2
import java.util.*;

public class prac9 
{
    public static void main(String[] args){
    Scanner scn=new Scanner(System.in);

    int count=0;
    String x,str=" ";

    System.out.println("Regular Expression is (a+b)(ab+ba)*");
    System.out.println("Enter a Word: ");
    x=scn.nextLine();  //here simple x string type of varible

    if(x[0]=="a"|| x[0]=="b")  //here x array of string type of varible
    {                          //prac9.java:15: error: array 
                             // required,but String found


         for(int i=1; i<x.length(); i++)
         {
             str+=x[i];  
             if((i%2==0)==true)
             {
                 if(str=="ab" || str=="ba")
                 {
                     count=count+2;
                     str=" ";
                 }
             }

         }
         if((count+1)==(x.length())){
             System.out.println("Acceptable"); 
         }
         else{
             System.out.println("Not Acceptable");
         }

    }
    else{ 
        System.out.println("Not Acceptable..");
    }
}

Please help me as simply as possible. It gives me an error as I mentioned in above comment. I know what it is saying, but I can't figure out how to convert a String into an array so I can check every single character given by a user. Actually, this code was written in C++. I just converted it into Java language.

  • 1
    You should create a array or You can use charAt(index) like x.charAt(0)=='a' – soorapadman Oct 3 '17 at 7:31
2

You can access the first character of the string using charAt as follows -

x.charAt(0) == 'a'

since that would return the first character of the string (based of start index = 0)

3
if(x[0]=="a"|| x[0]=="b")

can be changed to:

if(x.startsWith("a") || x.startsWith("b"))

and

str+=x[i];

can be changed to:

str+=x.charAt(i);

and lastly:

 if(str=="ab" || str=="ba")

should be changed to

 if(str.equals("ab") || str.equals("ba"))
  • 1
    the way u explained it to me is far far better than my classmates.i appreciate your effort bro. – muneeb_ahmed Oct 3 '17 at 7:48
  • I have edited my code as you said but this condition,if(str.equals("ab") || str.equals("ba")) , is not satisfying my word aab,aba,bab,bba which is bye the way correct word for given regular expression. now it's a logical mistake.because at str variable after 2nd iteration .equal() method compared with only single character in str. i want compare the double character with ab or ba. how am i gonna write this logic.@pleft.thanks for help. – muneeb_ahmed Oct 3 '17 at 9:51
  • Sorry but I do not understand your comment above. One thing that I realized is that you initialize variable str as str = " ", that means that str is not empty but contains a "space" character. So when you reach the if statement if(str.equals("ab") || str.equals("ba")) it never succeeds because the str variable actually is " ab" instead of "ab". – pleft Oct 3 '17 at 11:11
  • I think you perfectly got it. now it's working and accepting the accepted words like aabab,bababa.ababab for given regular expression. – muneeb_ahmed Oct 4 '17 at 5:04
1

x is a String, you'd need to convert it to an array of chars, then compare each char with 'a' and 'b'. To do that replace this line of code if(x[0]=="a"|| x[0]=="b") by

char[] x_chars = x.toCharArray();
if (x_chars[0] == 'a' || x_chars[0] == 'b') {
   ...
}
1

If one checks the documentation

https://docs.oracle.com/javase/6/docs/api/java/lang/String.html you can find the method

x.charAt(0)

which is used in java instead of x[0].

1

Your "x" variable is of String type, not an array. To declare "x" as string array, you should use

String x[] = new String[n];  //here 'n' is number of elements you store in your 'x' array

Also if you don't know how many elements can be are to be included in array, that can also grow and shrink based on your requirement you can use "ArrayList " like this;

ArrayList<String> al=new ArrayList<String>();  
al.add("J"); //add 'J' as 1st element of 'al'
al.add("a");
al.add("v");
al.add("a");
System.out.println("element at 2nd position: "+al.get(2));  //get 'a'
al.remove(0)  //to remove 'J'
.............

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