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I am writing a program that gets From IP address and To IP address from the user and displays the list of IP addresses between them. For example, if the user gives 10.0.0.1 and 10.0.0.5 then I will display the five IP addresses between these two. The current solution that is coming in my mind are:

  1. To have a list of all IP addresses and then look for the resultant IP address list
  2. Use a nested loop

What solution should I adopt between these (or suggest a better solution)? For the first solution, what is the link for IP address table/list?

What is the solution in terms of JavaScript or Java?

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Why do you want this? Is it for subnet scanning? –  Peter Lawrey Sep 26 '12 at 8:08
    
yes I am scanning the subnets. for this purpose I have got a scripts that tells the from and to IPs and now I want to save all these IPs in separate rows –  Asad Nauman Sep 26 '12 at 8:43
    
So if this were to run in a browser it could be used to scan the clients internal network? –  Peter Lawrey Sep 26 '12 at 8:55
    
there can be some external networks also –  Asad Nauman Sep 26 '12 at 8:59

5 Answers 5

up vote 2 down vote accepted

First split the IP addresses with .. From the first IP address, start increasing the fourth part up to 255 and then add 1 to the third part and set the fourth one to 1. Until you reach the to IP address.

  • IP address bytes -> bits -> Int32
  • From: 10.0.10.10 -> 00001010 00000000 00001010 00001010 -> 167774730
  • To: 10.1.45.1 -> 00001010 00000001 00101101 00000001 -> 167849217
  • Start count from From to To and just check the unwanted bytes which is 11111111 and 00000000.

That's all.

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1  
This is wrong. x.y.1.255 + 1 is not x.y.2.1 –  Fildor Sep 26 '12 at 8:15
    
Why not? Think about a situation witch your Subnet mask is 255.255.0.0 –  Amir Sep 26 '12 at 8:22
1  
Because it would be x.y.2.0 –  Fildor Sep 26 '12 at 8:23
    
HaHa Nice! Yeah u r right! But i wonder if we could use x.y.z.0 address ??? –  Amir Sep 26 '12 at 8:26
1  
Whether .0 is for the name of the net depends on the subnet mask. If the mask is 255.255.0.0, then the name of the net is x.y.0.0, but x.y.2.0 is just an ordinary address. –  Barmar Sep 26 '12 at 8:44

The "dot"-writing is for humans. For computers, it is one 4-byte-number. So parse it to a number. Then you will get all addresses in the range by simply increasing a number until the bound is reached and format them back for output.

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I was experimenting in an updated jsFiddle, and finally I came to the solution below. The following code should work for all IP addresses. You have to provide a start and end IP address in hex (since it is easy, I did not write code for it).

var startIp = 0x0A000001,
endIp = 0x0A000F05;

var  temp, list = [],str;
for(var i=startIp ; i <= endIp ; i++){
    temp = (i).toString(16);
    str ='';
    if(temp.length == 7){
        temp = "0"+temp;
    }

    for(var k=temp.length-1; k  >= 0 ; k-=2){
       str = parseInt(temp[k-1] + "" + temp[k], 16) +"." + str ;
    }
    document.write(temp + " " + str+ "<br>");
    list.push(str.substring(0, str.length-1));
}

?
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Since it only works when the first three components are the same, why do you bother with the i, j, and k loops? –  Barmar Sep 26 '12 at 8:48
    
Initially I was trying to make it work for all values. but it is not easy I have consider many cases. –  Anoop Sep 26 '12 at 8:50
    
Also consider the case for 10.0.10.10 and 10.1.45.1. I want to avoid nested loops and multiple if else statements. Thanks –  Asad Nauman Sep 26 '12 at 8:57

Having a list of all IP addresses and then look for the ones you need is overkill. Plus, I'm sure you'll even be able to store that list without having to buy a few extra hard disk drives.

Just use a nested loop and generate the IP addresses you're looking for.

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If you know enough to get the addresses (from the network or from the file system or user input), you can test the address itself with subtraction and get the number of IP addresses right there.

This is simplified, but you will get it if you know about addresses: 000044-000002 = 000042.

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You will need to enumerate a bit about the target network, but that is described there in the netmask. –  L0j1k Sep 26 '12 at 8:11

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