]>
git.saurik.com Git - redis.git/blob - src/ziplist.c
95103dc076c9c9b61a5ea8b6675029b1d4f0942a
   1 /* The ziplist is a specially encoded dually linked list that is designed 
   2  * to be very memory efficient. It stores both strings and integer values, 
   3  * where integers are encoded as actual integers instead of a series of 
   4  * characters. It allows push and pop operations on either side of the list 
   5  * in O(1) time. However, because every operation requires a reallocation of 
   6  * the memory used by the ziplist, the actual complexity is related to the 
   7  * amount of memory used by the ziplist. 
   9  * ---------------------------------------------------------------------------- 
  11  * ZIPLIST OVERALL LAYOUT: 
  12  * The general layout of the ziplist is as follows: 
  13  * <zlbytes><zltail><zllen><entry><entry><zlend> 
  15  * <zlbytes> is an unsigned integer to hold the number of bytes that the 
  16  * ziplist occupies. This value needs to be stored to be able to resize the 
  17  * entire structure without the need to traverse it first. 
  19  * <zltail> is the offset to the last entry in the list. This allows a pop 
  20  * operation on the far side of the list without the need for full traversal. 
  22  * <zllen> is the number of entries.When this value is larger than 2**16-2, 
  23  * we need to traverse the entire list to know how many items it holds. 
  25  * <zlend> is a single byte special value, equal to 255, which indicates the 
  29  * Every entry in the ziplist is prefixed by a header that contains two pieces 
  30  * of information. First, the length of the previous entry is stored to be 
  31  * able to traverse the list from back to front. Second, the encoding with an 
  32  * optional string length of the entry itself is stored. 
  34  * The length of the previous entry is encoded in the following way: 
  35  * If this length is smaller than 254 bytes, it will only consume a single 
  36  * byte that takes the length as value. When the length is greater than or 
  37  * equal to 254, it will consume 5 bytes. The first byte is set to 254 to 
  38  * indicate a larger value is following. The remaining 4 bytes take the 
  39  * length of the previous entry as value. 
  41  * The other header field of the entry itself depends on the contents of the 
  42  * entry. When the entry is a string, the first 2 bits of this header will hold 
  43  * the type of encoding used to store the length of the string, followed by the 
  44  * actual length of the string. When the entry is an integer the first 2 bits 
  45  * are both set to 1. The following 2 bits are used to specify what kind of 
  46  * integer will be stored after this header. An overview of the different 
  47  * types and encodings is as follows: 
  50  *      String value with length less than or equal to 63 bytes (6 bits). 
  51  * |01pppppp|qqqqqqqq| - 2 bytes 
  52  *      String value with length less than or equal to 16383 bytes (14 bits). 
  53  * |10______|qqqqqqqq|rrrrrrrr|ssssssss|tttttttt| - 5 bytes 
  54  *      String value with length greater than or equal to 16384 bytes. 
  56  *      Integer encoded as int16_t (2 bytes). 
  58  *      Integer encoded as int32_t (4 bytes). 
  60  *      Integer encoded as int64_t (8 bytes). 
  75 #define ZIP_BIGLEN 254 
  77 /* Different encoding/length possibilities */ 
  78 #define ZIP_STR_06B (0 << 6) 
  79 #define ZIP_STR_14B (1 << 6) 
  80 #define ZIP_STR_32B (2 << 6) 
  81 #define ZIP_INT_16B (0xc0 | 0<<4) 
  82 #define ZIP_INT_32B (0xc0 | 1<<4) 
  83 #define ZIP_INT_64B (0xc0 | 2<<4) 
  85 /* Macro's to determine type */ 
  86 #define ZIP_IS_STR(enc) (((enc) & 0xc0) < 0xc0) 
  87 #define ZIP_IS_INT(enc) (!ZIP_IS_STR(enc) && ((enc) & 0x30) < 0x30) 
  90 #define ZIPLIST_BYTES(zl)       (*((uint32_t*)(zl))) 
  91 #define ZIPLIST_TAIL_OFFSET(zl) (*((uint32_t*)((zl)+sizeof(uint32_t)))) 
  92 #define ZIPLIST_LENGTH(zl)      (*((uint16_t*)((zl)+sizeof(uint32_t)*2))) 
  93 #define ZIPLIST_HEADER_SIZE     (sizeof(uint32_t)*2+sizeof(uint16_t)) 
  94 #define ZIPLIST_ENTRY_HEAD(zl)  ((zl)+ZIPLIST_HEADER_SIZE) 
  95 #define ZIPLIST_ENTRY_TAIL(zl)  ((zl)+intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl))) 
  96 #define ZIPLIST_ENTRY_END(zl)   ((zl)+intrev32ifbe(ZIPLIST_BYTES(zl))-1) 
  98 /* We know a positive increment can only be 1 because entries can only be 
  99  * pushed one at a time. */ 
 100 #define ZIPLIST_INCR_LENGTH(zl,incr) { \ 
 101     if (ZIPLIST_LENGTH(zl) < UINT16_MAX) \ 
 102         ZIPLIST_LENGTH(zl) = intrev16ifbe(intrev16ifbe(ZIPLIST_LENGTH(zl))+incr); \ 
 105 typedef struct zlentry 
{ 
 106     unsigned int prevrawlensize
, prevrawlen
; 
 107     unsigned int lensize
, len
; 
 108     unsigned int headersize
; 
 109     unsigned char encoding
; 
 113 /* Return the encoding pointer to by 'p'. */ 
 114 static unsigned int zipEntryEncoding(unsigned char *p
) { 
 115     /* String encoding: 2 MSBs */ 
 116     unsigned char b 
= p
[0] & 0xc0; 
 120         /* Integer encoding: 4 MSBs */ 
 127 /* Return bytes needed to store integer encoded by 'encoding' */ 
 128 static unsigned int zipIntSize(unsigned char encoding
) { 
 130     case ZIP_INT_16B
: return sizeof(int16_t); 
 131     case ZIP_INT_32B
: return sizeof(int32_t); 
 132     case ZIP_INT_64B
: return sizeof(int64_t); 
 138 /* Decode the encoded length pointed by 'p'. If a pointer to 'lensize' is 
 139  * provided, it is set to the number of bytes required to encode the length. */ 
 140 static unsigned int zipDecodeLength(unsigned char *p
, unsigned int *lensize
) { 
 141     unsigned char encoding 
= zipEntryEncoding(p
); 
 142     unsigned int len 
= 0; 
 144     if (ZIP_IS_STR(encoding
)) { 
 148             if (lensize
) *lensize 
= 1; 
 151             len 
= ((p
[0] & 0x3f) << 8) | p
[1]; 
 152             if (lensize
) *lensize 
= 2; 
 155             len 
= (p
[1] << 24) | (p
[2] << 16) | (p
[3] << 8) | p
[4]; 
 156             if (lensize
) *lensize 
= 5; 
 162         len 
= zipIntSize(encoding
); 
 163         if (lensize
) *lensize 
= 1; 
 168 /* Encode the length 'l' writing it in 'p'. If p is NULL it just returns 
 169  * the amount of bytes required to encode such a length. */ 
 170 static unsigned int zipEncodeLength(unsigned char *p
, unsigned char encoding
, unsigned int rawlen
) { 
 171     unsigned char len 
= 1, buf
[5]; 
 173     if (ZIP_IS_STR(encoding
)) { 
 174         /* Although encoding is given it may not be set for strings, 
 175          * so we determine it here using the raw length. */ 
 176         if (rawlen 
<= 0x3f) { 
 178             buf
[0] = ZIP_STR_06B 
| rawlen
; 
 179         } else if (rawlen 
<= 0x3fff) { 
 182             buf
[0] = ZIP_STR_14B 
| ((rawlen 
>> 8) & 0x3f); 
 183             buf
[1] = rawlen 
& 0xff; 
 187             buf
[0] = ZIP_STR_32B
; 
 188             buf
[1] = (rawlen 
>> 24) & 0xff; 
 189             buf
[2] = (rawlen 
>> 16) & 0xff; 
 190             buf
[3] = (rawlen 
>> 8) & 0xff; 
 191             buf
[4] = rawlen 
& 0xff; 
 194         /* Implies integer encoding, so length is always 1. */ 
 199     /* Store this length at p */ 
 204 /* Decode the length of the previous element stored at "p". */ 
 205 static unsigned int zipPrevDecodeLength(unsigned char *p
, unsigned int *lensize
) { 
 206     unsigned int len 
= *p
; 
 207     if (len 
< ZIP_BIGLEN
) { 
 208         if (lensize
) *lensize 
= 1; 
 210         if (lensize
) *lensize 
= 1+sizeof(len
); 
 211         memcpy(&len
,p
+1,sizeof(len
)); 
 217 /* Encode the length of the previous entry and write it to "p". Return the 
 218  * number of bytes needed to encode this length if "p" is NULL. */ 
 219 static unsigned int zipPrevEncodeLength(unsigned char *p
, unsigned int len
) { 
 221         return (len 
< ZIP_BIGLEN
) ? 1 : sizeof(len
)+1; 
 223         if (len 
< ZIP_BIGLEN
) { 
 228             memcpy(p
+1,&len
,sizeof(len
)); 
 230             return 1+sizeof(len
); 
 235 /* Encode the length of the previous entry and write it to "p". This only 
 236  * uses the larger encoding (required in __ziplistCascadeUpdate). */ 
 237 static void zipPrevEncodeLengthForceLarge(unsigned char *p
, unsigned int len
) { 
 238     if (p 
== NULL
) return; 
 240     memcpy(p
+1,&len
,sizeof(len
)); 
 244 /* Return the difference in number of bytes needed to store the new length 
 245  * "len" on the entry pointed to by "p". */ 
 246 static int zipPrevLenByteDiff(unsigned char *p
, unsigned int len
) { 
 247     unsigned int prevlensize
; 
 248     zipPrevDecodeLength(p
,&prevlensize
); 
 249     return zipPrevEncodeLength(NULL
,len
)-prevlensize
; 
 252 /* Check if string pointed to by 'entry' can be encoded as an integer. 
 253  * Stores the integer value in 'v' and its encoding in 'encoding'. */ 
 254 static int zipTryEncoding(unsigned char *entry
, unsigned int entrylen
, long long *v
, unsigned char *encoding
) { 
 257     if (entrylen 
>= 32 || entrylen 
== 0) return 0; 
 258     if (string2ll((char*)entry
,entrylen
,&value
)) { 
 259         /* Great, the string can be encoded. Check what's the smallest 
 260          * of our encoding types that can hold this value. */ 
 261         if (value 
>= INT16_MIN 
&& value 
<= INT16_MAX
) { 
 262             *encoding 
= ZIP_INT_16B
; 
 263         } else if (value 
>= INT32_MIN 
&& value 
<= INT32_MAX
) { 
 264             *encoding 
= ZIP_INT_32B
; 
 266             *encoding 
= ZIP_INT_64B
; 
 274 /* Store integer 'value' at 'p', encoded as 'encoding' */ 
 275 static void zipSaveInteger(unsigned char *p
, int64_t value
, unsigned char encoding
) { 
 279     if (encoding 
== ZIP_INT_16B
) { 
 281         memcpy(p
,&i16
,sizeof(i16
)); 
 283     } else if (encoding 
== ZIP_INT_32B
) { 
 285         memcpy(p
,&i32
,sizeof(i32
)); 
 287     } else if (encoding 
== ZIP_INT_64B
) { 
 289         memcpy(p
,&i64
,sizeof(i64
)); 
 296 /* Read integer encoded as 'encoding' from 'p' */ 
 297 static int64_t zipLoadInteger(unsigned char *p
, unsigned char encoding
) { 
 300     int64_t i64
, ret 
= 0; 
 301     if (encoding 
== ZIP_INT_16B
) { 
 302         memcpy(&i16
,p
,sizeof(i16
)); 
 305     } else if (encoding 
== ZIP_INT_32B
) { 
 306         memcpy(&i32
,p
,sizeof(i32
)); 
 309     } else if (encoding 
== ZIP_INT_64B
) { 
 310         memcpy(&i64
,p
,sizeof(i64
)); 
 319 /* Return a struct with all information about an entry. */ 
 320 static zlentry 
zipEntry(unsigned char *p
) { 
 322     e
.prevrawlen 
= zipPrevDecodeLength(p
,&e
.prevrawlensize
); 
 323     e
.len 
= zipDecodeLength(p
+e
.prevrawlensize
,&e
.lensize
); 
 324     e
.headersize 
= e
.prevrawlensize
+e
.lensize
; 
 325     e
.encoding 
= zipEntryEncoding(p
+e
.prevrawlensize
); 
 330 /* Return the total number of bytes used by the entry at "p". */ 
 331 static unsigned int zipRawEntryLength(unsigned char *p
) { 
 332     zlentry e 
= zipEntry(p
); 
 333     return e
.headersize 
+ e
.len
; 
 336 /* Create a new empty ziplist. */ 
 337 unsigned char *ziplistNew(void) { 
 338     unsigned int bytes 
= ZIPLIST_HEADER_SIZE
+1; 
 339     unsigned char *zl 
= zmalloc(bytes
); 
 340     ZIPLIST_BYTES(zl
) = intrev32ifbe(bytes
); 
 341     ZIPLIST_TAIL_OFFSET(zl
) = intrev32ifbe(ZIPLIST_HEADER_SIZE
); 
 342     ZIPLIST_LENGTH(zl
) = 0; 
 343     zl
[bytes
-1] = ZIP_END
; 
 347 /* Resize the ziplist. */ 
 348 static unsigned char *ziplistResize(unsigned char *zl
, unsigned int len
) { 
 349     zl 
= zrealloc(zl
,len
); 
 350     ZIPLIST_BYTES(zl
) = intrev32ifbe(len
); 
 355 /* When an entry is inserted, we need to set the prevlen field of the next 
 356  * entry to equal the length of the inserted entry. It can occur that this 
 357  * length cannot be encoded in 1 byte and the next entry needs to be grow 
 358  * a bit larger to hold the 5-byte encoded prevlen. This can be done for free, 
 359  * because this only happens when an entry is already being inserted (which 
 360  * causes a realloc and memmove). However, encoding the prevlen may require 
 361  * that this entry is grown as well. This effect may cascade throughout 
 362  * the ziplist when there are consecutive entries with a size close to 
 363  * ZIP_BIGLEN, so we need to check that the prevlen can be encoded in every 
 366  * Note that this effect can also happen in reverse, where the bytes required 
 367  * to encode the prevlen field can shrink. This effect is deliberately ignored, 
 368  * because it can cause a "flapping" effect where a chain prevlen fields is 
 369  * first grown and then shrunk again after consecutive inserts. Rather, the 
 370  * field is allowed to stay larger than necessary, because a large prevlen 
 371  * field implies the ziplist is holding large entries anyway. 
 373  * The pointer "p" points to the first entry that does NOT need to be 
 374  * updated, i.e. consecutive fields MAY need an update. */ 
 375 static unsigned char *__ziplistCascadeUpdate(unsigned char *zl
, unsigned char *p
) { 
 376     size_t curlen 
= intrev32ifbe(ZIPLIST_BYTES(zl
)), rawlen
, rawlensize
; 
 377     size_t offset
, noffset
, extra
; 
 381     while (p
[0] != ZIP_END
) { 
 383         rawlen 
= cur
.headersize 
+ cur
.len
; 
 384         rawlensize 
= zipPrevEncodeLength(NULL
,rawlen
); 
 386         /* Abort if there is no next entry. */ 
 387         if (p
[rawlen
] == ZIP_END
) break; 
 388         next 
= zipEntry(p
+rawlen
); 
 390         /* Abort when "prevlen" has not changed. */ 
 391         if (next
.prevrawlen 
== rawlen
) break; 
 393         if (next
.prevrawlensize 
< rawlensize
) { 
 394             /* The "prevlen" field of "next" needs more bytes to hold 
 395              * the raw length of "cur". */ 
 397             extra 
= rawlensize
-next
.prevrawlensize
; 
 398             zl 
= ziplistResize(zl
,curlen
+extra
); 
 401             /* Current pointer and offset for next element. */ 
 405             /* Update tail offset when next element is not the tail element. */ 
 406             if ((zl
+intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))) != np
) { 
 407                 ZIPLIST_TAIL_OFFSET(zl
) = 
 408                     intrev32ifbe(intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))+extra
); 
 411             /* Move the tail to the back. */ 
 412             memmove(np
+rawlensize
, 
 413                 np
+next
.prevrawlensize
, 
 414                 curlen
-noffset
-next
.prevrawlensize
-1); 
 415             zipPrevEncodeLength(np
,rawlen
); 
 417             /* Advance the cursor */ 
 421             if (next
.prevrawlensize 
> rawlensize
) { 
 422                 /* This would result in shrinking, which we want to avoid. 
 423                  * So, set "rawlen" in the available bytes. */ 
 424                 zipPrevEncodeLengthForceLarge(p
+rawlen
,rawlen
); 
 426                 zipPrevEncodeLength(p
+rawlen
,rawlen
); 
 429             /* Stop here, as the raw length of "next" has not changed. */ 
 436 /* Delete "num" entries, starting at "p". Returns pointer to the ziplist. */ 
 437 static unsigned char *__ziplistDelete(unsigned char *zl
, unsigned char *p
, unsigned int num
) { 
 438     unsigned int i
, totlen
, deleted 
= 0; 
 444     for (i 
= 0; p
[0] != ZIP_END 
&& i 
< num
; i
++) { 
 445         p 
+= zipRawEntryLength(p
); 
 451         if (p
[0] != ZIP_END
) { 
 452             /* Tricky: storing the prevlen in this entry might reduce or 
 453              * increase the number of bytes needed, compared to the current 
 454              * prevlen. Note that we can always store this length because 
 455              * it was previously stored by an entry that is being deleted. */ 
 456             nextdiff 
= zipPrevLenByteDiff(p
,first
.prevrawlen
); 
 457             zipPrevEncodeLength(p
-nextdiff
,first
.prevrawlen
); 
 459             /* Update offset for tail */ 
 460             ZIPLIST_TAIL_OFFSET(zl
) = 
 461                 intrev32ifbe(intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))-totlen
); 
 463             /* When the tail contains more than one entry, we need to take 
 464              * "nextdiff" in account as well. Otherwise, a change in the 
 465              * size of prevlen doesn't have an effect on the *tail* offset. */ 
 467             if (p
[tail
.headersize
+tail
.len
] != ZIP_END
) { 
 468                 ZIPLIST_TAIL_OFFSET(zl
) += 
 469                    intrev32ifbe(intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))+nextdiff
); 
 472             /* Move tail to the front of the ziplist */ 
 473             memmove(first
.p
,p
-nextdiff
, 
 474                 intrev32ifbe(ZIPLIST_BYTES(zl
))-(p
-zl
)-1+nextdiff
); 
 476             /* The entire tail was deleted. No need to move memory. */ 
 477             ZIPLIST_TAIL_OFFSET(zl
) = 
 478                 intrev32ifbe((first
.p
-zl
)-first
.prevrawlen
); 
 481         /* Resize and update length */ 
 483         zl 
= ziplistResize(zl
, intrev32ifbe(ZIPLIST_BYTES(zl
))-totlen
+nextdiff
); 
 484         ZIPLIST_INCR_LENGTH(zl
,-deleted
); 
 487         /* When nextdiff != 0, the raw length of the next entry has changed, so 
 488          * we need to cascade the update throughout the ziplist */ 
 490             zl 
= __ziplistCascadeUpdate(zl
,p
); 
 495 /* Insert item at "p". */ 
 496 static unsigned char *__ziplistInsert(unsigned char *zl
, unsigned char *p
, unsigned char *s
, unsigned int slen
) { 
 497     size_t curlen 
= intrev32ifbe(ZIPLIST_BYTES(zl
)), reqlen
, prevlen 
= 0; 
 500     unsigned char encoding 
= 0; 
 501     long long value 
= 123456789; /* initialized to avoid warning. Using a value 
 502                                     that is easy to see if for some reason 
 503                                     we use it uninitialized. */ 
 506     /* Find out prevlen for the entry that is inserted. */ 
 507     if (p
[0] != ZIP_END
) { 
 509         prevlen 
= entry
.prevrawlen
; 
 511         unsigned char *ptail 
= ZIPLIST_ENTRY_TAIL(zl
); 
 512         if (ptail
[0] != ZIP_END
) { 
 513             prevlen 
= zipRawEntryLength(ptail
); 
 517     /* See if the entry can be encoded */ 
 518     if (zipTryEncoding(s
,slen
,&value
,&encoding
)) { 
 519         /* 'encoding' is set to the appropriate integer encoding */ 
 520         reqlen 
= zipIntSize(encoding
); 
 522         /* 'encoding' is untouched, however zipEncodeLength will use the 
 523          * string length to figure out how to encode it. */ 
 526     /* We need space for both the length of the previous entry and 
 527      * the length of the payload. */ 
 528     reqlen 
+= zipPrevEncodeLength(NULL
,prevlen
); 
 529     reqlen 
+= zipEncodeLength(NULL
,encoding
,slen
); 
 531     /* When the insert position is not equal to the tail, we need to 
 532      * make sure that the next entry can hold this entry's length in 
 533      * its prevlen field. */ 
 534     nextdiff 
= (p
[0] != ZIP_END
) ? zipPrevLenByteDiff(p
,reqlen
) : 0; 
 536     /* Store offset because a realloc may change the address of zl. */ 
 538     zl 
= ziplistResize(zl
,curlen
+reqlen
+nextdiff
); 
 541     /* Apply memory move when necessary and update tail offset. */ 
 542     if (p
[0] != ZIP_END
) { 
 543         /* Subtract one because of the ZIP_END bytes */ 
 544         memmove(p
+reqlen
,p
-nextdiff
,curlen
-offset
-1+nextdiff
); 
 546         /* Encode this entry's raw length in the next entry. */ 
 547         zipPrevEncodeLength(p
+reqlen
,reqlen
); 
 549         /* Update offset for tail */ 
 550         ZIPLIST_TAIL_OFFSET(zl
) = 
 551             intrev32ifbe(intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))+reqlen
); 
 553         /* When the tail contains more than one entry, we need to take 
 554          * "nextdiff" in account as well. Otherwise, a change in the 
 555          * size of prevlen doesn't have an effect on the *tail* offset. */ 
 556         tail 
= zipEntry(p
+reqlen
); 
 557         if (p
[reqlen
+tail
.headersize
+tail
.len
] != ZIP_END
) { 
 558             ZIPLIST_TAIL_OFFSET(zl
) = 
 559                 intrev32ifbe(intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))+nextdiff
); 
 562         /* This element will be the new tail. */ 
 563         ZIPLIST_TAIL_OFFSET(zl
) = intrev32ifbe(p
-zl
); 
 566     /* When nextdiff != 0, the raw length of the next entry has changed, so 
 567      * we need to cascade the update throughout the ziplist */ 
 570         zl 
= __ziplistCascadeUpdate(zl
,p
+reqlen
); 
 574     /* Write the entry */ 
 575     p 
+= zipPrevEncodeLength(p
,prevlen
); 
 576     p 
+= zipEncodeLength(p
,encoding
,slen
); 
 577     if (ZIP_IS_STR(encoding
)) { 
 580         zipSaveInteger(p
,value
,encoding
); 
 582     ZIPLIST_INCR_LENGTH(zl
,1); 
 586 unsigned char *ziplistPush(unsigned char *zl
, unsigned char *s
, unsigned int slen
, int where
) { 
 588     p 
= (where 
== ZIPLIST_HEAD
) ? ZIPLIST_ENTRY_HEAD(zl
) : ZIPLIST_ENTRY_END(zl
); 
 589     return __ziplistInsert(zl
,p
,s
,slen
); 
 592 /* Returns an offset to use for iterating with ziplistNext. When the given 
 593  * index is negative, the list is traversed back to front. When the list 
 594  * doesn't contain an element at the provided index, NULL is returned. */ 
 595 unsigned char *ziplistIndex(unsigned char *zl
, int index
) { 
 600         p 
= ZIPLIST_ENTRY_TAIL(zl
); 
 601         if (p
[0] != ZIP_END
) { 
 603             while (entry
.prevrawlen 
> 0 && index
--) { 
 604                 p 
-= entry
.prevrawlen
; 
 609         p 
= ZIPLIST_ENTRY_HEAD(zl
); 
 610         while (p
[0] != ZIP_END 
&& index
--) { 
 611             p 
+= zipRawEntryLength(p
); 
 614     return (p
[0] == ZIP_END 
|| index 
> 0) ? NULL 
: p
; 
 617 /* Return pointer to next entry in ziplist. 
 619  * zl is the pointer to the ziplist 
 620  * p is the pointer to the current element 
 622  * The element after 'p' is returned, otherwise NULL if we are at the end. */ 
 623 unsigned char *ziplistNext(unsigned char *zl
, unsigned char *p
) { 
 626     /* "p" could be equal to ZIP_END, caused by ziplistDelete, 
 627      * and we should return NULL. Otherwise, we should return NULL 
 628      * when the *next* element is ZIP_END (there is no next entry). */ 
 629     if (p
[0] == ZIP_END
) { 
 632         p 
= p
+zipRawEntryLength(p
); 
 633         return (p
[0] == ZIP_END
) ? NULL 
: p
; 
 637 /* Return pointer to previous entry in ziplist. */ 
 638 unsigned char *ziplistPrev(unsigned char *zl
, unsigned char *p
) { 
 641     /* Iterating backwards from ZIP_END should return the tail. When "p" is 
 642      * equal to the first element of the list, we're already at the head, 
 643      * and should return NULL. */ 
 644     if (p
[0] == ZIP_END
) { 
 645         p 
= ZIPLIST_ENTRY_TAIL(zl
); 
 646         return (p
[0] == ZIP_END
) ? NULL 
: p
; 
 647     } else if (p 
== ZIPLIST_ENTRY_HEAD(zl
)) { 
 651         assert(entry
.prevrawlen 
> 0); 
 652         return p
-entry
.prevrawlen
; 
 656 /* Get entry pointer to by 'p' and store in either 'e' or 'v' depending 
 657  * on the encoding of the entry. 'e' is always set to NULL to be able 
 658  * to find out whether the string pointer or the integer value was set. 
 659  * Return 0 if 'p' points to the end of the zipmap, 1 otherwise. */ 
 660 unsigned int ziplistGet(unsigned char *p
, unsigned char **sstr
, unsigned int *slen
, long long *sval
) { 
 662     if (p 
== NULL 
|| p
[0] == ZIP_END
) return 0; 
 663     if (sstr
) *sstr 
= NULL
; 
 666     if (ZIP_IS_STR(entry
.encoding
)) { 
 669             *sstr 
= p
+entry
.headersize
; 
 673             *sval 
= zipLoadInteger(p
+entry
.headersize
,entry
.encoding
); 
 679 /* Insert an entry at "p". */ 
 680 unsigned char *ziplistInsert(unsigned char *zl
, unsigned char *p
, unsigned char *s
, unsigned int slen
) { 
 681     return __ziplistInsert(zl
,p
,s
,slen
); 
 684 /* Delete a single entry from the ziplist, pointed to by *p. 
 685  * Also update *p in place, to be able to iterate over the 
 686  * ziplist, while deleting entries. */ 
 687 unsigned char *ziplistDelete(unsigned char *zl
, unsigned char **p
) { 
 688     size_t offset 
= *p
-zl
; 
 689     zl 
= __ziplistDelete(zl
,*p
,1); 
 691     /* Store pointer to current element in p, because ziplistDelete will 
 692      * do a realloc which might result in a different "zl"-pointer. 
 693      * When the delete direction is back to front, we might delete the last 
 694      * entry and end up with "p" pointing to ZIP_END, so check this. */ 
 699 /* Delete a range of entries from the ziplist. */ 
 700 unsigned char *ziplistDeleteRange(unsigned char *zl
, unsigned int index
, unsigned int num
) { 
 701     unsigned char *p 
= ziplistIndex(zl
,index
); 
 702     return (p 
== NULL
) ? zl 
: __ziplistDelete(zl
,p
,num
); 
 705 /* Compare entry pointer to by 'p' with 'entry'. Return 1 if equal. */ 
 706 unsigned int ziplistCompare(unsigned char *p
, unsigned char *sstr
, unsigned int slen
) { 
 708     unsigned char sencoding
; 
 709     long long zval
, sval
; 
 710     if (p
[0] == ZIP_END
) return 0; 
 713     if (ZIP_IS_STR(entry
.encoding
)) { 
 715         if (entry
.len 
== slen
) { 
 716             return memcmp(p
+entry
.headersize
,sstr
,slen
) == 0; 
 721         /* Try to compare encoded values */ 
 722         if (zipTryEncoding(sstr
,slen
,&sval
,&sencoding
)) { 
 723             if (entry
.encoding 
== sencoding
) { 
 724                 zval 
= zipLoadInteger(p
+entry
.headersize
,entry
.encoding
); 
 732 /* Return length of ziplist. */ 
 733 unsigned int ziplistLen(unsigned char *zl
) { 
 734     unsigned int len 
= 0; 
 735     if (intrev16ifbe(ZIPLIST_LENGTH(zl
)) < UINT16_MAX
) { 
 736         len 
= intrev16ifbe(ZIPLIST_LENGTH(zl
)); 
 738         unsigned char *p 
= zl
+ZIPLIST_HEADER_SIZE
; 
 739         while (*p 
!= ZIP_END
) { 
 740             p 
+= zipRawEntryLength(p
); 
 744         /* Re-store length if small enough */ 
 745         if (len 
< UINT16_MAX
) ZIPLIST_LENGTH(zl
) = intrev16ifbe(len
); 
 750 /* Return ziplist blob size in bytes. */ 
 751 size_t ziplistBlobLen(unsigned char *zl
) { 
 752     return intrev32ifbe(ZIPLIST_BYTES(zl
)); 
 755 void ziplistRepr(unsigned char *zl
) { 
 763         "{tail offset %u}\n", 
 764         intrev32ifbe(ZIPLIST_BYTES(zl
)), 
 765         intrev16ifbe(ZIPLIST_LENGTH(zl
)), 
 766         intrev32ifbe(ZIPLIST_TAIL_OFFSET(zl
))); 
 767     p 
= ZIPLIST_ENTRY_HEAD(zl
); 
 768     while(*p 
!= ZIP_END
) { 
 783             (unsigned long) (p
-zl
), 
 784             entry
.headersize
+entry
.len
, 
 787             entry
.prevrawlensize
, 
 789         p 
+= entry
.headersize
; 
 790         if (ZIP_IS_STR(entry
.encoding
)) { 
 791             if (entry
.len 
> 40) { 
 792                 if (fwrite(p
,40,1,stdout
) == 0) perror("fwrite"); 
 796                     fwrite(p
,entry
.len
,1,stdout
) == 0) perror("fwrite"); 
 799             printf("%lld", (long long) zipLoadInteger(p
,entry
.encoding
)); 
 808 #ifdef ZIPLIST_TEST_MAIN 
 809 #include <sys/time.h> 
 813 #define debug(f, ...) { if (DEBUG) printf(f, __VA_ARGS__); } 
 815 unsigned char *createList() { 
 816     unsigned char *zl 
= ziplistNew(); 
 817     zl 
= ziplistPush(zl
, (unsigned char*)"foo", 3, ZIPLIST_TAIL
); 
 818     zl 
= ziplistPush(zl
, (unsigned char*)"quux", 4, ZIPLIST_TAIL
); 
 819     zl 
= ziplistPush(zl
, (unsigned char*)"hello", 5, ZIPLIST_HEAD
); 
 820     zl 
= ziplistPush(zl
, (unsigned char*)"1024", 4, ZIPLIST_TAIL
); 
 824 unsigned char *createIntList() { 
 825     unsigned char *zl 
= ziplistNew(); 
 829     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_TAIL
); 
 830     sprintf(buf
, "128000"); 
 831     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_TAIL
); 
 832     sprintf(buf
, "-100"); 
 833     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_HEAD
); 
 834     sprintf(buf
, "4294967296"); 
 835     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_HEAD
); 
 836     sprintf(buf
, "non integer"); 
 837     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_TAIL
); 
 838     sprintf(buf
, "much much longer non integer"); 
 839     zl 
= ziplistPush(zl
, (unsigned char*)buf
, strlen(buf
), ZIPLIST_TAIL
); 
 843 long long usec(void) { 
 845     gettimeofday(&tv
,NULL
); 
 846     return (((long long)tv
.tv_sec
)*1000000)+tv
.tv_usec
; 
 849 void stress(int pos
, int num
, int maxsize
, int dnum
) { 
 852     char posstr
[2][5] = { "HEAD", "TAIL" }; 
 854     for (i 
= 0; i 
< maxsize
; i
+=dnum
) { 
 856         for (j 
= 0; j 
< i
; j
++) { 
 857             zl 
= ziplistPush(zl
,(unsigned char*)"quux",4,ZIPLIST_TAIL
); 
 860         /* Do num times a push+pop from pos */ 
 862         for (k 
= 0; k 
< num
; k
++) { 
 863             zl 
= ziplistPush(zl
,(unsigned char*)"quux",4,pos
); 
 864             zl 
= ziplistDeleteRange(zl
,0,1); 
 866         printf("List size: %8d, bytes: %8d, %dx push+pop (%s): %6lld usec\n", 
 867             i
,intrev32ifbe(ZIPLIST_BYTES(zl
)),num
,posstr
[pos
],usec()-start
); 
 872 void pop(unsigned char *zl
, int where
) { 
 873     unsigned char *p
, *vstr
; 
 877     p 
= ziplistIndex(zl
,where 
== ZIPLIST_HEAD 
? 0 : -1); 
 878     if (ziplistGet(p
,&vstr
,&vlen
,&vlong
)) { 
 879         if (where 
== ZIPLIST_HEAD
) 
 880             printf("Pop head: "); 
 882             printf("Pop tail: "); 
 885             if (vlen 
&& fwrite(vstr
,vlen
,1,stdout
) == 0) perror("fwrite"); 
 887             printf("%lld", vlong
); 
 890         ziplistDeleteRange(zl
,-1,1); 
 892         printf("ERROR: Could not pop\n"); 
 897 int randstring(char *target
, unsigned int min
, unsigned int max
) { 
 898     int p
, len 
= min
+rand()%(max
-min
+1); 
 918         target
[p
++] = minval
+rand()%(maxval
-minval
+1); 
 922 int main(int argc
, char **argv
) { 
 923     unsigned char *zl
, *p
; 
 924     unsigned char *entry
; 
 928     /* If an argument is given, use it as the random seed. */ 
 930         srand(atoi(argv
[1])); 
 932     zl 
= createIntList(); 
 938     pop(zl
,ZIPLIST_TAIL
); 
 941     pop(zl
,ZIPLIST_HEAD
); 
 944     pop(zl
,ZIPLIST_TAIL
); 
 947     pop(zl
,ZIPLIST_TAIL
); 
 950     printf("Get element at index 3:\n"); 
 953         p 
= ziplistIndex(zl
, 3); 
 954         if (!ziplistGet(p
, &entry
, &elen
, &value
)) { 
 955             printf("ERROR: Could not access index 3\n"); 
 959             if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
 962             printf("%lld\n", value
); 
 967     printf("Get element at index 4 (out of range):\n"); 
 970         p 
= ziplistIndex(zl
, 4); 
 972             printf("No entry\n"); 
 974             printf("ERROR: Out of range index should return NULL, returned offset: %ld\n", p
-zl
); 
 980     printf("Get element at index -1 (last element):\n"); 
 983         p 
= ziplistIndex(zl
, -1); 
 984         if (!ziplistGet(p
, &entry
, &elen
, &value
)) { 
 985             printf("ERROR: Could not access index -1\n"); 
 989             if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
 992             printf("%lld\n", value
); 
 997     printf("Get element at index -4 (first element):\n"); 
1000         p 
= ziplistIndex(zl
, -4); 
1001         if (!ziplistGet(p
, &entry
, &elen
, &value
)) { 
1002             printf("ERROR: Could not access index -4\n"); 
1006             if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1009             printf("%lld\n", value
); 
1014     printf("Get element at index -5 (reverse out of range):\n"); 
1017         p 
= ziplistIndex(zl
, -5); 
1019             printf("No entry\n"); 
1021             printf("ERROR: Out of range index should return NULL, returned offset: %ld\n", p
-zl
); 
1027     printf("Iterate list from 0 to end:\n"); 
1030         p 
= ziplistIndex(zl
, 0); 
1031         while (ziplistGet(p
, &entry
, &elen
, &value
)) { 
1034                 if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1036                 printf("%lld", value
); 
1038             p 
= ziplistNext(zl
,p
); 
1044     printf("Iterate list from 1 to end:\n"); 
1047         p 
= ziplistIndex(zl
, 1); 
1048         while (ziplistGet(p
, &entry
, &elen
, &value
)) { 
1051                 if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1053                 printf("%lld", value
); 
1055             p 
= ziplistNext(zl
,p
); 
1061     printf("Iterate list from 2 to end:\n"); 
1064         p 
= ziplistIndex(zl
, 2); 
1065         while (ziplistGet(p
, &entry
, &elen
, &value
)) { 
1068                 if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1070                 printf("%lld", value
); 
1072             p 
= ziplistNext(zl
,p
); 
1078     printf("Iterate starting out of range:\n"); 
1081         p 
= ziplistIndex(zl
, 4); 
1082         if (!ziplistGet(p
, &entry
, &elen
, &value
)) { 
1083             printf("No entry\n"); 
1090     printf("Iterate from back to front:\n"); 
1093         p 
= ziplistIndex(zl
, -1); 
1094         while (ziplistGet(p
, &entry
, &elen
, &value
)) { 
1097                 if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1099                 printf("%lld", value
); 
1101             p 
= ziplistPrev(zl
,p
); 
1107     printf("Iterate from back to front, deleting all items:\n"); 
1110         p 
= ziplistIndex(zl
, -1); 
1111         while (ziplistGet(p
, &entry
, &elen
, &value
)) { 
1114                 if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) perror("fwrite"); 
1116                 printf("%lld", value
); 
1118             zl 
= ziplistDelete(zl
,&p
); 
1119             p 
= ziplistPrev(zl
,p
); 
1125     printf("Delete inclusive range 0,0:\n"); 
1128         zl 
= ziplistDeleteRange(zl
, 0, 1); 
1132     printf("Delete inclusive range 0,1:\n"); 
1135         zl 
= ziplistDeleteRange(zl
, 0, 2); 
1139     printf("Delete inclusive range 1,2:\n"); 
1142         zl 
= ziplistDeleteRange(zl
, 1, 2); 
1146     printf("Delete with start index out of range:\n"); 
1149         zl 
= ziplistDeleteRange(zl
, 5, 1); 
1153     printf("Delete with num overflow:\n"); 
1156         zl 
= ziplistDeleteRange(zl
, 1, 5); 
1160     printf("Delete foo while iterating:\n"); 
1163         p 
= ziplistIndex(zl
,0); 
1164         while (ziplistGet(p
,&entry
,&elen
,&value
)) { 
1165             if (entry 
&& strncmp("foo",(char*)entry
,elen
) == 0) { 
1166                 printf("Delete foo\n"); 
1167                 zl 
= ziplistDelete(zl
,&p
); 
1171                     if (elen 
&& fwrite(entry
,elen
,1,stdout
) == 0) 
1174                     printf("%lld",value
); 
1176                 p 
= ziplistNext(zl
,p
); 
1184     printf("Regression test for >255 byte strings:\n"); 
1186         char v1
[257],v2
[257]; 
1190         zl 
= ziplistPush(zl
,(unsigned char*)v1
,strlen(v1
),ZIPLIST_TAIL
); 
1191         zl 
= ziplistPush(zl
,(unsigned char*)v2
,strlen(v2
),ZIPLIST_TAIL
); 
1193         /* Pop values again and compare their value. */ 
1194         p 
= ziplistIndex(zl
,0); 
1195         assert(ziplistGet(p
,&entry
,&elen
,&value
)); 
1196         assert(strncmp(v1
,(char*)entry
,elen
) == 0); 
1197         p 
= ziplistIndex(zl
,1); 
1198         assert(ziplistGet(p
,&entry
,&elen
,&value
)); 
1199         assert(strncmp(v2
,(char*)entry
,elen
) == 0); 
1200         printf("SUCCESS\n\n"); 
1203     printf("Create long list and check indices:\n"); 
1208         for (i 
= 0; i 
< 1000; i
++) { 
1209             len 
= sprintf(buf
,"%d",i
); 
1210             zl 
= ziplistPush(zl
,(unsigned char*)buf
,len
,ZIPLIST_TAIL
); 
1212         for (i 
= 0; i 
< 1000; i
++) { 
1213             p 
= ziplistIndex(zl
,i
); 
1214             assert(ziplistGet(p
,NULL
,NULL
,&value
)); 
1217             p 
= ziplistIndex(zl
,-i
-1); 
1218             assert(ziplistGet(p
,NULL
,NULL
,&value
)); 
1219             assert(999-i 
== value
); 
1221         printf("SUCCESS\n\n"); 
1224     printf("Compare strings with ziplist entries:\n"); 
1227         p 
= ziplistIndex(zl
,0); 
1228         if (!ziplistCompare(p
,(unsigned char*)"hello",5)) { 
1229             printf("ERROR: not \"hello\"\n"); 
1232         if (ziplistCompare(p
,(unsigned char*)"hella",5)) { 
1233             printf("ERROR: \"hella\"\n"); 
1237         p 
= ziplistIndex(zl
,3); 
1238         if (!ziplistCompare(p
,(unsigned char*)"1024",4)) { 
1239             printf("ERROR: not \"1024\"\n"); 
1242         if (ziplistCompare(p
,(unsigned char*)"1025",4)) { 
1243             printf("ERROR: \"1025\"\n"); 
1246         printf("SUCCESS\n\n"); 
1249     printf("Stress with random payloads of different encoding:\n"); 
1258         /* Hold temp vars from ziplist */ 
1259         unsigned char *sstr
; 
1263         for (i 
= 0; i 
< 20000; i
++) { 
1266             listSetFreeMethod(ref
,sdsfree
); 
1270             for (j 
= 0; j 
< len
; j
++) { 
1271                 where 
= (rand() & 1) ? ZIPLIST_HEAD 
: ZIPLIST_TAIL
; 
1273                     buflen 
= randstring(buf
,1,sizeof(buf
)-1); 
1275                     switch(rand() % 3) { 
1277                         buflen 
= sprintf(buf
,"%lld",(0LL + rand()) >> 20); 
1280                         buflen 
= sprintf(buf
,"%lld",(0LL + rand())); 
1283                         buflen 
= sprintf(buf
,"%lld",(0LL + rand()) << 20); 
1290                 /* Add to ziplist */ 
1291                 zl 
= ziplistPush(zl
, (unsigned char*)buf
, buflen
, where
); 
1293                 /* Add to reference list */ 
1294                 if (where 
== ZIPLIST_HEAD
) { 
1295                     listAddNodeHead(ref
,sdsnewlen(buf
, buflen
)); 
1296                 } else if (where 
== ZIPLIST_TAIL
) { 
1297                     listAddNodeTail(ref
,sdsnewlen(buf
, buflen
)); 
1303             assert(listLength(ref
) == ziplistLen(zl
)); 
1304             for (j 
= 0; j 
< len
; j
++) { 
1305                 /* Naive way to get elements, but similar to the stresser 
1306                  * executed from the Tcl test suite. */ 
1307                 p 
= ziplistIndex(zl
,j
); 
1308                 refnode 
= listIndex(ref
,j
); 
1310                 assert(ziplistGet(p
,&sstr
,&slen
,&sval
)); 
1312                     buflen 
= sprintf(buf
,"%lld",sval
); 
1315                     memcpy(buf
,sstr
,buflen
); 
1318                 assert(memcmp(buf
,listNodeValue(refnode
),buflen
) == 0); 
1323         printf("SUCCESS\n\n"); 
1326     printf("Stress with variable ziplist size:\n"); 
1328         stress(ZIPLIST_HEAD
,100000,16384,256); 
1329         stress(ZIPLIST_TAIL
,100000,16384,256);