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I want to validate an IPv4 address using Java. It should be written using the dot-decimal notation, so it should have 3 dots ("."), no characters, numbers in between the dots, and numbers should be in a valid range. How should it be done?

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note that not all technically valid IP address notations have the three dots, only the dot notation of IP address has them. Note also ipv6, and you might or might not want to separate private address spaces from public. – eis Mar 24 '14 at 18:06
I think all the code reviewers in the world would be immensely grateful if you could change your accepted answer to worpet's answer :) – samthebest Aug 7 '14 at 18:53

11 Answers 11

up vote 46 down vote accepted

Pretty simple with Regular Expression (but note this is much less efficient and much harder to read than worpet's answer that uses an Apache Commons Utility)

private static final Pattern PATTERN = Pattern.compile(

public static boolean validate(final String ip) {
    return PATTERN.matcher(ip).matches();

Based on post Mkyong

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ok.I hope it will run on Android also...!!! – iRunner Apr 14 '11 at 17:56
Ohhhh,its not Working on android.When application start it gives error of force close – iRunner Apr 14 '11 at 18:06
can you show the LogCat – Necronet Apr 14 '11 at 18:58
hey works.......!!! – iRunner Apr 28 '11 at 18:40
What about strangely-formatted IP addresses, like 127.1 (which is equivalent to What about IPv6? – krzysz00 Nov 29 '13 at 18:21

Write up a suitable regular expression and validate it against that. The JVM have full support for regular expressions.

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does DVM also support it ? I m using Android – iRunner Apr 14 '11 at 17:53
@bhagya, then your tags are wrong. – Thorbjørn Ravn Andersen Apr 14 '11 at 18:22
Ok,I ll check it once again...!! – iRunner Apr 14 '11 at 18:24

You can use a regex, like this:


This one validates the values are within range.

Android has support for regular expressions. See java.util.regex.Pattern.

class ValidateIPV4

   static private final String IPV4_REGEX = "(([0-1]?[0-9]{1,2}\\.)|(2[0-4][0-9]\\.)|(25[0-5]\\.)){3}(([0-1]?[0-9]{1,2})|(2[0-4][0-9])|(25[0-5]))";
   static private Pattern IPV4_PATTERN = Pattern.compile(IPV4_REGEX);

   public static boolean isValidIPV4(final String s)
      return IPV4_PATTERN.matcher(s).matches();

To avoid recompiling the pattern over and over, it's best to place the Pattern.compile() call so that it is executed only once.

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it will match "". – khachik Apr 14 '11 at 17:57
@khachik - isn't that valid? – mdma Apr 14 '11 at 18:01
I'm not sure, so posted an expression which explicitly restricts 0xx, 0x. – khachik Apr 14 '11 at 18:05
static private final String IPV4_REGEX = "(([0-1]?[0-9]{1,2}\.)|(2[0-4][0-9]\.)|(25[0-5]\.)){3}(([0-1]?[0-9]{1,2})|(2[0-4‌​][0-9])|(25[0-5]))";.this line is giving me errors :( – iRunner Apr 28 '11 at 18:12
@khachik A little late, but: That is a valid IP address in dotted-decimal notation. In fact, RFC1166 actually gives as an example on page 5. – Jason C Mar 24 '14 at 17:46

If it is IP4, you can use a regular expression as follows:


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Try the InetAddressValidator utility class.

Docs here:

Download here:

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It is always better to use an already written utility for these things – Jaime Hablutzel Jul 25 '11 at 16:41

Please have a look into IPAddressUtil OOTB class present in ,that should help you.

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There is also an undocumented utility class, which you should not actually use, although it might be useful in a quick one-off, throw-away utility:

boolean isIP = IPAddressUtil.isIPv4LiteralAddress(ipAddressString);

Internally, this is the utility class InetAddress uses to parse IP addresses.

Note that this will return true for strings like "123", which, technically are valid IPv4 addresses, just not in dot-decimal notation.

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Use Guava's InetAddresses.forString()

try {
} catch (IllegalArgumentException e) {
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You can use this function -

public static boolean validate(final String ip) {
    String PATTERN = "^((0|1\\d?\\d?|2[0-4]?\\d?|25[0-5]?|[3-9]\\d?)\\.){3}(0|1\\d?\\d?|2[0-4]?\\d?|25[0-5]?|[3-9]\\d?)$";

    return ip.matches(PATTERN);
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does not work with "" – Francois Jun 17 at 13:25
thanx @Francois fixed it :) – Akarshit Wal Jun 23 at 20:10

There are a lot regex variants out there. They are good but we can do better.

This function is about 20x faster than a regex alternative.

If you expect to have a lot wrong IPs add this after the length validation (after the first if) and remove the try & catch. This will make the function 0.4x slower but improve speed in error case by 800x.

for (int i = 0; i < ip.length(); i++) {
    if (!Character.isDigit(ip.charAt(i)) && ip.charAt(i) != '.') return false;

So here's the function

public static boolean validIP(String ip) {
    if(ip == null || ip.length() < 7 || ip.length() > 15) return false;
    if(ip.contains("-")) return false;

    try {
        int x = 0;
        int y = ip.indexOf('.');

        if (y != -1 && Integer.parseInt(ip.substring(x, y)) > 255) return false;

        x = ip.indexOf('.', ++y);
        if (x != -1 && Integer.parseInt(ip.substring(y, x)) > 255) return false;

        y = ip.indexOf('.', ++x);
        return  !(y != -1 && Integer.parseInt(ip.substring(x, y)) > 255 &&
                Integer.parseInt(ip.substring(++y, ip.length() - 1)) > 255 &&
                ip.charAt(ip.length()-1) != '.');

    } catch (NumberFormatException e) {
        return false;
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This is for Android, testing for IPv4 and IPv6

Note: the commonly used InetAddressUtils is deprecated. Use new InetAddress classes

public static Boolean isIPv4Address(String address) {
    if (address.isEmpty()) {
        return false;
    try {
        Object res = InetAddress.getByName(address);
        return res instanceof Inet4Address || res instanceof Inet6Address
    } catch (final UnknownHostException ex) {
        return false;
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