/* * Helper function for jffs2_get_inode_nodes(). * It is called every time an unknown node is found. * * Returns: 0 on succes; * 1 if the node should be marked obsolete; * negative error code on failure. */ static inline int read_unknown(struct jffs2_sb_info *c, struct jffs2_raw_node_ref *ref, struct jffs2_unknown_node *un, uint32_t read) { /* We don't mark unknown nodes as REF_UNCHECKED */ BUG_ON(ref_flags(ref) == REF_UNCHECKED); un->nodetype = cpu_to_je16(JFFS2_NODE_ACCURATE | je16_to_cpu(un->nodetype)); if (crc32(0, un, sizeof(struct jffs2_unknown_node) - 4) != je32_to_cpu(un->hdr_crc)) { /* Hmmm. This should have been caught at scan time. */ JFFS2_NOTICE("node header CRC failed at %#08x. But it must have been OK earlier.\n", ref_offset(ref)); jffs2_dbg_dump_node(c, ref_offset(ref)); return 1; } else { switch(je16_to_cpu(un->nodetype) & JFFS2_COMPAT_MASK) { case JFFS2_FEATURE_INCOMPAT: JFFS2_ERROR("unknown INCOMPAT nodetype %#04X at %#08x\n", je16_to_cpu(un->nodetype), ref_offset(ref)); /* EEP */ BUG(); break; case JFFS2_FEATURE_ROCOMPAT: JFFS2_ERROR("unknown ROCOMPAT nodetype %#04X at %#08x\n", je16_to_cpu(un->nodetype), ref_offset(ref)); BUG_ON(!(c->flags & JFFS2_SB_FLAG_RO)); break; case JFFS2_FEATURE_RWCOMPAT_COPY: JFFS2_NOTICE("unknown RWCOMPAT_COPY nodetype %#04X at %#08x\n", je16_to_cpu(un->nodetype), ref_offset(ref)); break; case JFFS2_FEATURE_RWCOMPAT_DELETE: JFFS2_NOTICE("unknown RWCOMPAT_DELETE nodetype %#04X at %#08x\n", je16_to_cpu(un->nodetype), ref_offset(ref)); return 1; } } return 0; }
/* * Helper function for jffs2_get_inode_nodes(). * It is called every time an inode node is found. * * Returns: 0 on succes; * 1 if the node should be marked obsolete; * negative error code on failure. */ static inline int read_dnode(struct jffs2_sb_info *c, struct jffs2_raw_node_ref *ref, struct jffs2_raw_inode *rd, struct rb_root *tnp, int rdlen, uint32_t *latest_mctime, uint32_t *mctime_ver) { struct jffs2_tmp_dnode_info *tn; uint32_t len, csize; int ret = 1; /* Obsoleted. This cannot happen, surely? dwmw2 20020308 */ BUG_ON(ref_obsolete(ref)); tn = jffs2_alloc_tmp_dnode_info(); if (!tn) { JFFS2_ERROR("failed to allocate tn (%d bytes).\n", sizeof(*tn)); return -ENOMEM; } tn->partial_crc = 0; csize = je32_to_cpu(rd->csize); /* If we've never checked the CRCs on this node, check them now */ if (ref_flags(ref) == REF_UNCHECKED) { uint32_t crc; crc = crc32(0, rd, sizeof(*rd) - 8); if (unlikely(crc != je32_to_cpu(rd->node_crc))) { JFFS2_NOTICE("header CRC failed on node at %#08x: read %#08x, calculated %#08x\n", ref_offset(ref), je32_to_cpu(rd->node_crc), crc); goto free_out; } /* Sanity checks */ if (unlikely(je32_to_cpu(rd->offset) > je32_to_cpu(rd->isize)) || unlikely(PAD(je32_to_cpu(rd->csize) + sizeof(*rd)) != PAD(je32_to_cpu(rd->totlen)))) { JFFS2_WARNING("inode node header CRC is corrupted at %#08x\n", ref_offset(ref)); jffs2_dbg_dump_node(c, ref_offset(ref)); goto free_out; } if (jffs2_is_writebuffered(c) && csize != 0) { /* At this point we are supposed to check the data CRC * of our unchecked node. But thus far, we do not * know whether the node is valid or obsolete. To * figure this out, we need to walk all the nodes of * the inode and build the inode fragtree. We don't * want to spend time checking data of nodes which may * later be found to be obsolete. So we put off the full * data CRC checking until we have read all the inode * nodes and have started building the fragtree. * * The fragtree is being built starting with nodes * having the highest version number, so we'll be able * to detect whether a node is valid (i.e., it is not * overlapped by a node with higher version) or not. * And we'll be able to check only those nodes, which * are not obsolete. * * Of course, this optimization only makes sense in case * of NAND flashes (or other flashes whith * !jffs2_can_mark_obsolete()), since on NOR flashes * nodes are marked obsolete physically. * * Since NAND flashes (or other flashes with * jffs2_is_writebuffered(c)) are anyway read by * fractions of c->wbuf_pagesize, and we have just read * the node header, it is likely that the starting part * of the node data is also read when we read the * header. So we don't mind to check the CRC of the * starting part of the data of the node now, and check * the second part later (in jffs2_check_node_data()). * Of course, we will not need to re-read and re-check * the NAND page which we have just read. This is why we * read the whole NAND page at jffs2_get_inode_nodes(), * while we needed only the node header. */ unsigned char *buf; /* 'buf' will point to the start of data */ buf = (unsigned char *)rd + sizeof(*rd); /* len will be the read data length */ len = min_t(uint32_t, rdlen - sizeof(*rd), csize); tn->partial_crc = crc32(0, buf, len); dbg_readinode("Calculates CRC (%#08x) for %d bytes, csize %d\n", tn->partial_crc, len, csize); /* If we actually calculated the whole data CRC * and it is wrong, drop the node. */ if (len >= csize && unlikely(tn->partial_crc != je32_to_cpu(rd->data_crc))) { JFFS2_NOTICE("wrong data CRC in data node at 0x%08x: read %#08x, calculated %#08x.\n", ref_offset(ref), tn->partial_crc, je32_to_cpu(rd->data_crc)); goto free_out; } } else if (csize == 0) { /* * We checked the header CRC. If the node has no data, adjust * the space accounting now. For other nodes this will be done * later either when the node is marked obsolete or when its * data is checked. */ struct jffs2_eraseblock *jeb; dbg_readinode("the node has no data.\n"); jeb = &c->blocks[ref->flash_offset / c->sector_size]; len = ref_totlen(c, jeb, ref); spin_lock(&c->erase_completion_lock); jeb->used_size += len; jeb->unchecked_size -= len; c->used_size += len; c->unchecked_size -= len; ref->flash_offset = ref_offset(ref) | REF_NORMAL; spin_unlock(&c->erase_completion_lock); } } tn->fn = jffs2_alloc_full_dnode(); if (!tn->fn) { JFFS2_ERROR("alloc fn failed\n"); ret = -ENOMEM; goto free_out; } tn->version = je32_to_cpu(rd->version); tn->fn->ofs = je32_to_cpu(rd->offset); tn->data_crc = je32_to_cpu(rd->data_crc); tn->csize = csize; tn->fn->raw = ref; /* There was a bug where we wrote hole nodes out with csize/dsize swapped. Deal with it */ if (rd->compr == JFFS2_COMPR_ZERO && !je32_to_cpu(rd->dsize) && csize) tn->fn->size = csize; else // normal case... tn->fn->size = je32_to_cpu(rd->dsize); dbg_readinode("dnode @%08x: ver %u, offset %#04x, dsize %#04x, csize %#04x\n", ref_offset(ref), je32_to_cpu(rd->version), je32_to_cpu(rd->offset), je32_to_cpu(rd->dsize), csize); jffs2_add_tn_to_tree(tn, tnp); return 0; free_out: jffs2_free_tmp_dnode_info(tn); return ret; }
/* Get tmp_dnode_info and full_dirent for all non-obsolete nodes associated with this ino. Perform a preliminary ordering on data nodes, throwing away those which are completely obsoleted by newer ones. The naïve approach we use to take of just returning them _all_ in version order will cause us to run out of memory in certain degenerate cases. */ static int jffs2_get_inode_nodes(struct jffs2_sb_info *c, struct jffs2_inode_info *f, struct jffs2_readinode_info *rii) { struct jffs2_raw_node_ref *ref, *valid_ref; unsigned char *buf = NULL; union jffs2_node_union *node; size_t retlen; int len, err; rii->mctime_ver = 0; dbg_readinode("ino #%u\n", f->inocache->ino); /* FIXME: in case of NOR and available ->point() this * needs to be fixed. */ len = sizeof(union jffs2_node_union) + c->wbuf_pagesize; buf = kmalloc(len, GFP_KERNEL); if (!buf) return -ENOMEM; spin_lock(&c->erase_completion_lock); valid_ref = jffs2_first_valid_node(f->inocache->nodes); if (!valid_ref && f->inocache->ino != 1) JFFS2_WARNING("Eep. No valid nodes for ino #%u.\n", f->inocache->ino); while (valid_ref) { /* We can hold a pointer to a non-obsolete node without the spinlock, but _obsolete_ nodes may disappear at any time, if the block they're in gets erased. So if we mark 'ref' obsolete while we're not holding the lock, it can go away immediately. For that reason, we find the next valid node first, before processing 'ref'. */ ref = valid_ref; valid_ref = jffs2_first_valid_node(ref->next_in_ino); spin_unlock(&c->erase_completion_lock); cond_resched(); /* * At this point we don't know the type of the node we're going * to read, so we do not know the size of its header. In order * to minimize the amount of flash IO we assume the header is * of size = JFFS2_MIN_NODE_HEADER. */ len = JFFS2_MIN_NODE_HEADER; if (jffs2_is_writebuffered(c)) { int end, rem; /* * We are about to read JFFS2_MIN_NODE_HEADER bytes, * but this flash has some minimal I/O unit. It is * possible that we'll need to read more soon, so read * up to the next min. I/O unit, in order not to * re-read the same min. I/O unit twice. */ end = ref_offset(ref) + len; rem = end % c->wbuf_pagesize; if (rem) end += c->wbuf_pagesize - rem; len = end - ref_offset(ref); } dbg_readinode("read %d bytes at %#08x(%d).\n", len, ref_offset(ref), ref_flags(ref)); /* FIXME: point() */ err = jffs2_flash_read(c, ref_offset(ref), len, &retlen, buf); if (err) { JFFS2_ERROR("can not read %d bytes from 0x%08x, " "error code: %d.\n", len, ref_offset(ref), err); goto free_out; } if (retlen < len) { JFFS2_ERROR("short read at %#08x: %zu instead of %d.\n", ref_offset(ref), retlen, len); err = -EIO; goto free_out; } node = (union jffs2_node_union *)buf; /* No need to mask in the valid bit; it shouldn't be invalid */ if (je32_to_cpu(node->u.hdr_crc) != crc32(0, node, sizeof(node->u)-4)) { JFFS2_NOTICE("Node header CRC failed at %#08x. {%04x,%04x,%08x,%08x}\n", ref_offset(ref), je16_to_cpu(node->u.magic), je16_to_cpu(node->u.nodetype), je32_to_cpu(node->u.totlen), je32_to_cpu(node->u.hdr_crc)); jffs2_dbg_dump_node(c, ref_offset(ref)); jffs2_mark_node_obsolete(c, ref); goto cont; } if (je16_to_cpu(node->u.magic) != JFFS2_MAGIC_BITMASK) { /* Not a JFFS2 node, whinge and move on */ JFFS2_NOTICE("Wrong magic bitmask 0x%04x in node header at %#08x.\n", je16_to_cpu(node->u.magic), ref_offset(ref)); jffs2_mark_node_obsolete(c, ref); goto cont; } switch (je16_to_cpu(node->u.nodetype)) { case JFFS2_NODETYPE_DIRENT: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_raw_dirent) && len < sizeof(struct jffs2_raw_dirent)) { err = read_more(c, ref, sizeof(struct jffs2_raw_dirent), &len, buf); if (unlikely(err)) goto free_out; } err = read_direntry(c, ref, &node->d, retlen, rii); if (unlikely(err)) goto free_out; break; case JFFS2_NODETYPE_INODE: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_raw_inode) && len < sizeof(struct jffs2_raw_inode)) { err = read_more(c, ref, sizeof(struct jffs2_raw_inode), &len, buf); if (unlikely(err)) goto free_out; } err = read_dnode(c, ref, &node->i, len, rii); if (unlikely(err)) goto free_out; break; default: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_unknown_node) && len < sizeof(struct jffs2_unknown_node)) { err = read_more(c, ref, sizeof(struct jffs2_unknown_node), &len, buf); if (unlikely(err)) goto free_out; } err = read_unknown(c, ref, &node->u); if (unlikely(err)) goto free_out; } cont: spin_lock(&c->erase_completion_lock); } spin_unlock(&c->erase_completion_lock); kfree(buf); f->highest_version = rii->highest_version; dbg_readinode("nodes of inode #%u were read, the highest version is %u, latest_mctime %u, mctime_ver %u.\n", f->inocache->ino, rii->highest_version, rii->latest_mctime, rii->mctime_ver); return 0; free_out: jffs2_free_tmp_dnode_info_list(&rii->tn_root); jffs2_free_full_dirent_list(rii->fds); rii->fds = NULL; kfree(buf); return err; }
/* * Helper function for jffs2_get_inode_nodes(). * It is called every time an inode node is found. * * Returns: 0 on succes; * 1 if the node should be marked obsolete; * negative error code on failure. */ static inline int read_dnode(struct jffs2_sb_info *c, struct jffs2_raw_node_ref *ref, struct jffs2_raw_inode *rd, uint32_t read, struct rb_root *tnp, int32_t *latest_mctime, uint32_t *mctime_ver) { struct jffs2_eraseblock *jeb; struct jffs2_tmp_dnode_info *tn; /* Obsoleted. This cannot happen, surely? dwmw2 20020308 */ BUG_ON(ref_obsolete(ref)); /* If we've never checked the CRCs on this node, check them now */ if (ref_flags(ref) == REF_UNCHECKED) { uint32_t crc, len; crc = crc32(0, rd, sizeof(*rd) - 8); if (unlikely(crc != je32_to_cpu(rd->node_crc))) { JFFS2_NOTICE("header CRC failed on node at %#08x: read %#08x, calculated %#08x\n", ref_offset(ref), je32_to_cpu(rd->node_crc), crc); return 1; } /* Sanity checks */ if (unlikely(je32_to_cpu(rd->offset) > je32_to_cpu(rd->isize)) || unlikely(PAD(je32_to_cpu(rd->csize) + sizeof(*rd)) != PAD(je32_to_cpu(rd->totlen)))) { JFFS2_WARNING("inode node header CRC is corrupted at %#08x\n", ref_offset(ref)); jffs2_dbg_dump_node(c, ref_offset(ref)); return 1; } if (rd->compr != JFFS2_COMPR_ZERO && je32_to_cpu(rd->csize)) { unsigned char *buf = NULL; uint32_t pointed = 0; int err; #ifndef __ECOS if (c->mtd->point) { err = c->mtd->point (c->mtd, ref_offset(ref) + sizeof(*rd), je32_to_cpu(rd->csize), &read, &buf); if (unlikely(read < je32_to_cpu(rd->csize)) && likely(!err)) { JFFS2_ERROR("MTD point returned len too short: 0x%zx\n", read); c->mtd->unpoint(c->mtd, buf, ref_offset(ref) + sizeof(*rd), je32_to_cpu(rd->csize)); } else if (unlikely(err)){ JFFS2_ERROR("MTD point failed %d\n", err); } else pointed = 1; /* succefully pointed to device */ } #endif if(!pointed){ buf = kmalloc(je32_to_cpu(rd->csize), GFP_KERNEL); if (!buf) return -ENOMEM; err = jffs2_flash_read(c, ref_offset(ref) + sizeof(*rd), je32_to_cpu(rd->csize), &read, buf); if (unlikely(read != je32_to_cpu(rd->csize)) && likely(!err)) err = -EIO; if (err) { kfree(buf); return err; } } crc = crc32(0, buf, je32_to_cpu(rd->csize)); if(!pointed) kfree(buf); #ifndef __ECOS else c->mtd->unpoint(c->mtd, buf, ref_offset(ref) + sizeof(*rd), je32_to_cpu(rd->csize)); #endif if (crc != je32_to_cpu(rd->data_crc)) { JFFS2_NOTICE("data CRC failed on node at %#08x: read %#08x, calculated %#08x\n", ref_offset(ref), je32_to_cpu(rd->data_crc), crc); return 1; } } /* Mark the node as having been checked and fix the accounting accordingly */ jeb = &c->blocks[ref->flash_offset / c->sector_size]; len = ref_totlen(c, jeb, ref); spin_lock(&c->erase_completion_lock); jeb->used_size += len; jeb->unchecked_size -= len; c->used_size += len; c->unchecked_size -= len; /* If node covers at least a whole page, or if it starts at the beginning of a page and runs to the end of the file, or if it's a hole node, mark it REF_PRISTINE, else REF_NORMAL. If it's actually overlapped, it'll get made NORMAL (or OBSOLETE) when the overlapping node(s) get added to the tree anyway. */ if ((je32_to_cpu(rd->dsize) >= PAGE_CACHE_SIZE) || ( ((je32_to_cpu(rd->offset) & (PAGE_CACHE_SIZE-1))==0) && (je32_to_cpu(rd->dsize) + je32_to_cpu(rd->offset) == je32_to_cpu(rd->isize)))) { JFFS2_DBG_READINODE("marking node at %#08x REF_PRISTINE\n", ref_offset(ref)); ref->flash_offset = ref_offset(ref) | REF_PRISTINE; } else { JFFS2_DBG_READINODE("marking node at %#08x REF_NORMAL\n", ref_offset(ref)); ref->flash_offset = ref_offset(ref) | REF_NORMAL; } spin_unlock(&c->erase_completion_lock); } tn = jffs2_alloc_tmp_dnode_info(); if (!tn) { JFFS2_ERROR("alloc tn failed\n"); return -ENOMEM; } tn->fn = jffs2_alloc_full_dnode(); if (!tn->fn) { JFFS2_ERROR("alloc fn failed\n"); jffs2_free_tmp_dnode_info(tn); return -ENOMEM; } tn->version = je32_to_cpu(rd->version); tn->fn->ofs = je32_to_cpu(rd->offset); tn->fn->raw = ref; /* There was a bug where we wrote hole nodes out with csize/dsize swapped. Deal with it */ if (rd->compr == JFFS2_COMPR_ZERO && !je32_to_cpu(rd->dsize) && je32_to_cpu(rd->csize)) tn->fn->size = je32_to_cpu(rd->csize); else // normal case... tn->fn->size = je32_to_cpu(rd->dsize); JFFS2_DBG_READINODE("dnode @%08x: ver %u, offset %#04x, dsize %#04x\n", ref_offset(ref), je32_to_cpu(rd->version), je32_to_cpu(rd->offset), je32_to_cpu(rd->dsize)); jffs2_add_tn_to_tree(tn, tnp); return 0; }
/* Get tmp_dnode_info and full_dirent for all non-obsolete nodes associated with this ino, returning the former in order of version */ static int jffs2_get_inode_nodes(struct jffs2_sb_info *c, struct jffs2_inode_info *f, struct rb_root *tnp, struct jffs2_full_dirent **fdp, uint32_t *highest_version, uint32_t *latest_mctime, uint32_t *mctime_ver) { struct jffs2_raw_node_ref *ref, *valid_ref; struct rb_root ret_tn = RB_ROOT; struct jffs2_full_dirent *ret_fd = NULL; unsigned char *buf = NULL; union jffs2_node_union *node; size_t retlen; int len, err; *mctime_ver = 0; dbg_readinode("ino #%u\n", f->inocache->ino); if (jffs2_is_writebuffered(c)) { /* * If we have the write buffer, we assume the minimal I/O unit * is c->wbuf_pagesize. We implement some optimizations which in * this case and we need a temporary buffer of size = * 2*c->wbuf_pagesize bytes (see comments in read_dnode()). * Basically, we want to read not only the node header, but the * whole wbuf (NAND page in case of NAND) or 2, if the node * header overlaps the border between the 2 wbufs. */ len = 2*c->wbuf_pagesize; } else { /* * When there is no write buffer, the size of the temporary * buffer is the size of the larges node header. */ len = sizeof(union jffs2_node_union); } /* FIXME: in case of NOR and available ->point() this * needs to be fixed. */ buf = kmalloc(len, GFP_KERNEL); if (!buf) return -ENOMEM; spin_lock(&c->erase_completion_lock); valid_ref = jffs2_first_valid_node(f->inocache->nodes); if (!valid_ref && f->inocache->ino != 1) JFFS2_WARNING("Eep. No valid nodes for ino #%u.\n", f->inocache->ino); while (valid_ref) { unsigned char *bufstart; /* We can hold a pointer to a non-obsolete node without the spinlock, but _obsolete_ nodes may disappear at any time, if the block they're in gets erased. So if we mark 'ref' obsolete while we're not holding the lock, it can go away immediately. For that reason, we find the next valid node first, before processing 'ref'. */ ref = valid_ref; valid_ref = jffs2_first_valid_node(ref->next_in_ino); spin_unlock(&c->erase_completion_lock); cond_resched(); /* * At this point we don't know the type of the node we're going * to read, so we do not know the size of its header. In order * to minimize the amount of flash IO we assume the node has * size = JFFS2_MIN_NODE_HEADER. */ if (jffs2_is_writebuffered(c)) { /* * We treat 'buf' as 2 adjacent wbufs. We want to * adjust bufstart such as it points to the * beginning of the node within this wbuf. */ bufstart = buf + (ref_offset(ref) % c->wbuf_pagesize); /* We will read either one wbuf or 2 wbufs. */ len = c->wbuf_pagesize - (bufstart - buf); if (JFFS2_MIN_NODE_HEADER + (int)(bufstart - buf) > c->wbuf_pagesize) { /* The header spans the border of the first wbuf */ len += c->wbuf_pagesize; } } else { bufstart = buf; len = JFFS2_MIN_NODE_HEADER; } dbg_readinode("read %d bytes at %#08x(%d).\n", len, ref_offset(ref), ref_flags(ref)); /* FIXME: point() */ err = jffs2_flash_read(c, ref_offset(ref), len, &retlen, bufstart); if (err) { JFFS2_ERROR("can not read %d bytes from 0x%08x, " "error code: %d.\n", len, ref_offset(ref), err); goto free_out; } if (retlen < len) { JFFS2_ERROR("short read at %#08x: %zu instead of %d.\n", ref_offset(ref), retlen, len); err = -EIO; goto free_out; } node = (union jffs2_node_union *)bufstart; /* No need to mask in the valid bit; it shouldn't be invalid */ if (je32_to_cpu(node->u.hdr_crc) != crc32(0, node, sizeof(node->u)-4)) { JFFS2_NOTICE("Node header CRC failed at %#08x. {%04x,%04x,%08x,%08x}\n", ref_offset(ref), je16_to_cpu(node->u.magic), je16_to_cpu(node->u.nodetype), je32_to_cpu(node->u.totlen), je32_to_cpu(node->u.hdr_crc)); jffs2_dbg_dump_node(c, ref_offset(ref)); jffs2_mark_node_obsolete(c, ref); goto cont; } /* Due to poor choice of crc32 seed, an all-zero node will have a correct CRC */ if (!je32_to_cpu(node->u.hdr_crc) && !je16_to_cpu(node->u.nodetype) && !je16_to_cpu(node->u.magic) && !je32_to_cpu(node->u.totlen)) { JFFS2_NOTICE("All zero node header at %#08x.\n", ref_offset(ref)); jffs2_mark_node_obsolete(c, ref); goto cont; } switch (je16_to_cpu(node->u.nodetype)) { case JFFS2_NODETYPE_DIRENT: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_raw_dirent)) { err = read_more(c, ref, sizeof(struct jffs2_raw_dirent), &len, buf, bufstart); if (unlikely(err)) goto free_out; } err = read_direntry(c, ref, &node->d, retlen, &ret_fd, latest_mctime, mctime_ver); if (err == 1) { jffs2_mark_node_obsolete(c, ref); break; } else if (unlikely(err)) goto free_out; if (je32_to_cpu(node->d.version) > *highest_version) *highest_version = je32_to_cpu(node->d.version); break; case JFFS2_NODETYPE_INODE: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_raw_inode)) { err = read_more(c, ref, sizeof(struct jffs2_raw_inode), &len, buf, bufstart); if (unlikely(err)) goto free_out; } err = read_dnode(c, ref, &node->i, &ret_tn, len, latest_mctime, mctime_ver); if (err == 1) { jffs2_mark_node_obsolete(c, ref); break; } else if (unlikely(err)) goto free_out; if (je32_to_cpu(node->i.version) > *highest_version) *highest_version = je32_to_cpu(node->i.version); break; default: if (JFFS2_MIN_NODE_HEADER < sizeof(struct jffs2_unknown_node)) { err = read_more(c, ref, sizeof(struct jffs2_unknown_node), &len, buf, bufstart); if (unlikely(err)) goto free_out; } err = read_unknown(c, ref, &node->u); if (err == 1) { jffs2_mark_node_obsolete(c, ref); break; } else if (unlikely(err)) goto free_out; } cont: spin_lock(&c->erase_completion_lock); } spin_unlock(&c->erase_completion_lock); *tnp = ret_tn; *fdp = ret_fd; kfree(buf); dbg_readinode("nodes of inode #%u were read, the highest version is %u, latest_mctime %u, mctime_ver %u.\n", f->inocache->ino, *highest_version, *latest_mctime, *mctime_ver); return 0; free_out: jffs2_free_tmp_dnode_info_list(&ret_tn); jffs2_free_full_dirent_list(ret_fd); kfree(buf); return err; }