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We say that we can "hop" from the word w1 to the word w2 if they are "sufficiently close". We define w2 to be sufficiently close to w1 if one of the following holds:

  1. w2 is obtained from w1 by deleting one letter.

  2. w2 is obtained from w1 by replacing one of the letters in w1 by some letter that appears to its right in w1 and which is also to its right in alphabetical order.

I have no idea how to check if 2. is fulfilled. To check if 1. is possible this is my function:

bool check1(string w1, string w2){    
    if(w2.length - w1.length != 1){
        return false;
    }
    for(int i = 0,int j = 0;i < w2.length;i++;j++){
        if(w2[i] == w1[j]){//do  nothing
        }
        else if(i == j){
            j++;
        }
        else{
            return false;
        }
    }
    return true;
}

Given two words w1 and w2, how do we check if we can 'hop' from w1 to w2?

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1  
Is this your own definition or is it required? You may be interested in en.wikipedia.org/wiki/Levenshtein_distance –  GManNickG Oct 23 '12 at 2:38
    
@GManNickG its not my own definition its from this problem: opc.iarcs.org.in/index.php/problems/WORDHOP –  A.06 Oct 23 '12 at 2:40
    
Levenshtein distance is interesting in this context, but the above should be much simpler to implement. –  jogojapan Oct 23 '12 at 2:40
2  
It might sound like a simple problem but is one of the larger class of problems in bioinformatics. If you just erase letters from the end it does not matter,and is trivial but if you randomly delete letters from the middle finding match becomes difficult and time consuming. Of course if you use brute force you will eventually get it but it will take a long time for longer strings. If you want to do same for sentences consider using technique called cosine similarity. –  specialscope Oct 23 '12 at 2:47
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1 Answer

up vote 1 down vote accepted

Your algorithm for case (1) looks fine to me.

To check case (2), you can first check whether w2 has the same length as w1 and differs by exactly one character. If it does, check whether w2's character is alphabetically greater than w1's character, and whether w2's character also appears following that position in w1 (or, equivalently, in w2).

You may also want to add case (0): w1 and w2 are the same.

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Thank you for your answer, i think it will do the trick. But there is no need of case (0) because all the inputs are going to be different –  A.06 Oct 23 '12 at 2:53
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