summaryrefslogtreecommitdiff
path: root/klm/util/probing_hash_table.hh
blob: ea228dd9ae4a3f10ec2c7ec17341943f612755b5 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
#ifndef UTIL_PROBING_HASH_TABLE_H
#define UTIL_PROBING_HASH_TABLE_H

#include "util/exception.hh"
#include "util/scoped.hh"

#include <algorithm>
#include <cstddef>
#include <functional>
#include <vector>

#include <assert.h>
#include <stdint.h>

namespace util {

/* Thrown when table grows too large */
class ProbingSizeException : public Exception {
  public:
    ProbingSizeException() throw() {}
    ~ProbingSizeException() throw() {}
};

// std::identity is an SGI extension :-(
struct IdentityHash {
  template <class T> T operator()(T arg) const { return arg; }
};

template <class EntryT, class HashT, class EqualT> class AutoProbing;

/* Non-standard hash table
 * Buckets must be set at the beginning and must be greater than maximum number
 * of elements, else it throws ProbingSizeException.
 * Memory management and initialization is externalized to make it easier to
 * serialize these to disk and load them quickly.
 * Uses linear probing to find value.
 * Only insert and lookup operations.  
 */
template <class EntryT, class HashT, class EqualT = std::equal_to<typename EntryT::Key> > class ProbingHashTable {
  public:
    typedef EntryT Entry;
    typedef typename Entry::Key Key;
    typedef const Entry *ConstIterator;
    typedef Entry *MutableIterator;
    typedef HashT Hash;
    typedef EqualT Equal;

    static uint64_t Size(uint64_t entries, float multiplier) {
      uint64_t buckets = std::max(entries + 1, static_cast<uint64_t>(multiplier * static_cast<float>(entries)));
      return buckets * sizeof(Entry);
    }

    // Must be assigned to later.  
    ProbingHashTable() : entries_(0)
#ifdef DEBUG
      , initialized_(false)
#endif
    {}

    ProbingHashTable(void *start, std::size_t allocated, const Key &invalid = Key(), const Hash &hash_func = Hash(), const Equal &equal_func = Equal())
      : begin_(reinterpret_cast<MutableIterator>(start)),
        buckets_(allocated / sizeof(Entry)),
        end_(begin_ + buckets_),
        invalid_(invalid),
        hash_(hash_func),
        equal_(equal_func),
        entries_(0)
#ifdef DEBUG
        , initialized_(true)
#endif
    {}

    void Relocate(void *new_base) {
      begin_ = reinterpret_cast<MutableIterator>(new_base);
      end_ = begin_ + buckets_;
    }

    template <class T> MutableIterator Insert(const T &t) {
#ifdef DEBUG
      assert(initialized_);
#endif
      UTIL_THROW_IF(++entries_ >= buckets_, ProbingSizeException, "Hash table with " << buckets_ << " buckets is full.");
      return UncheckedInsert(t);
    }

    // Return true if the value was found (and not inserted).  This is consistent with Find but the opposite if hash_map!
    template <class T> bool FindOrInsert(const T &t, MutableIterator &out) {
#ifdef DEBUG
      assert(initialized_);
#endif
      for (MutableIterator i = Ideal(t);;) {
        Key got(i->GetKey());
        if (equal_(got, t.GetKey())) { out = i; return true; }
        if (equal_(got, invalid_)) {
          UTIL_THROW_IF(++entries_ >= buckets_, ProbingSizeException, "Hash table with " << buckets_ << " buckets is full.");
          *i = t;
          out = i;
          return false;
        }
        if (++i == end_) i = begin_;
      }   
    }

    void FinishedInserting() {}

    // Don't change anything related to GetKey,  
    template <class Key> bool UnsafeMutableFind(const Key key, MutableIterator &out) {
#ifdef DEBUG
      assert(initialized_);
#endif
      for (MutableIterator i(begin_ + (hash_(key) % buckets_));;) {
        Key got(i->GetKey());
        if (equal_(got, key)) { out = i; return true; }
        if (equal_(got, invalid_)) return false;
        if (++i == end_) i = begin_;
      }
    }

    // Like UnsafeMutableFind, but the key must be there.
    template <class Key> MutableIterator UnsafeMutableMustFind(const Key key) {
       for (MutableIterator i(begin_ + (hash_(key) % buckets_));;) {
        Key got(i->GetKey());
        if (equal_(got, key)) { return i; }
        assert(!equal_(got, invalid_));
        if (++i == end_) i = begin_;
      }
    }


    template <class Key> bool Find(const Key key, ConstIterator &out) const {
#ifdef DEBUG
      assert(initialized_);
#endif
      for (ConstIterator i(begin_ + (hash_(key) % buckets_));;) {
        Key got(i->GetKey());
        if (equal_(got, key)) { out = i; return true; }
        if (equal_(got, invalid_)) return false;
        if (++i == end_) i = begin_;
      }    
    }

    // Like Find but we're sure it must be there.
    template <class Key> ConstIterator MustFind(const Key key) const {
      for (ConstIterator i(begin_ + (hash_(key) % buckets_));;) {
        Key got(i->GetKey());
        if (equal_(got, key)) { return i; }
        assert(!equal_(got, invalid_));
        if (++i == end_) i = begin_;
      }
    }

    void Clear() {
      Entry invalid;
      invalid.SetKey(invalid_);
      std::fill(begin_, end_, invalid);
      entries_ = 0;
    }

    // Return number of entries assuming no serialization went on.
    std::size_t SizeNoSerialization() const {
      return entries_;
    }

    // Return memory size expected by Double.
    std::size_t DoubleTo() const {
      return buckets_ * 2 * sizeof(Entry);
    }

    // Inform the table that it has double the amount of memory.
    // Pass clear_new = false if you are sure the new memory is initialized
    // properly (to invalid_) i.e. by mremap.
    void Double(void *new_base, bool clear_new = true) {
      begin_ = static_cast<MutableIterator>(new_base);
      MutableIterator old_end = begin_ + buckets_;
      buckets_ *= 2;
      end_ = begin_ + buckets_;
      if (clear_new) {
        Entry invalid;
        invalid.SetKey(invalid_);
        std::fill(old_end, end_, invalid);
      }
      std::vector<Entry> rolled_over;
      // Move roll-over entries to a buffer because they might not roll over anymore.  This should be small.
      for (MutableIterator i = begin_; i != old_end && !equal_(i->GetKey(), invalid_); ++i) {
        rolled_over.push_back(*i);
        i->SetKey(invalid_);
      }
      /* Re-insert everything.  Entries might go backwards to take over a
       * recently opened gap, stay, move to new territory, or wrap around.   If
       * an entry wraps around, it might go to a pointer greater than i (which
       * can happen at the beginning) and it will be revisited to possibly fill
       * in a gap created later.
       */
      Entry temp;
      for (MutableIterator i = begin_; i != old_end; ++i) {
        if (!equal_(i->GetKey(), invalid_)) {
          temp = *i;
          i->SetKey(invalid_);
          UncheckedInsert(temp);
        }
      }
      // Put the roll-over entries back in.
      for (typename std::vector<Entry>::const_iterator i(rolled_over.begin()); i != rolled_over.end(); ++i) {
        UncheckedInsert(*i);
      }
    }

    // Mostly for tests, check consistency of every entry.
    void CheckConsistency() {
      MutableIterator last;
      for (last = end_ - 1; last >= begin_ && !equal_(last->GetKey(), invalid_); --last) {}
      UTIL_THROW_IF(last == begin_, ProbingSizeException, "Completely full");
      MutableIterator i;
      // Beginning can be wrap-arounds.
      for (i = begin_; !equal_(i->GetKey(), invalid_); ++i) {
        MutableIterator ideal = Ideal(*i);
        UTIL_THROW_IF(ideal > i && ideal <= last, Exception, "Inconsistency at position " << (i - begin_) << " should be at " << (ideal - begin_));
      }
      MutableIterator pre_gap = i;
      for (; i != end_; ++i) {
        if (equal_(i->GetKey(), invalid_)) {
          pre_gap = i;
          continue;
        }
        MutableIterator ideal = Ideal(*i);
        UTIL_THROW_IF(ideal > i || ideal <= pre_gap, Exception, "Inconsistency at position " << (i - begin_) << " with ideal " << (ideal - begin_));
      }
    }

  private:
    friend class AutoProbing<Entry, Hash, Equal>;

    template <class T> MutableIterator Ideal(const T &t) {
      return begin_ + (hash_(t.GetKey()) % buckets_);
    }

    template <class T> MutableIterator UncheckedInsert(const T &t) {
      for (MutableIterator i(Ideal(t));;) {
        if (equal_(i->GetKey(), invalid_)) { *i = t; return i; }
        if (++i == end_) { i = begin_; }
      }
    }

    MutableIterator begin_;
    std::size_t buckets_;
    MutableIterator end_;
    Key invalid_;
    Hash hash_;
    Equal equal_;
    std::size_t entries_;
#ifdef DEBUG
    bool initialized_;
#endif
};

// Resizable linear probing hash table.  This owns the memory.  
template <class EntryT, class HashT, class EqualT = std::equal_to<typename EntryT::Key> > class AutoProbing {
  private:
    typedef ProbingHashTable<EntryT, HashT, EqualT> Backend;
  public:
    static std::size_t MemUsage(std::size_t size, float multiplier = 1.5) {
      return Backend::Size(size, multiplier);
    }

    typedef EntryT Entry;
    typedef typename Entry::Key Key;
    typedef const Entry *ConstIterator;
    typedef Entry *MutableIterator;
    typedef HashT Hash;
    typedef EqualT Equal;

    AutoProbing(std::size_t initial_size = 10, const Key &invalid = Key(), const Hash &hash_func = Hash(), const Equal &equal_func = Equal()) :
      allocated_(Backend::Size(initial_size, 1.5)), mem_(util::MallocOrThrow(allocated_)), backend_(mem_.get(), allocated_, invalid, hash_func, equal_func) {
      threshold_ = initial_size * 1.2;
      Clear();
    }

    // Assumes that the key is unique.  Multiple insertions won't cause a failure, just inconsistent lookup.
    template <class T> MutableIterator Insert(const T &t) {
      DoubleIfNeeded();
      return backend_.UncheckedInsert(t);
    }

    template <class T> bool FindOrInsert(const T &t, MutableIterator &out) {
      DoubleIfNeeded();
      return backend_.FindOrInsert(t, out);
    }

    template <class Key> bool UnsafeMutableFind(const Key key, MutableIterator &out) {
      return backend_.UnsafeMutableFind(key, out);
    }

    template <class Key> MutableIterator UnsafeMutableMustFind(const Key key) {
      return backend_.UnsafeMutableMustFind(key);
    }

    template <class Key> bool Find(const Key key, ConstIterator &out) const {
      return backend_.Find(key, out);
    }

    template <class Key> ConstIterator MustFind(const Key key) const {
      return backend_.MustFind(key);
    }

    std::size_t Size() const {
      return backend_.SizeNoSerialization();
    }

    void Clear() {
      backend_.Clear();
    }

  private:
    void DoubleIfNeeded() {
      if (Size() < threshold_)
        return;
      mem_.call_realloc(backend_.DoubleTo());
      allocated_ = backend_.DoubleTo();
      backend_.Double(mem_.get());
      threshold_ *= 2;
    }

    std::size_t allocated_;
    util::scoped_malloc mem_;
    Backend backend_;
    std::size_t threshold_;
};

} // namespace util

#endif // UTIL_PROBING_HASH_TABLE_H