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Hello I'm having a database to select the IP location from>

The script was in php and I'm converting it to java but I have no idea what is the equivalent of ip2long('127.0.0.1' )); in java

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The basic formula for this can be found many places. Here's one –  Michael Berkowski May 29 '12 at 14:06
1  
possible duplicate of Going from 127.0.0.1 to 2130706433, and back again –  Michael Berkowski May 29 '12 at 14:07
    
Javascript port: phpjs.org/functions/ip2long –  pingw33n May 29 '12 at 14:09

3 Answers 3

up vote 2 down vote accepted

Basically, this will convert your dotted IP address string to long.

public static Long Dot2LongIP(String dottedIP) {
    String[] addrArray = dottedIP.split("\\.");        
    long num = 0;        
    for (int i=0;i<addrArray.length;i++) {            
        int power = 3-i;            
        num += ((Integer.parseInt(addrArray[i]) % 256) * Math.pow(256,power));        
    }        
    return num;    
}
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thanks alot will have to try it to make sure it gets me the exact results. you saved me time :) –  Lamis May 29 '12 at 14:09

I don't think there is a standard API to do that in Java, but

1/ The InetAddress class gives you a method to get an array of byte.

2/ If you really need a single integer, you can use this snippet, found on http://www.myteneo.net/blog/-/blogs/java-ip-address-to-integer-and-back/

public static String intToIp(int i) {
    return ((i >> 24 ) & 0xFF) + "." +

           ((i >> 16 ) & 0xFF) + "." +

           ((i >>  8 ) & 0xFF) + "." +

           ( i        & 0xFF);

}

public static Long ipToInt(String addr) {
    String[] addrArray = addr.split("\\.");

    long num = 0;

    for (int i=0;i<addrArray.length;i++) {

        int power = 3-i;

        num += ((Integer.parseInt(addrArray[i])%256 * Math.pow(256,power)));

    }

    return num;

}
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Will try that too, thanks alot :) –  Lamis May 29 '12 at 14:11
    
Don't try that "too" actually it looks like we have the same source, except the fact that I quoted mine ;=) –  Samuel Rossille May 29 '12 at 14:13

I would start by converting the string to octets:

static final String DEC_IPV4_PATTERN = "^(([0-1]?\\d{1,2}\\.)|(2[0-4]\\d\\.)|(25[0-5]\\.)){3}(([0-1]?\\d{1,2})|(2[0-4]\\d)|(25[0-5]))$";

static byte[] toOctets(String address){

    if(address==null){
        throw new NullPointerException("The IPv4 address cannot be null.");
    }

    if(!address.matches(DEC_IPV4_PATTERN)){
        throw new IllegalArgumentException(String.format("The IPv4 address is invalid:%s ",address));
    }

    //separate octets into individual strings
    String[] numbers = address.split("\\.");

    //convert octets to bytes.
    byte[] octets = new byte[4];
    for(int i = 0; i < octets.length; i++){
        octets[i] = Integer.valueOf(numbers[i]).byteValue();
    }
    return octets;
}

And then the octets to a BigInteger since it accepts a byte array, and from it to an integer:

static int toInteger(byte[] octets){
    if(octets==null){
        throw new NullPointerException("The array of octets cannot be null");
    }

    if(octets.length != 4){
        throw new IllegalArgumentException(String.format("The byte array must contain 4 octets: %d",octets.length));
    }

    return new BigInteger(octets).intValue();
}

And from here, you can simply do:

String address = "127.0.0.1";
System.out.println(toInteger(toOctets(address)));

Or create a function named ip2long(String address )

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