20d0bb2c69
# Conflicts: # Data Structures/HashMap/HashMap.java # Huffman.java # Misc/FloydTriangle.java # Misc/Huffman.java # Misc/InsertDeleteInArray.java # Misc/RootPrecision.java # Misc/ft.java # Misc/root_precision.java # Others/FloydTriangle.java # Others/Huffman.java # Others/insert_delete_in_array.java # Others/root_precision.java # insert_delete_in_array.java
159 lines
4.9 KiB
Java
159 lines
4.9 KiB
Java
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import java.util.Comparator;
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import java.util.Iterator;
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import java.util.LinkedList;
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import java.util.List;
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import java.util.Scanner;
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import java.util.Stack;
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/**
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*
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* @author Mayank Kumar (mk9440)
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*/
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/*
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Output :
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Enter number of distinct letters
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6
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Enter letters with its frequncy to encode
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Enter letter : a
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Enter frequncy : 45
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Enter letter : b
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Enter frequncy : 13
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Enter letter : c
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Enter frequncy : 12
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Enter letter : d
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Enter frequncy : 16
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Enter letter : e
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Enter frequncy : 9
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Enter letter : f
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Enter frequncy : 5
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Letter Encoded Form
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a 0
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b 1 0 1
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c 1 0 0
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d 1 1 1
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e 1 1 0 1
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f 1 1 0 0
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*/
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class Node{
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String letr="";
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int freq=0,data=0;
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Node left=null,right=null;
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}
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//A comparator class to sort list on the basis of their frequency
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class comp implements Comparator<Node>{
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@Override
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public int compare(Node o1, Node o2) {
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if(o1.freq>o2.freq){return 1;}
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else if(o1.freq<o2.freq){return -1;}
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else{return 0;}
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}
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}
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public class Huffman {
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// A simple function to print a given list
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//I just made it for debugging
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public static void print_list(List li){
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Iterator<Node> it=li.iterator();
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while(it.hasNext()){Node n=it.next();System.out.print(n.freq+" ");}System.out.println();
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}
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//Function for making tree (Huffman Tree)
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public static Node make_huffmann_tree(List li){
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//Sorting list in increasing order of its letter frequency
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li.sort(new comp());
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Node temp=null;
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Iterator it=li.iterator();
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//System.out.println(li.size());
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//Loop for making huffman tree till only single node remains in list
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while(true){
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temp=new Node();
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//a and b are Node which are to be combine to make its parent
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Node a=new Node(),b=new Node();
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a=null;b=null;
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//checking if list is eligible for combining or not
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//here first assignment of it.next in a will always be true as list till end will
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//must have atleast one node
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a=(Node)it.next();
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//Below condition is to check either list has 2nd node or not to combine
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//If this condition will be false, then it means construction of huffman tree is completed
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if(it.hasNext()){b=(Node)it.next();}
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//Combining first two smallest nodes in list to make its parent whose frequncy
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//will be equals to sum of frequency of these two nodes
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if(b!=null){
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temp.freq=a.freq+b.freq;a.data=0;b.data=1;//assigining 0 and 1 to left and right nodes
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temp.left=a;temp.right=b;
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//after combing, removing first two nodes in list which are already combined
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li.remove(0);//removes first element which is now combined -step1
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li.remove(0);//removes 2nd element which comes on 1st position after deleting first in step1
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li.add(temp);//adding new combined node to list
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//print_list(li); //For visualizing each combination step
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}
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//Sorting after combining to again repeat above on sorted frequency list
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li.sort(new comp());
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it=li.iterator();//resetting list pointer to first node (head/root of tree)
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if(li.size()==1){return (Node)it.next();} //base condition ,returning root of huffman tree
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}
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}
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//Function for finding path between root and given letter ch
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public static void dfs(Node n,String ch){
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Stack<Node> st=new Stack(); // stack for storing path
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int freq=n.freq; // recording root freq to avoid it adding in path encoding
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find_path_and_encode(st,n,ch,freq);
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}
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//A simple utility function to print stack (Used for printing path)
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public static void print_path(Stack<Node> st){
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for(int i=0;i<st.size();i++){
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System.out.print(st.elementAt(i).data+" ");
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}
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}
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public static void find_path_and_encode(Stack<Node> st,Node root,String s,int f){
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//Base condition
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if(root!= null){
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if(root.freq!=f){st.push(root);} // avoiding root to add in path/encoding bits
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if(root.letr.equals(s)){print_path(st);return;} // Recursion stopping condition when path gets founded
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find_path_and_encode(st,root.left,s,f);
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find_path_and_encode(st,root.right,s,f);
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//Popping if path not found in right or left of this node,because we previously
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//pushed this node in taking a mindset that it might be in path
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st.pop();
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}
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}
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public static void main(String args[]){
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List <Node> li=new LinkedList<>();
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Scanner in=new Scanner(System.in);
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System.out.println("Enter number of distinct letters ");
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int n=in.nextInt();
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String s[]=new String[n];
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System.out.print("Enter letters with its frequncy to encode\n");
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for(int i=0;i<n;i++){
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Node a=new Node();
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System.out.print("Enter letter : ");
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a.letr=in.next();s[i]=a.letr;
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System.out.print("Enter frequncy : ");
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a.freq=in.nextInt();System.out.println();
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li.add(a);
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}
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Node root=new Node();
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root=make_huffmann_tree(li);
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System.out.println("Letter\t\tEncoded Form");
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for(int i=0;i<n;i++){
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System.out.print(s[i]+"\t\t");dfs(root,s[i]);System.out.println();}
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}
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}
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