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1 ea2384d3 bellard
/*
2 ea2384d3 bellard
 * Block driver for the QCOW format
3 5fafdf24 ths
 *
4 83f64091 bellard
 * Copyright (c) 2004-2006 Fabrice Bellard
5 5fafdf24 ths
 *
6 ea2384d3 bellard
 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 ea2384d3 bellard
 * of this software and associated documentation files (the "Software"), to deal
8 ea2384d3 bellard
 * in the Software without restriction, including without limitation the rights
9 ea2384d3 bellard
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 ea2384d3 bellard
 * copies of the Software, and to permit persons to whom the Software is
11 ea2384d3 bellard
 * furnished to do so, subject to the following conditions:
12 ea2384d3 bellard
 *
13 ea2384d3 bellard
 * The above copyright notice and this permission notice shall be included in
14 ea2384d3 bellard
 * all copies or substantial portions of the Software.
15 ea2384d3 bellard
 *
16 ea2384d3 bellard
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 ea2384d3 bellard
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 ea2384d3 bellard
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 ea2384d3 bellard
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 ea2384d3 bellard
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 ea2384d3 bellard
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22 ea2384d3 bellard
 * THE SOFTWARE.
23 ea2384d3 bellard
 */
24 faf07963 pbrook
#include "qemu-common.h"
25 ea2384d3 bellard
#include "block_int.h"
26 5efa9d5a Anthony Liguori
#include "module.h"
27 28d34b82 bellard
#include <zlib.h>
28 ea2384d3 bellard
#include "aes.h"
29 ea2384d3 bellard
30 ea2384d3 bellard
/**************************************************************/
31 ea2384d3 bellard
/* QEMU COW block driver with compression and encryption support */
32 ea2384d3 bellard
33 ea2384d3 bellard
#define QCOW_MAGIC (('Q' << 24) | ('F' << 16) | ('I' << 8) | 0xfb)
34 ea2384d3 bellard
#define QCOW_VERSION 1
35 ea2384d3 bellard
36 ea2384d3 bellard
#define QCOW_CRYPT_NONE 0
37 ea2384d3 bellard
#define QCOW_CRYPT_AES  1
38 ea2384d3 bellard
39 ea2384d3 bellard
#define QCOW_OFLAG_COMPRESSED (1LL << 63)
40 ea2384d3 bellard
41 ea2384d3 bellard
typedef struct QCowHeader {
42 ea2384d3 bellard
    uint32_t magic;
43 ea2384d3 bellard
    uint32_t version;
44 ea2384d3 bellard
    uint64_t backing_file_offset;
45 ea2384d3 bellard
    uint32_t backing_file_size;
46 ea2384d3 bellard
    uint32_t mtime;
47 ea2384d3 bellard
    uint64_t size; /* in bytes */
48 ea2384d3 bellard
    uint8_t cluster_bits;
49 ea2384d3 bellard
    uint8_t l2_bits;
50 ea2384d3 bellard
    uint32_t crypt_method;
51 ea2384d3 bellard
    uint64_t l1_table_offset;
52 ea2384d3 bellard
} QCowHeader;
53 ea2384d3 bellard
54 ea2384d3 bellard
#define L2_CACHE_SIZE 16
55 ea2384d3 bellard
56 ea2384d3 bellard
typedef struct BDRVQcowState {
57 83f64091 bellard
    BlockDriverState *hd;
58 ea2384d3 bellard
    int cluster_bits;
59 ea2384d3 bellard
    int cluster_size;
60 ea2384d3 bellard
    int cluster_sectors;
61 ea2384d3 bellard
    int l2_bits;
62 ea2384d3 bellard
    int l2_size;
63 ea2384d3 bellard
    int l1_size;
64 ea2384d3 bellard
    uint64_t cluster_offset_mask;
65 ea2384d3 bellard
    uint64_t l1_table_offset;
66 ea2384d3 bellard
    uint64_t *l1_table;
67 ea2384d3 bellard
    uint64_t *l2_cache;
68 ea2384d3 bellard
    uint64_t l2_cache_offsets[L2_CACHE_SIZE];
69 ea2384d3 bellard
    uint32_t l2_cache_counts[L2_CACHE_SIZE];
70 ea2384d3 bellard
    uint8_t *cluster_cache;
71 ea2384d3 bellard
    uint8_t *cluster_data;
72 ea2384d3 bellard
    uint64_t cluster_cache_offset;
73 ea2384d3 bellard
    uint32_t crypt_method; /* current crypt method, 0 if no key yet */
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    uint32_t crypt_method_header;
75 ea2384d3 bellard
    AES_KEY aes_encrypt_key;
76 ea2384d3 bellard
    AES_KEY aes_decrypt_key;
77 ea2384d3 bellard
} BDRVQcowState;
78 ea2384d3 bellard
79 ea2384d3 bellard
static int decompress_cluster(BDRVQcowState *s, uint64_t cluster_offset);
80 ea2384d3 bellard
81 ea2384d3 bellard
static int qcow_probe(const uint8_t *buf, int buf_size, const char *filename)
82 ea2384d3 bellard
{
83 ea2384d3 bellard
    const QCowHeader *cow_header = (const void *)buf;
84 3b46e624 ths
85 712e7874 bellard
    if (buf_size >= sizeof(QCowHeader) &&
86 712e7874 bellard
        be32_to_cpu(cow_header->magic) == QCOW_MAGIC &&
87 5fafdf24 ths
        be32_to_cpu(cow_header->version) == QCOW_VERSION)
88 ea2384d3 bellard
        return 100;
89 ea2384d3 bellard
    else
90 ea2384d3 bellard
        return 0;
91 ea2384d3 bellard
}
92 ea2384d3 bellard
93 83f64091 bellard
static int qcow_open(BlockDriverState *bs, const char *filename, int flags)
94 ea2384d3 bellard
{
95 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
96 83f64091 bellard
    int len, i, shift, ret;
97 ea2384d3 bellard
    QCowHeader header;
98 83f64091 bellard
99 b5eff355 aurel32
    ret = bdrv_file_open(&s->hd, filename, flags);
100 83f64091 bellard
    if (ret < 0)
101 83f64091 bellard
        return ret;
102 83f64091 bellard
    if (bdrv_pread(s->hd, 0, &header, sizeof(header)) != sizeof(header))
103 ea2384d3 bellard
        goto fail;
104 ea2384d3 bellard
    be32_to_cpus(&header.magic);
105 ea2384d3 bellard
    be32_to_cpus(&header.version);
106 ea2384d3 bellard
    be64_to_cpus(&header.backing_file_offset);
107 ea2384d3 bellard
    be32_to_cpus(&header.backing_file_size);
108 ea2384d3 bellard
    be32_to_cpus(&header.mtime);
109 ea2384d3 bellard
    be64_to_cpus(&header.size);
110 ea2384d3 bellard
    be32_to_cpus(&header.crypt_method);
111 ea2384d3 bellard
    be64_to_cpus(&header.l1_table_offset);
112 3b46e624 ths
113 ea2384d3 bellard
    if (header.magic != QCOW_MAGIC || header.version != QCOW_VERSION)
114 ea2384d3 bellard
        goto fail;
115 ea2384d3 bellard
    if (header.size <= 1 || header.cluster_bits < 9)
116 ea2384d3 bellard
        goto fail;
117 ea2384d3 bellard
    if (header.crypt_method > QCOW_CRYPT_AES)
118 ea2384d3 bellard
        goto fail;
119 ea2384d3 bellard
    s->crypt_method_header = header.crypt_method;
120 ea2384d3 bellard
    if (s->crypt_method_header)
121 ea2384d3 bellard
        bs->encrypted = 1;
122 ea2384d3 bellard
    s->cluster_bits = header.cluster_bits;
123 ea2384d3 bellard
    s->cluster_size = 1 << s->cluster_bits;
124 ea2384d3 bellard
    s->cluster_sectors = 1 << (s->cluster_bits - 9);
125 ea2384d3 bellard
    s->l2_bits = header.l2_bits;
126 ea2384d3 bellard
    s->l2_size = 1 << s->l2_bits;
127 ea2384d3 bellard
    bs->total_sectors = header.size / 512;
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    s->cluster_offset_mask = (1LL << (63 - s->cluster_bits)) - 1;
129 ea2384d3 bellard
130 ea2384d3 bellard
    /* read the level 1 table */
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    shift = s->cluster_bits + s->l2_bits;
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    s->l1_size = (header.size + (1LL << shift) - 1) >> shift;
133 ea2384d3 bellard
134 ea2384d3 bellard
    s->l1_table_offset = header.l1_table_offset;
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    s->l1_table = qemu_malloc(s->l1_size * sizeof(uint64_t));
136 ea2384d3 bellard
    if (!s->l1_table)
137 ea2384d3 bellard
        goto fail;
138 5fafdf24 ths
    if (bdrv_pread(s->hd, s->l1_table_offset, s->l1_table, s->l1_size * sizeof(uint64_t)) !=
139 ea2384d3 bellard
        s->l1_size * sizeof(uint64_t))
140 ea2384d3 bellard
        goto fail;
141 ea2384d3 bellard
    for(i = 0;i < s->l1_size; i++) {
142 ea2384d3 bellard
        be64_to_cpus(&s->l1_table[i]);
143 ea2384d3 bellard
    }
144 ea2384d3 bellard
    /* alloc L2 cache */
145 ea2384d3 bellard
    s->l2_cache = qemu_malloc(s->l2_size * L2_CACHE_SIZE * sizeof(uint64_t));
146 ea2384d3 bellard
    if (!s->l2_cache)
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        goto fail;
148 ea2384d3 bellard
    s->cluster_cache = qemu_malloc(s->cluster_size);
149 ea2384d3 bellard
    if (!s->cluster_cache)
150 ea2384d3 bellard
        goto fail;
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    s->cluster_data = qemu_malloc(s->cluster_size);
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    if (!s->cluster_data)
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        goto fail;
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    s->cluster_cache_offset = -1;
155 3b46e624 ths
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    /* read the backing file name */
157 ea2384d3 bellard
    if (header.backing_file_offset != 0) {
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        len = header.backing_file_size;
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        if (len > 1023)
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            len = 1023;
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        if (bdrv_pread(s->hd, header.backing_file_offset, bs->backing_file, len) != len)
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            goto fail;
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        bs->backing_file[len] = '\0';
164 ea2384d3 bellard
    }
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    return 0;
166 ea2384d3 bellard
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 fail:
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    qemu_free(s->l1_table);
169 ea2384d3 bellard
    qemu_free(s->l2_cache);
170 ea2384d3 bellard
    qemu_free(s->cluster_cache);
171 ea2384d3 bellard
    qemu_free(s->cluster_data);
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    bdrv_delete(s->hd);
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    return -1;
174 ea2384d3 bellard
}
175 ea2384d3 bellard
176 ea2384d3 bellard
static int qcow_set_key(BlockDriverState *bs, const char *key)
177 ea2384d3 bellard
{
178 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
179 ea2384d3 bellard
    uint8_t keybuf[16];
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    int len, i;
181 3b46e624 ths
182 ea2384d3 bellard
    memset(keybuf, 0, 16);
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    len = strlen(key);
184 ea2384d3 bellard
    if (len > 16)
185 ea2384d3 bellard
        len = 16;
186 ea2384d3 bellard
    /* XXX: we could compress the chars to 7 bits to increase
187 ea2384d3 bellard
       entropy */
188 ea2384d3 bellard
    for(i = 0;i < len;i++) {
189 ea2384d3 bellard
        keybuf[i] = key[i];
190 ea2384d3 bellard
    }
191 ea2384d3 bellard
    s->crypt_method = s->crypt_method_header;
192 ea2384d3 bellard
193 ea2384d3 bellard
    if (AES_set_encrypt_key(keybuf, 128, &s->aes_encrypt_key) != 0)
194 ea2384d3 bellard
        return -1;
195 ea2384d3 bellard
    if (AES_set_decrypt_key(keybuf, 128, &s->aes_decrypt_key) != 0)
196 ea2384d3 bellard
        return -1;
197 ea2384d3 bellard
#if 0
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    /* test */
199 ea2384d3 bellard
    {
200 ea2384d3 bellard
        uint8_t in[16];
201 ea2384d3 bellard
        uint8_t out[16];
202 ea2384d3 bellard
        uint8_t tmp[16];
203 ea2384d3 bellard
        for(i=0;i<16;i++)
204 ea2384d3 bellard
            in[i] = i;
205 ea2384d3 bellard
        AES_encrypt(in, tmp, &s->aes_encrypt_key);
206 ea2384d3 bellard
        AES_decrypt(tmp, out, &s->aes_decrypt_key);
207 ea2384d3 bellard
        for(i = 0; i < 16; i++)
208 ea2384d3 bellard
            printf(" %02x", tmp[i]);
209 ea2384d3 bellard
        printf("\n");
210 ea2384d3 bellard
        for(i = 0; i < 16; i++)
211 ea2384d3 bellard
            printf(" %02x", out[i]);
212 ea2384d3 bellard
        printf("\n");
213 ea2384d3 bellard
    }
214 ea2384d3 bellard
#endif
215 ea2384d3 bellard
    return 0;
216 ea2384d3 bellard
}
217 ea2384d3 bellard
218 ea2384d3 bellard
/* The crypt function is compatible with the linux cryptoloop
219 ea2384d3 bellard
   algorithm for < 4 GB images. NOTE: out_buf == in_buf is
220 ea2384d3 bellard
   supported */
221 ea2384d3 bellard
static void encrypt_sectors(BDRVQcowState *s, int64_t sector_num,
222 ea2384d3 bellard
                            uint8_t *out_buf, const uint8_t *in_buf,
223 ea2384d3 bellard
                            int nb_sectors, int enc,
224 ea2384d3 bellard
                            const AES_KEY *key)
225 ea2384d3 bellard
{
226 ea2384d3 bellard
    union {
227 ea2384d3 bellard
        uint64_t ll[2];
228 ea2384d3 bellard
        uint8_t b[16];
229 ea2384d3 bellard
    } ivec;
230 ea2384d3 bellard
    int i;
231 ea2384d3 bellard
232 ea2384d3 bellard
    for(i = 0; i < nb_sectors; i++) {
233 ea2384d3 bellard
        ivec.ll[0] = cpu_to_le64(sector_num);
234 ea2384d3 bellard
        ivec.ll[1] = 0;
235 5fafdf24 ths
        AES_cbc_encrypt(in_buf, out_buf, 512, key,
236 ea2384d3 bellard
                        ivec.b, enc);
237 ea2384d3 bellard
        sector_num++;
238 ea2384d3 bellard
        in_buf += 512;
239 ea2384d3 bellard
        out_buf += 512;
240 ea2384d3 bellard
    }
241 ea2384d3 bellard
}
242 ea2384d3 bellard
243 ea2384d3 bellard
/* 'allocate' is:
244 ea2384d3 bellard
 *
245 ea2384d3 bellard
 * 0 to not allocate.
246 ea2384d3 bellard
 *
247 ea2384d3 bellard
 * 1 to allocate a normal cluster (for sector indexes 'n_start' to
248 ea2384d3 bellard
 * 'n_end')
249 ea2384d3 bellard
 *
250 ea2384d3 bellard
 * 2 to allocate a compressed cluster of size
251 ea2384d3 bellard
 * 'compressed_size'. 'compressed_size' must be > 0 and <
252 5fafdf24 ths
 * cluster_size
253 ea2384d3 bellard
 *
254 ea2384d3 bellard
 * return 0 if not allocated.
255 ea2384d3 bellard
 */
256 ea2384d3 bellard
static uint64_t get_cluster_offset(BlockDriverState *bs,
257 ea2384d3 bellard
                                   uint64_t offset, int allocate,
258 ea2384d3 bellard
                                   int compressed_size,
259 ea2384d3 bellard
                                   int n_start, int n_end)
260 ea2384d3 bellard
{
261 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
262 ea2384d3 bellard
    int min_index, i, j, l1_index, l2_index;
263 ea2384d3 bellard
    uint64_t l2_offset, *l2_table, cluster_offset, tmp;
264 ea2384d3 bellard
    uint32_t min_count;
265 ea2384d3 bellard
    int new_l2_table;
266 3b46e624 ths
267 ea2384d3 bellard
    l1_index = offset >> (s->l2_bits + s->cluster_bits);
268 ea2384d3 bellard
    l2_offset = s->l1_table[l1_index];
269 ea2384d3 bellard
    new_l2_table = 0;
270 ea2384d3 bellard
    if (!l2_offset) {
271 ea2384d3 bellard
        if (!allocate)
272 ea2384d3 bellard
            return 0;
273 ea2384d3 bellard
        /* allocate a new l2 entry */
274 83f64091 bellard
        l2_offset = bdrv_getlength(s->hd);
275 ea2384d3 bellard
        /* round to cluster size */
276 ea2384d3 bellard
        l2_offset = (l2_offset + s->cluster_size - 1) & ~(s->cluster_size - 1);
277 ea2384d3 bellard
        /* update the L1 entry */
278 ea2384d3 bellard
        s->l1_table[l1_index] = l2_offset;
279 ea2384d3 bellard
        tmp = cpu_to_be64(l2_offset);
280 5fafdf24 ths
        if (bdrv_pwrite(s->hd, s->l1_table_offset + l1_index * sizeof(tmp),
281 83f64091 bellard
                        &tmp, sizeof(tmp)) != sizeof(tmp))
282 ea2384d3 bellard
            return 0;
283 ea2384d3 bellard
        new_l2_table = 1;
284 ea2384d3 bellard
    }
285 ea2384d3 bellard
    for(i = 0; i < L2_CACHE_SIZE; i++) {
286 ea2384d3 bellard
        if (l2_offset == s->l2_cache_offsets[i]) {
287 ea2384d3 bellard
            /* increment the hit count */
288 ea2384d3 bellard
            if (++s->l2_cache_counts[i] == 0xffffffff) {
289 ea2384d3 bellard
                for(j = 0; j < L2_CACHE_SIZE; j++) {
290 ea2384d3 bellard
                    s->l2_cache_counts[j] >>= 1;
291 ea2384d3 bellard
                }
292 ea2384d3 bellard
            }
293 ea2384d3 bellard
            l2_table = s->l2_cache + (i << s->l2_bits);
294 ea2384d3 bellard
            goto found;
295 ea2384d3 bellard
        }
296 ea2384d3 bellard
    }
297 ea2384d3 bellard
    /* not found: load a new entry in the least used one */
298 ea2384d3 bellard
    min_index = 0;
299 ea2384d3 bellard
    min_count = 0xffffffff;
300 ea2384d3 bellard
    for(i = 0; i < L2_CACHE_SIZE; i++) {
301 ea2384d3 bellard
        if (s->l2_cache_counts[i] < min_count) {
302 ea2384d3 bellard
            min_count = s->l2_cache_counts[i];
303 ea2384d3 bellard
            min_index = i;
304 ea2384d3 bellard
        }
305 ea2384d3 bellard
    }
306 ea2384d3 bellard
    l2_table = s->l2_cache + (min_index << s->l2_bits);
307 ea2384d3 bellard
    if (new_l2_table) {
308 ea2384d3 bellard
        memset(l2_table, 0, s->l2_size * sizeof(uint64_t));
309 83f64091 bellard
        if (bdrv_pwrite(s->hd, l2_offset, l2_table, s->l2_size * sizeof(uint64_t)) !=
310 ea2384d3 bellard
            s->l2_size * sizeof(uint64_t))
311 ea2384d3 bellard
            return 0;
312 ea2384d3 bellard
    } else {
313 5fafdf24 ths
        if (bdrv_pread(s->hd, l2_offset, l2_table, s->l2_size * sizeof(uint64_t)) !=
314 ea2384d3 bellard
            s->l2_size * sizeof(uint64_t))
315 ea2384d3 bellard
            return 0;
316 ea2384d3 bellard
    }
317 ea2384d3 bellard
    s->l2_cache_offsets[min_index] = l2_offset;
318 ea2384d3 bellard
    s->l2_cache_counts[min_index] = 1;
319 ea2384d3 bellard
 found:
320 ea2384d3 bellard
    l2_index = (offset >> s->cluster_bits) & (s->l2_size - 1);
321 ea2384d3 bellard
    cluster_offset = be64_to_cpu(l2_table[l2_index]);
322 5fafdf24 ths
    if (!cluster_offset ||
323 ea2384d3 bellard
        ((cluster_offset & QCOW_OFLAG_COMPRESSED) && allocate == 1)) {
324 ea2384d3 bellard
        if (!allocate)
325 ea2384d3 bellard
            return 0;
326 ea2384d3 bellard
        /* allocate a new cluster */
327 ea2384d3 bellard
        if ((cluster_offset & QCOW_OFLAG_COMPRESSED) &&
328 ea2384d3 bellard
            (n_end - n_start) < s->cluster_sectors) {
329 ea2384d3 bellard
            /* if the cluster is already compressed, we must
330 ea2384d3 bellard
               decompress it in the case it is not completely
331 ea2384d3 bellard
               overwritten */
332 ea2384d3 bellard
            if (decompress_cluster(s, cluster_offset) < 0)
333 ea2384d3 bellard
                return 0;
334 83f64091 bellard
            cluster_offset = bdrv_getlength(s->hd);
335 5fafdf24 ths
            cluster_offset = (cluster_offset + s->cluster_size - 1) &
336 ea2384d3 bellard
                ~(s->cluster_size - 1);
337 ea2384d3 bellard
            /* write the cluster content */
338 5fafdf24 ths
            if (bdrv_pwrite(s->hd, cluster_offset, s->cluster_cache, s->cluster_size) !=
339 ea2384d3 bellard
                s->cluster_size)
340 ea2384d3 bellard
                return -1;
341 ea2384d3 bellard
        } else {
342 83f64091 bellard
            cluster_offset = bdrv_getlength(s->hd);
343 7f48fa1f aliguori
            if (allocate == 1) {
344 7f48fa1f aliguori
                /* round to cluster size */
345 7f48fa1f aliguori
                cluster_offset = (cluster_offset + s->cluster_size - 1) &
346 7f48fa1f aliguori
                    ~(s->cluster_size - 1);
347 7f48fa1f aliguori
                bdrv_truncate(s->hd, cluster_offset + s->cluster_size);
348 7f48fa1f aliguori
                /* if encrypted, we must initialize the cluster
349 7f48fa1f aliguori
                   content which won't be written */
350 7f48fa1f aliguori
                if (s->crypt_method &&
351 7f48fa1f aliguori
                    (n_end - n_start) < s->cluster_sectors) {
352 7f48fa1f aliguori
                    uint64_t start_sect;
353 7f48fa1f aliguori
                    start_sect = (offset & ~(s->cluster_size - 1)) >> 9;
354 7f48fa1f aliguori
                    memset(s->cluster_data + 512, 0x00, 512);
355 7f48fa1f aliguori
                    for(i = 0; i < s->cluster_sectors; i++) {
356 7f48fa1f aliguori
                        if (i < n_start || i >= n_end) {
357 7f48fa1f aliguori
                            encrypt_sectors(s, start_sect + i,
358 7f48fa1f aliguori
                                            s->cluster_data,
359 7f48fa1f aliguori
                                            s->cluster_data + 512, 1, 1,
360 7f48fa1f aliguori
                                            &s->aes_encrypt_key);
361 7f48fa1f aliguori
                            if (bdrv_pwrite(s->hd, cluster_offset + i * 512,
362 7f48fa1f aliguori
                                            s->cluster_data, 512) != 512)
363 7f48fa1f aliguori
                                return -1;
364 7f48fa1f aliguori
                        }
365 ea2384d3 bellard
                    }
366 ea2384d3 bellard
                }
367 7f48fa1f aliguori
            } else if (allocate == 2) {
368 7f48fa1f aliguori
                cluster_offset |= QCOW_OFLAG_COMPRESSED |
369 7f48fa1f aliguori
                    (uint64_t)compressed_size << (63 - s->cluster_bits);
370 ea2384d3 bellard
            }
371 ea2384d3 bellard
        }
372 ea2384d3 bellard
        /* update L2 table */
373 ea2384d3 bellard
        tmp = cpu_to_be64(cluster_offset);
374 ea2384d3 bellard
        l2_table[l2_index] = tmp;
375 5fafdf24 ths
        if (bdrv_pwrite(s->hd,
376 83f64091 bellard
                        l2_offset + l2_index * sizeof(tmp), &tmp, sizeof(tmp)) != sizeof(tmp))
377 ea2384d3 bellard
            return 0;
378 ea2384d3 bellard
    }
379 ea2384d3 bellard
    return cluster_offset;
380 ea2384d3 bellard
}
381 ea2384d3 bellard
382 5fafdf24 ths
static int qcow_is_allocated(BlockDriverState *bs, int64_t sector_num,
383 ea2384d3 bellard
                             int nb_sectors, int *pnum)
384 ea2384d3 bellard
{
385 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
386 ea2384d3 bellard
    int index_in_cluster, n;
387 ea2384d3 bellard
    uint64_t cluster_offset;
388 ea2384d3 bellard
389 ea2384d3 bellard
    cluster_offset = get_cluster_offset(bs, sector_num << 9, 0, 0, 0, 0);
390 ea2384d3 bellard
    index_in_cluster = sector_num & (s->cluster_sectors - 1);
391 ea2384d3 bellard
    n = s->cluster_sectors - index_in_cluster;
392 ea2384d3 bellard
    if (n > nb_sectors)
393 ea2384d3 bellard
        n = nb_sectors;
394 ea2384d3 bellard
    *pnum = n;
395 ea2384d3 bellard
    return (cluster_offset != 0);
396 ea2384d3 bellard
}
397 ea2384d3 bellard
398 ea2384d3 bellard
static int decompress_buffer(uint8_t *out_buf, int out_buf_size,
399 ea2384d3 bellard
                             const uint8_t *buf, int buf_size)
400 ea2384d3 bellard
{
401 ea2384d3 bellard
    z_stream strm1, *strm = &strm1;
402 ea2384d3 bellard
    int ret, out_len;
403 ea2384d3 bellard
404 ea2384d3 bellard
    memset(strm, 0, sizeof(*strm));
405 ea2384d3 bellard
406 ea2384d3 bellard
    strm->next_in = (uint8_t *)buf;
407 ea2384d3 bellard
    strm->avail_in = buf_size;
408 ea2384d3 bellard
    strm->next_out = out_buf;
409 ea2384d3 bellard
    strm->avail_out = out_buf_size;
410 ea2384d3 bellard
411 ea2384d3 bellard
    ret = inflateInit2(strm, -12);
412 ea2384d3 bellard
    if (ret != Z_OK)
413 ea2384d3 bellard
        return -1;
414 ea2384d3 bellard
    ret = inflate(strm, Z_FINISH);
415 ea2384d3 bellard
    out_len = strm->next_out - out_buf;
416 ea2384d3 bellard
    if ((ret != Z_STREAM_END && ret != Z_BUF_ERROR) ||
417 ea2384d3 bellard
        out_len != out_buf_size) {
418 ea2384d3 bellard
        inflateEnd(strm);
419 ea2384d3 bellard
        return -1;
420 ea2384d3 bellard
    }
421 ea2384d3 bellard
    inflateEnd(strm);
422 ea2384d3 bellard
    return 0;
423 ea2384d3 bellard
}
424 3b46e624 ths
425 ea2384d3 bellard
static int decompress_cluster(BDRVQcowState *s, uint64_t cluster_offset)
426 ea2384d3 bellard
{
427 ea2384d3 bellard
    int ret, csize;
428 ea2384d3 bellard
    uint64_t coffset;
429 ea2384d3 bellard
430 ea2384d3 bellard
    coffset = cluster_offset & s->cluster_offset_mask;
431 ea2384d3 bellard
    if (s->cluster_cache_offset != coffset) {
432 ea2384d3 bellard
        csize = cluster_offset >> (63 - s->cluster_bits);
433 ea2384d3 bellard
        csize &= (s->cluster_size - 1);
434 83f64091 bellard
        ret = bdrv_pread(s->hd, coffset, s->cluster_data, csize);
435 5fafdf24 ths
        if (ret != csize)
436 ea2384d3 bellard
            return -1;
437 ea2384d3 bellard
        if (decompress_buffer(s->cluster_cache, s->cluster_size,
438 ea2384d3 bellard
                              s->cluster_data, csize) < 0) {
439 ea2384d3 bellard
            return -1;
440 ea2384d3 bellard
        }
441 ea2384d3 bellard
        s->cluster_cache_offset = coffset;
442 ea2384d3 bellard
    }
443 ea2384d3 bellard
    return 0;
444 ea2384d3 bellard
}
445 ea2384d3 bellard
446 83f64091 bellard
#if 0
447 83f64091 bellard

448 5fafdf24 ths
static int qcow_read(BlockDriverState *bs, int64_t sector_num,
449 ea2384d3 bellard
                     uint8_t *buf, int nb_sectors)
450 ea2384d3 bellard
{
451 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
452 ea2384d3 bellard
    int ret, index_in_cluster, n;
453 ea2384d3 bellard
    uint64_t cluster_offset;
454 3b46e624 ths

455 ea2384d3 bellard
    while (nb_sectors > 0) {
456 ea2384d3 bellard
        cluster_offset = get_cluster_offset(bs, sector_num << 9, 0, 0, 0, 0);
457 ea2384d3 bellard
        index_in_cluster = sector_num & (s->cluster_sectors - 1);
458 ea2384d3 bellard
        n = s->cluster_sectors - index_in_cluster;
459 ea2384d3 bellard
        if (n > nb_sectors)
460 ea2384d3 bellard
            n = nb_sectors;
461 ea2384d3 bellard
        if (!cluster_offset) {
462 83f64091 bellard
            if (bs->backing_hd) {
463 83f64091 bellard
                /* read from the base image */
464 83f64091 bellard
                ret = bdrv_read(bs->backing_hd, sector_num, buf, n);
465 83f64091 bellard
                if (ret < 0)
466 83f64091 bellard
                    return -1;
467 83f64091 bellard
            } else {
468 83f64091 bellard
                memset(buf, 0, 512 * n);
469 83f64091 bellard
            }
470 ea2384d3 bellard
        } else if (cluster_offset & QCOW_OFLAG_COMPRESSED) {
471 ea2384d3 bellard
            if (decompress_cluster(s, cluster_offset) < 0)
472 ea2384d3 bellard
                return -1;
473 ea2384d3 bellard
            memcpy(buf, s->cluster_cache + index_in_cluster * 512, 512 * n);
474 ea2384d3 bellard
        } else {
475 83f64091 bellard
            ret = bdrv_pread(s->hd, cluster_offset + index_in_cluster * 512, buf, n * 512);
476 5fafdf24 ths
            if (ret != n * 512)
477 ea2384d3 bellard
                return -1;
478 ea2384d3 bellard
            if (s->crypt_method) {
479 5fafdf24 ths
                encrypt_sectors(s, sector_num, buf, buf, n, 0,
480 ea2384d3 bellard
                                &s->aes_decrypt_key);
481 ea2384d3 bellard
            }
482 ea2384d3 bellard
        }
483 ea2384d3 bellard
        nb_sectors -= n;
484 ea2384d3 bellard
        sector_num += n;
485 ea2384d3 bellard
        buf += n * 512;
486 ea2384d3 bellard
    }
487 ea2384d3 bellard
    return 0;
488 ea2384d3 bellard
}
489 83f64091 bellard
#endif
490 ea2384d3 bellard
491 5fafdf24 ths
static int qcow_write(BlockDriverState *bs, int64_t sector_num,
492 ea2384d3 bellard
                     const uint8_t *buf, int nb_sectors)
493 ea2384d3 bellard
{
494 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
495 ea2384d3 bellard
    int ret, index_in_cluster, n;
496 ea2384d3 bellard
    uint64_t cluster_offset;
497 3b46e624 ths
498 ea2384d3 bellard
    while (nb_sectors > 0) {
499 ea2384d3 bellard
        index_in_cluster = sector_num & (s->cluster_sectors - 1);
500 ea2384d3 bellard
        n = s->cluster_sectors - index_in_cluster;
501 ea2384d3 bellard
        if (n > nb_sectors)
502 ea2384d3 bellard
            n = nb_sectors;
503 5fafdf24 ths
        cluster_offset = get_cluster_offset(bs, sector_num << 9, 1, 0,
504 5fafdf24 ths
                                            index_in_cluster,
505 ea2384d3 bellard
                                            index_in_cluster + n);
506 ea2384d3 bellard
        if (!cluster_offset)
507 ea2384d3 bellard
            return -1;
508 ea2384d3 bellard
        if (s->crypt_method) {
509 ea2384d3 bellard
            encrypt_sectors(s, sector_num, s->cluster_data, buf, n, 1,
510 ea2384d3 bellard
                            &s->aes_encrypt_key);
511 5fafdf24 ths
            ret = bdrv_pwrite(s->hd, cluster_offset + index_in_cluster * 512,
512 83f64091 bellard
                              s->cluster_data, n * 512);
513 ea2384d3 bellard
        } else {
514 83f64091 bellard
            ret = bdrv_pwrite(s->hd, cluster_offset + index_in_cluster * 512, buf, n * 512);
515 ea2384d3 bellard
        }
516 5fafdf24 ths
        if (ret != n * 512)
517 ea2384d3 bellard
            return -1;
518 ea2384d3 bellard
        nb_sectors -= n;
519 ea2384d3 bellard
        sector_num += n;
520 ea2384d3 bellard
        buf += n * 512;
521 ea2384d3 bellard
    }
522 ea2384d3 bellard
    s->cluster_cache_offset = -1; /* disable compressed cache */
523 ea2384d3 bellard
    return 0;
524 ea2384d3 bellard
}
525 ea2384d3 bellard
526 ce1a14dc pbrook
typedef struct QCowAIOCB {
527 ce1a14dc pbrook
    BlockDriverAIOCB common;
528 83f64091 bellard
    int64_t sector_num;
529 f141eafe aliguori
    QEMUIOVector *qiov;
530 83f64091 bellard
    uint8_t *buf;
531 f141eafe aliguori
    void *orig_buf;
532 83f64091 bellard
    int nb_sectors;
533 83f64091 bellard
    int n;
534 83f64091 bellard
    uint64_t cluster_offset;
535 5fafdf24 ths
    uint8_t *cluster_data;
536 c87c0672 aliguori
    struct iovec hd_iov;
537 c87c0672 aliguori
    QEMUIOVector hd_qiov;
538 83f64091 bellard
    BlockDriverAIOCB *hd_aiocb;
539 83f64091 bellard
} QCowAIOCB;
540 83f64091 bellard
541 83f64091 bellard
static void qcow_aio_read_cb(void *opaque, int ret)
542 83f64091 bellard
{
543 ce1a14dc pbrook
    QCowAIOCB *acb = opaque;
544 ce1a14dc pbrook
    BlockDriverState *bs = acb->common.bs;
545 83f64091 bellard
    BDRVQcowState *s = bs->opaque;
546 83f64091 bellard
    int index_in_cluster;
547 83f64091 bellard
548 ce1a14dc pbrook
    acb->hd_aiocb = NULL;
549 f141eafe aliguori
    if (ret < 0)
550 f141eafe aliguori
        goto done;
551 83f64091 bellard
552 83f64091 bellard
 redo:
553 83f64091 bellard
    /* post process the read buffer */
554 ce1a14dc pbrook
    if (!acb->cluster_offset) {
555 83f64091 bellard
        /* nothing to do */
556 ce1a14dc pbrook
    } else if (acb->cluster_offset & QCOW_OFLAG_COMPRESSED) {
557 83f64091 bellard
        /* nothing to do */
558 83f64091 bellard
    } else {
559 83f64091 bellard
        if (s->crypt_method) {
560 5fafdf24 ths
            encrypt_sectors(s, acb->sector_num, acb->buf, acb->buf,
561 5fafdf24 ths
                            acb->n, 0,
562 83f64091 bellard
                            &s->aes_decrypt_key);
563 83f64091 bellard
        }
564 83f64091 bellard
    }
565 83f64091 bellard
566 ce1a14dc pbrook
    acb->nb_sectors -= acb->n;
567 ce1a14dc pbrook
    acb->sector_num += acb->n;
568 ce1a14dc pbrook
    acb->buf += acb->n * 512;
569 83f64091 bellard
570 ce1a14dc pbrook
    if (acb->nb_sectors == 0) {
571 83f64091 bellard
        /* request completed */
572 f141eafe aliguori
        ret = 0;
573 f141eafe aliguori
        goto done;
574 83f64091 bellard
    }
575 3b46e624 ths
576 83f64091 bellard
    /* prepare next AIO request */
577 5fafdf24 ths
    acb->cluster_offset = get_cluster_offset(bs, acb->sector_num << 9,
578 ce1a14dc pbrook
                                             0, 0, 0, 0);
579 ce1a14dc pbrook
    index_in_cluster = acb->sector_num & (s->cluster_sectors - 1);
580 ce1a14dc pbrook
    acb->n = s->cluster_sectors - index_in_cluster;
581 ce1a14dc pbrook
    if (acb->n > acb->nb_sectors)
582 ce1a14dc pbrook
        acb->n = acb->nb_sectors;
583 ce1a14dc pbrook
584 ce1a14dc pbrook
    if (!acb->cluster_offset) {
585 83f64091 bellard
        if (bs->backing_hd) {
586 83f64091 bellard
            /* read from the base image */
587 3f4cb3d3 blueswir1
            acb->hd_iov.iov_base = (void *)acb->buf;
588 c87c0672 aliguori
            acb->hd_iov.iov_len = acb->n * 512;
589 c87c0672 aliguori
            qemu_iovec_init_external(&acb->hd_qiov, &acb->hd_iov, 1);
590 c87c0672 aliguori
            acb->hd_aiocb = bdrv_aio_readv(bs->backing_hd, acb->sector_num,
591 c87c0672 aliguori
                &acb->hd_qiov, acb->n, qcow_aio_read_cb, acb);
592 ce1a14dc pbrook
            if (acb->hd_aiocb == NULL)
593 f141eafe aliguori
                goto done;
594 83f64091 bellard
        } else {
595 83f64091 bellard
            /* Note: in this case, no need to wait */
596 ce1a14dc pbrook
            memset(acb->buf, 0, 512 * acb->n);
597 83f64091 bellard
            goto redo;
598 83f64091 bellard
        }
599 ce1a14dc pbrook
    } else if (acb->cluster_offset & QCOW_OFLAG_COMPRESSED) {
600 83f64091 bellard
        /* add AIO support for compressed blocks ? */
601 ce1a14dc pbrook
        if (decompress_cluster(s, acb->cluster_offset) < 0)
602 f141eafe aliguori
            goto done;
603 5fafdf24 ths
        memcpy(acb->buf,
604 ce1a14dc pbrook
               s->cluster_cache + index_in_cluster * 512, 512 * acb->n);
605 83f64091 bellard
        goto redo;
606 83f64091 bellard
    } else {
607 ce1a14dc pbrook
        if ((acb->cluster_offset & 511) != 0) {
608 83f64091 bellard
            ret = -EIO;
609 f141eafe aliguori
            goto done;
610 83f64091 bellard
        }
611 3f4cb3d3 blueswir1
        acb->hd_iov.iov_base = (void *)acb->buf;
612 c87c0672 aliguori
        acb->hd_iov.iov_len = acb->n * 512;
613 c87c0672 aliguori
        qemu_iovec_init_external(&acb->hd_qiov, &acb->hd_iov, 1);
614 c87c0672 aliguori
        acb->hd_aiocb = bdrv_aio_readv(s->hd,
615 5fafdf24 ths
                            (acb->cluster_offset >> 9) + index_in_cluster,
616 c87c0672 aliguori
                            &acb->hd_qiov, acb->n, qcow_aio_read_cb, acb);
617 ce1a14dc pbrook
        if (acb->hd_aiocb == NULL)
618 f141eafe aliguori
            goto done;
619 f141eafe aliguori
    }
620 f141eafe aliguori
621 f141eafe aliguori
    return;
622 f141eafe aliguori
623 f141eafe aliguori
done:
624 f141eafe aliguori
    if (acb->qiov->niov > 1) {
625 f141eafe aliguori
        qemu_iovec_from_buffer(acb->qiov, acb->orig_buf, acb->qiov->size);
626 f141eafe aliguori
        qemu_vfree(acb->orig_buf);
627 83f64091 bellard
    }
628 f141eafe aliguori
    acb->common.cb(acb->common.opaque, ret);
629 f141eafe aliguori
    qemu_aio_release(acb);
630 83f64091 bellard
}
631 83f64091 bellard
632 f141eafe aliguori
static BlockDriverAIOCB *qcow_aio_readv(BlockDriverState *bs,
633 f141eafe aliguori
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
634 ce1a14dc pbrook
        BlockDriverCompletionFunc *cb, void *opaque)
635 83f64091 bellard
{
636 ce1a14dc pbrook
    QCowAIOCB *acb;
637 ce1a14dc pbrook
638 ce1a14dc pbrook
    acb = qemu_aio_get(bs, cb, opaque);
639 ce1a14dc pbrook
    if (!acb)
640 ce1a14dc pbrook
        return NULL;
641 ce1a14dc pbrook
    acb->hd_aiocb = NULL;
642 ce1a14dc pbrook
    acb->sector_num = sector_num;
643 f141eafe aliguori
    acb->qiov = qiov;
644 f141eafe aliguori
    if (qiov->niov > 1)
645 e268ca52 aliguori
        acb->buf = acb->orig_buf = qemu_blockalign(bs, qiov->size);
646 f141eafe aliguori
    else
647 3f4cb3d3 blueswir1
        acb->buf = (uint8_t *)qiov->iov->iov_base;
648 ce1a14dc pbrook
    acb->nb_sectors = nb_sectors;
649 ce1a14dc pbrook
    acb->n = 0;
650 3b46e624 ths
    acb->cluster_offset = 0;
651 83f64091 bellard
652 83f64091 bellard
    qcow_aio_read_cb(acb, 0);
653 ce1a14dc pbrook
    return &acb->common;
654 83f64091 bellard
}
655 83f64091 bellard
656 83f64091 bellard
static void qcow_aio_write_cb(void *opaque, int ret)
657 83f64091 bellard
{
658 ce1a14dc pbrook
    QCowAIOCB *acb = opaque;
659 ce1a14dc pbrook
    BlockDriverState *bs = acb->common.bs;
660 83f64091 bellard
    BDRVQcowState *s = bs->opaque;
661 83f64091 bellard
    int index_in_cluster;
662 83f64091 bellard
    uint64_t cluster_offset;
663 83f64091 bellard
    const uint8_t *src_buf;
664 ce1a14dc pbrook
665 ce1a14dc pbrook
    acb->hd_aiocb = NULL;
666 ce1a14dc pbrook
667 f141eafe aliguori
    if (ret < 0)
668 f141eafe aliguori
        goto done;
669 83f64091 bellard
670 ce1a14dc pbrook
    acb->nb_sectors -= acb->n;
671 ce1a14dc pbrook
    acb->sector_num += acb->n;
672 ce1a14dc pbrook
    acb->buf += acb->n * 512;
673 83f64091 bellard
674 ce1a14dc pbrook
    if (acb->nb_sectors == 0) {
675 83f64091 bellard
        /* request completed */
676 f141eafe aliguori
        ret = 0;
677 f141eafe aliguori
        goto done;
678 83f64091 bellard
    }
679 3b46e624 ths
680 ce1a14dc pbrook
    index_in_cluster = acb->sector_num & (s->cluster_sectors - 1);
681 ce1a14dc pbrook
    acb->n = s->cluster_sectors - index_in_cluster;
682 ce1a14dc pbrook
    if (acb->n > acb->nb_sectors)
683 ce1a14dc pbrook
        acb->n = acb->nb_sectors;
684 5fafdf24 ths
    cluster_offset = get_cluster_offset(bs, acb->sector_num << 9, 1, 0,
685 5fafdf24 ths
                                        index_in_cluster,
686 ce1a14dc pbrook
                                        index_in_cluster + acb->n);
687 83f64091 bellard
    if (!cluster_offset || (cluster_offset & 511) != 0) {
688 83f64091 bellard
        ret = -EIO;
689 f141eafe aliguori
        goto done;
690 83f64091 bellard
    }
691 83f64091 bellard
    if (s->crypt_method) {
692 ce1a14dc pbrook
        if (!acb->cluster_data) {
693 ce1a14dc pbrook
            acb->cluster_data = qemu_mallocz(s->cluster_size);
694 ce1a14dc pbrook
            if (!acb->cluster_data) {
695 83f64091 bellard
                ret = -ENOMEM;
696 f141eafe aliguori
                goto done;
697 83f64091 bellard
            }
698 83f64091 bellard
        }
699 5fafdf24 ths
        encrypt_sectors(s, acb->sector_num, acb->cluster_data, acb->buf,
700 ce1a14dc pbrook
                        acb->n, 1, &s->aes_encrypt_key);
701 ce1a14dc pbrook
        src_buf = acb->cluster_data;
702 83f64091 bellard
    } else {
703 ce1a14dc pbrook
        src_buf = acb->buf;
704 83f64091 bellard
    }
705 c87c0672 aliguori
706 c87c0672 aliguori
    acb->hd_iov.iov_base = (void *)src_buf;
707 c87c0672 aliguori
    acb->hd_iov.iov_len = acb->n * 512;
708 c87c0672 aliguori
    qemu_iovec_init_external(&acb->hd_qiov, &acb->hd_iov, 1);
709 c87c0672 aliguori
    acb->hd_aiocb = bdrv_aio_writev(s->hd,
710 c87c0672 aliguori
                                    (cluster_offset >> 9) + index_in_cluster,
711 c87c0672 aliguori
                                    &acb->hd_qiov, acb->n,
712 c87c0672 aliguori
                                    qcow_aio_write_cb, acb);
713 ce1a14dc pbrook
    if (acb->hd_aiocb == NULL)
714 f141eafe aliguori
        goto done;
715 f141eafe aliguori
    return;
716 f141eafe aliguori
717 f141eafe aliguori
done:
718 f141eafe aliguori
    if (acb->qiov->niov > 1)
719 f141eafe aliguori
        qemu_vfree(acb->orig_buf);
720 f141eafe aliguori
    acb->common.cb(acb->common.opaque, ret);
721 f141eafe aliguori
    qemu_aio_release(acb);
722 83f64091 bellard
}
723 83f64091 bellard
724 f141eafe aliguori
static BlockDriverAIOCB *qcow_aio_writev(BlockDriverState *bs,
725 f141eafe aliguori
        int64_t sector_num, QEMUIOVector *qiov, int nb_sectors,
726 ce1a14dc pbrook
        BlockDriverCompletionFunc *cb, void *opaque)
727 83f64091 bellard
{
728 83f64091 bellard
    BDRVQcowState *s = bs->opaque;
729 ce1a14dc pbrook
    QCowAIOCB *acb;
730 3b46e624 ths
731 83f64091 bellard
    s->cluster_cache_offset = -1; /* disable compressed cache */
732 83f64091 bellard
733 ce1a14dc pbrook
    acb = qemu_aio_get(bs, cb, opaque);
734 ce1a14dc pbrook
    if (!acb)
735 ce1a14dc pbrook
        return NULL;
736 ce1a14dc pbrook
    acb->hd_aiocb = NULL;
737 ce1a14dc pbrook
    acb->sector_num = sector_num;
738 f141eafe aliguori
    acb->qiov = qiov;
739 f141eafe aliguori
    if (qiov->niov > 1) {
740 e268ca52 aliguori
        acb->buf = acb->orig_buf = qemu_blockalign(bs, qiov->size);
741 f141eafe aliguori
        qemu_iovec_to_buffer(qiov, acb->buf);
742 3f4cb3d3 blueswir1
    } else {
743 3f4cb3d3 blueswir1
        acb->buf = (uint8_t *)qiov->iov->iov_base;
744 3f4cb3d3 blueswir1
    }
745 ce1a14dc pbrook
    acb->nb_sectors = nb_sectors;
746 ce1a14dc pbrook
    acb->n = 0;
747 3b46e624 ths
748 83f64091 bellard
    qcow_aio_write_cb(acb, 0);
749 ce1a14dc pbrook
    return &acb->common;
750 83f64091 bellard
}
751 83f64091 bellard
752 ce1a14dc pbrook
static void qcow_aio_cancel(BlockDriverAIOCB *blockacb)
753 83f64091 bellard
{
754 ce1a14dc pbrook
    QCowAIOCB *acb = (QCowAIOCB *)blockacb;
755 ce1a14dc pbrook
    if (acb->hd_aiocb)
756 ce1a14dc pbrook
        bdrv_aio_cancel(acb->hd_aiocb);
757 ce1a14dc pbrook
    qemu_aio_release(acb);
758 83f64091 bellard
}
759 83f64091 bellard
760 e2731add bellard
static void qcow_close(BlockDriverState *bs)
761 ea2384d3 bellard
{
762 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
763 ea2384d3 bellard
    qemu_free(s->l1_table);
764 ea2384d3 bellard
    qemu_free(s->l2_cache);
765 ea2384d3 bellard
    qemu_free(s->cluster_cache);
766 ea2384d3 bellard
    qemu_free(s->cluster_data);
767 83f64091 bellard
    bdrv_delete(s->hd);
768 ea2384d3 bellard
}
769 ea2384d3 bellard
770 ea2384d3 bellard
static int qcow_create(const char *filename, int64_t total_size,
771 ea2384d3 bellard
                      const char *backing_file, int flags)
772 ea2384d3 bellard
{
773 ea2384d3 bellard
    int fd, header_size, backing_filename_len, l1_size, i, shift;
774 ea2384d3 bellard
    QCowHeader header;
775 ea2384d3 bellard
    uint64_t tmp;
776 ea2384d3 bellard
777 83f64091 bellard
    fd = open(filename, O_WRONLY | O_CREAT | O_TRUNC | O_BINARY, 0644);
778 ea2384d3 bellard
    if (fd < 0)
779 ea2384d3 bellard
        return -1;
780 ea2384d3 bellard
    memset(&header, 0, sizeof(header));
781 ea2384d3 bellard
    header.magic = cpu_to_be32(QCOW_MAGIC);
782 ea2384d3 bellard
    header.version = cpu_to_be32(QCOW_VERSION);
783 ea2384d3 bellard
    header.size = cpu_to_be64(total_size * 512);
784 ea2384d3 bellard
    header_size = sizeof(header);
785 ea2384d3 bellard
    backing_filename_len = 0;
786 ea2384d3 bellard
    if (backing_file) {
787 7852e5da aurel32
        if (strcmp(backing_file, "fat:")) {
788 7852e5da aurel32
            header.backing_file_offset = cpu_to_be64(header_size);
789 7852e5da aurel32
            backing_filename_len = strlen(backing_file);
790 7852e5da aurel32
            header.backing_file_size = cpu_to_be32(backing_filename_len);
791 7852e5da aurel32
            header_size += backing_filename_len;
792 7852e5da aurel32
        } else {
793 7852e5da aurel32
            /* special backing file for vvfat */
794 7852e5da aurel32
            backing_file = NULL;
795 7852e5da aurel32
        }
796 ea2384d3 bellard
        header.cluster_bits = 9; /* 512 byte cluster to avoid copying
797 ea2384d3 bellard
                                    unmodifyed sectors */
798 ea2384d3 bellard
        header.l2_bits = 12; /* 32 KB L2 tables */
799 ea2384d3 bellard
    } else {
800 ea2384d3 bellard
        header.cluster_bits = 12; /* 4 KB clusters */
801 ea2384d3 bellard
        header.l2_bits = 9; /* 4 KB L2 tables */
802 ea2384d3 bellard
    }
803 ea2384d3 bellard
    header_size = (header_size + 7) & ~7;
804 ea2384d3 bellard
    shift = header.cluster_bits + header.l2_bits;
805 ea2384d3 bellard
    l1_size = ((total_size * 512) + (1LL << shift) - 1) >> shift;
806 ea2384d3 bellard
807 ea2384d3 bellard
    header.l1_table_offset = cpu_to_be64(header_size);
808 ec36ba14 ths
    if (flags & BLOCK_FLAG_ENCRYPT) {
809 ea2384d3 bellard
        header.crypt_method = cpu_to_be32(QCOW_CRYPT_AES);
810 ea2384d3 bellard
    } else {
811 ea2384d3 bellard
        header.crypt_method = cpu_to_be32(QCOW_CRYPT_NONE);
812 ea2384d3 bellard
    }
813 3b46e624 ths
814 ea2384d3 bellard
    /* write all the data */
815 ea2384d3 bellard
    write(fd, &header, sizeof(header));
816 ea2384d3 bellard
    if (backing_file) {
817 83f64091 bellard
        write(fd, backing_file, backing_filename_len);
818 ea2384d3 bellard
    }
819 ea2384d3 bellard
    lseek(fd, header_size, SEEK_SET);
820 ea2384d3 bellard
    tmp = 0;
821 ea2384d3 bellard
    for(i = 0;i < l1_size; i++) {
822 ea2384d3 bellard
        write(fd, &tmp, sizeof(tmp));
823 ea2384d3 bellard
    }
824 ea2384d3 bellard
    close(fd);
825 ea2384d3 bellard
    return 0;
826 ea2384d3 bellard
}
827 ea2384d3 bellard
828 c47c33b0 bellard
static int qcow_make_empty(BlockDriverState *bs)
829 95389c86 bellard
{
830 95389c86 bellard
    BDRVQcowState *s = bs->opaque;
831 95389c86 bellard
    uint32_t l1_length = s->l1_size * sizeof(uint64_t);
832 83f64091 bellard
    int ret;
833 95389c86 bellard
834 95389c86 bellard
    memset(s->l1_table, 0, l1_length);
835 83f64091 bellard
    if (bdrv_pwrite(s->hd, s->l1_table_offset, s->l1_table, l1_length) < 0)
836 95389c86 bellard
        return -1;
837 83f64091 bellard
    ret = bdrv_truncate(s->hd, s->l1_table_offset + l1_length);
838 83f64091 bellard
    if (ret < 0)
839 83f64091 bellard
        return ret;
840 95389c86 bellard
841 95389c86 bellard
    memset(s->l2_cache, 0, s->l2_size * L2_CACHE_SIZE * sizeof(uint64_t));
842 95389c86 bellard
    memset(s->l2_cache_offsets, 0, L2_CACHE_SIZE * sizeof(uint64_t));
843 95389c86 bellard
    memset(s->l2_cache_counts, 0, L2_CACHE_SIZE * sizeof(uint32_t));
844 95389c86 bellard
845 95389c86 bellard
    return 0;
846 95389c86 bellard
}
847 95389c86 bellard
848 ea2384d3 bellard
/* XXX: put compressed sectors first, then all the cluster aligned
849 ea2384d3 bellard
   tables to avoid losing bytes in alignment */
850 5fafdf24 ths
static int qcow_write_compressed(BlockDriverState *bs, int64_t sector_num,
851 c47c33b0 bellard
                                 const uint8_t *buf, int nb_sectors)
852 ea2384d3 bellard
{
853 ea2384d3 bellard
    BDRVQcowState *s = bs->opaque;
854 ea2384d3 bellard
    z_stream strm;
855 ea2384d3 bellard
    int ret, out_len;
856 ea2384d3 bellard
    uint8_t *out_buf;
857 ea2384d3 bellard
    uint64_t cluster_offset;
858 ea2384d3 bellard
859 c47c33b0 bellard
    if (nb_sectors != s->cluster_sectors)
860 c47c33b0 bellard
        return -EINVAL;
861 ea2384d3 bellard
862 ea2384d3 bellard
    out_buf = qemu_malloc(s->cluster_size + (s->cluster_size / 1000) + 128);
863 ea2384d3 bellard
    if (!out_buf)
864 ea2384d3 bellard
        return -1;
865 ea2384d3 bellard
866 ea2384d3 bellard
    /* best compression, small window, no zlib header */
867 ea2384d3 bellard
    memset(&strm, 0, sizeof(strm));
868 ea2384d3 bellard
    ret = deflateInit2(&strm, Z_DEFAULT_COMPRESSION,
869 5fafdf24 ths
                       Z_DEFLATED, -12,
870 ea2384d3 bellard
                       9, Z_DEFAULT_STRATEGY);
871 ea2384d3 bellard
    if (ret != 0) {
872 ea2384d3 bellard
        qemu_free(out_buf);
873 ea2384d3 bellard
        return -1;
874 ea2384d3 bellard
    }
875 ea2384d3 bellard
876 ea2384d3 bellard
    strm.avail_in = s->cluster_size;
877 ea2384d3 bellard
    strm.next_in = (uint8_t *)buf;
878 ea2384d3 bellard
    strm.avail_out = s->cluster_size;
879 ea2384d3 bellard
    strm.next_out = out_buf;
880 ea2384d3 bellard
881 ea2384d3 bellard
    ret = deflate(&strm, Z_FINISH);
882 ea2384d3 bellard
    if (ret != Z_STREAM_END && ret != Z_OK) {
883 ea2384d3 bellard
        qemu_free(out_buf);
884 ea2384d3 bellard
        deflateEnd(&strm);
885 ea2384d3 bellard
        return -1;
886 ea2384d3 bellard
    }
887 ea2384d3 bellard
    out_len = strm.next_out - out_buf;
888 ea2384d3 bellard
889 ea2384d3 bellard
    deflateEnd(&strm);
890 ea2384d3 bellard
891 ea2384d3 bellard
    if (ret != Z_STREAM_END || out_len >= s->cluster_size) {
892 ea2384d3 bellard
        /* could not compress: write normal cluster */
893 ea2384d3 bellard
        qcow_write(bs, sector_num, buf, s->cluster_sectors);
894 ea2384d3 bellard
    } else {
895 5fafdf24 ths
        cluster_offset = get_cluster_offset(bs, sector_num << 9, 2,
896 ea2384d3 bellard
                                            out_len, 0, 0);
897 ea2384d3 bellard
        cluster_offset &= s->cluster_offset_mask;
898 83f64091 bellard
        if (bdrv_pwrite(s->hd, cluster_offset, out_buf, out_len) != out_len) {
899 ea2384d3 bellard
            qemu_free(out_buf);
900 ea2384d3 bellard
            return -1;
901 ea2384d3 bellard
        }
902 ea2384d3 bellard
    }
903 3b46e624 ths
904 ea2384d3 bellard
    qemu_free(out_buf);
905 ea2384d3 bellard
    return 0;
906 ea2384d3 bellard
}
907 ea2384d3 bellard
908 7a6cba61 pbrook
static void qcow_flush(BlockDriverState *bs)
909 7a6cba61 pbrook
{
910 7a6cba61 pbrook
    BDRVQcowState *s = bs->opaque;
911 83f64091 bellard
    bdrv_flush(s->hd);
912 7a6cba61 pbrook
}
913 7a6cba61 pbrook
914 c47c33b0 bellard
static int qcow_get_info(BlockDriverState *bs, BlockDriverInfo *bdi)
915 c47c33b0 bellard
{
916 c47c33b0 bellard
    BDRVQcowState *s = bs->opaque;
917 c47c33b0 bellard
    bdi->cluster_size = s->cluster_size;
918 c47c33b0 bellard
    return 0;
919 c47c33b0 bellard
}
920 c47c33b0 bellard
921 5efa9d5a Anthony Liguori
static BlockDriver bdrv_qcow = {
922 e60f469c aurel32
    .format_name        = "qcow",
923 e60f469c aurel32
    .instance_size        = sizeof(BDRVQcowState),
924 e60f469c aurel32
    .bdrv_probe                = qcow_probe,
925 e60f469c aurel32
    .bdrv_open                = qcow_open,
926 e60f469c aurel32
    .bdrv_close                = qcow_close,
927 e60f469c aurel32
    .bdrv_create        = qcow_create,
928 e60f469c aurel32
    .bdrv_flush                = qcow_flush,
929 e60f469c aurel32
    .bdrv_is_allocated        = qcow_is_allocated,
930 e60f469c aurel32
    .bdrv_set_key        = qcow_set_key,
931 e60f469c aurel32
    .bdrv_make_empty        = qcow_make_empty,
932 f141eafe aliguori
    .bdrv_aio_readv        = qcow_aio_readv,
933 f141eafe aliguori
    .bdrv_aio_writev        = qcow_aio_writev,
934 e60f469c aurel32
    .bdrv_aio_cancel        = qcow_aio_cancel,
935 e60f469c aurel32
    .aiocb_size                = sizeof(QCowAIOCB),
936 c47c33b0 bellard
    .bdrv_write_compressed = qcow_write_compressed,
937 e60f469c aurel32
    .bdrv_get_info        = qcow_get_info,
938 ea2384d3 bellard
};
939 5efa9d5a Anthony Liguori
940 5efa9d5a Anthony Liguori
static void bdrv_qcow_init(void)
941 5efa9d5a Anthony Liguori
{
942 5efa9d5a Anthony Liguori
    bdrv_register(&bdrv_qcow);
943 5efa9d5a Anthony Liguori
}
944 5efa9d5a Anthony Liguori
945 5efa9d5a Anthony Liguori
block_init(bdrv_qcow_init);