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How do you compare two version Strings in Java?

I've 2 strings which contains version information as shown below:

str1 = "1.2"
str2 = "1.1.2"

Now, can any one tell me the efficient way to compare these versions inside strings in Java & return 0 , if they're equal, -1, if str1 < str2 & 1 if str1>str2.

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marked as duplicate by Bill the Lizard Jan 9 '12 at 21:03

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
how does 1.2.0 compare to 1.2 ? –  Thilo Jul 15 '11 at 2:01
    
Also, how should 1.12 compare to 1.2 (i.e. is that one point twelve compared to one point two, or should the comparison just look at the .1 substring vs. the .2 substring)? –  GreenMatt Jul 15 '11 at 2:06
4  
Please see stackoverflow.com/questions/198431/… –  g051051 Jul 15 '11 at 2:10
    
Can I use string's compareto method itself? This was also an interview question. What's the expected answer with efficiency? –  Mike Jul 15 '11 at 2:19
    
1.2.0 = 1.2 & 1.12 > 1.2 –  Mike Jul 15 '11 at 2:26

10 Answers 10

up vote 40 down vote accepted
/**
 * Compares two version strings. 
 * 
 * Use this instead of String.compareTo() for a non-lexicographical 
 * comparison that works for version strings. e.g. "1.10".compareTo("1.6").
 * 
 * @note It does not work if "1.10" is supposed to be equal to "1.10.0".
 * 
 * @param str1 a string of ordinal numbers separated by decimal points. 
 * @param str2 a string of ordinal numbers separated by decimal points.
 * @return The result is a negative integer if str1 is _numerically_ less than str2. 
 *         The result is a positive integer if str1 is _numerically_ greater than str2. 
 *         The result is zero if the strings are _numerically_ equal.
 */
public Integer versionCompare(String str1, String str2)
{
    String[] vals1 = str1.split("\\.");
    String[] vals2 = str2.split("\\.");
    int i = 0;
    // set index to first non-equal ordinal or length of shortest version string
    while (i < vals1.length && i < vals2.length && vals1[i].equals(vals2[i])) 
    {
      i++;
    }
    // compare first non-equal ordinal number
    if (i < vals1.length && i < vals2.length) 
    {
        int diff = Integer.valueOf(vals1[i]).compareTo(Integer.valueOf(vals2[i]));
        return Integer.signum(diff);
    }
    // the strings are equal or one string is a substring of the other
    // e.g. "1.2.3" = "1.2.3" or "1.2.3" < "1.2.3.4"
    else
    {
        return Integer.signum(vals1.length - vals2.length);
    }
}
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Finally! A correct implementation! (AFAICT) –  Ed Staub Jul 15 '11 at 2:21
    
Don't you need to use Integer comparison in the (first) return statement? –  trutheality Jul 15 '11 at 2:22
    
@trutheality - nope - the strings are identical if and only if they are the same integer, unless leading zeroes are allowed or something odd like that. –  Ed Staub Jul 15 '11 at 2:29
2  
It will become more interesting when it comes to 1.3a.1 verus 1.3b :D and 1.3-SNAPSHOT ;D –  Angel O'Sphere Jul 15 '11 at 14:30
1  
@whiteElephant It may be easier to understand if you put last return in an else clause. This else is for the case when the strings are the same or when one string is a subset of the other. For example, "1.2" = "1.2" or "1.2" < "1.2.3". In this case, you can compare the lengths based on the assumption that the longer string is a higher version. However, this breaks if you expect "1.2" to be equal to "1.2.0". Otherwise, it's a great and concise solution. –  Lucas Apr 10 at 16:31

As others have pointed out, String.split() is a very easy way to do the comparison you want, and Mike Deck makes the excellent point that with such (likely) short strings, it probably won't matter much, but what the hey! If you want to make the comparison without manually parsing the string, and have the option of quitting early, you could try the java.util.Scanner class.

Scanner s1 = new Scanner(str1);
Scanner s2 = new Scanner(str2);
s1.useDelimiter("\\.");
s2.useDelimiter("\\.");

while(s1.hasNextInt() && s2.hasNextInt()) {
    int v1 = s1.nextInt();
    int v2 = s2.nextInt();
    if(v1 < v2) {
        return -1;
    } else if(v1 > v2) {
        return 1;
    }
}

if(s1.hasNextInt()) return 1; //str1 has an additional lower-level version number
return 0;
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This is almost certainly not the most efficient way to do it, but given that version number strings will almost always be only a few characters long I don't think it's worth optimizing further:

public static int compareVersions(String v1, String v2) {
    String[] components1 = v1.split("\\.");
    String[] components2 = v2.split("\\.");
    int length = Math.min(components1.length, components2.length);
    for(int i = 0; i < length; i++) {
        int result = new Integer(components1[i]).compareTo(Integer.parseInt(components2[i]));
        if(result != 0) {
            return result;
        }
    }
    return Integer.compare(components1.length, components2.length);
}
share|improve this answer
    
Fails when one is a left substring of the other. –  Ed Staub Jul 15 '11 at 2:17
    
Returns 0 every time. v1.split vs v1.split will always be the same :) –  RedLenses Oct 9 '13 at 22:42
    
Fixed the bugs pointed out by Ed Staub and @RedLenses. It only took 2 years to get the answer right! –  Mike Deck Oct 10 '13 at 16:36

I was looking to do this myself and I see three different approaches to doing this, and so far pretty much everyone is splitting the version strings. I do not see doing that as being efficient, though code size wise it reads well and looks good.

Approaches:

  1. Assume an upper limit to the number of sections (ordinals) in a version string as well as a limit to the value represented there. Often 4 dots max, and 999 maximum for any ordinal. You can see where this is going, and it's going towards transforming the version to fit into a string like: "1.0" => "001000000000" with string format or some other way to pad each ordinal. Then do a string compare.
  2. Split the strings on the ordinal separator ('.') and iterate over them and compare a parsed version. This is the approach demonstrated well by Alex Gitelman.
  3. Comparing the ordinals as you parse them out of the version strings in question. If all strings were really just pointers to arrays of characters as in C then this would be the clear approach (where you'd replace a '.' with a null terminator as it's found and move some 2 or 4 pointers around.

Thoughts on the three approaches:

  1. There was a blog post linked that showed how to go with 1. The limitations are in version string length, number of sections and maximum value of the section. I don't think it's crazy to have such a string that breaks 10,000 at one point. Additionally most implementations still end up splitting the string.
  2. Splitting the strings in advance is clear to read and think about, but we are going through each string about twice to do this. I'd like to compare how it times with the next approach.
  3. Comparing the string as you split it give you the advantage of being able to stop splitting very early in a comparison of: "2.1001.100101.9999998" to "1.0.0.0.0.0.1.0.0.0.1". If this were C and not Java the advantages could go on to limit the amount of memory allocated for new strings for each section of each version, but it is not.

I didn't see anyone giving an example of this third approach, so I'd like to add it here as an answer going for efficiency.

  /**
   * Compares this version string to another version string by dotted ordinals.
   * EG "1.0" > "0.09" ; "0.9.5" < "0.10",
   * also "1.0" < "1.0.0" but "1.0" == "01.00"
   *
   * @param left the left hand version string
   * @param right the right hand version string
   * @return 0 if equal, -1 if thisVersion &lt; comparedVersion and 1 otherwise.
   */
  public int compareVersions(String left, String right) {
    if (left.equals(right)) {
      return 0;
    }
    int leftStart = 0, rightStart = 0, result;
    do {
      int leftEnd = left.indexOf('.', leftStart);
      int rightEnd = right.indexOf('.', rightStart);
      Integer leftValue = Integer.parseInt(leftEnd < 0
          ? left.substring(leftStart)
          : left.substring(leftStart, leftEnd));
      Integer rightValue = Integer.parseInt(rightEnd < 0
          ? right.substring(rightStart)
          : right.substring(rightStart, rightEnd));
      result = leftValue.compareTo(rightValue);
      leftStart = leftEnd;
      rightStart = rightEnd;
    } while (result == 0 && leftStart > 0 && rightStart > 0);
    if (result == 0) {
      if (leftStart > rightStart) {
        return 1;
      }
      if (leftStart < rightStart) {
        return -1;
      }
    }
    return result;
  }
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Split the String on "." or whatever your delimeter will be, then parse each of those tokens to the Integer value and compare.

int compareStringIntegerValue(String s1, String s2, String delimeter)  
{  
   String[] s1Tokens = s1.split(delimeter);  
   String[] s2Tokens = s2.split(delimeter);  

   int returnValue = 0;
   if(s1Tokens.length > s2Tokens.length)  
   {  
       for(int i = 0; i<s1Tokens.length; i++)  
       {  
          int s1Value = Integer.parseString(s1Tokens[i]);  
          int s2Value = Integer.parseString(s2Tokens[i]);  
          Integer s1Integer = new Integer(s1Value);  
          Integer s2Integer = new Integer(s2Value);  
          returnValue = s1Integer.compareTo(s2Value);
          if( 0 == isEqual)  
           {  
              continue; 
           }  
           return returnValue;  //end execution
        }
           return returnValue;  //values are equal
 } 

I will leave the other if statement as an exercise.

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Oh I misread the question just a sec –  Woot4Moo Jul 15 '11 at 2:04

Comparing version strings can be a mess; you're getting unhelpful answers because the only way to make this work is to be very specific about what your ordering convention is. I've seen one relatively short and complete version comparison function on a blog post, with the code placed in the public domain- it isn't in Java but it should be simple to see how to adapt this.

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Adapted from Alex Gitelman's answer.

int compareVersions( String str1, String str2 ){

    if( str1.equals(str2) ) return 0; // Short circuit when you shoot for efficiency

    String[] vals1 = str1.split("\\.");
    String[] vals2 = str2.split("\\.");

    int i=0;

    // Most efficient way to skip past equal version subparts
    while( i<vals1.length && i<val2.length && vals[i].equals(vals[i]) ) i++;

    // If we didn't reach the end,

    if( i<vals1.length && i<val2.length )
        // have to use integer comparison to avoid the "10"<"1" problem
        return Integer.valueOf(vals1[i]).compareTo( Integer.valueOf(vals2[i]) );

    if( i<vals1.length ){ // end of str2, check if str1 is all 0's
        boolean allZeros = true;
        for( int j = i; allZeros & (j < vals1.length); j++ )
            allZeros &= ( Integer.parseInt( vals1[j] ) == 0 );
        return allZeros ? 0 : -1;
    }

    if( i<vals2.length ){ // end of str1, check if str2 is all 0's
        boolean allZeros = true;
        for( int j = i; allZeros & (j < vals2.length); j++ )
            allZeros &= ( Integer.parseInt( vals2[j] ) == 0 );
        return allZeros ? 0 : 1;
    }

    return 0; // Should never happen (identical strings.)
}

So as you can see, not so trivial. Also this fails when you allow leading 0's, but I've never seen a version "1.04.5" or w/e. You would need to use integer comparison in the while loop to fix that. This gets even more complex when you mix letters with numbers in the version strings.

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Split them into arrays and then compare.

// check if two strings are equal. If they are return 0;
String[] a1;

String[] a2;

int i = 0;

while (true) {
    if (i == a1.length && i < a2.length) return -1;
    else if (i < a1.length && i == a2.length) return 1;

    if (a1[i].equals(a2[i]) {
       i++;
       continue;
    }
     return a1[i].compareTo(a2[i];
}
return 0;
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I would divide the problem in two, formating and comparing. If you can assume that the format is correct, then comparing only numbers version is very simple:

final int versionA = Integer.parseInt( "01.02.00".replaceAll( "\\.", "" ) );
final int versionB = Integer.parseInt( "01.12.00".replaceAll( "\\.", "" ) );

Then both versions can be compared as integers. So the "big problem" is the format, but that can have many rules. In my case i just complete a minimum of two pair of digits, so the format is "99.99.99" always, and then i do the above conversion; so in my case the program logic is in the formatting, and not in the version comparison. Now, if you are doing something very specific and maybe you can trust the origin of the version string, maybe you just can check the length of the version string and then just do the int conversion... but i think it's a best practice to make sure the format is as expected.

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Step1 : Use StringTokenizer in java with dot as delimiter

StringTokenizer(String str, String delimiters) or

You can use String.split() and Pattern.split(), split on dot and then convert each String to Integer using Integer.parseInt(String str)

Step 2: Compare integer from left to right.

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