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I came across the word break problem which goes something like this:

Given an input string and a dictionary of words,segment the input string into a space-separated sequence of dictionary words if possible.

For example, if the input string is "applepie" and dictionary contains a standard set of English words,then we would return the string "apple pie" as output

Now I myself came up with a quadratic time solution. And I came across various other quadratic time solutions using DP.

However in Quora a user posted a linear time solution to this problem

I cant figure out how it comes out to be linear. Is their some mistake in the time complexity calculations? What is the best possible worst case time complexity for this problem. I am posting the most common DP solution here

String SegmentString(String input, Set<String> dict) {
    int len = input.length();
    for (int i = 1; i < len; i++) {
        String prefix = input.substring(0, i);
        if (dict.contains(prefix)) {
              String suffix = input.substring(i, len);
              if (dict.contains(suffix)) {
                  return prefix + " " + suffix;
              }
        }
    }
    return null;
}
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1  
How ambiguity should be resolved? expertsexchange => [expert, sex, change], [experts, exchange] –  mishadoff Dec 16 '13 at 8:57
    
The linear time solution works only in the case of two words. What is your requirement on that? The simplest general solution involves generating a power set of 2^n items, DP can make it faster to O(n^2). –  Thomas Jungblut Dec 16 '13 at 9:09
    
apparently another linear timed algo can be found on this link stackoverflow.com/questions/8793387/… look at the second answer –  Abhiroop Sarkar Dec 16 '13 at 10:39

1 Answer 1

up vote 0 down vote accepted

The 'linear' time algorithm that you linked here works as follows:

If the string is sharperneedle and dictionary is sharp, sharper, needle,

  1. It pushes sharp in the string.
  2. Then it sees that er is not in dictionary, but if we combine it with the last word added, then sharper exists. Hence it pops out the last element and pushes this in.

IMO the above logic fails for string eaterror and dictionary eat, eater, error.

Here er shall pop out eat from the list, and push in eater. The remaining string ror shall not be recognized and discarded.

As regards the code you posted, as mentioned in the comments, this works for only two words with one partition place.

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@Erti-ChrisEelmaa The description of the algorithm is as per the link quora.com/Programming-Interviews/… given by OP and not the code posted. –  user1990169 Dec 16 '13 at 12:27

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