0

I want to find the IP range from CIDR. For example, I input "192.168.1.1/24". How do I calculate the IP range in Java?

I only can change the IP address and subnet mask to byte[]. But I don't know how to merge them. This is my code.

String str = "192.168.1.1/24";
String[] cidr = str.split("/");
String[] buf = cidr[0].split(".");
byte[] ip = new byte[] { 
                (byte)Integer.parseInt(buf[0]), (byte)Integer.parseInt(buf[1]),(byte)Integer.parseInt(buf[2]), (byte)Integer.parseInt(buf[3])
};

int mask = 0xffffffff << (32 - Integer.parseInt(cidr[1]));
        int value = mask;
        byte[] subnet = new byte[] {
                (byte)(value >>> 24), (byte)(value >> 16 & 0xff), (byte)(value >> 8 & 0xff), (byte)(value & 0xff)
        };

  • 1
    What value(s) do you expect to be returned when 192.168.1.1/24 is mapped to a range of IPs? – Jacob G. Jun 1 at 1:44
  • First thing you need to do is fix the regex, because . has special meaning: cidr[0].split("\\."); – Andreas Jun 1 at 1:48
0

First thing you need to do is fix the regex, because . has special meaning: cidr[0].split("\\.");

Then, to build the from and to addresses of the IP range, using bitwise AND, OR, and NOT:

byte[] from = new byte[4];
byte[] to = new byte[4];
for (int i = 0; i < to.length; i++) {
    from[i] = (byte) (ip[i] & subnet[i]);
    to[i] = (byte) (ip[i] | ~subnet[i]);
}

Finally, print the result:

System.out.printf("%d.%d.%d.%d - %d.%d.%d.%d%n",
        Byte.toUnsignedInt(from[0]), Byte.toUnsignedInt(from[1]),
        Byte.toUnsignedInt(from[2]), Byte.toUnsignedInt(from[3]),
        Byte.toUnsignedInt(to[0]), Byte.toUnsignedInt(to[1]),
        Byte.toUnsignedInt(to[2]), Byte.toUnsignedInt(to[3]));

Output

192.168.1.0 - 192.168.1.255

FYI: The code fails for /0 because to mask value ends up wrong. I'll leave that as an exercise for you to fix that.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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