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What is the most efficient way to reverse a string in Java? Should I use some sort of xor operator? The easy way would be to put all the chars in a stack and put them back into a string again but I doubt that's a very efficient way to do it.

And please do not tell me to use some built in function in Java. I am interested in learning how to do it not to use an efficient function but not knowing why it's efficient or how it's built up.

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5  
These kind of questions have been stoned to death for C/C++. Especially The Art of Computer Programming by D. Knuth goes in to a lot of detail. –  NomeN Mar 13 '10 at 17:25
    
"stoned to death", hahaha, i like that. –  Zaki Mar 14 '10 at 9:25
1  
Out of curiosity: does anyone know of a real use for this? I mean a place where there's a need for an efficient string reversing algorithm? –  Joachim Sauer Mar 14 '10 at 9:56
9  
@joachim sauer, interviews maybe. –  Zaki Mar 14 '10 at 11:13
2  
As an aside: note that reversing the sequence of code-points is not the same as reversing "the string". For example, combining characters: if you just reverse the code-points then they end up combining against what was originally the previous character - so "aĉe" (if written with a combining character) could become "ecâ". –  Marc Gravell Mar 14 '10 at 22:05

13 Answers 13

up vote 35 down vote accepted

You say you want to know the most efficient way and you don't want to know some standard built-in way of doing this. Then I say to you: RTSL (read the source, luke):

Check out the source code for AbstractStringBuilder#reverse, which gets called by StringBuilder#reverse. I bet it does some stuff that you would not have considered for a robust reverse operation.

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By the way... when I say "bet it does some stuff that you would have considered"... I was talking about surrogate pairs :-). You can see it in the code. –  Tom Mar 13 '10 at 17:13
1  
+1 for link to source. One of the best ways to learn how to implement something is to see how it is done in the real world. –  Mark Byers Mar 13 '10 at 17:17
    
+1 for directly answering the question, being one of the few that's not on a tangent –  John K Mar 13 '10 at 17:23
4  
Link seems broken –  CyberneticTwerkGuruOrc Sep 10 '13 at 19:14
    
Here's a link that works, but no easy way to link directly to that method: kickjava.com/src/java/lang/AbstractStringBuilder.java.htm –  Tom Jan 15 at 20:51

You said you don't want to do it the easy way, but for those Googling you should use StringBuilder.reverse:

String reversed = new StringBuilder(s).reverse().toString();

If you need to implement it yourself, then iterate over the characters in reverse order and append them to a StringBuilder. You have to be careful if there are (or can be) surrogate pairs, as these should not be reversed. The method shown above does this for you automatically, which is why you should use it if possible.

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5  
Prefer StringBuilder to StringBuffer if you do not need thread safety. –  Tom Mar 13 '10 at 17:05
2  
+1 for pointing out you have to deal with surrogate pairs –  Simon Nickerson Mar 13 '10 at 17:11
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In a way homework, our homework is to reverse a string using a stack however I feel like that is not the right or best way to do it therefore I want to learn the best way to actually do it. And that's the reason I'm posting here, I want to learn. The Java assignments we do in school sometimes use extremely stupid ways to do stuff because everyone should understand it. –  Hultner Mar 13 '10 at 17:24
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+1 Google friendly. –  Xorlev Mar 13 '10 at 17:25
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Wow, I'd have never thought of the surrogates! However, I've also never needed to reverse a string in my professional life. –  jkff Mar 13 '10 at 19:56

The following does not deal with UTF-16 surrogate pairs.

public static String reverse(String orig)
{
    char[] s = orig.toCharArray();
    int n = s.length;
    int halfLength = n / 2;
    for (int i=0; i<halfLength; i++)
    {
        char temp = s[i];
        s[i] = s[n-1-i];
        s[n-1-i] = temp;
    }
    return new String(s);
}
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haha I coded the EXACT same thing before searching online :) +1 –  Eugene Jul 2 at 17:45
    
It is simple and exact, don't know why other people answering it in so many different ways –  Hafiz Aug 21 at 0:09
public class ReverseInPlace {

  static char[]  str=null;

    public static void main(String s[]) {
      if(s.length==0)
        System.exit(-1);

       str=s[0].toCharArray();

       int begin=0;
       int end=str.length-1;

       System.out.print("Original string=");
       for(int i=0; i<str.length; i++){
         System.out.print(str[i]);
       }

       while(begin<end){
          str[begin]= (char) (str[begin]^str[end]);
          str[end]= (char)   (str[begin]^str[end]);
          str[begin]= (char) (str[end]^str[begin]);

          begin++;
          end--;       
       }

       System.out.print("\n" + "Reversed string=");
       for(int i=0; i<str.length; i++){
         System.out.print(str[i]);
       }

    }
}
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1  
While I thank you for your answer it's been half a year since I wrote this questiont and the problem have since long been resolved but thanks for your answer. –  Hultner Sep 16 '10 at 16:02
    
what about using the check to mark answers as the correct one to your other questions! –  Floradu88 Dec 12 '12 at 7:53

An old post & question, however still did not see answers pertaining to recursion. Recursive method reverse the given string s, without relaying on inbuilt jdk functions

    public static String reverse(String s) {
    if (s.length() <= 1) {
        return s;
    }
    return reverse(s.substring(1)) + s.charAt(0);
}

`

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The fastest way would be to use the reverse() method on the StringBuilder or StringBuffer classes :)

If you want to implement it yourself, you can get the character array, allocate a second character array and move the chars, in pseudo code this would be like:

String reverse(String str) {
    char[] c = str.getCharArray
    char[] r = new char[c.length];
    int    end = c.length - 1

    for (int n = 0; n <= end; n++) {
        r[n] = c[end - n];
    }

    return new String(r);
}

You could also run half the array length and swap the chars, the checks involved slow things down probably.

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The String class does not have a reverse() method. Also, your pseudo-code is wrong, as your arrays are sometimes 0-based and sometimes 1-based. –  Simon Nickerson Mar 13 '10 at 17:16
    
My bad, StringBUilder & StringBuffer have a reverse, I'll change that. Java arrays are 0 based and the question is tagged Java. –  rsp Mar 13 '10 at 17:20
    
No, still wrong. Now it will produce a string of length len-1. You want: for (int n=0; n<len; n++) { r[n] = c[len-n-1]; } –  Simon Nickerson Mar 13 '10 at 17:20
    
This is correct imho, example: for a string of length 3 n=0,1,2 and copies chars at 3-0-1,3-1-1,3-2-1 which are 2,1,0 –  rsp Mar 13 '10 at 17:24

I'm not really sure by what you mean when you say you need an efficient algorithm.

The ways of reversing a string that I can think of are (they are all already mentioned in other answers):

  1. Use a stack (your idea).

  2. Create a new reversed String by adding characters one by one in reverse order from the original String to a blank String/StringBuilder/char[].

  3. Exchange all characters in the first half of the String with its corresponding position in the last half (i.e. the ith character gets swapped with the (length-i-1)th character).

The thing is that all of them have the same runtime complexity: O(N). Thus it cannot really be argued that any one is any significantly better than the others for very large values of N (i.e. very large strings).

The third method does have one thing going for it, the other two require O(N) extra space (for the stack or the new String), while it can perform swaps in place. But Strings are immutable in Java so you need to perform swaps on a newly created StringBuilder/char[] anyway and thus end up needing O(N) extra space.

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I think that if you REALLY don't have performance problem you should just go with the most readable solution which is:

StringUtils.reverse("Hello World");
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2  
This was meant more as an scientific question then something for actual production code –  Hultner Sep 16 '13 at 23:51

If you do not want to use any built in function, you need to go back with the string to its component parts: an array of chars.

Now the question becomes what is the most efficient way to reverse an array? The answer to this question in practice also depends upon memory usage (for very large strings), but in theory efficiency in these cases is measured in array accesses.

The easiest way is to create a new array and fill it with the values you encounter while reverse iterating over the original array, and returning the new array. (Although with a temporary variable you could also do this without an additional array, as in Simon Nickersons answer).

In this way you access each element exactly once for an array with n elements. Thus giving an efficiency of O(n).

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Using String:

String abc = "abcd";
int a= abc.length();

String reverse="";

for (int i=a-1;i>=0 ;i--)
{
    reverse= reverse + abc.charAt(i);
}
System.out.println("Reverse of String abcd using invert array is :"+reverse);

Using StringBuilder:

    String abc = "abcd";
    int a= abc.length();
    StringBuilder sb1 = new StringBuilder();

    for (int i=a-1;i>=0 ;i--)
    {
        sb1= sb1.append(abc.charAt(i));
    }
    System.out.println("Reverse of String abcd using StringBuilder is :"+sb1);
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2  
This question is over 3 years old and so is the accepted answer. The question was how to reverse a string efficiently. You code is effective, but far from efficient. –  Vincent van der Weele Jul 25 '13 at 20:48
    
@heuster: Though this actually means, that it is the perfect source of insight, at least if you explained, why it is not efficient. –  omilke Jul 25 '13 at 21:14
2  
@Olli fair enough. Strings in Java are immutable, so the line reverse + abc.charAt(i) creates a new string of length i+1 (rather than appending the char to the existing string). Therefore, the loop creates a strings in total, of length 0, 1, ..., a-1. In total, this approach hence needs O(n^2) additional memory. Time complexity can never be better than space complexity, so also the running time is O(n^2). As seen in the answer of MAK, an 'efficient' algorithm should have O(n) time complexity. –  Vincent van der Weele Jul 26 '13 at 7:15
    
I think this now provides an idea to start with why it is inefficient that way, so everyone reviewing this will get chance have the insight. By the way, you are stating that time complexity cannot be lower than space complexity, which somehow feels intuitive. However, could you provide a link with more explanation or at least name that theorem for further research? This is quite interesting. –  omilke Jul 26 '13 at 13:34
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@Heuster Thanks, this is what I also considered as the intuitive way of thinking. In fact, I did a little research and found this topic is quite obvious when reducing it to a Turing Machine. It is explained here stackoverflow.com/a/7137318/2108919. –  omilke Jul 30 '13 at 10:49

One variant can be, swapping the elements.

int n = length - 1;
char []strArray = str.toCharArray();
for (int j = 0; j < n; j++) {
   char temp = strArray[j];
   char temp2 = strArray[n];
   strArray[j] = temp2;
   strArray[n] = temp;
   n--;
  }
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public static void main(String[] args){
    String string ="abcdefghijklmnopqrstuvwxyz";
    StringBuilder sb = new StringBuilder(string);
    sb.reverse();

    System.out.println(sb);
}
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public static String Reverse(String word){
        String temp = "";
        char[] arr = word.toCharArray();
        for(int i = arr.length-1;i>=0;i--){
            temp = temp+arr[i];
        }
        return temp;
    }
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Consider adding an explanation to go along with the code. –  krsteeve Sep 10 '13 at 16:38

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