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Hi I have two Strings that contain numbers and I want to see if the string two contains the same numbers as string one is there any way and they are not in order as string one. And if it has any number repeating than report false. Is there anyway in java other than using .charAt() because its not working for number after 10 ?

String One = "1 2 3 4 5 "; 
String two = " 3 2 1 4 5 ";
String two = "3 2 1 4 4 "; 
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8 Answers

up vote 7 down vote accepted

Looks like homework. So these steps you can follow:

  • Trim both strings
  • Convert both strings into ArrayList using space separator
  • Sort both arrays numerically
  • Compare both arrays
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1  
its not homework its last year project that I am working on again for practice. –  chuck finley Jun 2 '11 at 10:26
3  
@sibghatuk - the same principle applies. You will learn more if we give you hints and you work out the complete answer for yourself. That is what you are trying to do ... isn't it? –  Stephen C Jun 2 '11 at 10:33
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You can use Scanner.nextInt() to read numbers from the string, add them to a Set, and see if set1.equals(set2) is true.

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I would not perform the comparison on the raw strings. Instead, first convert each String to a List<Integer> using String.split() and Integer.parseInt() on each result. Then sort() the lists into ascending order, and then it becomes very easy to compare them.

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Try like this.

String one = "1 2 3  4 5 ";
String two = " 3 2 1 4 5 ";
Set<String> a = new HashSet<String> (Arrays.asList(one.trim().replaceAll("\\s*"," ").split(" ")));
Set<String> b = new HashSet<String> (Arrays.asList(two.trim().replaceAll("\\s*"," ").split(" ")));
boolean ret = (a.size() == b.size()) && a.containsAll(b);
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You could tokenize/split the strings based on the spaces, then loop through the resulting tokens which would be the numbers themselves.

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You split the strings on whitespace (using either String.split or StringTokenizer) and then convert each of the tokens into a number. Place all the numbers in string one into a HashSet. Do the same for string two. Now all you have to do is to check whether each entry in the first HashSet also occurs in the second one.

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MAK - The OP mentions the possibility of duplicates. This means that your solution won't always work. –  Stephen C Jun 2 '11 at 10:36
    
@Stephen C: That's true. But he can always check for duplicates while inserting into the set. The question looked like homework, so I didn't want to give too much away. –  MAK Jun 2 '11 at 17:57
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I would at first parse numbers as integers, put them to the set and compare them:

  import java.util.SortedSet;
import java.util.StringTokenizer;
import java.util.TreeSet;


public class StringsCompare {

    private static String one = "1 2 3 4 5 6"; 
    private static String two = " 3 2 1 5 6 4 ";

    public static void main(String[] args) {
        StringsCompare sc = new StringsCompare();

        System.out.println(sc.compare(one, two));
    }

    private boolean compare(String one, String two) {

        SortedSet<Integer> setOne = getSet(one);    
        SortedSet<Integer> setTwo = getSet(two);

        return setOne.equals(setTwo);
    }

    private SortedSet<Integer> getSet(String str) {
        SortedSet<Integer> result = new TreeSet<Integer>();

        StringTokenizer st = new StringTokenizer(str, " ");

        while (st.hasMoreTokens()) {
            result.add(Integer.valueOf(st.nextToken()));
        }

        return result;
    }
}
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Try to parse the strings in int.

Integer.parseInt(One).intValue() == Integer.parseInt(two).intValue()

I'm not sure what you're trying to do but my guess is that you'd better to use arrays.

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You can't parse an int from a String with spaces in it - you'll get a NumberFormatException –  Bohemian Jun 2 '11 at 10:30
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