18c2ecf20Sopenharmony_ci// SPDX-License-Identifier: GPL-2.0-only 28c2ecf20Sopenharmony_ci/* 38c2ecf20Sopenharmony_ci * This file is part of UBIFS. 48c2ecf20Sopenharmony_ci * 58c2ecf20Sopenharmony_ci * Copyright (C) 2006-2008 Nokia Corporation. 68c2ecf20Sopenharmony_ci * Copyright (C) 2006, 2007 University of Szeged, Hungary 78c2ecf20Sopenharmony_ci * 88c2ecf20Sopenharmony_ci * Authors: Artem Bityutskiy (Битюцкий Артём) 98c2ecf20Sopenharmony_ci * Adrian Hunter 108c2ecf20Sopenharmony_ci * Zoltan Sogor 118c2ecf20Sopenharmony_ci */ 128c2ecf20Sopenharmony_ci 138c2ecf20Sopenharmony_ci/* 148c2ecf20Sopenharmony_ci * This file implements UBIFS I/O subsystem which provides various I/O-related 158c2ecf20Sopenharmony_ci * helper functions (reading/writing/checking/validating nodes) and implements 168c2ecf20Sopenharmony_ci * write-buffering support. Write buffers help to save space which otherwise 178c2ecf20Sopenharmony_ci * would have been wasted for padding to the nearest minimal I/O unit boundary. 188c2ecf20Sopenharmony_ci * Instead, data first goes to the write-buffer and is flushed when the 198c2ecf20Sopenharmony_ci * buffer is full or when it is not used for some time (by timer). This is 208c2ecf20Sopenharmony_ci * similar to the mechanism is used by JFFS2. 218c2ecf20Sopenharmony_ci * 228c2ecf20Sopenharmony_ci * UBIFS distinguishes between minimum write size (@c->min_io_size) and maximum 238c2ecf20Sopenharmony_ci * write size (@c->max_write_size). The latter is the maximum amount of bytes 248c2ecf20Sopenharmony_ci * the underlying flash is able to program at a time, and writing in 258c2ecf20Sopenharmony_ci * @c->max_write_size units should presumably be faster. Obviously, 268c2ecf20Sopenharmony_ci * @c->min_io_size <= @c->max_write_size. Write-buffers are of 278c2ecf20Sopenharmony_ci * @c->max_write_size bytes in size for maximum performance. However, when a 288c2ecf20Sopenharmony_ci * write-buffer is flushed, only the portion of it (aligned to @c->min_io_size 298c2ecf20Sopenharmony_ci * boundary) which contains data is written, not the whole write-buffer, 308c2ecf20Sopenharmony_ci * because this is more space-efficient. 318c2ecf20Sopenharmony_ci * 328c2ecf20Sopenharmony_ci * This optimization adds few complications to the code. Indeed, on the one 338c2ecf20Sopenharmony_ci * hand, we want to write in optimal @c->max_write_size bytes chunks, which 348c2ecf20Sopenharmony_ci * also means aligning writes at the @c->max_write_size bytes offsets. On the 358c2ecf20Sopenharmony_ci * other hand, we do not want to waste space when synchronizing the write 368c2ecf20Sopenharmony_ci * buffer, so during synchronization we writes in smaller chunks. And this makes 378c2ecf20Sopenharmony_ci * the next write offset to be not aligned to @c->max_write_size bytes. So the 388c2ecf20Sopenharmony_ci * have to make sure that the write-buffer offset (@wbuf->offs) becomes aligned 398c2ecf20Sopenharmony_ci * to @c->max_write_size bytes again. We do this by temporarily shrinking 408c2ecf20Sopenharmony_ci * write-buffer size (@wbuf->size). 418c2ecf20Sopenharmony_ci * 428c2ecf20Sopenharmony_ci * Write-buffers are defined by 'struct ubifs_wbuf' objects and protected by 438c2ecf20Sopenharmony_ci * mutexes defined inside these objects. Since sometimes upper-level code 448c2ecf20Sopenharmony_ci * has to lock the write-buffer (e.g. journal space reservation code), many 458c2ecf20Sopenharmony_ci * functions related to write-buffers have "nolock" suffix which means that the 468c2ecf20Sopenharmony_ci * caller has to lock the write-buffer before calling this function. 478c2ecf20Sopenharmony_ci * 488c2ecf20Sopenharmony_ci * UBIFS stores nodes at 64 bit-aligned addresses. If the node length is not 498c2ecf20Sopenharmony_ci * aligned, UBIFS starts the next node from the aligned address, and the padded 508c2ecf20Sopenharmony_ci * bytes may contain any rubbish. In other words, UBIFS does not put padding 518c2ecf20Sopenharmony_ci * bytes in those small gaps. Common headers of nodes store real node lengths, 528c2ecf20Sopenharmony_ci * not aligned lengths. Indexing nodes also store real lengths in branches. 538c2ecf20Sopenharmony_ci * 548c2ecf20Sopenharmony_ci * UBIFS uses padding when it pads to the next min. I/O unit. In this case it 558c2ecf20Sopenharmony_ci * uses padding nodes or padding bytes, if the padding node does not fit. 568c2ecf20Sopenharmony_ci * 578c2ecf20Sopenharmony_ci * All UBIFS nodes are protected by CRC checksums and UBIFS checks CRC when 588c2ecf20Sopenharmony_ci * they are read from the flash media. 598c2ecf20Sopenharmony_ci */ 608c2ecf20Sopenharmony_ci 618c2ecf20Sopenharmony_ci#include <linux/crc32.h> 628c2ecf20Sopenharmony_ci#include <linux/slab.h> 638c2ecf20Sopenharmony_ci#include "ubifs.h" 648c2ecf20Sopenharmony_ci 658c2ecf20Sopenharmony_ci/** 668c2ecf20Sopenharmony_ci * ubifs_ro_mode - switch UBIFS to read read-only mode. 678c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 688c2ecf20Sopenharmony_ci * @err: error code which is the reason of switching to R/O mode 698c2ecf20Sopenharmony_ci */ 708c2ecf20Sopenharmony_civoid ubifs_ro_mode(struct ubifs_info *c, int err) 718c2ecf20Sopenharmony_ci{ 728c2ecf20Sopenharmony_ci if (!c->ro_error) { 738c2ecf20Sopenharmony_ci c->ro_error = 1; 748c2ecf20Sopenharmony_ci c->no_chk_data_crc = 0; 758c2ecf20Sopenharmony_ci c->vfs_sb->s_flags |= SB_RDONLY; 768c2ecf20Sopenharmony_ci ubifs_warn(c, "switched to read-only mode, error %d", err); 778c2ecf20Sopenharmony_ci dump_stack(); 788c2ecf20Sopenharmony_ci } 798c2ecf20Sopenharmony_ci} 808c2ecf20Sopenharmony_ci 818c2ecf20Sopenharmony_ci/* 828c2ecf20Sopenharmony_ci * Below are simple wrappers over UBI I/O functions which include some 838c2ecf20Sopenharmony_ci * additional checks and UBIFS debugging stuff. See corresponding UBI function 848c2ecf20Sopenharmony_ci * for more information. 858c2ecf20Sopenharmony_ci */ 868c2ecf20Sopenharmony_ci 878c2ecf20Sopenharmony_ciint ubifs_leb_read(const struct ubifs_info *c, int lnum, void *buf, int offs, 888c2ecf20Sopenharmony_ci int len, int even_ebadmsg) 898c2ecf20Sopenharmony_ci{ 908c2ecf20Sopenharmony_ci int err; 918c2ecf20Sopenharmony_ci 928c2ecf20Sopenharmony_ci err = ubi_read(c->ubi, lnum, buf, offs, len); 938c2ecf20Sopenharmony_ci /* 948c2ecf20Sopenharmony_ci * In case of %-EBADMSG print the error message only if the 958c2ecf20Sopenharmony_ci * @even_ebadmsg is true. 968c2ecf20Sopenharmony_ci */ 978c2ecf20Sopenharmony_ci if (err && (err != -EBADMSG || even_ebadmsg)) { 988c2ecf20Sopenharmony_ci ubifs_err(c, "reading %d bytes from LEB %d:%d failed, error %d", 998c2ecf20Sopenharmony_ci len, lnum, offs, err); 1008c2ecf20Sopenharmony_ci dump_stack(); 1018c2ecf20Sopenharmony_ci } 1028c2ecf20Sopenharmony_ci return err; 1038c2ecf20Sopenharmony_ci} 1048c2ecf20Sopenharmony_ci 1058c2ecf20Sopenharmony_ciint ubifs_leb_write(struct ubifs_info *c, int lnum, const void *buf, int offs, 1068c2ecf20Sopenharmony_ci int len) 1078c2ecf20Sopenharmony_ci{ 1088c2ecf20Sopenharmony_ci int err; 1098c2ecf20Sopenharmony_ci 1108c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 1118c2ecf20Sopenharmony_ci if (c->ro_error) 1128c2ecf20Sopenharmony_ci return -EROFS; 1138c2ecf20Sopenharmony_ci if (!dbg_is_tst_rcvry(c)) 1148c2ecf20Sopenharmony_ci err = ubi_leb_write(c->ubi, lnum, buf, offs, len); 1158c2ecf20Sopenharmony_ci else 1168c2ecf20Sopenharmony_ci err = dbg_leb_write(c, lnum, buf, offs, len); 1178c2ecf20Sopenharmony_ci if (err) { 1188c2ecf20Sopenharmony_ci ubifs_err(c, "writing %d bytes to LEB %d:%d failed, error %d", 1198c2ecf20Sopenharmony_ci len, lnum, offs, err); 1208c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 1218c2ecf20Sopenharmony_ci dump_stack(); 1228c2ecf20Sopenharmony_ci } 1238c2ecf20Sopenharmony_ci return err; 1248c2ecf20Sopenharmony_ci} 1258c2ecf20Sopenharmony_ci 1268c2ecf20Sopenharmony_ciint ubifs_leb_change(struct ubifs_info *c, int lnum, const void *buf, int len) 1278c2ecf20Sopenharmony_ci{ 1288c2ecf20Sopenharmony_ci int err; 1298c2ecf20Sopenharmony_ci 1308c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 1318c2ecf20Sopenharmony_ci if (c->ro_error) 1328c2ecf20Sopenharmony_ci return -EROFS; 1338c2ecf20Sopenharmony_ci if (!dbg_is_tst_rcvry(c)) 1348c2ecf20Sopenharmony_ci err = ubi_leb_change(c->ubi, lnum, buf, len); 1358c2ecf20Sopenharmony_ci else 1368c2ecf20Sopenharmony_ci err = dbg_leb_change(c, lnum, buf, len); 1378c2ecf20Sopenharmony_ci if (err) { 1388c2ecf20Sopenharmony_ci ubifs_err(c, "changing %d bytes in LEB %d failed, error %d", 1398c2ecf20Sopenharmony_ci len, lnum, err); 1408c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 1418c2ecf20Sopenharmony_ci dump_stack(); 1428c2ecf20Sopenharmony_ci } 1438c2ecf20Sopenharmony_ci return err; 1448c2ecf20Sopenharmony_ci} 1458c2ecf20Sopenharmony_ci 1468c2ecf20Sopenharmony_ciint ubifs_leb_unmap(struct ubifs_info *c, int lnum) 1478c2ecf20Sopenharmony_ci{ 1488c2ecf20Sopenharmony_ci int err; 1498c2ecf20Sopenharmony_ci 1508c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 1518c2ecf20Sopenharmony_ci if (c->ro_error) 1528c2ecf20Sopenharmony_ci return -EROFS; 1538c2ecf20Sopenharmony_ci if (!dbg_is_tst_rcvry(c)) 1548c2ecf20Sopenharmony_ci err = ubi_leb_unmap(c->ubi, lnum); 1558c2ecf20Sopenharmony_ci else 1568c2ecf20Sopenharmony_ci err = dbg_leb_unmap(c, lnum); 1578c2ecf20Sopenharmony_ci if (err) { 1588c2ecf20Sopenharmony_ci ubifs_err(c, "unmap LEB %d failed, error %d", lnum, err); 1598c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 1608c2ecf20Sopenharmony_ci dump_stack(); 1618c2ecf20Sopenharmony_ci } 1628c2ecf20Sopenharmony_ci return err; 1638c2ecf20Sopenharmony_ci} 1648c2ecf20Sopenharmony_ci 1658c2ecf20Sopenharmony_ciint ubifs_leb_map(struct ubifs_info *c, int lnum) 1668c2ecf20Sopenharmony_ci{ 1678c2ecf20Sopenharmony_ci int err; 1688c2ecf20Sopenharmony_ci 1698c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 1708c2ecf20Sopenharmony_ci if (c->ro_error) 1718c2ecf20Sopenharmony_ci return -EROFS; 1728c2ecf20Sopenharmony_ci if (!dbg_is_tst_rcvry(c)) 1738c2ecf20Sopenharmony_ci err = ubi_leb_map(c->ubi, lnum); 1748c2ecf20Sopenharmony_ci else 1758c2ecf20Sopenharmony_ci err = dbg_leb_map(c, lnum); 1768c2ecf20Sopenharmony_ci if (err) { 1778c2ecf20Sopenharmony_ci ubifs_err(c, "mapping LEB %d failed, error %d", lnum, err); 1788c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 1798c2ecf20Sopenharmony_ci dump_stack(); 1808c2ecf20Sopenharmony_ci } 1818c2ecf20Sopenharmony_ci return err; 1828c2ecf20Sopenharmony_ci} 1838c2ecf20Sopenharmony_ci 1848c2ecf20Sopenharmony_ciint ubifs_is_mapped(const struct ubifs_info *c, int lnum) 1858c2ecf20Sopenharmony_ci{ 1868c2ecf20Sopenharmony_ci int err; 1878c2ecf20Sopenharmony_ci 1888c2ecf20Sopenharmony_ci err = ubi_is_mapped(c->ubi, lnum); 1898c2ecf20Sopenharmony_ci if (err < 0) { 1908c2ecf20Sopenharmony_ci ubifs_err(c, "ubi_is_mapped failed for LEB %d, error %d", 1918c2ecf20Sopenharmony_ci lnum, err); 1928c2ecf20Sopenharmony_ci dump_stack(); 1938c2ecf20Sopenharmony_ci } 1948c2ecf20Sopenharmony_ci return err; 1958c2ecf20Sopenharmony_ci} 1968c2ecf20Sopenharmony_ci 1978c2ecf20Sopenharmony_ci/** 1988c2ecf20Sopenharmony_ci * ubifs_check_node - check node. 1998c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 2008c2ecf20Sopenharmony_ci * @buf: node to check 2018c2ecf20Sopenharmony_ci * @len: node length 2028c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number 2038c2ecf20Sopenharmony_ci * @offs: offset within the logical eraseblock 2048c2ecf20Sopenharmony_ci * @quiet: print no messages 2058c2ecf20Sopenharmony_ci * @must_chk_crc: indicates whether to always check the CRC 2068c2ecf20Sopenharmony_ci * 2078c2ecf20Sopenharmony_ci * This function checks node magic number and CRC checksum. This function also 2088c2ecf20Sopenharmony_ci * validates node length to prevent UBIFS from becoming crazy when an attacker 2098c2ecf20Sopenharmony_ci * feeds it a file-system image with incorrect nodes. For example, too large 2108c2ecf20Sopenharmony_ci * node length in the common header could cause UBIFS to read memory outside of 2118c2ecf20Sopenharmony_ci * allocated buffer when checking the CRC checksum. 2128c2ecf20Sopenharmony_ci * 2138c2ecf20Sopenharmony_ci * This function may skip data nodes CRC checking if @c->no_chk_data_crc is 2148c2ecf20Sopenharmony_ci * true, which is controlled by corresponding UBIFS mount option. However, if 2158c2ecf20Sopenharmony_ci * @must_chk_crc is true, then @c->no_chk_data_crc is ignored and CRC is 2168c2ecf20Sopenharmony_ci * checked. Similarly, if @c->mounting or @c->remounting_rw is true (we are 2178c2ecf20Sopenharmony_ci * mounting or re-mounting to R/W mode), @c->no_chk_data_crc is ignored and CRC 2188c2ecf20Sopenharmony_ci * is checked. This is because during mounting or re-mounting from R/O mode to 2198c2ecf20Sopenharmony_ci * R/W mode we may read journal nodes (when replying the journal or doing the 2208c2ecf20Sopenharmony_ci * recovery) and the journal nodes may potentially be corrupted, so checking is 2218c2ecf20Sopenharmony_ci * required. 2228c2ecf20Sopenharmony_ci * 2238c2ecf20Sopenharmony_ci * This function returns zero in case of success and %-EUCLEAN in case of bad 2248c2ecf20Sopenharmony_ci * CRC or magic. 2258c2ecf20Sopenharmony_ci */ 2268c2ecf20Sopenharmony_ciint ubifs_check_node(const struct ubifs_info *c, const void *buf, int len, 2278c2ecf20Sopenharmony_ci int lnum, int offs, int quiet, int must_chk_crc) 2288c2ecf20Sopenharmony_ci{ 2298c2ecf20Sopenharmony_ci int err = -EINVAL, type, node_len; 2308c2ecf20Sopenharmony_ci uint32_t crc, node_crc, magic; 2318c2ecf20Sopenharmony_ci const struct ubifs_ch *ch = buf; 2328c2ecf20Sopenharmony_ci 2338c2ecf20Sopenharmony_ci ubifs_assert(c, lnum >= 0 && lnum < c->leb_cnt && offs >= 0); 2348c2ecf20Sopenharmony_ci ubifs_assert(c, !(offs & 7) && offs < c->leb_size); 2358c2ecf20Sopenharmony_ci 2368c2ecf20Sopenharmony_ci magic = le32_to_cpu(ch->magic); 2378c2ecf20Sopenharmony_ci if (magic != UBIFS_NODE_MAGIC) { 2388c2ecf20Sopenharmony_ci if (!quiet) 2398c2ecf20Sopenharmony_ci ubifs_err(c, "bad magic %#08x, expected %#08x", 2408c2ecf20Sopenharmony_ci magic, UBIFS_NODE_MAGIC); 2418c2ecf20Sopenharmony_ci err = -EUCLEAN; 2428c2ecf20Sopenharmony_ci goto out; 2438c2ecf20Sopenharmony_ci } 2448c2ecf20Sopenharmony_ci 2458c2ecf20Sopenharmony_ci type = ch->node_type; 2468c2ecf20Sopenharmony_ci if (type < 0 || type >= UBIFS_NODE_TYPES_CNT) { 2478c2ecf20Sopenharmony_ci if (!quiet) 2488c2ecf20Sopenharmony_ci ubifs_err(c, "bad node type %d", type); 2498c2ecf20Sopenharmony_ci goto out; 2508c2ecf20Sopenharmony_ci } 2518c2ecf20Sopenharmony_ci 2528c2ecf20Sopenharmony_ci node_len = le32_to_cpu(ch->len); 2538c2ecf20Sopenharmony_ci if (node_len + offs > c->leb_size) 2548c2ecf20Sopenharmony_ci goto out_len; 2558c2ecf20Sopenharmony_ci 2568c2ecf20Sopenharmony_ci if (c->ranges[type].max_len == 0) { 2578c2ecf20Sopenharmony_ci if (node_len != c->ranges[type].len) 2588c2ecf20Sopenharmony_ci goto out_len; 2598c2ecf20Sopenharmony_ci } else if (node_len < c->ranges[type].min_len || 2608c2ecf20Sopenharmony_ci node_len > c->ranges[type].max_len) 2618c2ecf20Sopenharmony_ci goto out_len; 2628c2ecf20Sopenharmony_ci 2638c2ecf20Sopenharmony_ci if (!must_chk_crc && type == UBIFS_DATA_NODE && !c->mounting && 2648c2ecf20Sopenharmony_ci !c->remounting_rw && c->no_chk_data_crc) 2658c2ecf20Sopenharmony_ci return 0; 2668c2ecf20Sopenharmony_ci 2678c2ecf20Sopenharmony_ci crc = crc32(UBIFS_CRC32_INIT, buf + 8, node_len - 8); 2688c2ecf20Sopenharmony_ci node_crc = le32_to_cpu(ch->crc); 2698c2ecf20Sopenharmony_ci if (crc != node_crc) { 2708c2ecf20Sopenharmony_ci if (!quiet) 2718c2ecf20Sopenharmony_ci ubifs_err(c, "bad CRC: calculated %#08x, read %#08x", 2728c2ecf20Sopenharmony_ci crc, node_crc); 2738c2ecf20Sopenharmony_ci err = -EUCLEAN; 2748c2ecf20Sopenharmony_ci goto out; 2758c2ecf20Sopenharmony_ci } 2768c2ecf20Sopenharmony_ci 2778c2ecf20Sopenharmony_ci return 0; 2788c2ecf20Sopenharmony_ci 2798c2ecf20Sopenharmony_ciout_len: 2808c2ecf20Sopenharmony_ci if (!quiet) 2818c2ecf20Sopenharmony_ci ubifs_err(c, "bad node length %d", node_len); 2828c2ecf20Sopenharmony_ciout: 2838c2ecf20Sopenharmony_ci if (!quiet) { 2848c2ecf20Sopenharmony_ci ubifs_err(c, "bad node at LEB %d:%d", lnum, offs); 2858c2ecf20Sopenharmony_ci ubifs_dump_node(c, buf, len); 2868c2ecf20Sopenharmony_ci dump_stack(); 2878c2ecf20Sopenharmony_ci } 2888c2ecf20Sopenharmony_ci return err; 2898c2ecf20Sopenharmony_ci} 2908c2ecf20Sopenharmony_ci 2918c2ecf20Sopenharmony_ci/** 2928c2ecf20Sopenharmony_ci * ubifs_pad - pad flash space. 2938c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 2948c2ecf20Sopenharmony_ci * @buf: buffer to put padding to 2958c2ecf20Sopenharmony_ci * @pad: how many bytes to pad 2968c2ecf20Sopenharmony_ci * 2978c2ecf20Sopenharmony_ci * The flash media obliges us to write only in chunks of %c->min_io_size and 2988c2ecf20Sopenharmony_ci * when we have to write less data we add padding node to the write-buffer and 2998c2ecf20Sopenharmony_ci * pad it to the next minimal I/O unit's boundary. Padding nodes help when the 3008c2ecf20Sopenharmony_ci * media is being scanned. If the amount of wasted space is not enough to fit a 3018c2ecf20Sopenharmony_ci * padding node which takes %UBIFS_PAD_NODE_SZ bytes, we write padding bytes 3028c2ecf20Sopenharmony_ci * pattern (%UBIFS_PADDING_BYTE). 3038c2ecf20Sopenharmony_ci * 3048c2ecf20Sopenharmony_ci * Padding nodes are also used to fill gaps when the "commit-in-gaps" method is 3058c2ecf20Sopenharmony_ci * used. 3068c2ecf20Sopenharmony_ci */ 3078c2ecf20Sopenharmony_civoid ubifs_pad(const struct ubifs_info *c, void *buf, int pad) 3088c2ecf20Sopenharmony_ci{ 3098c2ecf20Sopenharmony_ci uint32_t crc; 3108c2ecf20Sopenharmony_ci 3118c2ecf20Sopenharmony_ci ubifs_assert(c, pad >= 0); 3128c2ecf20Sopenharmony_ci 3138c2ecf20Sopenharmony_ci if (pad >= UBIFS_PAD_NODE_SZ) { 3148c2ecf20Sopenharmony_ci struct ubifs_ch *ch = buf; 3158c2ecf20Sopenharmony_ci struct ubifs_pad_node *pad_node = buf; 3168c2ecf20Sopenharmony_ci 3178c2ecf20Sopenharmony_ci ch->magic = cpu_to_le32(UBIFS_NODE_MAGIC); 3188c2ecf20Sopenharmony_ci ch->node_type = UBIFS_PAD_NODE; 3198c2ecf20Sopenharmony_ci ch->group_type = UBIFS_NO_NODE_GROUP; 3208c2ecf20Sopenharmony_ci ch->padding[0] = ch->padding[1] = 0; 3218c2ecf20Sopenharmony_ci ch->sqnum = 0; 3228c2ecf20Sopenharmony_ci ch->len = cpu_to_le32(UBIFS_PAD_NODE_SZ); 3238c2ecf20Sopenharmony_ci pad -= UBIFS_PAD_NODE_SZ; 3248c2ecf20Sopenharmony_ci pad_node->pad_len = cpu_to_le32(pad); 3258c2ecf20Sopenharmony_ci crc = crc32(UBIFS_CRC32_INIT, buf + 8, UBIFS_PAD_NODE_SZ - 8); 3268c2ecf20Sopenharmony_ci ch->crc = cpu_to_le32(crc); 3278c2ecf20Sopenharmony_ci memset(buf + UBIFS_PAD_NODE_SZ, 0, pad); 3288c2ecf20Sopenharmony_ci } else if (pad > 0) 3298c2ecf20Sopenharmony_ci /* Too little space, padding node won't fit */ 3308c2ecf20Sopenharmony_ci memset(buf, UBIFS_PADDING_BYTE, pad); 3318c2ecf20Sopenharmony_ci} 3328c2ecf20Sopenharmony_ci 3338c2ecf20Sopenharmony_ci/** 3348c2ecf20Sopenharmony_ci * next_sqnum - get next sequence number. 3358c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 3368c2ecf20Sopenharmony_ci */ 3378c2ecf20Sopenharmony_cistatic unsigned long long next_sqnum(struct ubifs_info *c) 3388c2ecf20Sopenharmony_ci{ 3398c2ecf20Sopenharmony_ci unsigned long long sqnum; 3408c2ecf20Sopenharmony_ci 3418c2ecf20Sopenharmony_ci spin_lock(&c->cnt_lock); 3428c2ecf20Sopenharmony_ci sqnum = ++c->max_sqnum; 3438c2ecf20Sopenharmony_ci spin_unlock(&c->cnt_lock); 3448c2ecf20Sopenharmony_ci 3458c2ecf20Sopenharmony_ci if (unlikely(sqnum >= SQNUM_WARN_WATERMARK)) { 3468c2ecf20Sopenharmony_ci if (sqnum >= SQNUM_WATERMARK) { 3478c2ecf20Sopenharmony_ci ubifs_err(c, "sequence number overflow %llu, end of life", 3488c2ecf20Sopenharmony_ci sqnum); 3498c2ecf20Sopenharmony_ci ubifs_ro_mode(c, -EINVAL); 3508c2ecf20Sopenharmony_ci } 3518c2ecf20Sopenharmony_ci ubifs_warn(c, "running out of sequence numbers, end of life soon"); 3528c2ecf20Sopenharmony_ci } 3538c2ecf20Sopenharmony_ci 3548c2ecf20Sopenharmony_ci return sqnum; 3558c2ecf20Sopenharmony_ci} 3568c2ecf20Sopenharmony_ci 3578c2ecf20Sopenharmony_civoid ubifs_init_node(struct ubifs_info *c, void *node, int len, int pad) 3588c2ecf20Sopenharmony_ci{ 3598c2ecf20Sopenharmony_ci struct ubifs_ch *ch = node; 3608c2ecf20Sopenharmony_ci unsigned long long sqnum = next_sqnum(c); 3618c2ecf20Sopenharmony_ci 3628c2ecf20Sopenharmony_ci ubifs_assert(c, len >= UBIFS_CH_SZ); 3638c2ecf20Sopenharmony_ci 3648c2ecf20Sopenharmony_ci ch->magic = cpu_to_le32(UBIFS_NODE_MAGIC); 3658c2ecf20Sopenharmony_ci ch->len = cpu_to_le32(len); 3668c2ecf20Sopenharmony_ci ch->group_type = UBIFS_NO_NODE_GROUP; 3678c2ecf20Sopenharmony_ci ch->sqnum = cpu_to_le64(sqnum); 3688c2ecf20Sopenharmony_ci ch->padding[0] = ch->padding[1] = 0; 3698c2ecf20Sopenharmony_ci 3708c2ecf20Sopenharmony_ci if (pad) { 3718c2ecf20Sopenharmony_ci len = ALIGN(len, 8); 3728c2ecf20Sopenharmony_ci pad = ALIGN(len, c->min_io_size) - len; 3738c2ecf20Sopenharmony_ci ubifs_pad(c, node + len, pad); 3748c2ecf20Sopenharmony_ci } 3758c2ecf20Sopenharmony_ci} 3768c2ecf20Sopenharmony_ci 3778c2ecf20Sopenharmony_civoid ubifs_crc_node(struct ubifs_info *c, void *node, int len) 3788c2ecf20Sopenharmony_ci{ 3798c2ecf20Sopenharmony_ci struct ubifs_ch *ch = node; 3808c2ecf20Sopenharmony_ci uint32_t crc; 3818c2ecf20Sopenharmony_ci 3828c2ecf20Sopenharmony_ci crc = crc32(UBIFS_CRC32_INIT, node + 8, len - 8); 3838c2ecf20Sopenharmony_ci ch->crc = cpu_to_le32(crc); 3848c2ecf20Sopenharmony_ci} 3858c2ecf20Sopenharmony_ci 3868c2ecf20Sopenharmony_ci/** 3878c2ecf20Sopenharmony_ci * ubifs_prepare_node_hmac - prepare node to be written to flash. 3888c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 3898c2ecf20Sopenharmony_ci * @node: the node to pad 3908c2ecf20Sopenharmony_ci * @len: node length 3918c2ecf20Sopenharmony_ci * @hmac_offs: offset of the HMAC in the node 3928c2ecf20Sopenharmony_ci * @pad: if the buffer has to be padded 3938c2ecf20Sopenharmony_ci * 3948c2ecf20Sopenharmony_ci * This function prepares node at @node to be written to the media - it 3958c2ecf20Sopenharmony_ci * calculates node CRC, fills the common header, and adds proper padding up to 3968c2ecf20Sopenharmony_ci * the next minimum I/O unit if @pad is not zero. if @hmac_offs is positive then 3978c2ecf20Sopenharmony_ci * a HMAC is inserted into the node at the given offset. 3988c2ecf20Sopenharmony_ci * 3998c2ecf20Sopenharmony_ci * This function returns 0 for success or a negative error code otherwise. 4008c2ecf20Sopenharmony_ci */ 4018c2ecf20Sopenharmony_ciint ubifs_prepare_node_hmac(struct ubifs_info *c, void *node, int len, 4028c2ecf20Sopenharmony_ci int hmac_offs, int pad) 4038c2ecf20Sopenharmony_ci{ 4048c2ecf20Sopenharmony_ci int err; 4058c2ecf20Sopenharmony_ci 4068c2ecf20Sopenharmony_ci ubifs_init_node(c, node, len, pad); 4078c2ecf20Sopenharmony_ci 4088c2ecf20Sopenharmony_ci if (hmac_offs > 0) { 4098c2ecf20Sopenharmony_ci err = ubifs_node_insert_hmac(c, node, len, hmac_offs); 4108c2ecf20Sopenharmony_ci if (err) 4118c2ecf20Sopenharmony_ci return err; 4128c2ecf20Sopenharmony_ci } 4138c2ecf20Sopenharmony_ci 4148c2ecf20Sopenharmony_ci ubifs_crc_node(c, node, len); 4158c2ecf20Sopenharmony_ci 4168c2ecf20Sopenharmony_ci return 0; 4178c2ecf20Sopenharmony_ci} 4188c2ecf20Sopenharmony_ci 4198c2ecf20Sopenharmony_ci/** 4208c2ecf20Sopenharmony_ci * ubifs_prepare_node - prepare node to be written to flash. 4218c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 4228c2ecf20Sopenharmony_ci * @node: the node to pad 4238c2ecf20Sopenharmony_ci * @len: node length 4248c2ecf20Sopenharmony_ci * @pad: if the buffer has to be padded 4258c2ecf20Sopenharmony_ci * 4268c2ecf20Sopenharmony_ci * This function prepares node at @node to be written to the media - it 4278c2ecf20Sopenharmony_ci * calculates node CRC, fills the common header, and adds proper padding up to 4288c2ecf20Sopenharmony_ci * the next minimum I/O unit if @pad is not zero. 4298c2ecf20Sopenharmony_ci */ 4308c2ecf20Sopenharmony_civoid ubifs_prepare_node(struct ubifs_info *c, void *node, int len, int pad) 4318c2ecf20Sopenharmony_ci{ 4328c2ecf20Sopenharmony_ci /* 4338c2ecf20Sopenharmony_ci * Deliberately ignore return value since this function can only fail 4348c2ecf20Sopenharmony_ci * when a hmac offset is given. 4358c2ecf20Sopenharmony_ci */ 4368c2ecf20Sopenharmony_ci ubifs_prepare_node_hmac(c, node, len, 0, pad); 4378c2ecf20Sopenharmony_ci} 4388c2ecf20Sopenharmony_ci 4398c2ecf20Sopenharmony_ci/** 4408c2ecf20Sopenharmony_ci * ubifs_prep_grp_node - prepare node of a group to be written to flash. 4418c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 4428c2ecf20Sopenharmony_ci * @node: the node to pad 4438c2ecf20Sopenharmony_ci * @len: node length 4448c2ecf20Sopenharmony_ci * @last: indicates the last node of the group 4458c2ecf20Sopenharmony_ci * 4468c2ecf20Sopenharmony_ci * This function prepares node at @node to be written to the media - it 4478c2ecf20Sopenharmony_ci * calculates node CRC and fills the common header. 4488c2ecf20Sopenharmony_ci */ 4498c2ecf20Sopenharmony_civoid ubifs_prep_grp_node(struct ubifs_info *c, void *node, int len, int last) 4508c2ecf20Sopenharmony_ci{ 4518c2ecf20Sopenharmony_ci uint32_t crc; 4528c2ecf20Sopenharmony_ci struct ubifs_ch *ch = node; 4538c2ecf20Sopenharmony_ci unsigned long long sqnum = next_sqnum(c); 4548c2ecf20Sopenharmony_ci 4558c2ecf20Sopenharmony_ci ubifs_assert(c, len >= UBIFS_CH_SZ); 4568c2ecf20Sopenharmony_ci 4578c2ecf20Sopenharmony_ci ch->magic = cpu_to_le32(UBIFS_NODE_MAGIC); 4588c2ecf20Sopenharmony_ci ch->len = cpu_to_le32(len); 4598c2ecf20Sopenharmony_ci if (last) 4608c2ecf20Sopenharmony_ci ch->group_type = UBIFS_LAST_OF_NODE_GROUP; 4618c2ecf20Sopenharmony_ci else 4628c2ecf20Sopenharmony_ci ch->group_type = UBIFS_IN_NODE_GROUP; 4638c2ecf20Sopenharmony_ci ch->sqnum = cpu_to_le64(sqnum); 4648c2ecf20Sopenharmony_ci ch->padding[0] = ch->padding[1] = 0; 4658c2ecf20Sopenharmony_ci crc = crc32(UBIFS_CRC32_INIT, node + 8, len - 8); 4668c2ecf20Sopenharmony_ci ch->crc = cpu_to_le32(crc); 4678c2ecf20Sopenharmony_ci} 4688c2ecf20Sopenharmony_ci 4698c2ecf20Sopenharmony_ci/** 4708c2ecf20Sopenharmony_ci * wbuf_timer_callback - write-buffer timer callback function. 4718c2ecf20Sopenharmony_ci * @timer: timer data (write-buffer descriptor) 4728c2ecf20Sopenharmony_ci * 4738c2ecf20Sopenharmony_ci * This function is called when the write-buffer timer expires. 4748c2ecf20Sopenharmony_ci */ 4758c2ecf20Sopenharmony_cistatic enum hrtimer_restart wbuf_timer_callback_nolock(struct hrtimer *timer) 4768c2ecf20Sopenharmony_ci{ 4778c2ecf20Sopenharmony_ci struct ubifs_wbuf *wbuf = container_of(timer, struct ubifs_wbuf, timer); 4788c2ecf20Sopenharmony_ci 4798c2ecf20Sopenharmony_ci dbg_io("jhead %s", dbg_jhead(wbuf->jhead)); 4808c2ecf20Sopenharmony_ci wbuf->need_sync = 1; 4818c2ecf20Sopenharmony_ci wbuf->c->need_wbuf_sync = 1; 4828c2ecf20Sopenharmony_ci ubifs_wake_up_bgt(wbuf->c); 4838c2ecf20Sopenharmony_ci return HRTIMER_NORESTART; 4848c2ecf20Sopenharmony_ci} 4858c2ecf20Sopenharmony_ci 4868c2ecf20Sopenharmony_ci/** 4878c2ecf20Sopenharmony_ci * new_wbuf_timer - start new write-buffer timer. 4888c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 4898c2ecf20Sopenharmony_ci * @wbuf: write-buffer descriptor 4908c2ecf20Sopenharmony_ci */ 4918c2ecf20Sopenharmony_cistatic void new_wbuf_timer_nolock(struct ubifs_info *c, struct ubifs_wbuf *wbuf) 4928c2ecf20Sopenharmony_ci{ 4938c2ecf20Sopenharmony_ci ktime_t softlimit = ms_to_ktime(dirty_writeback_interval * 10); 4948c2ecf20Sopenharmony_ci unsigned long long delta = dirty_writeback_interval; 4958c2ecf20Sopenharmony_ci 4968c2ecf20Sopenharmony_ci /* centi to milli, milli to nano, then 10% */ 4978c2ecf20Sopenharmony_ci delta *= 10ULL * NSEC_PER_MSEC / 10ULL; 4988c2ecf20Sopenharmony_ci 4998c2ecf20Sopenharmony_ci ubifs_assert(c, !hrtimer_active(&wbuf->timer)); 5008c2ecf20Sopenharmony_ci ubifs_assert(c, delta <= ULONG_MAX); 5018c2ecf20Sopenharmony_ci 5028c2ecf20Sopenharmony_ci if (wbuf->no_timer) 5038c2ecf20Sopenharmony_ci return; 5048c2ecf20Sopenharmony_ci dbg_io("set timer for jhead %s, %llu-%llu millisecs", 5058c2ecf20Sopenharmony_ci dbg_jhead(wbuf->jhead), 5068c2ecf20Sopenharmony_ci div_u64(ktime_to_ns(softlimit), USEC_PER_SEC), 5078c2ecf20Sopenharmony_ci div_u64(ktime_to_ns(softlimit) + delta, USEC_PER_SEC)); 5088c2ecf20Sopenharmony_ci hrtimer_start_range_ns(&wbuf->timer, softlimit, delta, 5098c2ecf20Sopenharmony_ci HRTIMER_MODE_REL); 5108c2ecf20Sopenharmony_ci} 5118c2ecf20Sopenharmony_ci 5128c2ecf20Sopenharmony_ci/** 5138c2ecf20Sopenharmony_ci * cancel_wbuf_timer - cancel write-buffer timer. 5148c2ecf20Sopenharmony_ci * @wbuf: write-buffer descriptor 5158c2ecf20Sopenharmony_ci */ 5168c2ecf20Sopenharmony_cistatic void cancel_wbuf_timer_nolock(struct ubifs_wbuf *wbuf) 5178c2ecf20Sopenharmony_ci{ 5188c2ecf20Sopenharmony_ci if (wbuf->no_timer) 5198c2ecf20Sopenharmony_ci return; 5208c2ecf20Sopenharmony_ci wbuf->need_sync = 0; 5218c2ecf20Sopenharmony_ci hrtimer_cancel(&wbuf->timer); 5228c2ecf20Sopenharmony_ci} 5238c2ecf20Sopenharmony_ci 5248c2ecf20Sopenharmony_ci/** 5258c2ecf20Sopenharmony_ci * ubifs_wbuf_sync_nolock - synchronize write-buffer. 5268c2ecf20Sopenharmony_ci * @wbuf: write-buffer to synchronize 5278c2ecf20Sopenharmony_ci * 5288c2ecf20Sopenharmony_ci * This function synchronizes write-buffer @buf and returns zero in case of 5298c2ecf20Sopenharmony_ci * success or a negative error code in case of failure. 5308c2ecf20Sopenharmony_ci * 5318c2ecf20Sopenharmony_ci * Note, although write-buffers are of @c->max_write_size, this function does 5328c2ecf20Sopenharmony_ci * not necessarily writes all @c->max_write_size bytes to the flash. Instead, 5338c2ecf20Sopenharmony_ci * if the write-buffer is only partially filled with data, only the used part 5348c2ecf20Sopenharmony_ci * of the write-buffer (aligned on @c->min_io_size boundary) is synchronized. 5358c2ecf20Sopenharmony_ci * This way we waste less space. 5368c2ecf20Sopenharmony_ci */ 5378c2ecf20Sopenharmony_ciint ubifs_wbuf_sync_nolock(struct ubifs_wbuf *wbuf) 5388c2ecf20Sopenharmony_ci{ 5398c2ecf20Sopenharmony_ci struct ubifs_info *c = wbuf->c; 5408c2ecf20Sopenharmony_ci int err, dirt, sync_len; 5418c2ecf20Sopenharmony_ci 5428c2ecf20Sopenharmony_ci cancel_wbuf_timer_nolock(wbuf); 5438c2ecf20Sopenharmony_ci if (!wbuf->used || wbuf->lnum == -1) 5448c2ecf20Sopenharmony_ci /* Write-buffer is empty or not seeked */ 5458c2ecf20Sopenharmony_ci return 0; 5468c2ecf20Sopenharmony_ci 5478c2ecf20Sopenharmony_ci dbg_io("LEB %d:%d, %d bytes, jhead %s", 5488c2ecf20Sopenharmony_ci wbuf->lnum, wbuf->offs, wbuf->used, dbg_jhead(wbuf->jhead)); 5498c2ecf20Sopenharmony_ci ubifs_assert(c, !(wbuf->avail & 7)); 5508c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->offs + wbuf->size <= c->leb_size); 5518c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size >= c->min_io_size); 5528c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size <= c->max_write_size); 5538c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size % c->min_io_size == 0); 5548c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 5558c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs >= c->max_write_size) 5568c2ecf20Sopenharmony_ci ubifs_assert(c, !((wbuf->offs + wbuf->size) % c->max_write_size)); 5578c2ecf20Sopenharmony_ci 5588c2ecf20Sopenharmony_ci if (c->ro_error) 5598c2ecf20Sopenharmony_ci return -EROFS; 5608c2ecf20Sopenharmony_ci 5618c2ecf20Sopenharmony_ci /* 5628c2ecf20Sopenharmony_ci * Do not write whole write buffer but write only the minimum necessary 5638c2ecf20Sopenharmony_ci * amount of min. I/O units. 5648c2ecf20Sopenharmony_ci */ 5658c2ecf20Sopenharmony_ci sync_len = ALIGN(wbuf->used, c->min_io_size); 5668c2ecf20Sopenharmony_ci dirt = sync_len - wbuf->used; 5678c2ecf20Sopenharmony_ci if (dirt) 5688c2ecf20Sopenharmony_ci ubifs_pad(c, wbuf->buf + wbuf->used, dirt); 5698c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, wbuf->buf, wbuf->offs, sync_len); 5708c2ecf20Sopenharmony_ci if (err) 5718c2ecf20Sopenharmony_ci return err; 5728c2ecf20Sopenharmony_ci 5738c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 5748c2ecf20Sopenharmony_ci wbuf->offs += sync_len; 5758c2ecf20Sopenharmony_ci /* 5768c2ecf20Sopenharmony_ci * Now @wbuf->offs is not necessarily aligned to @c->max_write_size. 5778c2ecf20Sopenharmony_ci * But our goal is to optimize writes and make sure we write in 5788c2ecf20Sopenharmony_ci * @c->max_write_size chunks and to @c->max_write_size-aligned offset. 5798c2ecf20Sopenharmony_ci * Thus, if @wbuf->offs is not aligned to @c->max_write_size now, make 5808c2ecf20Sopenharmony_ci * sure that @wbuf->offs + @wbuf->size is aligned to 5818c2ecf20Sopenharmony_ci * @c->max_write_size. This way we make sure that after next 5828c2ecf20Sopenharmony_ci * write-buffer flush we are again at the optimal offset (aligned to 5838c2ecf20Sopenharmony_ci * @c->max_write_size). 5848c2ecf20Sopenharmony_ci */ 5858c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs < c->max_write_size) 5868c2ecf20Sopenharmony_ci wbuf->size = c->leb_size - wbuf->offs; 5878c2ecf20Sopenharmony_ci else if (wbuf->offs & (c->max_write_size - 1)) 5888c2ecf20Sopenharmony_ci wbuf->size = ALIGN(wbuf->offs, c->max_write_size) - wbuf->offs; 5898c2ecf20Sopenharmony_ci else 5908c2ecf20Sopenharmony_ci wbuf->size = c->max_write_size; 5918c2ecf20Sopenharmony_ci wbuf->avail = wbuf->size; 5928c2ecf20Sopenharmony_ci wbuf->used = 0; 5938c2ecf20Sopenharmony_ci wbuf->next_ino = 0; 5948c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 5958c2ecf20Sopenharmony_ci 5968c2ecf20Sopenharmony_ci if (wbuf->sync_callback) 5978c2ecf20Sopenharmony_ci err = wbuf->sync_callback(c, wbuf->lnum, 5988c2ecf20Sopenharmony_ci c->leb_size - wbuf->offs, dirt); 5998c2ecf20Sopenharmony_ci return err; 6008c2ecf20Sopenharmony_ci} 6018c2ecf20Sopenharmony_ci 6028c2ecf20Sopenharmony_ci/** 6038c2ecf20Sopenharmony_ci * ubifs_wbuf_seek_nolock - seek write-buffer. 6048c2ecf20Sopenharmony_ci * @wbuf: write-buffer 6058c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number to seek to 6068c2ecf20Sopenharmony_ci * @offs: logical eraseblock offset to seek to 6078c2ecf20Sopenharmony_ci * 6088c2ecf20Sopenharmony_ci * This function targets the write-buffer to logical eraseblock @lnum:@offs. 6098c2ecf20Sopenharmony_ci * The write-buffer has to be empty. Returns zero in case of success and a 6108c2ecf20Sopenharmony_ci * negative error code in case of failure. 6118c2ecf20Sopenharmony_ci */ 6128c2ecf20Sopenharmony_ciint ubifs_wbuf_seek_nolock(struct ubifs_wbuf *wbuf, int lnum, int offs) 6138c2ecf20Sopenharmony_ci{ 6148c2ecf20Sopenharmony_ci const struct ubifs_info *c = wbuf->c; 6158c2ecf20Sopenharmony_ci 6168c2ecf20Sopenharmony_ci dbg_io("LEB %d:%d, jhead %s", lnum, offs, dbg_jhead(wbuf->jhead)); 6178c2ecf20Sopenharmony_ci ubifs_assert(c, lnum >= 0 && lnum < c->leb_cnt); 6188c2ecf20Sopenharmony_ci ubifs_assert(c, offs >= 0 && offs <= c->leb_size); 6198c2ecf20Sopenharmony_ci ubifs_assert(c, offs % c->min_io_size == 0 && !(offs & 7)); 6208c2ecf20Sopenharmony_ci ubifs_assert(c, lnum != wbuf->lnum); 6218c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->used == 0); 6228c2ecf20Sopenharmony_ci 6238c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 6248c2ecf20Sopenharmony_ci wbuf->lnum = lnum; 6258c2ecf20Sopenharmony_ci wbuf->offs = offs; 6268c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs < c->max_write_size) 6278c2ecf20Sopenharmony_ci wbuf->size = c->leb_size - wbuf->offs; 6288c2ecf20Sopenharmony_ci else if (wbuf->offs & (c->max_write_size - 1)) 6298c2ecf20Sopenharmony_ci wbuf->size = ALIGN(wbuf->offs, c->max_write_size) - wbuf->offs; 6308c2ecf20Sopenharmony_ci else 6318c2ecf20Sopenharmony_ci wbuf->size = c->max_write_size; 6328c2ecf20Sopenharmony_ci wbuf->avail = wbuf->size; 6338c2ecf20Sopenharmony_ci wbuf->used = 0; 6348c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 6358c2ecf20Sopenharmony_ci 6368c2ecf20Sopenharmony_ci return 0; 6378c2ecf20Sopenharmony_ci} 6388c2ecf20Sopenharmony_ci 6398c2ecf20Sopenharmony_ci/** 6408c2ecf20Sopenharmony_ci * ubifs_bg_wbufs_sync - synchronize write-buffers. 6418c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 6428c2ecf20Sopenharmony_ci * 6438c2ecf20Sopenharmony_ci * This function is called by background thread to synchronize write-buffers. 6448c2ecf20Sopenharmony_ci * Returns zero in case of success and a negative error code in case of 6458c2ecf20Sopenharmony_ci * failure. 6468c2ecf20Sopenharmony_ci */ 6478c2ecf20Sopenharmony_ciint ubifs_bg_wbufs_sync(struct ubifs_info *c) 6488c2ecf20Sopenharmony_ci{ 6498c2ecf20Sopenharmony_ci int err, i; 6508c2ecf20Sopenharmony_ci 6518c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 6528c2ecf20Sopenharmony_ci if (!c->need_wbuf_sync) 6538c2ecf20Sopenharmony_ci return 0; 6548c2ecf20Sopenharmony_ci c->need_wbuf_sync = 0; 6558c2ecf20Sopenharmony_ci 6568c2ecf20Sopenharmony_ci if (c->ro_error) { 6578c2ecf20Sopenharmony_ci err = -EROFS; 6588c2ecf20Sopenharmony_ci goto out_timers; 6598c2ecf20Sopenharmony_ci } 6608c2ecf20Sopenharmony_ci 6618c2ecf20Sopenharmony_ci dbg_io("synchronize"); 6628c2ecf20Sopenharmony_ci for (i = 0; i < c->jhead_cnt; i++) { 6638c2ecf20Sopenharmony_ci struct ubifs_wbuf *wbuf = &c->jheads[i].wbuf; 6648c2ecf20Sopenharmony_ci 6658c2ecf20Sopenharmony_ci cond_resched(); 6668c2ecf20Sopenharmony_ci 6678c2ecf20Sopenharmony_ci /* 6688c2ecf20Sopenharmony_ci * If the mutex is locked then wbuf is being changed, so 6698c2ecf20Sopenharmony_ci * synchronization is not necessary. 6708c2ecf20Sopenharmony_ci */ 6718c2ecf20Sopenharmony_ci if (mutex_is_locked(&wbuf->io_mutex)) 6728c2ecf20Sopenharmony_ci continue; 6738c2ecf20Sopenharmony_ci 6748c2ecf20Sopenharmony_ci mutex_lock_nested(&wbuf->io_mutex, wbuf->jhead); 6758c2ecf20Sopenharmony_ci if (!wbuf->need_sync) { 6768c2ecf20Sopenharmony_ci mutex_unlock(&wbuf->io_mutex); 6778c2ecf20Sopenharmony_ci continue; 6788c2ecf20Sopenharmony_ci } 6798c2ecf20Sopenharmony_ci 6808c2ecf20Sopenharmony_ci err = ubifs_wbuf_sync_nolock(wbuf); 6818c2ecf20Sopenharmony_ci mutex_unlock(&wbuf->io_mutex); 6828c2ecf20Sopenharmony_ci if (err) { 6838c2ecf20Sopenharmony_ci ubifs_err(c, "cannot sync write-buffer, error %d", err); 6848c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 6858c2ecf20Sopenharmony_ci goto out_timers; 6868c2ecf20Sopenharmony_ci } 6878c2ecf20Sopenharmony_ci } 6888c2ecf20Sopenharmony_ci 6898c2ecf20Sopenharmony_ci return 0; 6908c2ecf20Sopenharmony_ci 6918c2ecf20Sopenharmony_ciout_timers: 6928c2ecf20Sopenharmony_ci /* Cancel all timers to prevent repeated errors */ 6938c2ecf20Sopenharmony_ci for (i = 0; i < c->jhead_cnt; i++) { 6948c2ecf20Sopenharmony_ci struct ubifs_wbuf *wbuf = &c->jheads[i].wbuf; 6958c2ecf20Sopenharmony_ci 6968c2ecf20Sopenharmony_ci mutex_lock_nested(&wbuf->io_mutex, wbuf->jhead); 6978c2ecf20Sopenharmony_ci cancel_wbuf_timer_nolock(wbuf); 6988c2ecf20Sopenharmony_ci mutex_unlock(&wbuf->io_mutex); 6998c2ecf20Sopenharmony_ci } 7008c2ecf20Sopenharmony_ci return err; 7018c2ecf20Sopenharmony_ci} 7028c2ecf20Sopenharmony_ci 7038c2ecf20Sopenharmony_ci/** 7048c2ecf20Sopenharmony_ci * ubifs_wbuf_write_nolock - write data to flash via write-buffer. 7058c2ecf20Sopenharmony_ci * @wbuf: write-buffer 7068c2ecf20Sopenharmony_ci * @buf: node to write 7078c2ecf20Sopenharmony_ci * @len: node length 7088c2ecf20Sopenharmony_ci * 7098c2ecf20Sopenharmony_ci * This function writes data to flash via write-buffer @wbuf. This means that 7108c2ecf20Sopenharmony_ci * the last piece of the node won't reach the flash media immediately if it 7118c2ecf20Sopenharmony_ci * does not take whole max. write unit (@c->max_write_size). Instead, the node 7128c2ecf20Sopenharmony_ci * will sit in RAM until the write-buffer is synchronized (e.g., by timer, or 7138c2ecf20Sopenharmony_ci * because more data are appended to the write-buffer). 7148c2ecf20Sopenharmony_ci * 7158c2ecf20Sopenharmony_ci * This function returns zero in case of success and a negative error code in 7168c2ecf20Sopenharmony_ci * case of failure. If the node cannot be written because there is no more 7178c2ecf20Sopenharmony_ci * space in this logical eraseblock, %-ENOSPC is returned. 7188c2ecf20Sopenharmony_ci */ 7198c2ecf20Sopenharmony_ciint ubifs_wbuf_write_nolock(struct ubifs_wbuf *wbuf, void *buf, int len) 7208c2ecf20Sopenharmony_ci{ 7218c2ecf20Sopenharmony_ci struct ubifs_info *c = wbuf->c; 7228c2ecf20Sopenharmony_ci int err, n, written = 0, aligned_len = ALIGN(len, 8); 7238c2ecf20Sopenharmony_ci 7248c2ecf20Sopenharmony_ci dbg_io("%d bytes (%s) to jhead %s wbuf at LEB %d:%d", len, 7258c2ecf20Sopenharmony_ci dbg_ntype(((struct ubifs_ch *)buf)->node_type), 7268c2ecf20Sopenharmony_ci dbg_jhead(wbuf->jhead), wbuf->lnum, wbuf->offs + wbuf->used); 7278c2ecf20Sopenharmony_ci ubifs_assert(c, len > 0 && wbuf->lnum >= 0 && wbuf->lnum < c->leb_cnt); 7288c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->offs >= 0 && wbuf->offs % c->min_io_size == 0); 7298c2ecf20Sopenharmony_ci ubifs_assert(c, !(wbuf->offs & 7) && wbuf->offs <= c->leb_size); 7308c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->avail > 0 && wbuf->avail <= wbuf->size); 7318c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size >= c->min_io_size); 7328c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size <= c->max_write_size); 7338c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf->size % c->min_io_size == 0); 7348c2ecf20Sopenharmony_ci ubifs_assert(c, mutex_is_locked(&wbuf->io_mutex)); 7358c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 7368c2ecf20Sopenharmony_ci ubifs_assert(c, !c->space_fixup); 7378c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs >= c->max_write_size) 7388c2ecf20Sopenharmony_ci ubifs_assert(c, !((wbuf->offs + wbuf->size) % c->max_write_size)); 7398c2ecf20Sopenharmony_ci 7408c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs - wbuf->used < aligned_len) { 7418c2ecf20Sopenharmony_ci err = -ENOSPC; 7428c2ecf20Sopenharmony_ci goto out; 7438c2ecf20Sopenharmony_ci } 7448c2ecf20Sopenharmony_ci 7458c2ecf20Sopenharmony_ci cancel_wbuf_timer_nolock(wbuf); 7468c2ecf20Sopenharmony_ci 7478c2ecf20Sopenharmony_ci if (c->ro_error) 7488c2ecf20Sopenharmony_ci return -EROFS; 7498c2ecf20Sopenharmony_ci 7508c2ecf20Sopenharmony_ci if (aligned_len <= wbuf->avail) { 7518c2ecf20Sopenharmony_ci /* 7528c2ecf20Sopenharmony_ci * The node is not very large and fits entirely within 7538c2ecf20Sopenharmony_ci * write-buffer. 7548c2ecf20Sopenharmony_ci */ 7558c2ecf20Sopenharmony_ci memcpy(wbuf->buf + wbuf->used, buf, len); 7568c2ecf20Sopenharmony_ci if (aligned_len > len) { 7578c2ecf20Sopenharmony_ci ubifs_assert(c, aligned_len - len < 8); 7588c2ecf20Sopenharmony_ci ubifs_pad(c, wbuf->buf + wbuf->used + len, aligned_len - len); 7598c2ecf20Sopenharmony_ci } 7608c2ecf20Sopenharmony_ci 7618c2ecf20Sopenharmony_ci if (aligned_len == wbuf->avail) { 7628c2ecf20Sopenharmony_ci dbg_io("flush jhead %s wbuf to LEB %d:%d", 7638c2ecf20Sopenharmony_ci dbg_jhead(wbuf->jhead), wbuf->lnum, wbuf->offs); 7648c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, wbuf->buf, 7658c2ecf20Sopenharmony_ci wbuf->offs, wbuf->size); 7668c2ecf20Sopenharmony_ci if (err) 7678c2ecf20Sopenharmony_ci goto out; 7688c2ecf20Sopenharmony_ci 7698c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 7708c2ecf20Sopenharmony_ci wbuf->offs += wbuf->size; 7718c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs >= c->max_write_size) 7728c2ecf20Sopenharmony_ci wbuf->size = c->max_write_size; 7738c2ecf20Sopenharmony_ci else 7748c2ecf20Sopenharmony_ci wbuf->size = c->leb_size - wbuf->offs; 7758c2ecf20Sopenharmony_ci wbuf->avail = wbuf->size; 7768c2ecf20Sopenharmony_ci wbuf->used = 0; 7778c2ecf20Sopenharmony_ci wbuf->next_ino = 0; 7788c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 7798c2ecf20Sopenharmony_ci } else { 7808c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 7818c2ecf20Sopenharmony_ci wbuf->avail -= aligned_len; 7828c2ecf20Sopenharmony_ci wbuf->used += aligned_len; 7838c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 7848c2ecf20Sopenharmony_ci } 7858c2ecf20Sopenharmony_ci 7868c2ecf20Sopenharmony_ci goto exit; 7878c2ecf20Sopenharmony_ci } 7888c2ecf20Sopenharmony_ci 7898c2ecf20Sopenharmony_ci if (wbuf->used) { 7908c2ecf20Sopenharmony_ci /* 7918c2ecf20Sopenharmony_ci * The node is large enough and does not fit entirely within 7928c2ecf20Sopenharmony_ci * current available space. We have to fill and flush 7938c2ecf20Sopenharmony_ci * write-buffer and switch to the next max. write unit. 7948c2ecf20Sopenharmony_ci */ 7958c2ecf20Sopenharmony_ci dbg_io("flush jhead %s wbuf to LEB %d:%d", 7968c2ecf20Sopenharmony_ci dbg_jhead(wbuf->jhead), wbuf->lnum, wbuf->offs); 7978c2ecf20Sopenharmony_ci memcpy(wbuf->buf + wbuf->used, buf, wbuf->avail); 7988c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, wbuf->buf, wbuf->offs, 7998c2ecf20Sopenharmony_ci wbuf->size); 8008c2ecf20Sopenharmony_ci if (err) 8018c2ecf20Sopenharmony_ci goto out; 8028c2ecf20Sopenharmony_ci 8038c2ecf20Sopenharmony_ci wbuf->offs += wbuf->size; 8048c2ecf20Sopenharmony_ci len -= wbuf->avail; 8058c2ecf20Sopenharmony_ci aligned_len -= wbuf->avail; 8068c2ecf20Sopenharmony_ci written += wbuf->avail; 8078c2ecf20Sopenharmony_ci } else if (wbuf->offs & (c->max_write_size - 1)) { 8088c2ecf20Sopenharmony_ci /* 8098c2ecf20Sopenharmony_ci * The write-buffer offset is not aligned to 8108c2ecf20Sopenharmony_ci * @c->max_write_size and @wbuf->size is less than 8118c2ecf20Sopenharmony_ci * @c->max_write_size. Write @wbuf->size bytes to make sure the 8128c2ecf20Sopenharmony_ci * following writes are done in optimal @c->max_write_size 8138c2ecf20Sopenharmony_ci * chunks. 8148c2ecf20Sopenharmony_ci */ 8158c2ecf20Sopenharmony_ci dbg_io("write %d bytes to LEB %d:%d", 8168c2ecf20Sopenharmony_ci wbuf->size, wbuf->lnum, wbuf->offs); 8178c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, buf, wbuf->offs, 8188c2ecf20Sopenharmony_ci wbuf->size); 8198c2ecf20Sopenharmony_ci if (err) 8208c2ecf20Sopenharmony_ci goto out; 8218c2ecf20Sopenharmony_ci 8228c2ecf20Sopenharmony_ci wbuf->offs += wbuf->size; 8238c2ecf20Sopenharmony_ci len -= wbuf->size; 8248c2ecf20Sopenharmony_ci aligned_len -= wbuf->size; 8258c2ecf20Sopenharmony_ci written += wbuf->size; 8268c2ecf20Sopenharmony_ci } 8278c2ecf20Sopenharmony_ci 8288c2ecf20Sopenharmony_ci /* 8298c2ecf20Sopenharmony_ci * The remaining data may take more whole max. write units, so write the 8308c2ecf20Sopenharmony_ci * remains multiple to max. write unit size directly to the flash media. 8318c2ecf20Sopenharmony_ci * We align node length to 8-byte boundary because we anyway flash wbuf 8328c2ecf20Sopenharmony_ci * if the remaining space is less than 8 bytes. 8338c2ecf20Sopenharmony_ci */ 8348c2ecf20Sopenharmony_ci n = aligned_len >> c->max_write_shift; 8358c2ecf20Sopenharmony_ci if (n) { 8368c2ecf20Sopenharmony_ci int m = n - 1; 8378c2ecf20Sopenharmony_ci 8388c2ecf20Sopenharmony_ci dbg_io("write %d bytes to LEB %d:%d", n, wbuf->lnum, 8398c2ecf20Sopenharmony_ci wbuf->offs); 8408c2ecf20Sopenharmony_ci 8418c2ecf20Sopenharmony_ci if (m) { 8428c2ecf20Sopenharmony_ci /* '(n-1)<<c->max_write_shift < len' is always true. */ 8438c2ecf20Sopenharmony_ci m <<= c->max_write_shift; 8448c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, buf + written, 8458c2ecf20Sopenharmony_ci wbuf->offs, m); 8468c2ecf20Sopenharmony_ci if (err) 8478c2ecf20Sopenharmony_ci goto out; 8488c2ecf20Sopenharmony_ci wbuf->offs += m; 8498c2ecf20Sopenharmony_ci aligned_len -= m; 8508c2ecf20Sopenharmony_ci len -= m; 8518c2ecf20Sopenharmony_ci written += m; 8528c2ecf20Sopenharmony_ci } 8538c2ecf20Sopenharmony_ci 8548c2ecf20Sopenharmony_ci /* 8558c2ecf20Sopenharmony_ci * The non-written len of buf may be less than 'n' because 8568c2ecf20Sopenharmony_ci * parameter 'len' is not 8 bytes aligned, so here we read 8578c2ecf20Sopenharmony_ci * min(len, n) bytes from buf. 8588c2ecf20Sopenharmony_ci */ 8598c2ecf20Sopenharmony_ci n = 1 << c->max_write_shift; 8608c2ecf20Sopenharmony_ci memcpy(wbuf->buf, buf + written, min(len, n)); 8618c2ecf20Sopenharmony_ci if (n > len) { 8628c2ecf20Sopenharmony_ci ubifs_assert(c, n - len < 8); 8638c2ecf20Sopenharmony_ci ubifs_pad(c, wbuf->buf + len, n - len); 8648c2ecf20Sopenharmony_ci } 8658c2ecf20Sopenharmony_ci 8668c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, wbuf->lnum, wbuf->buf, wbuf->offs, n); 8678c2ecf20Sopenharmony_ci if (err) 8688c2ecf20Sopenharmony_ci goto out; 8698c2ecf20Sopenharmony_ci wbuf->offs += n; 8708c2ecf20Sopenharmony_ci aligned_len -= n; 8718c2ecf20Sopenharmony_ci len -= min(len, n); 8728c2ecf20Sopenharmony_ci written += n; 8738c2ecf20Sopenharmony_ci } 8748c2ecf20Sopenharmony_ci 8758c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 8768c2ecf20Sopenharmony_ci if (aligned_len) { 8778c2ecf20Sopenharmony_ci /* 8788c2ecf20Sopenharmony_ci * And now we have what's left and what does not take whole 8798c2ecf20Sopenharmony_ci * max. write unit, so write it to the write-buffer and we are 8808c2ecf20Sopenharmony_ci * done. 8818c2ecf20Sopenharmony_ci */ 8828c2ecf20Sopenharmony_ci memcpy(wbuf->buf, buf + written, len); 8838c2ecf20Sopenharmony_ci if (aligned_len > len) { 8848c2ecf20Sopenharmony_ci ubifs_assert(c, aligned_len - len < 8); 8858c2ecf20Sopenharmony_ci ubifs_pad(c, wbuf->buf + len, aligned_len - len); 8868c2ecf20Sopenharmony_ci } 8878c2ecf20Sopenharmony_ci } 8888c2ecf20Sopenharmony_ci 8898c2ecf20Sopenharmony_ci if (c->leb_size - wbuf->offs >= c->max_write_size) 8908c2ecf20Sopenharmony_ci wbuf->size = c->max_write_size; 8918c2ecf20Sopenharmony_ci else 8928c2ecf20Sopenharmony_ci wbuf->size = c->leb_size - wbuf->offs; 8938c2ecf20Sopenharmony_ci wbuf->avail = wbuf->size - aligned_len; 8948c2ecf20Sopenharmony_ci wbuf->used = aligned_len; 8958c2ecf20Sopenharmony_ci wbuf->next_ino = 0; 8968c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 8978c2ecf20Sopenharmony_ci 8988c2ecf20Sopenharmony_ciexit: 8998c2ecf20Sopenharmony_ci if (wbuf->sync_callback) { 9008c2ecf20Sopenharmony_ci int free = c->leb_size - wbuf->offs - wbuf->used; 9018c2ecf20Sopenharmony_ci 9028c2ecf20Sopenharmony_ci err = wbuf->sync_callback(c, wbuf->lnum, free, 0); 9038c2ecf20Sopenharmony_ci if (err) 9048c2ecf20Sopenharmony_ci goto out; 9058c2ecf20Sopenharmony_ci } 9068c2ecf20Sopenharmony_ci 9078c2ecf20Sopenharmony_ci if (wbuf->used) 9088c2ecf20Sopenharmony_ci new_wbuf_timer_nolock(c, wbuf); 9098c2ecf20Sopenharmony_ci 9108c2ecf20Sopenharmony_ci return 0; 9118c2ecf20Sopenharmony_ci 9128c2ecf20Sopenharmony_ciout: 9138c2ecf20Sopenharmony_ci ubifs_err(c, "cannot write %d bytes to LEB %d:%d, error %d", 9148c2ecf20Sopenharmony_ci len, wbuf->lnum, wbuf->offs, err); 9158c2ecf20Sopenharmony_ci ubifs_dump_node(c, buf, written + len); 9168c2ecf20Sopenharmony_ci dump_stack(); 9178c2ecf20Sopenharmony_ci ubifs_dump_leb(c, wbuf->lnum); 9188c2ecf20Sopenharmony_ci return err; 9198c2ecf20Sopenharmony_ci} 9208c2ecf20Sopenharmony_ci 9218c2ecf20Sopenharmony_ci/** 9228c2ecf20Sopenharmony_ci * ubifs_write_node_hmac - write node to the media. 9238c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 9248c2ecf20Sopenharmony_ci * @buf: the node to write 9258c2ecf20Sopenharmony_ci * @len: node length 9268c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number 9278c2ecf20Sopenharmony_ci * @offs: offset within the logical eraseblock 9288c2ecf20Sopenharmony_ci * @hmac_offs: offset of the HMAC within the node 9298c2ecf20Sopenharmony_ci * 9308c2ecf20Sopenharmony_ci * This function automatically fills node magic number, assigns sequence 9318c2ecf20Sopenharmony_ci * number, and calculates node CRC checksum. The length of the @buf buffer has 9328c2ecf20Sopenharmony_ci * to be aligned to the minimal I/O unit size. This function automatically 9338c2ecf20Sopenharmony_ci * appends padding node and padding bytes if needed. Returns zero in case of 9348c2ecf20Sopenharmony_ci * success and a negative error code in case of failure. 9358c2ecf20Sopenharmony_ci */ 9368c2ecf20Sopenharmony_ciint ubifs_write_node_hmac(struct ubifs_info *c, void *buf, int len, int lnum, 9378c2ecf20Sopenharmony_ci int offs, int hmac_offs) 9388c2ecf20Sopenharmony_ci{ 9398c2ecf20Sopenharmony_ci int err, buf_len = ALIGN(len, c->min_io_size); 9408c2ecf20Sopenharmony_ci 9418c2ecf20Sopenharmony_ci dbg_io("LEB %d:%d, %s, length %d (aligned %d)", 9428c2ecf20Sopenharmony_ci lnum, offs, dbg_ntype(((struct ubifs_ch *)buf)->node_type), len, 9438c2ecf20Sopenharmony_ci buf_len); 9448c2ecf20Sopenharmony_ci ubifs_assert(c, lnum >= 0 && lnum < c->leb_cnt && offs >= 0); 9458c2ecf20Sopenharmony_ci ubifs_assert(c, offs % c->min_io_size == 0 && offs < c->leb_size); 9468c2ecf20Sopenharmony_ci ubifs_assert(c, !c->ro_media && !c->ro_mount); 9478c2ecf20Sopenharmony_ci ubifs_assert(c, !c->space_fixup); 9488c2ecf20Sopenharmony_ci 9498c2ecf20Sopenharmony_ci if (c->ro_error) 9508c2ecf20Sopenharmony_ci return -EROFS; 9518c2ecf20Sopenharmony_ci 9528c2ecf20Sopenharmony_ci err = ubifs_prepare_node_hmac(c, buf, len, hmac_offs, 1); 9538c2ecf20Sopenharmony_ci if (err) 9548c2ecf20Sopenharmony_ci return err; 9558c2ecf20Sopenharmony_ci 9568c2ecf20Sopenharmony_ci err = ubifs_leb_write(c, lnum, buf, offs, buf_len); 9578c2ecf20Sopenharmony_ci if (err) 9588c2ecf20Sopenharmony_ci ubifs_dump_node(c, buf, len); 9598c2ecf20Sopenharmony_ci 9608c2ecf20Sopenharmony_ci return err; 9618c2ecf20Sopenharmony_ci} 9628c2ecf20Sopenharmony_ci 9638c2ecf20Sopenharmony_ci/** 9648c2ecf20Sopenharmony_ci * ubifs_write_node - write node to the media. 9658c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 9668c2ecf20Sopenharmony_ci * @buf: the node to write 9678c2ecf20Sopenharmony_ci * @len: node length 9688c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number 9698c2ecf20Sopenharmony_ci * @offs: offset within the logical eraseblock 9708c2ecf20Sopenharmony_ci * 9718c2ecf20Sopenharmony_ci * This function automatically fills node magic number, assigns sequence 9728c2ecf20Sopenharmony_ci * number, and calculates node CRC checksum. The length of the @buf buffer has 9738c2ecf20Sopenharmony_ci * to be aligned to the minimal I/O unit size. This function automatically 9748c2ecf20Sopenharmony_ci * appends padding node and padding bytes if needed. Returns zero in case of 9758c2ecf20Sopenharmony_ci * success and a negative error code in case of failure. 9768c2ecf20Sopenharmony_ci */ 9778c2ecf20Sopenharmony_ciint ubifs_write_node(struct ubifs_info *c, void *buf, int len, int lnum, 9788c2ecf20Sopenharmony_ci int offs) 9798c2ecf20Sopenharmony_ci{ 9808c2ecf20Sopenharmony_ci return ubifs_write_node_hmac(c, buf, len, lnum, offs, -1); 9818c2ecf20Sopenharmony_ci} 9828c2ecf20Sopenharmony_ci 9838c2ecf20Sopenharmony_ci/** 9848c2ecf20Sopenharmony_ci * ubifs_read_node_wbuf - read node from the media or write-buffer. 9858c2ecf20Sopenharmony_ci * @wbuf: wbuf to check for un-written data 9868c2ecf20Sopenharmony_ci * @buf: buffer to read to 9878c2ecf20Sopenharmony_ci * @type: node type 9888c2ecf20Sopenharmony_ci * @len: node length 9898c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number 9908c2ecf20Sopenharmony_ci * @offs: offset within the logical eraseblock 9918c2ecf20Sopenharmony_ci * 9928c2ecf20Sopenharmony_ci * This function reads a node of known type and length, checks it and stores 9938c2ecf20Sopenharmony_ci * in @buf. If the node partially or fully sits in the write-buffer, this 9948c2ecf20Sopenharmony_ci * function takes data from the buffer, otherwise it reads the flash media. 9958c2ecf20Sopenharmony_ci * Returns zero in case of success, %-EUCLEAN if CRC mismatched and a negative 9968c2ecf20Sopenharmony_ci * error code in case of failure. 9978c2ecf20Sopenharmony_ci */ 9988c2ecf20Sopenharmony_ciint ubifs_read_node_wbuf(struct ubifs_wbuf *wbuf, void *buf, int type, int len, 9998c2ecf20Sopenharmony_ci int lnum, int offs) 10008c2ecf20Sopenharmony_ci{ 10018c2ecf20Sopenharmony_ci const struct ubifs_info *c = wbuf->c; 10028c2ecf20Sopenharmony_ci int err, rlen, overlap; 10038c2ecf20Sopenharmony_ci struct ubifs_ch *ch = buf; 10048c2ecf20Sopenharmony_ci 10058c2ecf20Sopenharmony_ci dbg_io("LEB %d:%d, %s, length %d, jhead %s", lnum, offs, 10068c2ecf20Sopenharmony_ci dbg_ntype(type), len, dbg_jhead(wbuf->jhead)); 10078c2ecf20Sopenharmony_ci ubifs_assert(c, wbuf && lnum >= 0 && lnum < c->leb_cnt && offs >= 0); 10088c2ecf20Sopenharmony_ci ubifs_assert(c, !(offs & 7) && offs < c->leb_size); 10098c2ecf20Sopenharmony_ci ubifs_assert(c, type >= 0 && type < UBIFS_NODE_TYPES_CNT); 10108c2ecf20Sopenharmony_ci 10118c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 10128c2ecf20Sopenharmony_ci overlap = (lnum == wbuf->lnum && offs + len > wbuf->offs); 10138c2ecf20Sopenharmony_ci if (!overlap) { 10148c2ecf20Sopenharmony_ci /* We may safely unlock the write-buffer and read the data */ 10158c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 10168c2ecf20Sopenharmony_ci return ubifs_read_node(c, buf, type, len, lnum, offs); 10178c2ecf20Sopenharmony_ci } 10188c2ecf20Sopenharmony_ci 10198c2ecf20Sopenharmony_ci /* Don't read under wbuf */ 10208c2ecf20Sopenharmony_ci rlen = wbuf->offs - offs; 10218c2ecf20Sopenharmony_ci if (rlen < 0) 10228c2ecf20Sopenharmony_ci rlen = 0; 10238c2ecf20Sopenharmony_ci 10248c2ecf20Sopenharmony_ci /* Copy the rest from the write-buffer */ 10258c2ecf20Sopenharmony_ci memcpy(buf + rlen, wbuf->buf + offs + rlen - wbuf->offs, len - rlen); 10268c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 10278c2ecf20Sopenharmony_ci 10288c2ecf20Sopenharmony_ci if (rlen > 0) { 10298c2ecf20Sopenharmony_ci /* Read everything that goes before write-buffer */ 10308c2ecf20Sopenharmony_ci err = ubifs_leb_read(c, lnum, buf, offs, rlen, 0); 10318c2ecf20Sopenharmony_ci if (err && err != -EBADMSG) 10328c2ecf20Sopenharmony_ci return err; 10338c2ecf20Sopenharmony_ci } 10348c2ecf20Sopenharmony_ci 10358c2ecf20Sopenharmony_ci if (type != ch->node_type) { 10368c2ecf20Sopenharmony_ci ubifs_err(c, "bad node type (%d but expected %d)", 10378c2ecf20Sopenharmony_ci ch->node_type, type); 10388c2ecf20Sopenharmony_ci goto out; 10398c2ecf20Sopenharmony_ci } 10408c2ecf20Sopenharmony_ci 10418c2ecf20Sopenharmony_ci err = ubifs_check_node(c, buf, len, lnum, offs, 0, 0); 10428c2ecf20Sopenharmony_ci if (err) { 10438c2ecf20Sopenharmony_ci ubifs_err(c, "expected node type %d", type); 10448c2ecf20Sopenharmony_ci return err; 10458c2ecf20Sopenharmony_ci } 10468c2ecf20Sopenharmony_ci 10478c2ecf20Sopenharmony_ci rlen = le32_to_cpu(ch->len); 10488c2ecf20Sopenharmony_ci if (rlen != len) { 10498c2ecf20Sopenharmony_ci ubifs_err(c, "bad node length %d, expected %d", rlen, len); 10508c2ecf20Sopenharmony_ci goto out; 10518c2ecf20Sopenharmony_ci } 10528c2ecf20Sopenharmony_ci 10538c2ecf20Sopenharmony_ci return 0; 10548c2ecf20Sopenharmony_ci 10558c2ecf20Sopenharmony_ciout: 10568c2ecf20Sopenharmony_ci ubifs_err(c, "bad node at LEB %d:%d", lnum, offs); 10578c2ecf20Sopenharmony_ci ubifs_dump_node(c, buf, len); 10588c2ecf20Sopenharmony_ci dump_stack(); 10598c2ecf20Sopenharmony_ci return -EINVAL; 10608c2ecf20Sopenharmony_ci} 10618c2ecf20Sopenharmony_ci 10628c2ecf20Sopenharmony_ci/** 10638c2ecf20Sopenharmony_ci * ubifs_read_node - read node. 10648c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 10658c2ecf20Sopenharmony_ci * @buf: buffer to read to 10668c2ecf20Sopenharmony_ci * @type: node type 10678c2ecf20Sopenharmony_ci * @len: node length (not aligned) 10688c2ecf20Sopenharmony_ci * @lnum: logical eraseblock number 10698c2ecf20Sopenharmony_ci * @offs: offset within the logical eraseblock 10708c2ecf20Sopenharmony_ci * 10718c2ecf20Sopenharmony_ci * This function reads a node of known type and and length, checks it and 10728c2ecf20Sopenharmony_ci * stores in @buf. Returns zero in case of success, %-EUCLEAN if CRC mismatched 10738c2ecf20Sopenharmony_ci * and a negative error code in case of failure. 10748c2ecf20Sopenharmony_ci */ 10758c2ecf20Sopenharmony_ciint ubifs_read_node(const struct ubifs_info *c, void *buf, int type, int len, 10768c2ecf20Sopenharmony_ci int lnum, int offs) 10778c2ecf20Sopenharmony_ci{ 10788c2ecf20Sopenharmony_ci int err, l; 10798c2ecf20Sopenharmony_ci struct ubifs_ch *ch = buf; 10808c2ecf20Sopenharmony_ci 10818c2ecf20Sopenharmony_ci dbg_io("LEB %d:%d, %s, length %d", lnum, offs, dbg_ntype(type), len); 10828c2ecf20Sopenharmony_ci ubifs_assert(c, lnum >= 0 && lnum < c->leb_cnt && offs >= 0); 10838c2ecf20Sopenharmony_ci ubifs_assert(c, len >= UBIFS_CH_SZ && offs + len <= c->leb_size); 10848c2ecf20Sopenharmony_ci ubifs_assert(c, !(offs & 7) && offs < c->leb_size); 10858c2ecf20Sopenharmony_ci ubifs_assert(c, type >= 0 && type < UBIFS_NODE_TYPES_CNT); 10868c2ecf20Sopenharmony_ci 10878c2ecf20Sopenharmony_ci err = ubifs_leb_read(c, lnum, buf, offs, len, 0); 10888c2ecf20Sopenharmony_ci if (err && err != -EBADMSG) 10898c2ecf20Sopenharmony_ci return err; 10908c2ecf20Sopenharmony_ci 10918c2ecf20Sopenharmony_ci if (type != ch->node_type) { 10928c2ecf20Sopenharmony_ci ubifs_errc(c, "bad node type (%d but expected %d)", 10938c2ecf20Sopenharmony_ci ch->node_type, type); 10948c2ecf20Sopenharmony_ci goto out; 10958c2ecf20Sopenharmony_ci } 10968c2ecf20Sopenharmony_ci 10978c2ecf20Sopenharmony_ci err = ubifs_check_node(c, buf, len, lnum, offs, 0, 0); 10988c2ecf20Sopenharmony_ci if (err) { 10998c2ecf20Sopenharmony_ci ubifs_errc(c, "expected node type %d", type); 11008c2ecf20Sopenharmony_ci return err; 11018c2ecf20Sopenharmony_ci } 11028c2ecf20Sopenharmony_ci 11038c2ecf20Sopenharmony_ci l = le32_to_cpu(ch->len); 11048c2ecf20Sopenharmony_ci if (l != len) { 11058c2ecf20Sopenharmony_ci ubifs_errc(c, "bad node length %d, expected %d", l, len); 11068c2ecf20Sopenharmony_ci goto out; 11078c2ecf20Sopenharmony_ci } 11088c2ecf20Sopenharmony_ci 11098c2ecf20Sopenharmony_ci return 0; 11108c2ecf20Sopenharmony_ci 11118c2ecf20Sopenharmony_ciout: 11128c2ecf20Sopenharmony_ci ubifs_errc(c, "bad node at LEB %d:%d, LEB mapping status %d", lnum, 11138c2ecf20Sopenharmony_ci offs, ubi_is_mapped(c->ubi, lnum)); 11148c2ecf20Sopenharmony_ci if (!c->probing) { 11158c2ecf20Sopenharmony_ci ubifs_dump_node(c, buf, len); 11168c2ecf20Sopenharmony_ci dump_stack(); 11178c2ecf20Sopenharmony_ci } 11188c2ecf20Sopenharmony_ci return -EINVAL; 11198c2ecf20Sopenharmony_ci} 11208c2ecf20Sopenharmony_ci 11218c2ecf20Sopenharmony_ci/** 11228c2ecf20Sopenharmony_ci * ubifs_wbuf_init - initialize write-buffer. 11238c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 11248c2ecf20Sopenharmony_ci * @wbuf: write-buffer to initialize 11258c2ecf20Sopenharmony_ci * 11268c2ecf20Sopenharmony_ci * This function initializes write-buffer. Returns zero in case of success 11278c2ecf20Sopenharmony_ci * %-ENOMEM in case of failure. 11288c2ecf20Sopenharmony_ci */ 11298c2ecf20Sopenharmony_ciint ubifs_wbuf_init(struct ubifs_info *c, struct ubifs_wbuf *wbuf) 11308c2ecf20Sopenharmony_ci{ 11318c2ecf20Sopenharmony_ci size_t size; 11328c2ecf20Sopenharmony_ci 11338c2ecf20Sopenharmony_ci wbuf->buf = kmalloc(c->max_write_size, GFP_KERNEL); 11348c2ecf20Sopenharmony_ci if (!wbuf->buf) 11358c2ecf20Sopenharmony_ci return -ENOMEM; 11368c2ecf20Sopenharmony_ci 11378c2ecf20Sopenharmony_ci size = (c->max_write_size / UBIFS_CH_SZ + 1) * sizeof(ino_t); 11388c2ecf20Sopenharmony_ci wbuf->inodes = kmalloc(size, GFP_KERNEL); 11398c2ecf20Sopenharmony_ci if (!wbuf->inodes) { 11408c2ecf20Sopenharmony_ci kfree(wbuf->buf); 11418c2ecf20Sopenharmony_ci wbuf->buf = NULL; 11428c2ecf20Sopenharmony_ci return -ENOMEM; 11438c2ecf20Sopenharmony_ci } 11448c2ecf20Sopenharmony_ci 11458c2ecf20Sopenharmony_ci wbuf->used = 0; 11468c2ecf20Sopenharmony_ci wbuf->lnum = wbuf->offs = -1; 11478c2ecf20Sopenharmony_ci /* 11488c2ecf20Sopenharmony_ci * If the LEB starts at the max. write size aligned address, then 11498c2ecf20Sopenharmony_ci * write-buffer size has to be set to @c->max_write_size. Otherwise, 11508c2ecf20Sopenharmony_ci * set it to something smaller so that it ends at the closest max. 11518c2ecf20Sopenharmony_ci * write size boundary. 11528c2ecf20Sopenharmony_ci */ 11538c2ecf20Sopenharmony_ci size = c->max_write_size - (c->leb_start % c->max_write_size); 11548c2ecf20Sopenharmony_ci wbuf->avail = wbuf->size = size; 11558c2ecf20Sopenharmony_ci wbuf->sync_callback = NULL; 11568c2ecf20Sopenharmony_ci mutex_init(&wbuf->io_mutex); 11578c2ecf20Sopenharmony_ci spin_lock_init(&wbuf->lock); 11588c2ecf20Sopenharmony_ci wbuf->c = c; 11598c2ecf20Sopenharmony_ci wbuf->next_ino = 0; 11608c2ecf20Sopenharmony_ci 11618c2ecf20Sopenharmony_ci hrtimer_init(&wbuf->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL); 11628c2ecf20Sopenharmony_ci wbuf->timer.function = wbuf_timer_callback_nolock; 11638c2ecf20Sopenharmony_ci return 0; 11648c2ecf20Sopenharmony_ci} 11658c2ecf20Sopenharmony_ci 11668c2ecf20Sopenharmony_ci/** 11678c2ecf20Sopenharmony_ci * ubifs_wbuf_add_ino_nolock - add an inode number into the wbuf inode array. 11688c2ecf20Sopenharmony_ci * @wbuf: the write-buffer where to add 11698c2ecf20Sopenharmony_ci * @inum: the inode number 11708c2ecf20Sopenharmony_ci * 11718c2ecf20Sopenharmony_ci * This function adds an inode number to the inode array of the write-buffer. 11728c2ecf20Sopenharmony_ci */ 11738c2ecf20Sopenharmony_civoid ubifs_wbuf_add_ino_nolock(struct ubifs_wbuf *wbuf, ino_t inum) 11748c2ecf20Sopenharmony_ci{ 11758c2ecf20Sopenharmony_ci if (!wbuf->buf) 11768c2ecf20Sopenharmony_ci /* NOR flash or something similar */ 11778c2ecf20Sopenharmony_ci return; 11788c2ecf20Sopenharmony_ci 11798c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 11808c2ecf20Sopenharmony_ci if (wbuf->used) 11818c2ecf20Sopenharmony_ci wbuf->inodes[wbuf->next_ino++] = inum; 11828c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 11838c2ecf20Sopenharmony_ci} 11848c2ecf20Sopenharmony_ci 11858c2ecf20Sopenharmony_ci/** 11868c2ecf20Sopenharmony_ci * wbuf_has_ino - returns if the wbuf contains data from the inode. 11878c2ecf20Sopenharmony_ci * @wbuf: the write-buffer 11888c2ecf20Sopenharmony_ci * @inum: the inode number 11898c2ecf20Sopenharmony_ci * 11908c2ecf20Sopenharmony_ci * This function returns with %1 if the write-buffer contains some data from the 11918c2ecf20Sopenharmony_ci * given inode otherwise it returns with %0. 11928c2ecf20Sopenharmony_ci */ 11938c2ecf20Sopenharmony_cistatic int wbuf_has_ino(struct ubifs_wbuf *wbuf, ino_t inum) 11948c2ecf20Sopenharmony_ci{ 11958c2ecf20Sopenharmony_ci int i, ret = 0; 11968c2ecf20Sopenharmony_ci 11978c2ecf20Sopenharmony_ci spin_lock(&wbuf->lock); 11988c2ecf20Sopenharmony_ci for (i = 0; i < wbuf->next_ino; i++) 11998c2ecf20Sopenharmony_ci if (inum == wbuf->inodes[i]) { 12008c2ecf20Sopenharmony_ci ret = 1; 12018c2ecf20Sopenharmony_ci break; 12028c2ecf20Sopenharmony_ci } 12038c2ecf20Sopenharmony_ci spin_unlock(&wbuf->lock); 12048c2ecf20Sopenharmony_ci 12058c2ecf20Sopenharmony_ci return ret; 12068c2ecf20Sopenharmony_ci} 12078c2ecf20Sopenharmony_ci 12088c2ecf20Sopenharmony_ci/** 12098c2ecf20Sopenharmony_ci * ubifs_sync_wbufs_by_inode - synchronize write-buffers for an inode. 12108c2ecf20Sopenharmony_ci * @c: UBIFS file-system description object 12118c2ecf20Sopenharmony_ci * @inode: inode to synchronize 12128c2ecf20Sopenharmony_ci * 12138c2ecf20Sopenharmony_ci * This function synchronizes write-buffers which contain nodes belonging to 12148c2ecf20Sopenharmony_ci * @inode. Returns zero in case of success and a negative error code in case of 12158c2ecf20Sopenharmony_ci * failure. 12168c2ecf20Sopenharmony_ci */ 12178c2ecf20Sopenharmony_ciint ubifs_sync_wbufs_by_inode(struct ubifs_info *c, struct inode *inode) 12188c2ecf20Sopenharmony_ci{ 12198c2ecf20Sopenharmony_ci int i, err = 0; 12208c2ecf20Sopenharmony_ci 12218c2ecf20Sopenharmony_ci for (i = 0; i < c->jhead_cnt; i++) { 12228c2ecf20Sopenharmony_ci struct ubifs_wbuf *wbuf = &c->jheads[i].wbuf; 12238c2ecf20Sopenharmony_ci 12248c2ecf20Sopenharmony_ci if (i == GCHD) 12258c2ecf20Sopenharmony_ci /* 12268c2ecf20Sopenharmony_ci * GC head is special, do not look at it. Even if the 12278c2ecf20Sopenharmony_ci * head contains something related to this inode, it is 12288c2ecf20Sopenharmony_ci * a _copy_ of corresponding on-flash node which sits 12298c2ecf20Sopenharmony_ci * somewhere else. 12308c2ecf20Sopenharmony_ci */ 12318c2ecf20Sopenharmony_ci continue; 12328c2ecf20Sopenharmony_ci 12338c2ecf20Sopenharmony_ci if (!wbuf_has_ino(wbuf, inode->i_ino)) 12348c2ecf20Sopenharmony_ci continue; 12358c2ecf20Sopenharmony_ci 12368c2ecf20Sopenharmony_ci mutex_lock_nested(&wbuf->io_mutex, wbuf->jhead); 12378c2ecf20Sopenharmony_ci if (wbuf_has_ino(wbuf, inode->i_ino)) 12388c2ecf20Sopenharmony_ci err = ubifs_wbuf_sync_nolock(wbuf); 12398c2ecf20Sopenharmony_ci mutex_unlock(&wbuf->io_mutex); 12408c2ecf20Sopenharmony_ci 12418c2ecf20Sopenharmony_ci if (err) { 12428c2ecf20Sopenharmony_ci ubifs_ro_mode(c, err); 12438c2ecf20Sopenharmony_ci return err; 12448c2ecf20Sopenharmony_ci } 12458c2ecf20Sopenharmony_ci } 12468c2ecf20Sopenharmony_ci return 0; 12478c2ecf20Sopenharmony_ci} 1248