Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

This is a prefix hashing function. i want to count the number of collisions in this method but i am not sure how to do it. It seems like it might be simple but i just cant think of a great way to do it....

int HashTable_qp::preHash(string & key, int tableSize )
{
    string pad = "AA";
    //some words in the input are less than 3 letters
    //I choose to pad the string with A because all padded characters 
    //have same ascii val, which is low, and will hopefully alter the results less
    if (key.length() < 3)
    {
        key.append(pad);
    }
    return ( key[0] + 27 * key[1] + 729 * key[2] ) % tableSize;
}
share|improve this question
1  
create a histogram unsigned [tablesize], generate some (all) the possible strings and compute their hashval, and update the histogram accordingly histogram[hashval] +=1; – wildplasser Dec 5 '11 at 23:48
    
@wildplasser, that would be the easiest way. My answer would be faster. If it's not performance critical I'd go with wild's idea. (You should probably post that as an answer, to help others find it when they find this page.) – FakeRainBrigand Dec 5 '11 at 23:51

If it's an array as the underlying data structure do: int hash = preHash(&key, array.length); if(array[hash] != null) this.count++; If it's an array of linked lists do:

if(array[hash] != null && *(array[hash]) != null)
this.count++

If you only have access to the stl library I believe just testing that element is null before adding it would be enough after calling the hash function.

share|improve this answer
    
i am using stl's, can you show me how it would look taking stl's into consideration. – user977154 Dec 6 '11 at 1:09
    
Easiest way is to inherit it and override it call: HashTable_qt::PreHash in the derived class, but instantiate the derived class and assign it a value and give the derived class a field variable called CollisionCount and before you add a new value initialize it to 0 and after call it and it should have the new value if greater than 1 the function was called with a new key – Alexander Wood Dec 6 '11 at 20:10
    
int Prehash(string & key, int tableSize ) { HashMap_qt::Prehash(key, tablesize); CollisionCount++; } in main HashTable_qt2* map = new HashMap_qt2() map.CollisionCount = 0; map.Add(...); cout << map.CollisionCount; – Alexander Wood Dec 6 '11 at 20:14

create a histogram:

 unsigned histogram[tablesize] = {0};

generate some (all) possible strings and compute their hashval, and update the histogram accordingly:

for(iter=0; iter < somevalue; iter++) {
 hashval = hashfunc( string.iterate(iter) ); // I don't know c++
 histogram[hashval] +=1;
 }

Now you have to analyze the hashtable for lumps / clusters. Rule of thumb is that for (tablesize==iter), you expect about 30 % cells with count =1, and about 30 % empty; the rest has two or more.

If you sum all the (count*(count+1))/2, and divide by the tablesize, you should expect around 1.5. A bad hashfunction gives higher values, a perfect hash would only have cells with count=1 (and thus: ratio=1) With linear probing you should of course never use tablesize=niter, but make tablesize bigger, say twice as big. You can use the same metric (number of probes / number of entries), to analyse its performance, though.

UPDATE: a great introduction on hashfunctions and their performance can be found at http://www.strchr.com/hash_functions .

share|improve this answer

You can create an array of integers, each representing one hash. When you're done making the hashes loop back through the array in a nested loop. If you had the following array,

[0] -> 13
[1] -> 5
[2] -> 12
[3] -> 7
[4] -> 5

For each item i in 0..n, check items i+1..n for matches. In English that would be: check if each element equals any of the elements after it.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.