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Bellow method is validating if string is correct IPv4 address it returns true if it is valid. Any improvements in regex and elegance would be very appreciated:

public static boolean validIP(String ip) {
    if (ip == null || ip.isEmpty()) return false;
    ip = ip.trim();
    if ((ip.length() < 6) & (ip.length() > 15)) return false;

    try {
        Pattern pattern = Pattern.compile("^(?:(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)\\.){3}(?:25[0-5]|2[0-4][0-9]|[01]?[0-9][0-9]?)$");
        Matcher matcher = pattern.matcher(ip);
        return matcher.matches();
    } catch (PatternSyntaxException ex) {
        return false;
    }
}
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There are different representations possible. You are looking for dot-decimal notation: See en.wikipedia.org/wiki/IPv4#Address_representations –  Michael Konietzka Jan 3 '11 at 10:47
    
an ip.length() of 7 is valid, for example 0.0.0.0 is 7 characters, your method will return false. –  prmatta Mar 8 '11 at 23:17

4 Answers 4

up vote 13 down vote accepted

The development version of Apache Commons Validator has a InetAddressValidator class which has a isValidInet4Address(String) method to perform a check to see that an given String is a valid IPv4 address.

The source code can be viewed from the repository, so that might provide some ideas for improvements, if you feel there are any.

A quick glance at the provided code shows that your method is compiling a Pattern on each invocation of the method. I would move that Pattern class out to a static field to avoid the costly pattern compilation process on each call.

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Here is an easier-to-read, slightly less efficient, way you could go about it. By easier to read, I mean you don't need a PhD in regex to figure it out ;-)

public static boolean validIP (String ip) {
    try {
        if (ip == null || ip.isEmpty()) {
            return false;
        }

        String[] parts = ip.split( "\\." );
        if ( parts.length != 4 ) {
            return false;
        }

        for ( String s : parts ) {
            int i = Integer.parseInt( s );
            if ( (i < 0) || (i > 255) ) {
                return false;
            }
        }
        if(ip.endsWith(".")) {
                return false;
        }

        return true;
    } catch (NumberFormatException nfe) {
        return false;
    }
}
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2  
I prefer this approach more. –  TheGrayFox Jun 12 at 4:27
    
If you do ip.split("\\.", -1) you can delete the if (ip.endsWith(".")) ... bit –  samthebest Aug 7 at 19:00

If you don't mind using dns resolution on invalid ip-addresses like www.example.com, you can use the InetAddress methods to check:

public static final boolean checkIPv4(final String ip) {
    boolean isIPv4;
    try {
    final InetAddress inet = InetAddress.getByName(ip);
    isIPv4 = inet.getHostAddress().equals(ip)
            && inet instanceof Inet4Address;
    } catch (final UnknownHostException e) {
    isIPv4 = false;
    }
    return isIPv4;
}

The method checks if it is an instance of Inet4Address and if the parameter was the ip-address and not the hostname. If you expect a lot of hostnames as parameters, beware that this implementation uses DNS to try to resolve it. This might be a performance concern.

Otherwise you can have a peak into boolean sun.net.util.IPAddressUtil.isIPv4LiteralAddress(String src) how the String is parsed there for IPv4-check.

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1  
FWIW, here's what i usually do: first use a simple regexp to check that the parameter consists of 4 dot-separated numbers (i don't try to check if the numbers are within range, etc, just the general format). If this first check passes, then i use InetAddress as in this answer to finish the validation. –  theglauber Feb 1 '12 at 20:58

If you want to use a library with a released version suppporting both IPv4 and IPv6 support, you can use Guava

boolean isValid = InetAddresses.isInetAddress("1.2.3.4");
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