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I'm trying to write a program that, when given two strings, it 'juggles' a letter around to form synonyms. Here's a website that shows an example of it:

http://www.braingle.com/brainteasers/46611/letter-juggle.html

My task is to "write a program which — given a file containing pairs of synonyms and a second file containing a sequence of words from a dictionary — will produce as many pairs of words from the dictionary as possible that can be used to set the puzzle for each synonym pair."

These are the files - dictionary.txt and synonyms.txt.

When I juggle up a word, I check the dictionary to see if it's valid. So taking the words "boast" and "hip", when I juggle them up I can get "boat" and "ship" (which are synonyms).

Right now, I have taken two strings (nail and pin) and split them into a char array but I'm not sure how to juggle them to check if they are valid words.

I want to be able to add the letter "n" from "nail" to "pin" to give me "pinn", I want to then go through every combination of "pinn" and check if it's a valid word - if it is, I then check to see if "ail" can be a word, if not, then I move on to the next letter in "nail" pinn - > pinn, pnin, pnni, pnin......

public class LetterJuggle {

/**
 * @param args the command line arguments
 */
public static void main(String[] args) {
    // TODO code application logic here
    try{
        // Open the file that is the first 
        // command line parameter
        FileInputStream fstream = new FileInputStream("Dictionary.txt"); //Dictionary.txt //Synonyms.txt
        // Get the object of DataInputStream
        DataInputStream in = new DataInputStream(fstream);
        BufferedReader br = new BufferedReader(new InputStreamReader(in));
        String strLine;
        int size =0;
        while ((strLine = br.readLine()) != null){
            size++;
        }

        String [] dictionary = new String [size];

        fstream = new FileInputStream("Dictionary.txt");
        in = new DataInputStream(fstream);
        br = new BufferedReader(new InputStreamReader(in));
        size = 0;
        //Read File Line By Line
        while ((strLine = br.readLine()) != null){
            // Print the content on the console
            dictionary[size] = strLine;
            size++; 
        }

        fstream = new FileInputStream("Synonyms.txt");
        in = new DataInputStream(fstream);
        br = new BufferedReader(new InputStreamReader(in));

        while ((strLine = br.readLine()) != null){
            //System.out.println(strLine);
            String [] words = strLine.split("\\s+");
            for(int i =0; i < words.length; i++){
                //System.out.println(words[i]);
            }
            char[] ch_array_1 = words[0].toCharArray();
            char[] ch_array_2 = words[1].toCharArray();

            for(int i =0; i < ch_array_1.length; i++){
                System.out.print(ch_array_1[i] + " ");
            }
            System.out.println();
            for(int i =0; i < ch_array_2.length; i++){
                System.out.print(ch_array_2[i] + " ");
            }
            System.out.println();
        }
        //Close the input stream
        in.close();
    }catch(Exception e){//Catch exception if any
        System.err.println("Error: " + e.getMessage());
    }    


}

}

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closed as not a real question by Joachim Sauer, Dante is not a Geek, ataylor, mc10, Stephen Canon Dec 19 '12 at 17:22

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

5  
What have you tried? –  Simz Dec 18 '12 at 14:58
1  
@PradeepSimha All I have so far is a char array of both strings. I'm just looking a good way to juggle the letters and check if they are valid. I'm not necessarily asking for code. –  Adegoke A Dec 18 '12 at 15:01
    
did you mean array rotation? –  Simz Dec 18 '12 at 15:05
    
Please show your program here then we can help you easily –  Abhishekkumar Dec 18 '12 at 15:06
1  
@AdegokeA, please see my answer –  Simz Dec 18 '12 at 15:17

2 Answers 2

Try this, permutation of array:Permutation of Array

Posted code here, so that even link is outdated, you can refer here. I think this helps you

import java.util.Iterator;
import java.util.NoSuchElementException;
import java.lang.reflect.Array;

public class Permute implements Iterator {

private final int size;
private final Object [] elements; // copy of original 0 private final Object ar; // array for output, private final int [] permutation; // perm of nums 1..si

private boolean next = true;

// int[], double[] array won't work :-(
public Permute (Object [] e) {
size = e.length;
elements = new Object [size]; // not suitable for System.arraycopy (e, 0, elements, 0, size);
ar = Array.newInstance (e.getClass().getComponentType System.arraycopy (e, 0, ar, 0, size);
permutation = new int [size+1];
for (int i=0; i permutation [i]=i;
}
}

private void formNextPermutation () {
for (int i=0; i // i+1 because perm[0] always = 0
// perm[]-1 because the numbers 1..size are being Array.set (ar, i, elements[permutation[i+1]-1]);
}
}

public boolean hasNext() {
return next;
}

public void remove() throws UnsupportedOperationExceptio throw new UnsupportedOperationException();
}

private void swap (final int i, final int j) {
final int x = permutation[i];
permutation[i] = permutation [j];
permutation[j] = x;
}

// does not throw NoSuchElement; it wraps around!
public Object next() throws NoSuchElementException {

  formNextPermutation ();  // copy original elements   

  int i = size-1;                                      
  while (permutation[i]>permutation[i+1]) i--;         

  if (i==0) {                                          
     next = false;                                     
     for (int j=0; j<size+1; j++) {                    
        permutation [j]=j;                             
     }                                                 
     return ar;                                        
  }                                                    

  int j = size;                                        

  while (permutation[i]>permutation[j]) j--;           
  swap (i,j);                                          
  int r = size;                                        
  int s = i+1;                                         
  while (r>s) { swap(r,s); r--; s++; }                 

  return ar;                                           

}

 public String toString () {                             
  final int n = Array.getLength(ar);                   
  final StringBuffer sb = new StringBuffer ("[");      
  for (int j=0; j<n; j++) {                            
     sb.append (Array.get(ar,j).toString());           
     if (j<n-1) sb.append (",");                       
  }                                                    
  sb.append("]");                                      
  return new String (sb);                              

}

public static void main (String [] args) {
for (Iterator i = new Permute(args); i.hasNext(); ) { final String [] a = (String []) i.next();
System.out.println (i);
}
}
}

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1  
Please excuse me for code formatting –  Simz Dec 18 '12 at 15:18

It's not necessarily efficient, but it's an idea. Use some (2) loops and take one letter form first word and add it at all positions (from index 0 to after last letter index) and check if both are valid words (the word with the removed letter and the newly formed word). (some pseudocode)

for (Letter l : word1)
{
    Word word1temp = extract_Letter_l_from_word(l,word1);
    check if word1temp and word2 are synonyms
    //else
    for (all letter indexes i of word2)
    {
         form word with letter L at position i and word2 form a synonim of word2
         // also maybe do this in the mirror for word2 and word1
    }
}
share|improve this answer
1  
Yes, that's what I had in mind but it just looked really long. But I can do it if there;s no other way. Thanks. –  Adegoke A Dec 18 '12 at 15:07
1  
I am sure there may be a more efficient/smart way to solve this, but this was the first idea that came to mind –  acostache Dec 18 '12 at 15:10

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