Talk:Extendible hashing
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Implementations
[edit]I just found that gdbm implements this algorithm. Might be of interest for students. --phil (talk) 20:51, 26 June 2009 (UTC)
Ronald Fagin has his own page here on Wikipedia, how to link it? I ? Unicode (talk) 12:40, 10 September 2009 (UTC)
Sample Code
[edit]I think i found a bug in the implementation: What happens if during a split the items of the bucket can't be redistributed (i.e. all items stay in one bucket) because one additional bit is not enough to distinguish between the hashvalues of the key.
Example
I try to add subsequently keys whose hashvalues are (I use the most significant bits). The capacity of my buckets are 1.
100
110
in the beginning everything is empty
gd=0
[---] ---> [---] d=0
Adding 100
gd=0
[---] ---> [100] d=0
Adding 110
[---] ---> [100] + 110 d=0 bucket is full => initiate split
result of split: [100] d=1 [---] d=1
split according to most significant bit => *boom* all key-values stay in one bucket
the right thing to do would be doubling the directory more than once
or more algorithmically speaking: double size of directory until at least one value of the bucket to split is moved into the new bucket
situation after *one* split and *one* doubling of directory
gd=1
[0--] --- > [---] d=1
[1--] --- > [100] + 110 d=1
=> double directory and split *again* result of split [100] d=2 [110] d=2
gd=2
[00-] ---> [---] d=1
[01-] -------^
[10-] ---> [100] d=2
[11-] ---> [110] d=2
I'd suggest the following fix.
void put(K k, V v) {
Page<K, V> p = getPage(k);
if (p.full()) {
Page<K, V> p1;
Page<K, V> p2;
do {
p1 = new Page<K, V>();
p2 = new Page<K, V>();
// double directory
if (p.d == gd) {
List<Page<K, V>> pp2 = new ArrayList<EH2.Page<K, V>>(pp);
pp.addAll(pp2);
++gd;
}
// redistribute values
for (Map.Entry<K, V> entry : p.m.entrySet()) {
K k2 = entry.getKey();
V v2 = entry.getValue();
int h = k2.hashCode() & ((1 << gd) - 1);
if (((h >> p.d) & 1) == 1) {
p2.put(k2, v2);
} else {
p1.put(k2, v2);
}
}
// update directory
for (int i = 0; i < pp.size(); ++i) {
if (pp.get(i) == p) {
if (((i >> p.d) & 1) == 1) {
pp.set(i, p2);
} else {
pp.set(i, p1);
}
}
}
// try to add new value into correct page
int h = k.hashCode();
if (((h >> p.d) & 1) == 1) {
if (!p2.full()) {
p2.put(k, v);
}
} else {
if (!p1.full()) {
p1.put(k, v);
}
}
p1.d = p2.d = p.d + 1;
// if all values went to one page we have to do everything again
} while (p1.empty() || p2.empty());
} else {
p.put(k, v);
}
}
}
Of course you have to add something like an empty()-method which returns (m.size() == 0) into the page class