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hello guys i was given homework problem where it asks me to find all distinct substring of a string. I have implemented a method which will tell you all the substrings of string but i need a help figuring out how to not count one which is already counted once as substring because assignment is to find distinct one.

public int printSubstrings1(int length)
{ 
    for(int i=0; i<text.length()-length+1;i++)
    {
        String sub = text.substring(i,length+i);

        counter++;
    }
    return counter;

}

here i am passing the length of substrings that i want from te string given. i am doing that through another method.

so example string given is "fred" than the distinct substrings will be 10. my method will output right answer since the string does not contain any repeated letters. i am stuck on the part where i do get repeated substrings.

if i input fred. this is what my method will output

length 1
f
r
e
d
length 2
fr
re
ed
length 3
fre
red
length 4
fred

share|improve this question
    
Put them in a Set - "A Set is a collection that contains no duplicate elements" –  jlordo Nov 3 '12 at 21:41
    
good idea thanks by set you mean array right. than how would i check if the string already exist in it. since the array does not have . contains method in it class. –  Dfsdfsdf Dsfsdfdsf Nov 3 '12 at 21:41
    
    
can you please provide example of Set. –  Dfsdfsdf Dsfsdfdsf Nov 3 '12 at 21:43
    
java.util.HashSet, for example. –  Daniel Fischer Nov 3 '12 at 21:44

4 Answers 4

The solution consists of constructing the suffix array and then finding the number of distinct substrings based on the Longest Common Prefixes.

One key observation here is that:

If you look through the prefixes of each suffix of a string, you have covered all substrings of that string.

Let us take an example: BANANA

Suffixes are: 0) BANANA 1) ANANA 2) NANA 3) ANA 4) NA 5) A

It would be a lot easier to go through the prefixes if we sort the above set of suffixes, as we can skip the repeated prefixes easily.

Sorted set of suffixes: 5) A 3) ANA 1) ANANA 0) BANANA 4) NA 2) NANA

From now on,

LCP = Longest Common Prefix of 2 strings.

Initialize

ans = length(first suffix) = length("A") = 1.

Now consider the consecutive pairs of suffixes, i.e, [A, ANA], [ANA, ANANA], [ANANA, BANANA], etc. from the above set of sorted suffixes.

We can see that, LCP("A", "ANA") = "A".

All characters that are not part of the common prefix contribute to a distinct substring. In the above case, they are 'N' and 'A'. So they should be added to ans.

So we have, 1 2 ans += length("ANA") - LCP("A", "ANA") ans = ans + 3 - 1 = ans + 2 = 3

Do the same for the next pair of consecutive suffixes: ["ANA", "ANANA"]

1 2 3 4 LCP("ANA", "ANANA") = "ANA". ans += length("ANANA") - length(LCP) => ans = ans + 5 - 3 => ans = 3 + 2 = 5.

Similarly, we have:

1 2 LCP("ANANA", "BANANA") = 0 ans = ans + length("BANANA") - 0 = 11

1 2 LCP("BANANA", "NA") = 0 ans = ans + length("NA") - 0 = 13

1 2 LCP("NA", "NANA") = 2 ans = ans + length("NANA") - 2 = 15

Hence the number of distinct substrings for the string "BANANA" = 15.

share|improve this answer

Here the example with a Set

public int printSubstrings1(int length) {
    Set<String> set = new HashSet<String>();
    for(int i=0; i < text.length() - length + 1; i++) {
        String sub = text.substring(i,length+i);
        set.add(sub);
    }
    for (String str : set) {
        System.out.println(str);
    }
    return set.size();
}
share|improve this answer

Insert any new sub string into an array and check if it is already available available there don't add it to the array else do. When done loop through the array and print out the distinct sub strings.

To check if an element exists in an array create a function that takes an array and a value as parameters. It would loop through the array looking for the value if found return true. Out of the loop return false.

e.g.

public static boolean(String target, String[] arr)
{
  for(int i = 0; i < arr.length; i++){
      if(arr[i].equals(target))
         return true;
  }
   return false;
}
share|improve this answer
    
If your array has uninitialized cells, this will throw a NullPointerException –  jlordo Nov 3 '12 at 21:52
public ArrayList<String> getAllUniqueSubset(String str) {
        ArrayList<String> set = new ArrayList<String>();
        for (int i = 0; i < str.length(); i++) {
            for (int j = 0; j < str.length() - i; j++) {
                String elem = str.substring(j, j + (i+1));
                if (!set.contains(elem)) {
                    set.add(elem);
                }
            }
        }
        return set;
    }
share|improve this answer
1  
Your answer would be much more helpful if you would add some comments –  user3413108 Jun 23 at 18:08

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