005        if (!bv) {
1006                bv = vmalloc(array_size(max_pages, sizeof(*bv)));
1007                if (!bv)
1008                        return -ENOMEM;
1009        }
1010
1011        if (array_size(max_pages, sizeof(*pages)) <= CIFS_AIO_KMALLOC_LIMIT)
1012                pages = kmalloc_array(max_pages, sizeof(*pages), GFP_KERNEL);
1013
1014        if (!pages) {
1015                pages = vmalloc(array_size(max_pages, sizeof(*pages)));
1016                if (!pages) {
1017                        kvfree(bv);
1018                        return -ENOMEM;
1019                }
1020        }
1021
1022        saved_len = count;
1023
1024        while (count && npages < max_pages) {
1025                rc = iov_iter_get_pages(iter, pages, count, max_pages, &start);
1026                if (rc < 0) {
1027                        cifs_dbg(VFS, "Couldn't get user pages (rc=%zd)\n", rc);
1028                        break;
1029                }
1030
1031                if (rc > count) {
1032                        cifs_dbg(VFS, "get pages rc=%zd more than %zu\n", rc,
1033                                 count);
1034                        break;
1035                }
1036
1037                iov_iter_advance(iter, rc);
1038                count -= rc;
1039                rc += start;
1040                cur_npages = DIV_ROUND_UP(rc, PAGE_SIZE);
1041
1042                if (npages + cur_npages > max_pages) {
1043                        cifs_dbg(VFS, "out of vec array capacity (%u vs %u)\n",
1044                                 npages + cur_npages, max_pages);
1045                        break;
1046                }
1047
1048                for (i = 0; i < cur_npages; i++) {
1049                        len = rc > PAGE_SIZE ? PAGE_SIZE : rc;
1050                        bv[npages + i].bv_page = pages[i];
1051                        bv[npages + i].bv_offset = start;
1052                        bv[npages + i].bv_len = len - start;
1053                        rc -= len;
1054                        start = 0;
1055                }
1056
1057                npages += cur_npages;
1058        }
1059
1060        kvfree(pages);
1061        ctx->bv = bv;
1062        ctx->len = saved_len - count;
1063        ctx->npages = npages;
1064        iov_iter_bvec(&ctx->iter, rw, ctx->bv, npages, ctx->len);
1065        return 0;
1066}
1067
1068/**
1069 * cifs_alloc_hash - allocate hash and hash context together
1070 * @name: The name of the crypto hash algo
1071 * @shash: Where to put the pointer to the hash algo
1072 * @sdesc: Where to put the pointer to the hash descriptor
1073 *
1074 * The caller has to make sure @sdesc is initialized to either NULL or
1075 * a valid context. Both can be freed via cifs_free_hash().
1076 */
1077int
1078cifs_alloc_hash(const char *name,
1079                struct crypto_shash **shash, struct sdesc **sdesc)
1080{
1081        int rc = 0;
1082        size_t size;
1083
1084        if (*sdesc != NULL)
1085                return 0;
1086
1087        *shash = crypto_alloc_shash(name, 0, 0);
1088        if (IS_ERR(*shash)) {
1089                cifs_dbg(VFS, "Could not allocate crypto %s\n", name);
1090                rc = PTR_ERR(*shash);
1091                *shash = NULL;
1092                *sdesc = NULL;
1093                return rc;
1094        }
1095
1096        size = sizeof(struct shash_desc) + crypto_shash_descsize(*shash);
1097        *sdesc = kmalloc(size, GFP_KERNEL);
1098        if (*sdesc == NULL) {
1099                cifs_dbg(VFS, "no memory left to allocate crypto %s\n", name);
1100                crypto_free_shash(*shash);
1101                *shash = NULL;
1102                return -ENOMEM;
1103        }
1104
1105        (*sdesc)->shash.tfm = *shash;
1106        return 0;
1107}
1108
1109/**
1110 * cifs_free_hash - free hash and hash context together
1111 * @shash: Where to find the pointer to the hash algo
1112 * @sdesc: Where to find the pointer to the hash descriptor
1113 *
1114 * Freeing a NULL hash or context is safe.
1115 */
1116void
1117cifs_free_hash(struct crypto_shash **shash, struct sdesc **sdesc)
1118{
1119        kfree(*sdesc);
1120        *sdesc = NULL;
1121        if (*shash)
1122                crypto_free_shash(*shash);
1123        *shash = NULL;
1124}
1125
1126/**
1127 * rqst_page_get_length - obtain the length and offset for a page in smb_rqst
1128 * @rqst: The request descriptor
1129 * @page: The index of the page to query
1130 * @len: Where to store the length for this page:
1131 * @offset: Where to store the offset for this page
1132 */
1133void rqst_page_get_length(struct smb_rqst *rqst, unsigned int page,
1134                                unsigned int *len, unsigned int *offset)
1135{
1136        *len = rqst->rq_pagesz;
1137        *offset = (page == 0) ? rqst->rq_offset : 0;
1138
1139        if (rqst->rq_npages == 1 || page == rqst->rq_npages-1)
1140                *len = rqst->rq_tailsz;
1141        else if (page == 0)
1142                *len = rqst->rq_pagesz - rqst->rq_offset;
1143}
1144
1145void extract_unc_hostname(const char *unc, const char **h, size_t *len)
1146{
1147        const char *end;
1148
1149        /* skip initial slashes */
1150        while (*unc && (*unc == '\\' || *unc == '/'))
1151                unc++;
1152
1153        end = unc;
1154
1155        while (*end && !(*end == '\\' || *end == '/'))
1156                end++;
1157
1158        *h = unc;
1159        *len = end - unc;
1160}
1161
1162/**
1163 * copy_path_name - copy src path to dst, possibly truncating
1164 * @dst: The destination buffer
1165 * @src: The source name
1166 *
1167 * returns number of bytes written (including trailing nul)
1168 */
1169int copy_path_name(char *dst, const char *src)
1170{
1171        int name_len;
1172
1173        /*
1174         * PATH_MAX includes nul, so if strlen(src) >= PATH_MAX it
1175         * will truncate and strlen(dst) will be PATH_MAX-1
1176         */
1177        name_len = strscpy(dst, src, PATH_MAX);
1178        if (WARN_ON_ONCE(name_len < 0))
1179                name_len = PATH_MAX-1;
1180
1181        /* we count the trailing nul */
1182        name_len++;
1183        return name_len;
1184}
1185
1186struct super_cb_data {
1187        void *data;
1188        struct super_block *sb;
1189};
1190
1191static void tcp_super_cb(struct super_block *sb, void *arg)
1192{
1193        struct super_cb_data *sd = arg;
1194        struct TCP_Server_Info *server = sd->data;
1195        struct cifs_sb_info *cifs_sb;
1196        struct cifs_tcon *tcon;
1197
1198        if (sd->sb)
1199                return;
1200
1201        cifs_sb = CIFS_SB(sb);
1202        tcon = cifs_sb_master_tcon(cifs_sb);
1203        if (tcon->ses->server == server)
1204                sd->sb = sb;
1205}
1206
1207static struct super_block *__cifs_get_super(void (*f)(struct super_block *, void *),
1208                                            void *data)
1209{
1210        struct super_cb_data sd = {
1211                .data = data,
1212                .sb = NULL,
1213        };
1214
1215        iterate_supers_type(&cifs_fs_type, f, &sd);
1216
1217        if (!sd.sb)
1218                return ERR_PTR(-EINVAL);
1219        /*
1220         * Grab an active reference in order to prevent automounts (DFS links)
1221         * of expiring and then freeing up our cifs superblock pointer while
1222         * we're doing failover.
1223         */
1224        cifs_sb_active(sd.sb);
1225        return sd.sb;
1226}
1227
1228static void __cifs_put_super(struct super_block *sb)
1229{
1230        if (!IS_ERR_OR_NULL(sb))
1231                cifs_sb_deactive(sb);
1232}
1233
1234struct super_block *cifs_get_tcp_super(struct TCP_Server_Info *server)
1235{
1236        return __cifs_get_super(tcp_super_cb, server);
1237}
1238
1239void cifs_put_tcp_super(struct super_block *sb)
1240{
1241        __cifs_put_super(sb);
1242}
1243
1244#ifdef CONFIG_CIFS_DFS_UPCALL
1245int match_target_ip(struct TCP_Server_Info *server,
1246                    const char *share, size_t share_len,
1247                    bool *result)
1248{
1249        int rc;
1250        char *target, *tip = NULL;
1251        struct sockaddr tipaddr;
1252
1253        *result = false;
1254
1255        target = kzalloc(share_len + 3, GFP_KERNEL);
1256        if (!target) {
1257                rc = -ENOMEM;
1258                goto out;
1259        }
1260
1261        scnprintf(target, share_len + 3, "\\\\%.*s", (int)share_len, share);
1262
1263        cifs_dbg(FYI, "%s: target name: %s\n", __func__, target + 2);
1264
1265        rc = dns_resolve_server_name_to_ip(target, &tip, NULL);
1266        if (rc < 0)
1267                goto out;
1268
1269        cifs_dbg(FYI, "%s: target ip: %s\n", __func__, tip);
1270
1271        if (!cifs_convert_address(&tipaddr, tip, strlen(tip))) {
1272                cifs_dbg(VFS, "%s: failed to convert target ip address\n",
1273                         __func__);
1274                rc = -EINVAL;
1275                goto out;
1276        }
1277
1278        *result = cifs_match_ipaddr((struct sockaddr *)&server->dstaddr,
1279                                    &tipaddr);
1280        cifs_dbg(FYI, "%s: ip addresses match: %u\n", __func__, *result);
1281        rc = 0;
1282
1283out:
1284        kfree(target);
1285        kfree(tip);
1286
1287        return rc;
1288}
1289
1290static void tcon_super_cb(struct super_block *sb, void *arg)
1291{
1292        struct super_cb_data *sd = arg;
1293        struct cifs_tcon *tcon = sd->data;
1294        struct cifs_sb_info *cifs_sb;
1295
1296        if (sd->sb)
1297                return;
1298
1299        cifs_sb = CIFS_SB(sb);
1300        if (tcon->dfs_path && cifs_sb->origin_fullpath &&
1301            !strcasecmp(tcon->dfs_path, cifs_sb->origin_fullpath))
1302                sd->sb = sb;
1303}
1304
1305static inline struct super_block *cifs_get_tcon_super(struct cifs_tcon *tcon)
1306{
1307        return __cifs_get_super(tcon_super_cb, tcon);
1308}
1309
1310static inline void cifs_put_tcon_super(struct super_block *sb)
1311{
1312        __cifs_put_super(sb);
1313}
1314#else
1315static inline struct super_block *cifs_get_tcon_super(struct cifs_tcon *tcon)
1316{
1317        return ERR_PTR(-EOPNOTSUPP);
1318}
1319
1320static inline void cifs_put_tcon_super(struct super_block *sb)
1321{
1322}
1323#endif
1324
1325int update_super_prepath(struct cifs_tcon *tcon, char *prefix)
1326{
1327        struct super_block *sb;
1328        struct cifs_sb_info *cifs_sb;
1329        int rc = 0;
1330
1331        sb = cifs_get_tcon_super(tcon);
1332        if (IS_ERR(sb))
1333                return PTR_ERR(sb);
1334
1335        cifs_sb = CIFS_SB(sb);
1336
1337        kfree(cifs_sb->prepath);
1338
1339        if (prefix && *prefix) {
1340                cifs_sb->prepath = kstrdup(prefix, GFP_ATOMIC);
1341                if (!cifs_sb->prepath) {
1342                        rc = -ENOMEM;
1343                        goto out;
1344                }
1345
1346                convert_delimiter(cifs_sb->prepath, CIFS_DIR_SEP(cifs_sb));
1347        } else
1348                cifs_sb->prepath = NULL;
1349
1350        cifs_sb->mnt_cifs_flags |= CIFS_MOUNT_USE_PREFIX_PATH;
1351
1352out:
1353        cifs_put_tcon_super(sb);
1354        return rc;
1355}
1356