| 1 | // This may look like C code, but it is really -*- C++ -*-
 | 
|---|
| 2 | 
 | 
|---|
| 3 | // This is a hash table. Some implementations of the STL have one, like the
 | 
|---|
| 4 | // Modena Standard Library.
 | 
|---|
| 5 | 
 | 
|---|
| 6 | #ifndef HASHTABLE_H_SEEN
 | 
|---|
| 7 | #define HASHTABLE_H_SEEN
 | 
|---|
| 8 | 
 | 
|---|
| 9 | #include "machdefs.h"
 | 
|---|
| 10 | #include "pexceptions.h"
 | 
|---|
| 11 | 
 | 
|---|
| 12 | namespace SOPHYA {
 | 
|---|
| 13 | 
 | 
|---|
| 14 | //! \cond
 | 
|---|
| 15 | template <class T, class K>
 | 
|---|
| 16 | struct HashtableEntry {
 | 
|---|
| 17 |   uint_4         hash;
 | 
|---|
| 18 |   K              key;
 | 
|---|
| 19 |   T              value;
 | 
|---|
| 20 |   HashtableEntry<T,K> *next;
 | 
|---|
| 21 | };
 | 
|---|
| 22 | //! \endcond
 | 
|---|
| 23 | 
 | 
|---|
| 24 | template <class T, class K>
 | 
|---|
| 25 | class Hashtable {
 | 
|---|
| 26 | public:
 | 
|---|
| 27 |   typedef uint_4 (*HashFunction)(K const& key);
 | 
|---|
| 28 | 
 | 
|---|
| 29 |   Hashtable(uint_4 initialCapacity, float loadFactor) {
 | 
|---|
| 30 |     Init(initialCapacity,loadFactor);
 | 
|---|
| 31 |   }
 | 
|---|
| 32 |   
 | 
|---|
| 33 |   Hashtable(int initialCapacity) {
 | 
|---|
| 34 |     Init(initialCapacity, 0.75);
 | 
|---|
| 35 |   }
 | 
|---|
| 36 |   
 | 
|---|
| 37 |   Hashtable() {
 | 
|---|
| 38 |     Init(101, 0.75);
 | 
|---|
| 39 |   }
 | 
|---|
| 40 | 
 | 
|---|
| 41 |   ~Hashtable() {
 | 
|---|
| 42 |     for (int i = count ; i-- > 0 ;) {
 | 
|---|
| 43 |       for (HashtableEntry<T,K>* e = table[i] ; e != NULL ; ) {
 | 
|---|
| 44 |         HashtableEntry<T,K>* ee = e->next;
 | 
|---|
| 45 |         delete e;
 | 
|---|
| 46 |         e = ee;
 | 
|---|
| 47 |       }
 | 
|---|
| 48 |     }
 | 
|---|
| 49 |     delete[] table;
 | 
|---|
| 50 |   }
 | 
|---|
| 51 | 
 | 
|---|
| 52 |   void setHash(HashFunction f) {
 | 
|---|
| 53 |     hf = f;
 | 
|---|
| 54 |   }
 | 
|---|
| 55 | 
 | 
|---|
| 56 |   uint_4 size() {
 | 
|---|
| 57 |     return count;
 | 
|---|
| 58 |   }
 | 
|---|
| 59 | 
 | 
|---|
| 60 |   bool contains(T const& value) {
 | 
|---|
| 61 |     for (int i = count ; i-- > 0 ;) {
 | 
|---|
| 62 |       for (HashtableEntry<T,K>* e = table[i] ; e != NULL ; e = e->next) {
 | 
|---|
| 63 |         if (e->value == value) {
 | 
|---|
| 64 |           return true;
 | 
|---|
| 65 |         }
 | 
|---|
| 66 |       }
 | 
|---|
| 67 |     }
 | 
|---|
| 68 |     return false;
 | 
|---|
| 69 |   }
 | 
|---|
| 70 |   
 | 
|---|
| 71 |   bool containsKey(K const& key) {
 | 
|---|
| 72 |     uint_4 hash = hf(key);
 | 
|---|
| 73 |     uint_4 index = (hash & 0x7FFFFFFF) % length;
 | 
|---|
| 74 |     for (HashtableEntry<T,K>* e = table[index] ; e != NULL ; e = e->next) {
 | 
|---|
| 75 |       if ((e->hash == hash) && e->key == key) {
 | 
|---|
| 76 |         return true;
 | 
|---|
| 77 |       }
 | 
|---|
| 78 |     }
 | 
|---|
| 79 |     return false;
 | 
|---|
| 80 |   }
 | 
|---|
| 81 |   
 | 
|---|
| 82 |   T const& get(K const& key) {
 | 
|---|
| 83 |     uint_4 hash = hf(key);
 | 
|---|
| 84 |     uint_4 index = (hash & 0x7FFFFFFF) % length;
 | 
|---|
| 85 |     for (HashtableEntry<T,K>* e = table[index] ; e != NULL ; e = e->next) {
 | 
|---|
| 86 |       if ((e->hash == hash) && e->key == key) {
 | 
|---|
| 87 |         return e->value;
 | 
|---|
| 88 |       }
 | 
|---|
| 89 |     }
 | 
|---|
| 90 |     throw(NotFoundExc("Hashtable::get"));
 | 
|---|
| 91 |   }
 | 
|---|
| 92 |   
 | 
|---|
| 93 |   
 | 
|---|
| 94 |   void put(K const& key, T const& value) {
 | 
|---|
| 95 |     // Makes sure the key is not already in the hashtable.
 | 
|---|
| 96 |     uint_4 hash = hf(key);
 | 
|---|
| 97 |     uint_4 index = (hash & 0x7FFFFFFF) % length;
 | 
|---|
| 98 |     for (HashtableEntry<T,K>* e = table[index] ; e != NULL ; e = e->next) {
 | 
|---|
| 99 |       if ((e->hash == hash) && e-> key == key) {
 | 
|---|
| 100 |         //T const& old = e.value;
 | 
|---|
| 101 |         e->value = value;
 | 
|---|
| 102 |         //return old;
 | 
|---|
| 103 |       }
 | 
|---|
| 104 |     }
 | 
|---|
| 105 |     
 | 
|---|
| 106 |     if (count >= threshold) {
 | 
|---|
| 107 |       // Rehash the table if the threshold is exceeded
 | 
|---|
| 108 |       rehash();
 | 
|---|
| 109 |       return;// put(key, value);
 | 
|---|
| 110 |     } 
 | 
|---|
| 111 | 
 | 
|---|
| 112 |     // Creates the new entry.
 | 
|---|
| 113 |     HashtableEntry<T,K>* e = new HashtableEntry<T,K>;
 | 
|---|
| 114 |     e->hash = hash;
 | 
|---|
| 115 |     e->key = key;
 | 
|---|
| 116 |     e->value = value;
 | 
|---|
| 117 |     e->next = table[index];
 | 
|---|
| 118 |     table[index] = e;
 | 
|---|
| 119 |     count++;
 | 
|---|
| 120 |     //return null;
 | 
|---|
| 121 |   }
 | 
|---|
| 122 |   
 | 
|---|
| 123 |   
 | 
|---|
| 124 |   void remove(K const& key) {
 | 
|---|
| 125 |     uint_4 hash = hf(key);
 | 
|---|
| 126 |     uint_4 index = (hash & 0x7FFFFFFF) % tab.length;
 | 
|---|
| 127 |     for (HashtableEntry<T,K>* e = table[index], prev = null ; e != null ; prev = e, e = e->next) {
 | 
|---|
| 128 |       if ((e>hash == hash) && e>key == key) {
 | 
|---|
| 129 |         if (prev != NULL) {
 | 
|---|
| 130 |           prev->next = e->next;
 | 
|---|
| 131 |         } else {
 | 
|---|
| 132 |           table[index] = e->next;
 | 
|---|
| 133 |         }
 | 
|---|
| 134 |         count--;
 | 
|---|
| 135 |         //return e.value;
 | 
|---|
| 136 |       }
 | 
|---|
| 137 |     }
 | 
|---|
| 138 |     //return null;
 | 
|---|
| 139 |   }
 | 
|---|
| 140 |   
 | 
|---|
| 141 | private:
 | 
|---|
| 142 |   
 | 
|---|
| 143 |   void Init(uint_4 initialCapacity, float loadFactor) {
 | 
|---|
| 144 |     if ((initialCapacity == 0) || (loadFactor <= 0.0)) {
 | 
|---|
| 145 |       throw ParmError("Hashtable::Hashtable");
 | 
|---|
| 146 |     }
 | 
|---|
| 147 |     this->loadFactor = loadFactor;
 | 
|---|
| 148 |     this->length = initialCapacity;
 | 
|---|
| 149 |     this->count = 0;
 | 
|---|
| 150 |     table = new (HashtableEntry<T,K>*[initialCapacity]);
 | 
|---|
| 151 |     for (int i=0; i<length; i++) table[i] = NULL;
 | 
|---|
| 152 |     threshold = (uint_4)(initialCapacity * loadFactor);
 | 
|---|
| 153 |     hf = defaultHash;
 | 
|---|
| 154 |   }
 | 
|---|
| 155 | 
 | 
|---|
| 156 |   static uint_4 defaultHash(K const& key) {
 | 
|---|
| 157 |     if (sizeof(K) <= sizeof(void*))
 | 
|---|
| 158 |       return (uint_4)(uint_8)(key);
 | 
|---|
| 159 |     else
 | 
|---|
| 160 |       return (uint_4)(uint_8)(&key);
 | 
|---|
| 161 |   }
 | 
|---|
| 162 | 
 | 
|---|
| 163 |   void rehash() {
 | 
|---|
| 164 |     uint_4 oldCapacity = length;
 | 
|---|
| 165 |     HashtableEntry<T,K>** oldTable = table;
 | 
|---|
| 166 | 
 | 
|---|
| 167 |     uint_4 newCapacity = oldCapacity * 2 + 1;
 | 
|---|
| 168 |     HashtableEntry<T,K>** newTable = new (HashtableEntry<T,K>*[newCapacity]);
 | 
|---|
| 169 | 
 | 
|---|
| 170 |     threshold = (int)(newCapacity * loadFactor);
 | 
|---|
| 171 |     table = newTable;
 | 
|---|
| 172 |     length = newCapacity;
 | 
|---|
| 173 | 
 | 
|---|
| 174 |     for (int i = oldCapacity ; i-- > 0 ;) {
 | 
|---|
| 175 |       for (HashtableEntry<T,K>* old = oldTable[i] ; old != NULL ; ) {
 | 
|---|
| 176 |         HashtableEntry<T,K>* e = old;
 | 
|---|
| 177 |         old = old->next;
 | 
|---|
| 178 |         
 | 
|---|
| 179 |         int index = (e->hash & 0x7FFFFFFF) % newCapacity;
 | 
|---|
| 180 |         e->next = newTable[index];
 | 
|---|
| 181 |         newTable[index] = e;
 | 
|---|
| 182 |       }
 | 
|---|
| 183 |     }
 | 
|---|
| 184 |     delete[] oldTable;
 | 
|---|
| 185 |   }
 | 
|---|
| 186 |   
 | 
|---|
| 187 |   HashtableEntry<T,K>  **table;
 | 
|---|
| 188 |   uint_4         length;
 | 
|---|
| 189 |   uint_4         count;
 | 
|---|
| 190 |   uint_4         threshold;
 | 
|---|
| 191 |   float          loadFactor;
 | 
|---|
| 192 |   HashFunction   hf;
 | 
|---|
| 193 | };
 | 
|---|
| 194 | }
 | 
|---|
| 195 | 
 | 
|---|
| 196 | #endif
 | 
|---|