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How to swap two String variables in java without using a third variable, i.e. the temp variable.

String a="one"
String b="two"
String temp=null;
temp=a;
a=b;
b=temp;

But here there is a third variable.We need to eliminate the use of 3rd variable.

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You do know that variables are just references, which could be optimized away by the compiler, right? –  eran Aug 30 '13 at 8:52
1  
Why do you want to eliminate the third variable? –  Absurd-Mind Aug 30 '13 at 8:53
    
concat with a 'special' separator, then split again. –  Rogier Aug 30 '13 at 8:53
    
If you guys didn't notice, the variables are string. –  Aashray Aug 30 '13 at 8:56
    
Should appriciate this question as it is something about logic –  commit Aug 30 '13 at 8:57

8 Answers 8

Do it like this without using third variable:

    String a="one";
    String b="two";

    a= a+b;
    b = a.substring(0,(a.length()-b.length())); 
    a = a.substring(b.length(),(a.length()));

    System.out.println("a = "+a);
    System.out.println("b = "+b); 
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// taken from this answer: http://stackoverflow.com/a/16826296/427413

String returnFirst(String x, String y) {
    return x;
}

String a = "one"
String b = "two"
a = returnFirst(b, b = a); // If this is confusing try reading as a=b; b=a;

This works because the Java language guarantees (Java Language Specification, Java SE 7 Edition, section 15.12.4.2) that all arguments are evaluated from left to right (unlike some other languages, where the order of evaluation is undefined), so the execution order is:

  1. The original value of b is evaluated in order to be passed as the first argument to the function
  2. The expression b = a is evaluated, and the result (the new value of b) is passed as the second argument to the function
  3. The function executes, returning the original value of b and ignoring its new value
  4. You assing the result to a
  5. Now the values have been swapped and you didn't need to declare temp. The parameter x works as temp, but it looks cleaner because you define the function once and you can use it everywhere.
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String a="one";
String b="two";

a = a.concat("#" + b);
b = a.split("#")[0];
a = a.split("#")[1];

This will work as long as your string dont contain the # character in them. Feel free to use any other character instead.

Edit: you could use a possible unicode character, like "\u001E" instead of the #

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not bad, my thought as-well. along your sure to use a delimiter thats not inside the strings. –  Rogier Aug 30 '13 at 9:04
    
if any string contain '#' value then? –  bmthaker Aug 30 '13 at 9:07
    
As I clearly state, "This will work as long as your String doesnt contain the # character". So to answer your question @BMT, this code wont work in that case. –  Husman Aug 30 '13 at 9:12
public class SwapStringVariable {

    public static void main(String[] args) {
        // TODO Auto-generated method stub
        String a = "test";
        String b = "paper";

        a = a + b;
        b = a.substring(0, a.length()  - b.length());
        a = a.substring(b.length(), a.length());

        System.out.println(a + " " + b);


    }

}
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Here you go, Try this

String a="one";
String b="two";
//String temp=null;
int i = a.length();
a += b;
b = a.substring(0,i);
a = a.substring(i,a.length());
System.out.println(a+ " " + b);

Take any value in as string in variable it will be swap.

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The a+b concatenation is way more expensive than explicitly declaring a third String reference, it just hides what it does: makes a new StringBuilder and makes a new String from that. –  blgt Aug 30 '13 at 9:01
    
@blgt it do not matter even in thousands of characters, it will be performed in fractions of milliseconds, suggest if you have really better idea in this code. –  commit Aug 30 '13 at 9:05
    
int i = a.length(), looks like a declaration of a 3rd variable to me, defeats the purpose of this exercise. –  Husman Aug 30 '13 at 9:10
    
@commit Certainly, if you run it once, and not in a resource-constrained environment. I was just suggesting the the code in the original question will use both less space and time than the suggested answer. And no, I don't have a better solution. To be honest I don't really think the question makes a whole lot of sense. –  blgt Aug 30 '13 at 9:10
    
@Husman than we can simply replace i with a.length() depends on the programmer how he want to access, according to me calling length method of the variable is costlier than storing it when you are accessing more than once because it is going to read that string starting counter and read up to end of the string. Still I will say same it's depend upon the programmer. Right? –  commit Aug 30 '13 at 9:30

The simplest way is given below:

String a="one";
String b="two";
System.out.println("Before swap: " a + " " + b);
int len=a.length();
a=a+b;
b=a.substring(0,len);
a=a.substring(len);
System.out.println("After swap: " a + " " + b);
share|improve this answer
2  
without using a 3rd variable! (len) –  Rogier Aug 30 '13 at 9:03
    
@Rogier In question itself its clearly mentioned that the third variable is the temp variable. '........third variable.ie the temp variable' –  Praveen P. Moolekandathil Aug 30 '13 at 9:10
1  
So you eliminated the OP's 3rd variable and added in your own one. Nice. –  Husman Aug 30 '13 at 9:17
    
@Husman Good joke. –  Praveen P. Moolekandathil Aug 30 '13 at 9:18
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For strings:

String a="one"
String b="two"

a = a + b;
b = a.replace(b, "");
a = a.replace(b,"");
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Try it on a="a", b="aaa". Won't work. –  Rebelek Aug 30 '13 at 9:04
3  
Thats nice, if the strings are different. But if they are the same, you get problems. String a = "hello", String b = "ello" –  Husman Aug 30 '13 at 9:09

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