Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Possible Duplicate:
How to check a String is a numeric type in java

I'm trying to create method which will validate string as IP address where first I need to split string by . then see whether any of them are numbers. No worry about the . because I take care of this when working with split method.

I have 2 choices, Regex expression or Try/Catch blocks.

Teacher always warned us to be light on system resources and to avoid Try/Catch as much as possible not only because it uses more memory, but also runs a bit slower (at least in .NET C#).

How does this compare to Regex expression to check for a number?

Which is preferred or better and why?

Since no one happened to explain why/why not use specific item I asked I just did Ragex =/

public boolean isIP(String string)
{
    String[] split = string.split("[.]+", -1);
    int count = 0;
    if(split.length == 4)
    {
        for(int i = 0; i < split.length; i++)
            if(split[i].matches("^0*([0-9]{1,2}|1[0-9]{2}|2[0-4][0-9]|25[0-5])$"))
                count++;
    }
    return count == 4;
}
share|improve this question

marked as duplicate by Lev Levitsky, HelpNeeder, Bill the Lizard Dec 15 '12 at 15:31

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  
This won't answer your question, but when using regex you should escape the dot . or it will match anything. –  jlordo Dec 14 '12 at 8:15
    
@jlordo, I got this taken care of already. But thanks. –  HelpNeeder Dec 14 '12 at 8:15
1  
Why Regex/try are your only options? There are loads of ways that are faster to check if String is numeric-only... –  vaxquis Dec 14 '12 at 8:21
1  
@vaxquis, for example? I need something that fits in 1 line of code in my if-statement (but try/catch doesn't). –  HelpNeeder Dec 14 '12 at 8:22
2  
provide a SSCCE with context or togtfo. we're starting to get too ambiguous here. –  vaxquis Dec 14 '12 at 8:51

6 Answers 6

In your case, I would use a regex instead of a try/catch block, since the pattern to match is constraining enough to make it executing quickly.

This regex should be better for matching a whole IP address:

^[0-9]+(\.[0-9]+){3}$
share|improve this answer
    
How come? I used -?\\d+(.\\d+)? plenty of times and never had a problem. –  HelpNeeder Dec 14 '12 at 8:20
2  
@HelpNeeder: A . not inside of character set will match any character. You need to escape it. –  Blender Dec 14 '12 at 8:25
1  
@HelpNeeder: If you're already doing that, then just cast each of those components to an int and make sure that it's between 0 and 255. –  Blender Dec 14 '12 at 8:29
1  
@HelpNeeder: So what's your question? –  Blender Dec 14 '12 at 8:30
2  
@HelpNeeder You seem to not accept advices. Doing myIpAsString.matches("^[0-9]+(\\.[0-9]+){3}$") in better than splitting by ., checking if the array size equals 4 and checking if the array values are integers, that's all. –  sp00m Dec 14 '12 at 8:32

I would imagine that regex is actually worse for performance than try/catch.

I would use regex though.It suits the purpose better. Try and catch is more for error catching and your program shouldn't be crashing.

share|improve this answer
    
Anything to read about what would support your opinion? –  HelpNeeder Dec 14 '12 at 8:29
2  
"Try/catch blocks are free or they're very expensive. Google gives both bits of advice - that it was free or kills performance. Both are wrong. It is both very cheap and very expensive - depending. Advice: Don't put try/catches in very tight array loops. Otherwise it's more or less free." weblogs.java.net/blog/hiheiss/archive/2005/06/… –  Duane Dec 14 '12 at 8:59

I would like to suggest a third option, using a for loop and Character.isDigit(). This is the method used in the Apache Commons StringUtil class's isNumeric method.

 public static boolean isNumeric(CharSequence cs) {
     if (cs == null || cs.length() == 0) {
        return false;
     }
     int sz = cs.length();
     for (int i = 0; i < sz; i++) {
        if (Character.isDigit(cs.charAt(i)) == false) {
          return false;
        }
     }
     return true;
}

http://svn.apache.org/viewvc/commons/proper/lang/trunk/src/main/java/org/apache/commons/lang3/StringUtils.java?view=markup

share|improve this answer

Have a look at this: http://www.mkyong.com/regular-expressions/how-to-validate-ip-address-with-regular-expression/

you can use it like

private static final String IPADDRESS_PATTERN = 
        "([01]?\\d\\d?|2[0-4]\\d|25[0-5])\\." +
        "([01]?\\d\\d?|2[0-4]\\d|25[0-5])\\." +
        "([01]?\\d\\d?|2[0-4]\\d|25[0-5])\\." +
        "([01]?\\d\\d?|2[0-4]\\d|25[0-5])";

and in your method:

if (myString.matches(IPADDRESS_PATTERN)) {
    // is IP Adress
}
share|improve this answer
1  
+1 for providing the only regex that guarantees a proper ip address, i.e. where the numbers are in the range of 0-255. Also for providing the link where you got it from. –  DeanOC Dec 14 '12 at 8:36
    
OP's post wasn't about verifying the corectness of IP, only about checking the efficiency of veryfing its numericness. Besides, he already split the pattern into octets... –  vaxquis Dec 14 '12 at 8:38
    
Great pattern, thanks for sharing! –  sp00m Dec 14 '12 at 8:38
2  
So instead of an easy way, that is correct and will never fail for any corner case, you want a complicated way that might fail in some cases? –  jlordo Dec 14 '12 at 8:42
1  
@HelpNeeder I understand that failing has a great learning potential. Also you can learn a lot from understanding good solutions, and imho this is the best solution for your problem. Asking a question like this on SO will result in us searching for the best solution. I advise you to finish writing both of your solutions, and than post your code here when you encounter a problem, or post both finished versions on codereview.stackexchange.com –  jlordo Dec 14 '12 at 8:53

Well, prior to JDK 1.4, one only used try/catch as Pattern object didn't exist. I would say, depending on your JDK version?

share|improve this answer
up vote 0 down vote accepted

This is how I did it and I chose Regex over Try/Catch.

public boolean isIP(String string)
{
    String[] split = string.split("[.]+", -1);
    int count = 0;
    if(split.length == 4)
    {
        for(int i = 0; i < split.length; i++)
            if(split[i].matches("^0*([0-9]{1,2}|1[0-9]{2}|2[0-4][0-9]|25[0-5])$"))
                count++;
    }
    return count == 4;
}
share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.