| 1 | // © 2016 and later: Unicode, Inc. and others. | 
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| 2 | // License & terms of use: http://www.unicode.org/copyright.html | 
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| 3 | /* | 
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| 4 | ****************************************************************************** | 
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| 5 | *   Copyright (C) 1997-2016, International Business Machines | 
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| 6 | *   Corporation and others.  All Rights Reserved. | 
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| 7 | ****************************************************************************** | 
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| 8 | *   Date        Name        Description | 
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| 9 | *   03/22/00    aliu        Adapted from original C++ ICU Hashtable. | 
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| 10 | *   07/06/01    aliu        Modified to support int32_t keys on | 
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| 11 | *                           platforms with sizeof(void*) < 32. | 
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| 12 | ****************************************************************************** | 
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| 13 | */ | 
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| 14 |  | 
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| 15 | #include "uhash.h" | 
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| 16 | #include "unicode/ustring.h" | 
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| 17 | #include "cstring.h" | 
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| 18 | #include "cmemory.h" | 
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| 19 | #include "uassert.h" | 
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| 20 | #include "ustr_imp.h" | 
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| 21 |  | 
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| 22 | /* This hashtable is implemented as a double hash.  All elements are | 
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| 23 | * stored in a single array with no secondary storage for collision | 
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| 24 | * resolution (no linked list, etc.).  When there is a hash collision | 
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| 25 | * (when two unequal keys have the same hashcode) we resolve this by | 
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| 26 | * using a secondary hash.  The secondary hash is an increment | 
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| 27 | * computed as a hash function (a different one) of the primary | 
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| 28 | * hashcode.  This increment is added to the initial hash value to | 
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| 29 | * obtain further slots assigned to the same hash code.  For this to | 
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| 30 | * work, the length of the array and the increment must be relatively | 
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| 31 | * prime.  The easiest way to achieve this is to have the length of | 
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| 32 | * the array be prime, and the increment be any value from | 
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| 33 | * 1..length-1. | 
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| 34 | * | 
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| 35 | * Hashcodes are 32-bit integers.  We make sure all hashcodes are | 
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| 36 | * non-negative by masking off the top bit.  This has two effects: (1) | 
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| 37 | * modulo arithmetic is simplified.  If we allowed negative hashcodes, | 
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| 38 | * then when we computed hashcode % length, we could get a negative | 
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| 39 | * result, which we would then have to adjust back into range.  It's | 
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| 40 | * simpler to just make hashcodes non-negative. (2) It makes it easy | 
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| 41 | * to check for empty vs. occupied slots in the table.  We just mark | 
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| 42 | * empty or deleted slots with a negative hashcode. | 
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| 43 | * | 
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| 44 | * The central function is _uhash_find().  This function looks for a | 
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| 45 | * slot matching the given key and hashcode.  If one is found, it | 
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| 46 | * returns a pointer to that slot.  If the table is full, and no match | 
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| 47 | * is found, it returns NULL -- in theory.  This would make the code | 
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| 48 | * more complicated, since all callers of _uhash_find() would then | 
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| 49 | * have to check for a NULL result.  To keep this from happening, we | 
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| 50 | * don't allow the table to fill.  When there is only one | 
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| 51 | * empty/deleted slot left, uhash_put() will refuse to increase the | 
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| 52 | * count, and fail.  This simplifies the code.  In practice, one will | 
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| 53 | * seldom encounter this using default UHashtables.  However, if a | 
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| 54 | * hashtable is set to a U_FIXED resize policy, or if memory is | 
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| 55 | * exhausted, then the table may fill. | 
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| 56 | * | 
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| 57 | * High and low water ratios control rehashing.  They establish levels | 
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| 58 | * of fullness (from 0 to 1) outside of which the data array is | 
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| 59 | * reallocated and repopulated.  Setting the low water ratio to zero | 
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| 60 | * means the table will never shrink.  Setting the high water ratio to | 
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| 61 | * one means the table will never grow.  The ratios should be | 
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| 62 | * coordinated with the ratio between successive elements of the | 
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| 63 | * PRIMES table, so that when the primeIndex is incremented or | 
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| 64 | * decremented during rehashing, it brings the ratio of count / length | 
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| 65 | * back into the desired range (between low and high water ratios). | 
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| 66 | */ | 
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| 67 |  | 
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| 68 | /******************************************************************** | 
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| 69 | * PRIVATE Constants, Macros | 
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| 70 | ********************************************************************/ | 
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| 71 |  | 
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| 72 | /* This is a list of non-consecutive primes chosen such that | 
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| 73 | * PRIMES[i+1] ~ 2*PRIMES[i].  (Currently, the ratio ranges from 1.81 | 
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| 74 | * to 2.18; the inverse ratio ranges from 0.459 to 0.552.)  If this | 
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| 75 | * ratio is changed, the low and high water ratios should also be | 
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| 76 | * adjusted to suit. | 
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| 77 | * | 
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| 78 | * These prime numbers were also chosen so that they are the largest | 
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| 79 | * prime number while being less than a power of two. | 
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| 80 | */ | 
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| 81 | static const int32_t PRIMES[] = { | 
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| 82 | 7, 13, 31, 61, 127, 251, 509, 1021, 2039, 4093, 8191, 16381, 32749, | 
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| 83 | 65521, 131071, 262139, 524287, 1048573, 2097143, 4194301, 8388593, | 
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| 84 | 16777213, 33554393, 67108859, 134217689, 268435399, 536870909, | 
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| 85 | 1073741789, 2147483647 /*, 4294967291 */ | 
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| 86 | }; | 
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| 87 |  | 
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| 88 | #define PRIMES_LENGTH UPRV_LENGTHOF(PRIMES) | 
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| 89 | #define DEFAULT_PRIME_INDEX 4 | 
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| 90 |  | 
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| 91 | /* These ratios are tuned to the PRIMES array such that a resize | 
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| 92 | * places the table back into the zone of non-resizing.  That is, | 
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| 93 | * after a call to _uhash_rehash(), a subsequent call to | 
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| 94 | * _uhash_rehash() should do nothing (should not churn).  This is only | 
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| 95 | * a potential problem with U_GROW_AND_SHRINK. | 
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| 96 | */ | 
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| 97 | static const float RESIZE_POLICY_RATIO_TABLE[6] = { | 
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| 98 | /* low, high water ratio */ | 
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| 99 | 0.0F, 0.5F, /* U_GROW: Grow on demand, do not shrink */ | 
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| 100 | 0.1F, 0.5F, /* U_GROW_AND_SHRINK: Grow and shrink on demand */ | 
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| 101 | 0.0F, 1.0F  /* U_FIXED: Never change size */ | 
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| 102 | }; | 
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| 103 |  | 
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| 104 | /* | 
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| 105 | Invariants for hashcode values: | 
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| 106 |  | 
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| 107 | * DELETED < 0 | 
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| 108 | * EMPTY < 0 | 
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| 109 | * Real hashes >= 0 | 
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| 110 |  | 
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| 111 | Hashcodes may not start out this way, but internally they are | 
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| 112 | adjusted so that they are always positive.  We assume 32-bit | 
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| 113 | hashcodes; adjust these constants for other hashcode sizes. | 
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| 114 | */ | 
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| 115 | #define HASH_DELETED    ((int32_t) 0x80000000) | 
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| 116 | #define HASH_EMPTY      ((int32_t) HASH_DELETED + 1) | 
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| 117 |  | 
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| 118 | #define IS_EMPTY_OR_DELETED(x) ((x) < 0) | 
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| 119 |  | 
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| 120 | /* This macro expects a UHashTok.pointer as its keypointer and | 
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| 121 | valuepointer parameters */ | 
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| 122 | #define HASH_DELETE_KEY_VALUE(hash, keypointer, valuepointer) UPRV_BLOCK_MACRO_BEGIN { \ | 
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| 123 | if (hash->keyDeleter != NULL && keypointer != NULL) { \ | 
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| 124 | (*hash->keyDeleter)(keypointer); \ | 
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| 125 | } \ | 
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| 126 | if (hash->valueDeleter != NULL && valuepointer != NULL) { \ | 
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| 127 | (*hash->valueDeleter)(valuepointer); \ | 
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| 128 | } \ | 
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| 129 | } UPRV_BLOCK_MACRO_END | 
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| 130 |  | 
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| 131 | /* | 
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| 132 | * Constants for hinting whether a key or value is an integer | 
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| 133 | * or a pointer.  If a hint bit is zero, then the associated | 
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| 134 | * token is assumed to be an integer. | 
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| 135 | */ | 
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| 136 | #define HINT_KEY_POINTER   (1) | 
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| 137 | #define HINT_VALUE_POINTER (2) | 
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| 138 |  | 
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| 139 | /******************************************************************** | 
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| 140 | * PRIVATE Implementation | 
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| 141 | ********************************************************************/ | 
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| 142 |  | 
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| 143 | static UHashTok | 
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| 144 | _uhash_setElement(UHashtable *hash, UHashElement* e, | 
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| 145 | int32_t hashcode, | 
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| 146 | UHashTok key, UHashTok value, int8_t hint) { | 
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| 147 |  | 
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| 148 | UHashTok oldValue = e->value; | 
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| 149 | if (hash->keyDeleter != NULL && e->key.pointer != NULL && | 
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| 150 | e->key.pointer != key.pointer) { /* Avoid double deletion */ | 
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| 151 | (*hash->keyDeleter)(e->key.pointer); | 
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| 152 | } | 
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| 153 | if (hash->valueDeleter != NULL) { | 
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| 154 | if (oldValue.pointer != NULL && | 
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| 155 | oldValue.pointer != value.pointer) { /* Avoid double deletion */ | 
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| 156 | (*hash->valueDeleter)(oldValue.pointer); | 
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| 157 | } | 
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| 158 | oldValue.pointer = NULL; | 
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| 159 | } | 
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| 160 | /* Compilers should copy the UHashTok union correctly, but even if | 
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| 161 | * they do, memory heap tools (e.g. BoundsChecker) can get | 
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| 162 | * confused when a pointer is cloaked in a union and then copied. | 
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| 163 | * TO ALLEVIATE THIS, we use hints (based on what API the user is | 
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| 164 | * calling) to copy pointers when we know the user thinks | 
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| 165 | * something is a pointer. */ | 
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| 166 | if (hint & HINT_KEY_POINTER) { | 
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| 167 | e->key.pointer = key.pointer; | 
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| 168 | } else { | 
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| 169 | e->key = key; | 
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| 170 | } | 
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| 171 | if (hint & HINT_VALUE_POINTER) { | 
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| 172 | e->value.pointer = value.pointer; | 
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| 173 | } else { | 
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| 174 | e->value = value; | 
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| 175 | } | 
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| 176 | e->hashcode = hashcode; | 
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| 177 | return oldValue; | 
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| 178 | } | 
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| 179 |  | 
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| 180 | /** | 
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| 181 | * Assumes that the given element is not empty or deleted. | 
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| 182 | */ | 
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| 183 | static UHashTok | 
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| 184 | _uhash_internalRemoveElement(UHashtable *hash, UHashElement* e) { | 
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| 185 | UHashTok empty; | 
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| 186 | U_ASSERT(!IS_EMPTY_OR_DELETED(e->hashcode)); | 
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| 187 | --hash->count; | 
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| 188 | empty.pointer = NULL; empty.integer = 0; | 
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| 189 | return _uhash_setElement(hash, e, HASH_DELETED, empty, empty, 0); | 
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| 190 | } | 
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| 191 |  | 
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| 192 | static void | 
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| 193 | _uhash_internalSetResizePolicy(UHashtable *hash, enum UHashResizePolicy policy) { | 
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| 194 | U_ASSERT(hash != NULL); | 
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| 195 | U_ASSERT(((int32_t)policy) >= 0); | 
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| 196 | U_ASSERT(((int32_t)policy) < 3); | 
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| 197 | hash->lowWaterRatio  = RESIZE_POLICY_RATIO_TABLE[policy * 2]; | 
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| 198 | hash->highWaterRatio = RESIZE_POLICY_RATIO_TABLE[policy * 2 + 1]; | 
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| 199 | } | 
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| 200 |  | 
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| 201 | /** | 
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| 202 | * Allocate internal data array of a size determined by the given | 
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| 203 | * prime index.  If the index is out of range it is pinned into range. | 
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| 204 | * If the allocation fails the status is set to | 
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| 205 | * U_MEMORY_ALLOCATION_ERROR and all array storage is freed.  In | 
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| 206 | * either case the previous array pointer is overwritten. | 
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| 207 | * | 
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| 208 | * Caller must ensure primeIndex is in range 0..PRIME_LENGTH-1. | 
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| 209 | */ | 
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| 210 | static void | 
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| 211 | _uhash_allocate(UHashtable *hash, | 
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| 212 | int32_t primeIndex, | 
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| 213 | UErrorCode *status) { | 
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| 214 |  | 
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| 215 | UHashElement *p, *limit; | 
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| 216 | UHashTok emptytok; | 
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| 217 |  | 
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| 218 | if (U_FAILURE(*status)) return; | 
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| 219 |  | 
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| 220 | U_ASSERT(primeIndex >= 0 && primeIndex < PRIMES_LENGTH); | 
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| 221 |  | 
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| 222 | hash->primeIndex = static_cast<int8_t>(primeIndex); | 
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| 223 | hash->length = PRIMES[primeIndex]; | 
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| 224 |  | 
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| 225 | p = hash->elements = (UHashElement*) | 
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| 226 | uprv_malloc(sizeof(UHashElement) * hash->length); | 
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| 227 |  | 
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| 228 | if (hash->elements == NULL) { | 
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| 229 | *status = U_MEMORY_ALLOCATION_ERROR; | 
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| 230 | return; | 
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| 231 | } | 
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| 232 |  | 
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| 233 | emptytok.pointer = NULL; /* Only one of these two is needed */ | 
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| 234 | emptytok.integer = 0;    /* but we don't know which one. */ | 
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| 235 |  | 
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| 236 | limit = p + hash->length; | 
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| 237 | while (p < limit) { | 
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| 238 | p->key = emptytok; | 
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| 239 | p->value = emptytok; | 
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| 240 | p->hashcode = HASH_EMPTY; | 
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| 241 | ++p; | 
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| 242 | } | 
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| 243 |  | 
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| 244 | hash->count = 0; | 
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| 245 | hash->lowWaterMark = (int32_t)(hash->length * hash->lowWaterRatio); | 
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| 246 | hash->highWaterMark = (int32_t)(hash->length * hash->highWaterRatio); | 
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| 247 | } | 
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| 248 |  | 
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| 249 | static UHashtable* | 
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| 250 | _uhash_init(UHashtable *result, | 
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| 251 | UHashFunction *keyHash, | 
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| 252 | UKeyComparator *keyComp, | 
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| 253 | UValueComparator *valueComp, | 
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| 254 | int32_t primeIndex, | 
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| 255 | UErrorCode *status) | 
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| 256 | { | 
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| 257 | if (U_FAILURE(*status)) return NULL; | 
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| 258 | U_ASSERT(keyHash != NULL); | 
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| 259 | U_ASSERT(keyComp != NULL); | 
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| 260 |  | 
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| 261 | result->keyHasher       = keyHash; | 
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| 262 | result->keyComparator   = keyComp; | 
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| 263 | result->valueComparator = valueComp; | 
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| 264 | result->keyDeleter      = NULL; | 
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| 265 | result->valueDeleter    = NULL; | 
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| 266 | result->allocated       = FALSE; | 
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| 267 | _uhash_internalSetResizePolicy(result, U_GROW); | 
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| 268 |  | 
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| 269 | _uhash_allocate(result, primeIndex, status); | 
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| 270 |  | 
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| 271 | if (U_FAILURE(*status)) { | 
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| 272 | return NULL; | 
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| 273 | } | 
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| 274 |  | 
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| 275 | return result; | 
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| 276 | } | 
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| 277 |  | 
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| 278 | static UHashtable* | 
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| 279 | _uhash_create(UHashFunction *keyHash, | 
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| 280 | UKeyComparator *keyComp, | 
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| 281 | UValueComparator *valueComp, | 
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| 282 | int32_t primeIndex, | 
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| 283 | UErrorCode *status) { | 
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| 284 | UHashtable *result; | 
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| 285 |  | 
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| 286 | if (U_FAILURE(*status)) return NULL; | 
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| 287 |  | 
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| 288 | result = (UHashtable*) uprv_malloc(sizeof(UHashtable)); | 
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| 289 | if (result == NULL) { | 
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| 290 | *status = U_MEMORY_ALLOCATION_ERROR; | 
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| 291 | return NULL; | 
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| 292 | } | 
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| 293 |  | 
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| 294 | _uhash_init(result, keyHash, keyComp, valueComp, primeIndex, status); | 
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| 295 | result->allocated       = TRUE; | 
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| 296 |  | 
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| 297 | if (U_FAILURE(*status)) { | 
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| 298 | uprv_free(result); | 
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| 299 | return NULL; | 
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| 300 | } | 
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| 301 |  | 
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| 302 | return result; | 
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| 303 | } | 
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| 304 |  | 
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| 305 | /** | 
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| 306 | * Look for a key in the table, or if no such key exists, the first | 
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| 307 | * empty slot matching the given hashcode.  Keys are compared using | 
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| 308 | * the keyComparator function. | 
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| 309 | * | 
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| 310 | * First find the start position, which is the hashcode modulo | 
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| 311 | * the length.  Test it to see if it is: | 
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| 312 | * | 
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| 313 | * a. identical:  First check the hash values for a quick check, | 
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| 314 | *    then compare keys for equality using keyComparator. | 
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| 315 | * b. deleted | 
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| 316 | * c. empty | 
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| 317 | * | 
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| 318 | * Stop if it is identical or empty, otherwise continue by adding a | 
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| 319 | * "jump" value (moduloing by the length again to keep it within | 
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| 320 | * range) and retesting.  For efficiency, there need enough empty | 
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| 321 | * values so that the searchs stop within a reasonable amount of time. | 
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| 322 | * This can be changed by changing the high/low water marks. | 
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| 323 | * | 
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| 324 | * In theory, this function can return NULL, if it is full (no empty | 
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| 325 | * or deleted slots) and if no matching key is found.  In practice, we | 
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| 326 | * prevent this elsewhere (in uhash_put) by making sure the last slot | 
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| 327 | * in the table is never filled. | 
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| 328 | * | 
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| 329 | * The size of the table should be prime for this algorithm to work; | 
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| 330 | * otherwise we are not guaranteed that the jump value (the secondary | 
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| 331 | * hash) is relatively prime to the table length. | 
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| 332 | */ | 
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| 333 | static UHashElement* | 
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| 334 | _uhash_find(const UHashtable *hash, UHashTok key, | 
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| 335 | int32_t hashcode) { | 
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| 336 |  | 
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| 337 | int32_t firstDeleted = -1;  /* assume invalid index */ | 
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| 338 | int32_t theIndex, startIndex; | 
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| 339 | int32_t jump = 0; /* lazy evaluate */ | 
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| 340 | int32_t tableHash; | 
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| 341 | UHashElement *elements = hash->elements; | 
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| 342 |  | 
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| 343 | hashcode &= 0x7FFFFFFF; /* must be positive */ | 
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| 344 | startIndex = theIndex = (hashcode ^ 0x4000000) % hash->length; | 
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| 345 |  | 
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| 346 | do { | 
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| 347 | tableHash = elements[theIndex].hashcode; | 
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| 348 | if (tableHash == hashcode) {          /* quick check */ | 
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| 349 | if ((*hash->keyComparator)(key, elements[theIndex].key)) { | 
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| 350 | return &(elements[theIndex]); | 
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| 351 | } | 
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| 352 | } else if (!IS_EMPTY_OR_DELETED(tableHash)) { | 
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| 353 | /* We have hit a slot which contains a key-value pair, | 
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| 354 | * but for which the hash code does not match.  Keep | 
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| 355 | * looking. | 
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| 356 | */ | 
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| 357 | } else if (tableHash == HASH_EMPTY) { /* empty, end o' the line */ | 
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| 358 | break; | 
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| 359 | } else if (firstDeleted < 0) { /* remember first deleted */ | 
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| 360 | firstDeleted = theIndex; | 
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| 361 | } | 
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| 362 | if (jump == 0) { /* lazy compute jump */ | 
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| 363 | /* The jump value must be relatively prime to the table | 
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| 364 | * length.  As long as the length is prime, then any value | 
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| 365 | * 1..length-1 will be relatively prime to it. | 
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| 366 | */ | 
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| 367 | jump = (hashcode % (hash->length - 1)) + 1; | 
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| 368 | } | 
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| 369 | theIndex = (theIndex + jump) % hash->length; | 
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| 370 | } while (theIndex != startIndex); | 
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| 371 |  | 
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| 372 | if (firstDeleted >= 0) { | 
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| 373 | theIndex = firstDeleted; /* reset if had deleted slot */ | 
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| 374 | } else if (tableHash != HASH_EMPTY) { | 
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| 375 | /* We get to this point if the hashtable is full (no empty or | 
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| 376 | * deleted slots), and we've failed to find a match.  THIS | 
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| 377 | * WILL NEVER HAPPEN as long as uhash_put() makes sure that | 
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| 378 | * count is always < length. | 
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| 379 | */ | 
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| 380 | UPRV_UNREACHABLE; | 
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| 381 | } | 
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| 382 | return &(elements[theIndex]); | 
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| 383 | } | 
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| 384 |  | 
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| 385 | /** | 
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| 386 | * Attempt to grow or shrink the data arrays in order to make the | 
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| 387 | * count fit between the high and low water marks.  hash_put() and | 
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| 388 | * hash_remove() call this method when the count exceeds the high or | 
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| 389 | * low water marks.  This method may do nothing, if memory allocation | 
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| 390 | * fails, or if the count is already in range, or if the length is | 
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| 391 | * already at the low or high limit.  In any case, upon return the | 
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| 392 | * arrays will be valid. | 
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| 393 | */ | 
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| 394 | static void | 
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| 395 | _uhash_rehash(UHashtable *hash, UErrorCode *status) { | 
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| 396 |  | 
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| 397 | UHashElement *old = hash->elements; | 
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| 398 | int32_t oldLength = hash->length; | 
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| 399 | int32_t newPrimeIndex = hash->primeIndex; | 
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| 400 | int32_t i; | 
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| 401 |  | 
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| 402 | if (hash->count > hash->highWaterMark) { | 
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| 403 | if (++newPrimeIndex >= PRIMES_LENGTH) { | 
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| 404 | return; | 
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| 405 | } | 
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| 406 | } else if (hash->count < hash->lowWaterMark) { | 
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| 407 | if (--newPrimeIndex < 0) { | 
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| 408 | return; | 
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| 409 | } | 
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| 410 | } else { | 
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| 411 | return; | 
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| 412 | } | 
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| 413 |  | 
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| 414 | _uhash_allocate(hash, newPrimeIndex, status); | 
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| 415 |  | 
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| 416 | if (U_FAILURE(*status)) { | 
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| 417 | hash->elements = old; | 
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| 418 | hash->length = oldLength; | 
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| 419 | return; | 
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| 420 | } | 
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| 421 |  | 
|---|
| 422 | for (i = oldLength - 1; i >= 0; --i) { | 
|---|
| 423 | if (!IS_EMPTY_OR_DELETED(old[i].hashcode)) { | 
|---|
| 424 | UHashElement *e = _uhash_find(hash, old[i].key, old[i].hashcode); | 
|---|
| 425 | U_ASSERT(e != NULL); | 
|---|
| 426 | U_ASSERT(e->hashcode == HASH_EMPTY); | 
|---|
| 427 | e->key = old[i].key; | 
|---|
| 428 | e->value = old[i].value; | 
|---|
| 429 | e->hashcode = old[i].hashcode; | 
|---|
| 430 | ++hash->count; | 
|---|
| 431 | } | 
|---|
| 432 | } | 
|---|
| 433 |  | 
|---|
| 434 | uprv_free(old); | 
|---|
| 435 | } | 
|---|
| 436 |  | 
|---|
| 437 | static UHashTok | 
|---|
| 438 | _uhash_remove(UHashtable *hash, | 
|---|
| 439 | UHashTok key) { | 
|---|
| 440 | /* First find the position of the key in the table.  If the object | 
|---|
| 441 | * has not been removed already, remove it.  If the user wanted | 
|---|
| 442 | * keys deleted, then delete it also.  We have to put a special | 
|---|
| 443 | * hashcode in that position that means that something has been | 
|---|
| 444 | * deleted, since when we do a find, we have to continue PAST any | 
|---|
| 445 | * deleted values. | 
|---|
| 446 | */ | 
|---|
| 447 | UHashTok result; | 
|---|
| 448 | UHashElement* e = _uhash_find(hash, key, hash->keyHasher(key)); | 
|---|
| 449 | U_ASSERT(e != NULL); | 
|---|
| 450 | result.pointer = NULL; | 
|---|
| 451 | result.integer = 0; | 
|---|
| 452 | if (!IS_EMPTY_OR_DELETED(e->hashcode)) { | 
|---|
| 453 | result = _uhash_internalRemoveElement(hash, e); | 
|---|
| 454 | if (hash->count < hash->lowWaterMark) { | 
|---|
| 455 | UErrorCode status = U_ZERO_ERROR; | 
|---|
| 456 | _uhash_rehash(hash, &status); | 
|---|
| 457 | } | 
|---|
| 458 | } | 
|---|
| 459 | return result; | 
|---|
| 460 | } | 
|---|
| 461 |  | 
|---|
| 462 | static UHashTok | 
|---|
| 463 | _uhash_put(UHashtable *hash, | 
|---|
| 464 | UHashTok key, | 
|---|
| 465 | UHashTok value, | 
|---|
| 466 | int8_t hint, | 
|---|
| 467 | UErrorCode *status) { | 
|---|
| 468 |  | 
|---|
| 469 | /* Put finds the position in the table for the new value.  If the | 
|---|
| 470 | * key is already in the table, it is deleted, if there is a | 
|---|
| 471 | * non-NULL keyDeleter.  Then the key, the hash and the value are | 
|---|
| 472 | * all put at the position in their respective arrays. | 
|---|
| 473 | */ | 
|---|
| 474 | int32_t hashcode; | 
|---|
| 475 | UHashElement* e; | 
|---|
| 476 | UHashTok emptytok; | 
|---|
| 477 |  | 
|---|
| 478 | if (U_FAILURE(*status)) { | 
|---|
| 479 | goto err; | 
|---|
| 480 | } | 
|---|
| 481 | U_ASSERT(hash != NULL); | 
|---|
| 482 | /* Cannot always check pointer here or iSeries sees NULL every time. */ | 
|---|
| 483 | if ((hint & HINT_VALUE_POINTER) && value.pointer == NULL) { | 
|---|
| 484 | /* Disallow storage of NULL values, since NULL is returned by | 
|---|
| 485 | * get() to indicate an absent key.  Storing NULL == removing. | 
|---|
| 486 | */ | 
|---|
| 487 | return _uhash_remove(hash, key); | 
|---|
| 488 | } | 
|---|
| 489 | if (hash->count > hash->highWaterMark) { | 
|---|
| 490 | _uhash_rehash(hash, status); | 
|---|
| 491 | if (U_FAILURE(*status)) { | 
|---|
| 492 | goto err; | 
|---|
| 493 | } | 
|---|
| 494 | } | 
|---|
| 495 |  | 
|---|
| 496 | hashcode = (*hash->keyHasher)(key); | 
|---|
| 497 | e = _uhash_find(hash, key, hashcode); | 
|---|
| 498 | U_ASSERT(e != NULL); | 
|---|
| 499 |  | 
|---|
| 500 | if (IS_EMPTY_OR_DELETED(e->hashcode)) { | 
|---|
| 501 | /* Important: We must never actually fill the table up.  If we | 
|---|
| 502 | * do so, then _uhash_find() will return NULL, and we'll have | 
|---|
| 503 | * to check for NULL after every call to _uhash_find().  To | 
|---|
| 504 | * avoid this we make sure there is always at least one empty | 
|---|
| 505 | * or deleted slot in the table.  This only is a problem if we | 
|---|
| 506 | * are out of memory and rehash isn't working. | 
|---|
| 507 | */ | 
|---|
| 508 | ++hash->count; | 
|---|
| 509 | if (hash->count == hash->length) { | 
|---|
| 510 | /* Don't allow count to reach length */ | 
|---|
| 511 | --hash->count; | 
|---|
| 512 | *status = U_MEMORY_ALLOCATION_ERROR; | 
|---|
| 513 | goto err; | 
|---|
| 514 | } | 
|---|
| 515 | } | 
|---|
| 516 |  | 
|---|
| 517 | /* We must in all cases handle storage properly.  If there was an | 
|---|
| 518 | * old key, then it must be deleted (if the deleter != NULL). | 
|---|
| 519 | * Make hashcodes stored in table positive. | 
|---|
| 520 | */ | 
|---|
| 521 | return _uhash_setElement(hash, e, hashcode & 0x7FFFFFFF, key, value, hint); | 
|---|
| 522 |  | 
|---|
| 523 | err: | 
|---|
| 524 | /* If the deleters are non-NULL, this method adopts its key and/or | 
|---|
| 525 | * value arguments, and we must be sure to delete the key and/or | 
|---|
| 526 | * value in all cases, even upon failure. | 
|---|
| 527 | */ | 
|---|
| 528 | HASH_DELETE_KEY_VALUE(hash, key.pointer, value.pointer); | 
|---|
| 529 | emptytok.pointer = NULL; emptytok.integer = 0; | 
|---|
| 530 | return emptytok; | 
|---|
| 531 | } | 
|---|
| 532 |  | 
|---|
| 533 |  | 
|---|
| 534 | /******************************************************************** | 
|---|
| 535 | * PUBLIC API | 
|---|
| 536 | ********************************************************************/ | 
|---|
| 537 |  | 
|---|
| 538 | U_CAPI UHashtable* U_EXPORT2 | 
|---|
| 539 | uhash_open(UHashFunction *keyHash, | 
|---|
| 540 | UKeyComparator *keyComp, | 
|---|
| 541 | UValueComparator *valueComp, | 
|---|
| 542 | UErrorCode *status) { | 
|---|
| 543 |  | 
|---|
| 544 | return _uhash_create(keyHash, keyComp, valueComp, DEFAULT_PRIME_INDEX, status); | 
|---|
| 545 | } | 
|---|
| 546 |  | 
|---|
| 547 | U_CAPI UHashtable* U_EXPORT2 | 
|---|
| 548 | uhash_openSize(UHashFunction *keyHash, | 
|---|
| 549 | UKeyComparator *keyComp, | 
|---|
| 550 | UValueComparator *valueComp, | 
|---|
| 551 | int32_t size, | 
|---|
| 552 | UErrorCode *status) { | 
|---|
| 553 |  | 
|---|
| 554 | /* Find the smallest index i for which PRIMES[i] >= size. */ | 
|---|
| 555 | int32_t i = 0; | 
|---|
| 556 | while (i<(PRIMES_LENGTH-1) && PRIMES[i]<size) { | 
|---|
| 557 | ++i; | 
|---|
| 558 | } | 
|---|
| 559 |  | 
|---|
| 560 | return _uhash_create(keyHash, keyComp, valueComp, i, status); | 
|---|
| 561 | } | 
|---|
| 562 |  | 
|---|
| 563 | U_CAPI UHashtable* U_EXPORT2 | 
|---|
| 564 | uhash_init(UHashtable *fillinResult, | 
|---|
| 565 | UHashFunction *keyHash, | 
|---|
| 566 | UKeyComparator *keyComp, | 
|---|
| 567 | UValueComparator *valueComp, | 
|---|
| 568 | UErrorCode *status) { | 
|---|
| 569 |  | 
|---|
| 570 | return _uhash_init(fillinResult, keyHash, keyComp, valueComp, DEFAULT_PRIME_INDEX, status); | 
|---|
| 571 | } | 
|---|
| 572 |  | 
|---|
| 573 | U_CAPI UHashtable* U_EXPORT2 | 
|---|
| 574 | uhash_initSize(UHashtable *fillinResult, | 
|---|
| 575 | UHashFunction *keyHash, | 
|---|
| 576 | UKeyComparator *keyComp, | 
|---|
| 577 | UValueComparator *valueComp, | 
|---|
| 578 | int32_t size, | 
|---|
| 579 | UErrorCode *status) { | 
|---|
| 580 |  | 
|---|
| 581 | // Find the smallest index i for which PRIMES[i] >= size. | 
|---|
| 582 | int32_t i = 0; | 
|---|
| 583 | while (i<(PRIMES_LENGTH-1) && PRIMES[i]<size) { | 
|---|
| 584 | ++i; | 
|---|
| 585 | } | 
|---|
| 586 | return _uhash_init(fillinResult, keyHash, keyComp, valueComp, i, status); | 
|---|
| 587 | } | 
|---|
| 588 |  | 
|---|
| 589 | U_CAPI void U_EXPORT2 | 
|---|
| 590 | uhash_close(UHashtable *hash) { | 
|---|
| 591 | if (hash == NULL) { | 
|---|
| 592 | return; | 
|---|
| 593 | } | 
|---|
| 594 | if (hash->elements != NULL) { | 
|---|
| 595 | if (hash->keyDeleter != NULL || hash->valueDeleter != NULL) { | 
|---|
| 596 | int32_t pos=UHASH_FIRST; | 
|---|
| 597 | UHashElement *e; | 
|---|
| 598 | while ((e = (UHashElement*) uhash_nextElement(hash, &pos)) != NULL) { | 
|---|
| 599 | HASH_DELETE_KEY_VALUE(hash, e->key.pointer, e->value.pointer); | 
|---|
| 600 | } | 
|---|
| 601 | } | 
|---|
| 602 | uprv_free(hash->elements); | 
|---|
| 603 | hash->elements = NULL; | 
|---|
| 604 | } | 
|---|
| 605 | if (hash->allocated) { | 
|---|
| 606 | uprv_free(hash); | 
|---|
| 607 | } | 
|---|
| 608 | } | 
|---|
| 609 |  | 
|---|
| 610 | U_CAPI UHashFunction *U_EXPORT2 | 
|---|
| 611 | uhash_setKeyHasher(UHashtable *hash, UHashFunction *fn) { | 
|---|
| 612 | UHashFunction *result = hash->keyHasher; | 
|---|
| 613 | hash->keyHasher = fn; | 
|---|
| 614 | return result; | 
|---|
| 615 | } | 
|---|
| 616 |  | 
|---|
| 617 | U_CAPI UKeyComparator *U_EXPORT2 | 
|---|
| 618 | uhash_setKeyComparator(UHashtable *hash, UKeyComparator *fn) { | 
|---|
| 619 | UKeyComparator *result = hash->keyComparator; | 
|---|
| 620 | hash->keyComparator = fn; | 
|---|
| 621 | return result; | 
|---|
| 622 | } | 
|---|
| 623 | U_CAPI UValueComparator *U_EXPORT2 | 
|---|
| 624 | uhash_setValueComparator(UHashtable *hash, UValueComparator *fn){ | 
|---|
| 625 | UValueComparator *result = hash->valueComparator; | 
|---|
| 626 | hash->valueComparator = fn; | 
|---|
| 627 | return result; | 
|---|
| 628 | } | 
|---|
| 629 |  | 
|---|
| 630 | U_CAPI UObjectDeleter *U_EXPORT2 | 
|---|
| 631 | uhash_setKeyDeleter(UHashtable *hash, UObjectDeleter *fn) { | 
|---|
| 632 | UObjectDeleter *result = hash->keyDeleter; | 
|---|
| 633 | hash->keyDeleter = fn; | 
|---|
| 634 | return result; | 
|---|
| 635 | } | 
|---|
| 636 |  | 
|---|
| 637 | U_CAPI UObjectDeleter *U_EXPORT2 | 
|---|
| 638 | uhash_setValueDeleter(UHashtable *hash, UObjectDeleter *fn) { | 
|---|
| 639 | UObjectDeleter *result = hash->valueDeleter; | 
|---|
| 640 | hash->valueDeleter = fn; | 
|---|
| 641 | return result; | 
|---|
| 642 | } | 
|---|
| 643 |  | 
|---|
| 644 | U_CAPI void U_EXPORT2 | 
|---|
| 645 | uhash_setResizePolicy(UHashtable *hash, enum UHashResizePolicy policy) { | 
|---|
| 646 | UErrorCode status = U_ZERO_ERROR; | 
|---|
| 647 | _uhash_internalSetResizePolicy(hash, policy); | 
|---|
| 648 | hash->lowWaterMark  = (int32_t)(hash->length * hash->lowWaterRatio); | 
|---|
| 649 | hash->highWaterMark = (int32_t)(hash->length * hash->highWaterRatio); | 
|---|
| 650 | _uhash_rehash(hash, &status); | 
|---|
| 651 | } | 
|---|
| 652 |  | 
|---|
| 653 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 654 | uhash_count(const UHashtable *hash) { | 
|---|
| 655 | return hash->count; | 
|---|
| 656 | } | 
|---|
| 657 |  | 
|---|
| 658 | U_CAPI void* U_EXPORT2 | 
|---|
| 659 | uhash_get(const UHashtable *hash, | 
|---|
| 660 | const void* key) { | 
|---|
| 661 | UHashTok keyholder; | 
|---|
| 662 | keyholder.pointer = (void*) key; | 
|---|
| 663 | return _uhash_find(hash, keyholder, hash->keyHasher(keyholder))->value.pointer; | 
|---|
| 664 | } | 
|---|
| 665 |  | 
|---|
| 666 | U_CAPI void* U_EXPORT2 | 
|---|
| 667 | uhash_iget(const UHashtable *hash, | 
|---|
| 668 | int32_t key) { | 
|---|
| 669 | UHashTok keyholder; | 
|---|
| 670 | keyholder.integer = key; | 
|---|
| 671 | return _uhash_find(hash, keyholder, hash->keyHasher(keyholder))->value.pointer; | 
|---|
| 672 | } | 
|---|
| 673 |  | 
|---|
| 674 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 675 | uhash_geti(const UHashtable *hash, | 
|---|
| 676 | const void* key) { | 
|---|
| 677 | UHashTok keyholder; | 
|---|
| 678 | keyholder.pointer = (void*) key; | 
|---|
| 679 | return _uhash_find(hash, keyholder, hash->keyHasher(keyholder))->value.integer; | 
|---|
| 680 | } | 
|---|
| 681 |  | 
|---|
| 682 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 683 | uhash_igeti(const UHashtable *hash, | 
|---|
| 684 | int32_t key) { | 
|---|
| 685 | UHashTok keyholder; | 
|---|
| 686 | keyholder.integer = key; | 
|---|
| 687 | return _uhash_find(hash, keyholder, hash->keyHasher(keyholder))->value.integer; | 
|---|
| 688 | } | 
|---|
| 689 |  | 
|---|
| 690 | U_CAPI void* U_EXPORT2 | 
|---|
| 691 | uhash_put(UHashtable *hash, | 
|---|
| 692 | void* key, | 
|---|
| 693 | void* value, | 
|---|
| 694 | UErrorCode *status) { | 
|---|
| 695 | UHashTok keyholder, valueholder; | 
|---|
| 696 | keyholder.pointer = key; | 
|---|
| 697 | valueholder.pointer = value; | 
|---|
| 698 | return _uhash_put(hash, keyholder, valueholder, | 
|---|
| 699 | HINT_KEY_POINTER | HINT_VALUE_POINTER, | 
|---|
| 700 | status).pointer; | 
|---|
| 701 | } | 
|---|
| 702 |  | 
|---|
| 703 | U_CAPI void* U_EXPORT2 | 
|---|
| 704 | uhash_iput(UHashtable *hash, | 
|---|
| 705 | int32_t key, | 
|---|
| 706 | void* value, | 
|---|
| 707 | UErrorCode *status) { | 
|---|
| 708 | UHashTok keyholder, valueholder; | 
|---|
| 709 | keyholder.integer = key; | 
|---|
| 710 | valueholder.pointer = value; | 
|---|
| 711 | return _uhash_put(hash, keyholder, valueholder, | 
|---|
| 712 | HINT_VALUE_POINTER, | 
|---|
| 713 | status).pointer; | 
|---|
| 714 | } | 
|---|
| 715 |  | 
|---|
| 716 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 717 | uhash_puti(UHashtable *hash, | 
|---|
| 718 | void* key, | 
|---|
| 719 | int32_t value, | 
|---|
| 720 | UErrorCode *status) { | 
|---|
| 721 | UHashTok keyholder, valueholder; | 
|---|
| 722 | keyholder.pointer = key; | 
|---|
| 723 | valueholder.integer = value; | 
|---|
| 724 | return _uhash_put(hash, keyholder, valueholder, | 
|---|
| 725 | HINT_KEY_POINTER, | 
|---|
| 726 | status).integer; | 
|---|
| 727 | } | 
|---|
| 728 |  | 
|---|
| 729 |  | 
|---|
| 730 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 731 | uhash_iputi(UHashtable *hash, | 
|---|
| 732 | int32_t key, | 
|---|
| 733 | int32_t value, | 
|---|
| 734 | UErrorCode *status) { | 
|---|
| 735 | UHashTok keyholder, valueholder; | 
|---|
| 736 | keyholder.integer = key; | 
|---|
| 737 | valueholder.integer = value; | 
|---|
| 738 | return _uhash_put(hash, keyholder, valueholder, | 
|---|
| 739 | 0, /* neither is a ptr */ | 
|---|
| 740 | status).integer; | 
|---|
| 741 | } | 
|---|
| 742 |  | 
|---|
| 743 | U_CAPI void* U_EXPORT2 | 
|---|
| 744 | uhash_remove(UHashtable *hash, | 
|---|
| 745 | const void* key) { | 
|---|
| 746 | UHashTok keyholder; | 
|---|
| 747 | keyholder.pointer = (void*) key; | 
|---|
| 748 | return _uhash_remove(hash, keyholder).pointer; | 
|---|
| 749 | } | 
|---|
| 750 |  | 
|---|
| 751 | U_CAPI void* U_EXPORT2 | 
|---|
| 752 | uhash_iremove(UHashtable *hash, | 
|---|
| 753 | int32_t key) { | 
|---|
| 754 | UHashTok keyholder; | 
|---|
| 755 | keyholder.integer = key; | 
|---|
| 756 | return _uhash_remove(hash, keyholder).pointer; | 
|---|
| 757 | } | 
|---|
| 758 |  | 
|---|
| 759 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 760 | uhash_removei(UHashtable *hash, | 
|---|
| 761 | const void* key) { | 
|---|
| 762 | UHashTok keyholder; | 
|---|
| 763 | keyholder.pointer = (void*) key; | 
|---|
| 764 | return _uhash_remove(hash, keyholder).integer; | 
|---|
| 765 | } | 
|---|
| 766 |  | 
|---|
| 767 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 768 | uhash_iremovei(UHashtable *hash, | 
|---|
| 769 | int32_t key) { | 
|---|
| 770 | UHashTok keyholder; | 
|---|
| 771 | keyholder.integer = key; | 
|---|
| 772 | return _uhash_remove(hash, keyholder).integer; | 
|---|
| 773 | } | 
|---|
| 774 |  | 
|---|
| 775 | U_CAPI void U_EXPORT2 | 
|---|
| 776 | uhash_removeAll(UHashtable *hash) { | 
|---|
| 777 | int32_t pos = UHASH_FIRST; | 
|---|
| 778 | const UHashElement *e; | 
|---|
| 779 | U_ASSERT(hash != NULL); | 
|---|
| 780 | if (hash->count != 0) { | 
|---|
| 781 | while ((e = uhash_nextElement(hash, &pos)) != NULL) { | 
|---|
| 782 | uhash_removeElement(hash, e); | 
|---|
| 783 | } | 
|---|
| 784 | } | 
|---|
| 785 | U_ASSERT(hash->count == 0); | 
|---|
| 786 | } | 
|---|
| 787 |  | 
|---|
| 788 | U_CAPI const UHashElement* U_EXPORT2 | 
|---|
| 789 | uhash_find(const UHashtable *hash, const void* key) { | 
|---|
| 790 | UHashTok keyholder; | 
|---|
| 791 | const UHashElement *e; | 
|---|
| 792 | keyholder.pointer = (void*) key; | 
|---|
| 793 | e = _uhash_find(hash, keyholder, hash->keyHasher(keyholder)); | 
|---|
| 794 | return IS_EMPTY_OR_DELETED(e->hashcode) ? NULL : e; | 
|---|
| 795 | } | 
|---|
| 796 |  | 
|---|
| 797 | U_CAPI const UHashElement* U_EXPORT2 | 
|---|
| 798 | uhash_nextElement(const UHashtable *hash, int32_t *pos) { | 
|---|
| 799 | /* Walk through the array until we find an element that is not | 
|---|
| 800 | * EMPTY and not DELETED. | 
|---|
| 801 | */ | 
|---|
| 802 | int32_t i; | 
|---|
| 803 | U_ASSERT(hash != NULL); | 
|---|
| 804 | for (i = *pos + 1; i < hash->length; ++i) { | 
|---|
| 805 | if (!IS_EMPTY_OR_DELETED(hash->elements[i].hashcode)) { | 
|---|
| 806 | *pos = i; | 
|---|
| 807 | return &(hash->elements[i]); | 
|---|
| 808 | } | 
|---|
| 809 | } | 
|---|
| 810 |  | 
|---|
| 811 | /* No more elements */ | 
|---|
| 812 | return NULL; | 
|---|
| 813 | } | 
|---|
| 814 |  | 
|---|
| 815 | U_CAPI void* U_EXPORT2 | 
|---|
| 816 | uhash_removeElement(UHashtable *hash, const UHashElement* e) { | 
|---|
| 817 | U_ASSERT(hash != NULL); | 
|---|
| 818 | U_ASSERT(e != NULL); | 
|---|
| 819 | if (!IS_EMPTY_OR_DELETED(e->hashcode)) { | 
|---|
| 820 | UHashElement *nce = (UHashElement *)e; | 
|---|
| 821 | return _uhash_internalRemoveElement(hash, nce).pointer; | 
|---|
| 822 | } | 
|---|
| 823 | return NULL; | 
|---|
| 824 | } | 
|---|
| 825 |  | 
|---|
| 826 | /******************************************************************** | 
|---|
| 827 | * UHashTok convenience | 
|---|
| 828 | ********************************************************************/ | 
|---|
| 829 |  | 
|---|
| 830 | /** | 
|---|
| 831 | * Return a UHashTok for an integer. | 
|---|
| 832 | */ | 
|---|
| 833 | /*U_CAPI UHashTok U_EXPORT2 | 
|---|
| 834 | uhash_toki(int32_t i) { | 
|---|
| 835 | UHashTok tok; | 
|---|
| 836 | tok.integer = i; | 
|---|
| 837 | return tok; | 
|---|
| 838 | }*/ | 
|---|
| 839 |  | 
|---|
| 840 | /** | 
|---|
| 841 | * Return a UHashTok for a pointer. | 
|---|
| 842 | */ | 
|---|
| 843 | /*U_CAPI UHashTok U_EXPORT2 | 
|---|
| 844 | uhash_tokp(void* p) { | 
|---|
| 845 | UHashTok tok; | 
|---|
| 846 | tok.pointer = p; | 
|---|
| 847 | return tok; | 
|---|
| 848 | }*/ | 
|---|
| 849 |  | 
|---|
| 850 | /******************************************************************** | 
|---|
| 851 | * PUBLIC Key Hash Functions | 
|---|
| 852 | ********************************************************************/ | 
|---|
| 853 |  | 
|---|
| 854 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 855 | uhash_hashUChars(const UHashTok key) { | 
|---|
| 856 | const UChar *s = (const UChar *)key.pointer; | 
|---|
| 857 | return s == NULL ? 0 : ustr_hashUCharsN(s, u_strlen(s)); | 
|---|
| 858 | } | 
|---|
| 859 |  | 
|---|
| 860 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 861 | uhash_hashChars(const UHashTok key) { | 
|---|
| 862 | const char *s = (const char *)key.pointer; | 
|---|
| 863 | return s == NULL ? 0 : static_cast<int32_t>(ustr_hashCharsN(s, static_cast<int32_t>(uprv_strlen(s)))); | 
|---|
| 864 | } | 
|---|
| 865 |  | 
|---|
| 866 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 867 | uhash_hashIChars(const UHashTok key) { | 
|---|
| 868 | const char *s = (const char *)key.pointer; | 
|---|
| 869 | return s == NULL ? 0 : ustr_hashICharsN(s, static_cast<int32_t>(uprv_strlen(s))); | 
|---|
| 870 | } | 
|---|
| 871 |  | 
|---|
| 872 | U_CAPI UBool U_EXPORT2 | 
|---|
| 873 | uhash_equals(const UHashtable* hash1, const UHashtable* hash2){ | 
|---|
| 874 | int32_t count1, count2, pos, i; | 
|---|
| 875 |  | 
|---|
| 876 | if(hash1==hash2){ | 
|---|
| 877 | return TRUE; | 
|---|
| 878 | } | 
|---|
| 879 |  | 
|---|
| 880 | /* | 
|---|
| 881 | * Make sure that we are comparing 2 valid hashes of the same type | 
|---|
| 882 | * with valid comparison functions. | 
|---|
| 883 | * Without valid comparison functions, a binary comparison | 
|---|
| 884 | * of the hash values will yield random results on machines | 
|---|
| 885 | * with 64-bit pointers and 32-bit integer hashes. | 
|---|
| 886 | * A valueComparator is normally optional. | 
|---|
| 887 | */ | 
|---|
| 888 | if (hash1==NULL || hash2==NULL || | 
|---|
| 889 | hash1->keyComparator != hash2->keyComparator || | 
|---|
| 890 | hash1->valueComparator != hash2->valueComparator || | 
|---|
| 891 | hash1->valueComparator == NULL) | 
|---|
| 892 | { | 
|---|
| 893 | /* | 
|---|
| 894 | Normally we would return an error here about incompatible hash tables, | 
|---|
| 895 | but we return FALSE instead. | 
|---|
| 896 | */ | 
|---|
| 897 | return FALSE; | 
|---|
| 898 | } | 
|---|
| 899 |  | 
|---|
| 900 | count1 = uhash_count(hash1); | 
|---|
| 901 | count2 = uhash_count(hash2); | 
|---|
| 902 | if(count1!=count2){ | 
|---|
| 903 | return FALSE; | 
|---|
| 904 | } | 
|---|
| 905 |  | 
|---|
| 906 | pos=UHASH_FIRST; | 
|---|
| 907 | for(i=0; i<count1; i++){ | 
|---|
| 908 | const UHashElement* elem1 = uhash_nextElement(hash1, &pos); | 
|---|
| 909 | const UHashTok key1 = elem1->key; | 
|---|
| 910 | const UHashTok val1 = elem1->value; | 
|---|
| 911 | /* here the keys are not compared, instead the key form hash1 is used to fetch | 
|---|
| 912 | * value from hash2. If the hashes are equal then then both hashes should | 
|---|
| 913 | * contain equal values for the same key! | 
|---|
| 914 | */ | 
|---|
| 915 | const UHashElement* elem2 = _uhash_find(hash2, key1, hash2->keyHasher(key1)); | 
|---|
| 916 | const UHashTok val2 = elem2->value; | 
|---|
| 917 | if(hash1->valueComparator(val1, val2)==FALSE){ | 
|---|
| 918 | return FALSE; | 
|---|
| 919 | } | 
|---|
| 920 | } | 
|---|
| 921 | return TRUE; | 
|---|
| 922 | } | 
|---|
| 923 |  | 
|---|
| 924 | /******************************************************************** | 
|---|
| 925 | * PUBLIC Comparator Functions | 
|---|
| 926 | ********************************************************************/ | 
|---|
| 927 |  | 
|---|
| 928 | U_CAPI UBool U_EXPORT2 | 
|---|
| 929 | uhash_compareUChars(const UHashTok key1, const UHashTok key2) { | 
|---|
| 930 | const UChar *p1 = (const UChar*) key1.pointer; | 
|---|
| 931 | const UChar *p2 = (const UChar*) key2.pointer; | 
|---|
| 932 | if (p1 == p2) { | 
|---|
| 933 | return TRUE; | 
|---|
| 934 | } | 
|---|
| 935 | if (p1 == NULL || p2 == NULL) { | 
|---|
| 936 | return FALSE; | 
|---|
| 937 | } | 
|---|
| 938 | while (*p1 != 0 && *p1 == *p2) { | 
|---|
| 939 | ++p1; | 
|---|
| 940 | ++p2; | 
|---|
| 941 | } | 
|---|
| 942 | return (UBool)(*p1 == *p2); | 
|---|
| 943 | } | 
|---|
| 944 |  | 
|---|
| 945 | U_CAPI UBool U_EXPORT2 | 
|---|
| 946 | uhash_compareChars(const UHashTok key1, const UHashTok key2) { | 
|---|
| 947 | const char *p1 = (const char*) key1.pointer; | 
|---|
| 948 | const char *p2 = (const char*) key2.pointer; | 
|---|
| 949 | if (p1 == p2) { | 
|---|
| 950 | return TRUE; | 
|---|
| 951 | } | 
|---|
| 952 | if (p1 == NULL || p2 == NULL) { | 
|---|
| 953 | return FALSE; | 
|---|
| 954 | } | 
|---|
| 955 | while (*p1 != 0 && *p1 == *p2) { | 
|---|
| 956 | ++p1; | 
|---|
| 957 | ++p2; | 
|---|
| 958 | } | 
|---|
| 959 | return (UBool)(*p1 == *p2); | 
|---|
| 960 | } | 
|---|
| 961 |  | 
|---|
| 962 | U_CAPI UBool U_EXPORT2 | 
|---|
| 963 | uhash_compareIChars(const UHashTok key1, const UHashTok key2) { | 
|---|
| 964 | const char *p1 = (const char*) key1.pointer; | 
|---|
| 965 | const char *p2 = (const char*) key2.pointer; | 
|---|
| 966 | if (p1 == p2) { | 
|---|
| 967 | return TRUE; | 
|---|
| 968 | } | 
|---|
| 969 | if (p1 == NULL || p2 == NULL) { | 
|---|
| 970 | return FALSE; | 
|---|
| 971 | } | 
|---|
| 972 | while (*p1 != 0 && uprv_tolower(*p1) == uprv_tolower(*p2)) { | 
|---|
| 973 | ++p1; | 
|---|
| 974 | ++p2; | 
|---|
| 975 | } | 
|---|
| 976 | return (UBool)(*p1 == *p2); | 
|---|
| 977 | } | 
|---|
| 978 |  | 
|---|
| 979 | /******************************************************************** | 
|---|
| 980 | * PUBLIC int32_t Support Functions | 
|---|
| 981 | ********************************************************************/ | 
|---|
| 982 |  | 
|---|
| 983 | U_CAPI int32_t U_EXPORT2 | 
|---|
| 984 | uhash_hashLong(const UHashTok key) { | 
|---|
| 985 | return key.integer; | 
|---|
| 986 | } | 
|---|
| 987 |  | 
|---|
| 988 | U_CAPI UBool U_EXPORT2 | 
|---|
| 989 | uhash_compareLong(const UHashTok key1, const UHashTok key2) { | 
|---|
| 990 | return (UBool)(key1.integer == key2.integer); | 
|---|
| 991 | } | 
|---|
| 992 |  | 
|---|