389

In the internet there are several places that show you how to get an IP address. And a lot of them look like this example:

String strHostName = string.Empty;
// Getting Ip address of local machine...
// First get the host name of local machine.
strHostName = Dns.GetHostName();
Console.WriteLine("Local Machine's Host Name: " + strHostName);
// Then using host name, get the IP address list..
IPHostEntry ipEntry = Dns.GetHostEntry(strHostName);
IPAddress[] addr = ipEntry.AddressList;

for (int i = 0; i < addr.Length; i++)
{
    Console.WriteLine("IP Address {0}: {1} ", i, addr[i].ToString());
}
Console.ReadLine();

With this example I get several IP addresses, but I'm only interested in getting the one that the router assigns to the computer running the program: the IP that I would give to someone if he wishes to access a shared folder in my computer for instance.

If I am not connected to a network and I am connected to the internet directly via a modem with no router then I would like to get an error. How can I see if my computer is connected to a network with C# and if it is then to get the LAN IP address.

5
  • 2
    If I am not connected to a network and I am connected to the internet This statement seems contradictory. Are you trying to figure out if your computer is connected to a private LAN or the Internet?
    – Andy
    Commented Jul 23, 2011 at 20:28
  • 6
    Just as a warning: A computer can have more than one IP interface, for example a LAN and WiFi. If you bind a service to a particular piece of hardware (say the LAN), you need the IP of the LAN. Most of the following examples will return the "first" or "last" IP address found. If you have more than 2 IP address, your program may work 50% of the time, depending on the random order the OS returns the IP addresses. Commented Jun 23, 2014 at 23:46
  • @MarkLakata I thought of the same issue. The function in my answer below will handle it. You can specify which type of network interface you want the IP address from. Commented Oct 13, 2014 at 14:54
  • 3
    Just FTR, if you google here for Unity3D, it's Network.player.ipAddress in their API
    – Fattie
    Commented Nov 21, 2014 at 4:45
  • @MarkLakata strictly speaking, the "first" or "last" IP is the "correct" IP, as the browser may use any IP that is available. Likely a good correction should be to return every IP associated with the machine.
    – UncaAlby
    Commented Feb 20, 2017 at 23:34

28 Answers 28

565

To get local Ip Address:

public static string GetLocalIPAddress()
{
    var host = Dns.GetHostEntry(Dns.GetHostName());
    foreach (var ip in host.AddressList)
    {
        if (ip.AddressFamily == AddressFamily.InterNetwork)
        {
            return ip.ToString();
        }
    }
    throw new Exception("No network adapters with an IPv4 address in the system!");
}

To check if you're connected or not:

System.Net.NetworkInformation.NetworkInterface.GetIsNetworkAvailable();

16
  • 44
    won't work if you use stuff like vm virtual box, genymotion, etc.
    – PauLEffect
    Commented Oct 6, 2014 at 3:03
  • 6
    Agree with PaulEffect. Not only this method is bad for multiple network card, but also, it's not differentiating between IP v6 and IP v4 addresses.
    – Max
    Commented Jan 9, 2015 at 22:30
  • 26
    @John AddressFamily.InterNetwork is IP v4 and AddressFamily.InterNetworkV6 is IP v6 Commented Jun 23, 2015 at 12:42
  • 3
    I'm Using Geraldo H Answer, but if anyone is using this, you may want to remove all ips that ends with 1, so it will remove loopback and virtualbox/vmware default ips Commented Jun 23, 2015 at 13:03
  • 9
    It seems you're using VMWare or other virtualization software. The OP did not ask for that, so I think down voting due to that is a bit harsh. If you have VMWare or multiple NICs, some of the other answers already provide clues to that.
    – Mrchief
    Commented May 31, 2016 at 17:32
344

There is a more accurate way when there are multi ip addresses available on local machine. Connect a UDP socket and read its local endpoint:

string localIP;
using (Socket socket = new Socket(AddressFamily.InterNetwork, SocketType.Dgram, 0))
{
    socket.Connect("8.8.8.8", 65530);
    IPEndPoint endPoint = socket.LocalEndPoint as IPEndPoint;
    localIP = endPoint.Address.ToString();
}

Connect on a UDP socket has the following effect: it sets the destination for Send/Recv, discards all packets from other addresses, and - which is what we use - transfers the socket into "connected" state, settings its appropriate fields. This includes checking the existence of the route to the destination according to the system's routing table and setting the local endpoint accordingly. The last part seems to be undocumented officially but it looks like an integral trait of Berkeley sockets API (a side effect of UDP "connected" state) that works reliably in both Windows and Linux across versions and distributions.

So, this method will give the local address that would be used to connect to the specified remote host. There is no real connection established, hence the specified remote ip can be unreachable.

21
  • 8
    This is the best solution that worked for my needs. In my situation I have many networks card and a few wireless connections. I needed to get the preferred IP address depending on which connection was activated. Commented Nov 1, 2015 at 22:57
  • 19
    Without a network connection--you have no IP address, anyhow. Therefore, the code still holds as valid, though it would be prudent to add a try..catch in order to handle such a situation, and return something like "127.0.0.1" if a SocketException were thrown.
    – Russ
    Commented Sep 1, 2016 at 13:38
  • 4
    @PatrickSteele, yep, it returns the preferred outbound ip address for the specific target. if you want to obtain your LAN ip address, try to indicate the target to be some ip from your LAN Commented Jan 29, 2017 at 6:30
  • 3
    This method works on a mac with dotnet core, whereas the the accepted answer currently does not.
    – Pellet
    Commented Dec 7, 2017 at 6:09
  • 12
    This solution works about 4 times faster than the accepted answer (by Mrchief). This should be the real answer
    – Kamarey
    Commented Sep 27, 2018 at 10:41
152

I know this may be kicking a dead horse, but maybe this can help someone. I have looked all over the place for a way to find my local IP address, but everywhere I find it says to use:

Dns.GetHostEntry(Dns.GetHostName());

I don't like this at all because it just gets all the addresses assigned to your computer. If you have multiple network interfaces (which pretty much all computers do now-a-days) you have no idea which address goes with which network interface. After doing a bunch of research I created a function to use the NetworkInterface class and yank the information out of it. This way I can tell what type of interface it is (Ethernet, wireless, loopback, tunnel, etc.), whether it is active or not, and SOOO much more.

public string GetLocalIPv4(NetworkInterfaceType _type)
{
    string output = "";
    foreach (NetworkInterface item in NetworkInterface.GetAllNetworkInterfaces())
    {
        if (item.NetworkInterfaceType == _type && item.OperationalStatus == OperationalStatus.Up)
        {
            foreach (UnicastIPAddressInformation ip in item.GetIPProperties().UnicastAddresses)
            {
                if (ip.Address.AddressFamily == AddressFamily.InterNetwork)
                {
                    output = ip.Address.ToString();
                }
            }
        }
    }
    return output;
}

Now to get the IPv4 address of your Ethernet network interface call:

GetLocalIPv4(NetworkInterfaceType.Ethernet);

Or your Wireless interface:

GetLocalIPv4(NetworkInterfaceType.Wireless80211);

If you try to get an IPv4 address for a wireless interface, but your computer doesn't have a wireless card installed it will just return an empty string. Same thing with the Ethernet interface.

EDIT:

It was pointed out (thanks @NasBanov) that even though this function goes about extracting the IP address in a much better way than using Dns.GetHostEntry(Dns.GetHostName()) it doesn't do very well at supporting multiple interfaces of the same type or multiple IP addresses on a single interface. It will only return a single IP address when there may be multiple addresses assigned. To return ALL of these assigned addresses you could simply manipulate the original function to always return an array instead of a single string. For example:

public static string[] GetAllLocalIPv4(NetworkInterfaceType _type)
{
    List<string> ipAddrList = new List<string>();
    foreach (NetworkInterface item in NetworkInterface.GetAllNetworkInterfaces())
    {
        if (item.NetworkInterfaceType == _type && item.OperationalStatus == OperationalStatus.Up)
        {
            foreach (UnicastIPAddressInformation ip in item.GetIPProperties().UnicastAddresses)
            {
                if (ip.Address.AddressFamily == AddressFamily.InterNetwork)
                {
                    ipAddrList.Add(ip.Address.ToString());
                }
            }
        }
    }
    return ipAddrList.ToArray();
}

Now this function will return ALL assigned addresses for a specific interface type. Now to get just a single string, you could use the .FirstOrDefault() extension to return the first item in the array or, if it's empty, return an empty string.

GetAllLocalIPv4(NetworkInterfaceType.Ethernet).FirstOrDefault();
10
  • 8
    This is a better solution because there is no DNS usability in lots of places and interfaces can have multiple ip addresses. I also utilise a similar method. Commented Oct 21, 2014 at 15:32
  • The issue with this is that you only return 1 IP address per interface... the last IP, foreach.
    – Nas Banov
    Commented Mar 2, 2016 at 22:52
  • @compman2408 - not true, a single interface can have multiple IPs, see en.wikipedia.org/wiki/Multihoming#Variants for all the combos. Obvious example is when running both IPv4 and IPv6, but in the past i have had single ethernet adapter participate in multiple IPv4 networks. Unusual maybe - yet perfectly legal. E.g. for Windows see windowsnetworking.com/articles-tutorials/windows-2003/…
    – Nas Banov
    Commented Mar 4, 2016 at 18:44
  • 1
    Thank you for this. FYI, at least on .NET 3.5 mono on OSX item.OperationalStatus always returns Unknown.
    – gman
    Commented May 31, 2016 at 8:43
  • 1
    @PeterMoore IIRC that's what the item.OperationalStatus == OperationalStatus.Up part does. If the NIC is in OperationalStatus.Up it's connected to a network and able to send data packets. This doesn't test connection to the internet however. Just that it's connected to a network. Also this function (as it's written) only looks at one type of NIC. It doesn't look at all NICs on a computer to return the "most relevant" IP address. It will return an IP address assigned to the type of NIC that was passed in via the function's argument (if there is one). Commented Apr 22, 2022 at 5:55
121

Refactoring Mrcheif's code to leverage Linq (ie. .Net 3.0+). .

private IPAddress LocalIPAddress()
{
    if (!System.Net.NetworkInformation.NetworkInterface.GetIsNetworkAvailable())
    {
        return null;
    }

    IPHostEntry host = Dns.GetHostEntry(Dns.GetHostName());

    return host
        .AddressList
        .FirstOrDefault(ip => ip.AddressFamily == AddressFamily.InterNetwork);
}

:)

4
  • I've got a few IP Addresses as "Inter Network" an this solution actually works and gives the right one back. The other one from Mrchief just gives me the last one. So actually this one should be the right one ;) Commented Dec 22, 2011 at 12:23
  • 32
    @KeenoraFluffball - this one gives you the first one, whereas this one gives you the last one (or vice versa, depends how the list is constructed). Either way, neither is right - if there are more than 1 IP address given to you, you need to know which network you're using. Guessing by taking the first or last is not the correct solution.
    – gbjbaanb
    Commented Sep 4, 2013 at 9:11
  • May want to also include AddressFamily.InterNetworkV6
    – joelsand
    Commented Mar 19, 2019 at 18:41
  • the return of null if the network is not available is not useful if you have to handle standalone PCs as well. I replaced it with "return IPAddress.Loopback;" which corresponds to the special IP number 127.0.0.1.
    – Christian
    Commented Nov 22, 2019 at 14:10
47

Here is a modified version (from compman2408's one) which worked for me:

    internal static string GetLocalIPv4(NetworkInterfaceType _type)
    {  // Checks your IP adress from the local network connected to a gateway. This to avoid issues with double network cards
        string output = "";  // default output
        foreach (NetworkInterface item in NetworkInterface.GetAllNetworkInterfaces()) // Iterate over each network interface
        {  // Find the network interface which has been provided in the arguments, break the loop if found
            if (item.NetworkInterfaceType == _type && item.OperationalStatus == OperationalStatus.Up)
            {   // Fetch the properties of this adapter
                IPInterfaceProperties adapterProperties = item.GetIPProperties();
                // Check if the gateway adress exist, if not its most likley a virtual network or smth
                if (adapterProperties.GatewayAddresses.FirstOrDefault() != null)
                {   // Iterate over each available unicast adresses
                    foreach (UnicastIPAddressInformation ip in adapterProperties.UnicastAddresses)
                    {   // If the IP is a local IPv4 adress
                        if (ip.Address.AddressFamily == System.Net.Sockets.AddressFamily.InterNetwork)
                        {   // we got a match!
                            output = ip.Address.ToString();
                            break;  // break the loop!!
                        }
                    }
                }
            }
            // Check if we got a result if so break this method
            if (output != "") { break; }
        }
        // Return results
        return output;
    }

You can call this method for example like:

GetLocalIPv4(NetworkInterfaceType.Ethernet);

The change: I'm retrieving the IP from an adapter which has a gateway IP assigned to it. Second change: I've added docstrings and break statement to make this method more efficient.

5
  • 4
    Has the same issue like the code it was derived from: it just returns one of the IPs, a random IP from many - which does not have to be the one you need. It earns the ademiller.com/blogs/tech/2008/06/it-works-on-my-machine-award
    – Nas Banov
    Commented Mar 5, 2016 at 21:14
  • 1
    @NasBanov, Sure I did earn it, as I'm stating in my post: "which worked for me". :-)
    – Gerardo H
    Commented Apr 21, 2016 at 16:40
  • This is the way to go, thank you for this. When you have loop back switches for emulators installed, all the other variants fail while this one succeeds! Commented Aug 27, 2016 at 16:02
  • 1
    Why do you only return the last ip-address you have found, not the first? A simpel break in the most inner if or a return would do the trick. Commented May 10, 2017 at 9:23
  • Best answer! Working fine in 2021. Thank you so much :) Commented May 26, 2021 at 17:06
29

This is the best code I found to get the current IP, avoiding get VMWare host or other invalid IP address.

public string GetLocalIpAddress()
{
    UnicastIPAddressInformation mostSuitableIp = null;

    var networkInterfaces = NetworkInterface.GetAllNetworkInterfaces();

    foreach (var network in networkInterfaces)
    {
        if (network.OperationalStatus != OperationalStatus.Up)
            continue;

        var properties = network.GetIPProperties();

        if (properties.GatewayAddresses.Count == 0)
            continue;

        foreach (var address in properties.UnicastAddresses)
        {
            if (address.Address.AddressFamily != AddressFamily.InterNetwork)
                continue;

            if (IPAddress.IsLoopback(address.Address))
                continue;

            if (!address.IsDnsEligible)
            {
                if (mostSuitableIp == null)
                    mostSuitableIp = address;
                continue;
            }

            // The best IP is the IP got from DHCP server
            if (address.PrefixOrigin != PrefixOrigin.Dhcp)
            {
                if (mostSuitableIp == null || !mostSuitableIp.IsDnsEligible)
                    mostSuitableIp = address;
                continue;
            }

            return address.Address.ToString();
        }
    }

    return mostSuitableIp != null 
        ? mostSuitableIp.Address.ToString()
        : "";
}
6
  • You should probably explain, why this code is the solution for the answer. Can you actually get an answer on the question if you're connected to the internet and does this result in an error?
    – Philipp M
    Commented Nov 10, 2016 at 13:52
  • The other ways does not use IsDnsEligible and PrefixOrigin validation. Commented Dec 5, 2016 at 11:50
  • @PhilippM If address is not a DNS Eligible, it is a reserved internal IP. It is not the internet provider host. And if PrefixOrigin was suplied by a DHCP server, possible this is the best address choice. This is the unique function that works to me! Commented Dec 5, 2016 at 11:57
  • 1
    @user1551843 - that was great, thanks. I was using the old depreciated GetHostByName method but it was returning the IP of a VMWare adapter :) Commented Jan 15, 2017 at 3:04
  • This was the only solution that worked for me on vpn + wireless. Thank you.
    – jay-danger
    Commented Nov 2, 2018 at 21:02
25

I think using LINQ is easier:

Dns.GetHostEntry(Dns.GetHostName())
   .AddressList
   .First(x => x.AddressFamily == System.Net.Sockets.AddressFamily.InterNetwork)
   .ToString()
4
  • 1
    Apart from that discussion, it is working fine for me. I'd like to suggest to replace . by ?., .First by ?.FirstOrDefault and append ??"" at the end - this way you can safely use it without null exceptions - if IP can't be retrieved, it will just return an empty string.
    – Matt
    Commented Apr 27, 2020 at 11:11
  • @Matt Returning an empty string can give unexpected results elsewhere in your code, but I think you won't get a NRE anyway since .First will throw an exception already. But indeed depending on your use case you could use .FirstOrDefault instead and check for null.
    – Kapé
    Commented Dec 21, 2020 at 9:25
  • Indeed, it is not necessary to append ??"", that depends on the use case. But this will assign null which you can check easily if the IP couldn't be obtained: var ip = Dns?.GetHostEntry(Dns.GetHostName())?.AddressList?.FirstOrDefault(x => x.AddressFamily == System.Net.Sockets.AddressFamily.InterNetwork)?.ToString(); so you won't get a NRE - you can just go ahead with if (ip != null) { ... // IP iwas obtained ...}
    – Matt
    Commented Dec 21, 2020 at 9:56
  • I think the relevant question is: Do you want an exception to be thrown? Or rather stay in line with the code (exceptions usually "jump" to a place where the logic of your code gets lost) and rather do checks along the flow? Regarding .First() - I experienced that this can also throw unwanted exceptions, so wherever possible, I am using .FirstOrDefault() instead. Another question is: At which level of depth in the code do you want to catch exceptions? Do you re-throw them or handle them in place? And in addition: Usually, if-statements are better readable by others.
    – Matt
    Commented Dec 21, 2020 at 11:56
11

Tested with one or multiple LAN cards and Virtual machines

public static string DisplayIPAddresses()
    {
        string returnAddress = String.Empty;

        // Get a list of all network interfaces (usually one per network card, dialup, and VPN connection)
        NetworkInterface[] networkInterfaces = NetworkInterface.GetAllNetworkInterfaces();

        foreach (NetworkInterface network in networkInterfaces)
        {
            // Read the IP configuration for each network
            IPInterfaceProperties properties = network.GetIPProperties();

            if (network.NetworkInterfaceType == NetworkInterfaceType.Ethernet &&
                   network.OperationalStatus == OperationalStatus.Up &&
                   !network.Description.ToLower().Contains("virtual") &&
                   !network.Description.ToLower().Contains("pseudo"))
            {
                // Each network interface may have multiple IP addresses
                foreach (IPAddressInformation address in properties.UnicastAddresses)
                {
                    // We're only interested in IPv4 addresses for now
                    if (address.Address.AddressFamily != AddressFamily.InterNetwork)
                        continue;

                    // Ignore loopback addresses (e.g., 127.0.0.1)
                    if (IPAddress.IsLoopback(address.Address))
                        continue;

                    returnAddress = address.Address.ToString();
                    Console.WriteLine(address.Address.ToString() + " (" + network.Name + " - " + network.Description + ")");
                }
            }
        }

       return returnAddress;
    }
1
  • Keep in mind that this one is working for Ethernet only. Remove NetworkInterfaceType restriction to support wi-fi.
    – scor4er
    Commented Aug 6, 2019 at 19:07
11

For a laugh, thought I'd try and get a single LINQ statement by using the new C# 6 null-conditional operator. Looks pretty crazy and probably horribly inefficient, but it works.

private string GetLocalIPv4(NetworkInterfaceType type = NetworkInterfaceType.Ethernet)
{
    // Bastardized from: http://stackoverflow.com/a/28621250/2685650.

    return NetworkInterface
        .GetAllNetworkInterfaces()
        .FirstOrDefault(ni =>
            ni.NetworkInterfaceType == type
            && ni.OperationalStatus == OperationalStatus.Up
            && ni.GetIPProperties().GatewayAddresses.FirstOrDefault() != null
            && ni.GetIPProperties().UnicastAddresses.FirstOrDefault(ip => ip.Address.AddressFamily == AddressFamily.InterNetwork) != null
        )
        ?.GetIPProperties()
        .UnicastAddresses
        .FirstOrDefault(ip => ip.Address.AddressFamily == AddressFamily.InterNetwork)
        ?.Address
        ?.ToString()
        ?? string.Empty;
}

Logic courtesy of Gerardo H (and by reference compman2408).

3
  • 1
    So .. not what I would write. This sort of odd "?." chained LINQ-to-Objects can be rewritten (or "fixed") when using Select/SelectMany (SelectMany can increase or reduce the length) to do transforms, such that the final form is IEnumeable<string> so that "FirstOrDefault() ?? string.Empty" is sufficient. Commented Jul 31, 2020 at 17:44
  • I'm not sure you can argue the null conditional operator is "odd", but sure I take it this code is (as I said) "pretty crazy".
    – Stajs
    Commented Aug 1, 2020 at 21:45
  • Once you use the first null conditional, they should all have it after that. If no network interfaces match it will throw null pointer exception on .UnicastAddresses
    – Geoduck
    Commented Jan 20, 2022 at 17:23
10

Other way to get IP using linq expression:

public static List<string> GetAllLocalIPv4(NetworkInterfaceType type)
{
    return NetworkInterface.GetAllNetworkInterfaces()
                   .Where(x => x.NetworkInterfaceType == type && x.OperationalStatus == OperationalStatus.Up)
                   .SelectMany(x => x.GetIPProperties().UnicastAddresses)
                   .Where(x => x.Address.AddressFamily == AddressFamily.InterNetwork)
                   .Select(x => x.Address.ToString())
                   .ToList();
}
7

@mrcheif I found this answer today and it was very useful although it did return a wrong IP (not due to the code not working) but it gave the wrong internetwork IP when you have such things as Himachi running.

public static string localIPAddress()
{
    IPHostEntry host;
    string localIP = "";
    host = Dns.GetHostEntry(Dns.GetHostName());

    foreach (IPAddress ip in host.AddressList)
    {
        localIP = ip.ToString();

        string[] temp = localIP.Split('.');

        if (ip.AddressFamily == AddressFamily.InterNetwork && temp[0] == "192")
        {
            break;
        }
        else
        {
            localIP = null;
        }
    }

    return localIP;
}
2
  • 2
    Do you mean Logmein Hamachi? It is a VPN solution and it tinkers with the network stack. Also, being a VPN, it seems reasonable that it returns the VPN assigned IP when connected (just my guess).
    – Mrchief
    Commented Jan 28, 2013 at 22:17
  • 2
    Completely Unreliable. Not only is 192.0.0.0/8 not a correct test for a private IP address (there are 3 ranges, all different from this one), it can be well be a corporate network range, so not so much "local". Commented Oct 17, 2017 at 19:47
5

Just an updated version of mine using LINQ:

/// <summary>
/// Gets the local Ipv4.
/// </summary>
/// <returns>The local Ipv4.</returns>
/// <param name="networkInterfaceType">Network interface type.</param>
IPAddress GetLocalIPv4(NetworkInterfaceType networkInterfaceType)
{
    var networkInterfaces = NetworkInterface.GetAllNetworkInterfaces().Where(i => i.NetworkInterfaceType == networkInterfaceType && i.OperationalStatus == OperationalStatus.Up);

    foreach (var networkInterface in networkInterfaces)
    {
        var adapterProperties = networkInterface.GetIPProperties();

        if (adapterProperties.GatewayAddresses.FirstOrDefault() == null)
                continue;
        foreach (var ip in networkInterface.GetIPProperties().UnicastAddresses)
        {
            if (ip.Address.AddressFamily != AddressFamily.InterNetwork)
                    continue;

            return ip.Address;
        }
    }

    return null;
}
4

I also was struggling with obtaining the correct IP.

I tried a variety of the solutions here but none provided me the desired affect. Almost all of the conditional tests that was provided caused no address to be used.

This is what worked for me, hope it helps...

var firstAddress = (from address in NetworkInterface.GetAllNetworkInterfaces().Select(x => x.GetIPProperties()).SelectMany(x => x.UnicastAddresses).Select(x => x.Address)
                    where !IPAddress.IsLoopback(address) && address.AddressFamily == System.Net.Sockets.AddressFamily.InterNetwork
                    select address).FirstOrDefault();

Console.WriteLine(firstAddress);
3

Pre requisites: you have to add System.Data.Linq reference and refer it

using System.Linq;
string ipAddress ="";
IPHostEntry ipHostInfo = Dns.GetHostEntry(Dns.GetHostName());
ipAddress = Convert.ToString(ipHostInfo.AddressList.FirstOrDefault(address => address.AddressFamily == AddressFamily.InterNetwork));
0
3

Using these:

using System.Net;
using System.Net.Sockets;
using System.Net.NetworkInformation;
using System.Linq;

You can use a series of LINQ methods to grab the most preferred IP address.

public static bool IsIPv4(IPAddress ipa) => ipa.AddressFamily == AddressFamily.InterNetwork;

public static IPAddress GetMainIPv4() => NetworkInterface.GetAllNetworkInterfaces()
.Select((ni)=>ni.GetIPProperties())
.Where((ip)=> ip.GatewayAddresses.Where((ga) => IsIPv4(ga.Address)).Count() > 0)
.FirstOrDefault()?.UnicastAddresses?
.Where((ua) => IsIPv4(ua.Address))?.FirstOrDefault()?.Address;

This simply finds the first Network Interface that has an IPv4 Default Gateway, and gets the first IPv4 address on that interface. Networking stacks are designed to have only one Default Gateway, and therefore the one with a Default Gateway, is the best one.

WARNING: If you have an abnormal setup where the main adapter has more than one IPv4 Address, this will grab only the first one. (The solution to grabbing the best one in that scenario involves grabbing the Gateway IP, and checking to see which Unicast IP is in the same subnet as the Gateway IP Address, which would kill our ability to create a pretty LINQ method based solution, as well as being a LOT more code)

1
  • 1
    This solution gets the real IP configured on the interface. Most DNS based solutions just ask someone else (the DNS) what it thinks the local IP might be. Commented May 12, 2021 at 16:17
2

Updating Mrchief's answer with Linq, we will have:

public static IPAddress GetLocalIPAddress()
{
   var host = Dns.GetHostEntry(Dns.GetHostName());
   var ipAddress= host.AddressList.FirstOrDefault(ip => ip.AddressFamily == AddressFamily.InterNetwork);
   return ipAddress;
}
2

This returns addresses from any interfaces that have gateway addresses and unicast addresses in two separate lists, IPV4 and IPV6.

public static (List<IPAddress> V4, List<IPAddress> V6) GetLocal()
{
    List<IPAddress> foundV4 = new List<IPAddress>();
    List<IPAddress> foundV6 = new List<IPAddress>();

    NetworkInterface.GetAllNetworkInterfaces().ToList().ForEach(ni =>
    {
        if (ni.GetIPProperties().GatewayAddresses.FirstOrDefault() != null)
        {
            ni.GetIPProperties().UnicastAddresses.ToList().ForEach(ua =>
            {
                if (ua.Address.AddressFamily == AddressFamily.InterNetwork) foundV4.Add(ua.Address);
                if (ua.Address.AddressFamily == AddressFamily.InterNetworkV6) foundV6.Add(ua.Address);
            });
        }
    });

    return (foundV4.Distinct().ToList(), foundV6.Distinct().ToList());
}
0
1
string str="";

System.Net.Dns.GetHostName();

IPHostEntry ipEntry = System.Net.Dns.GetHostEntry(str);

IPAddress[] addr = ipEntry.AddressList;

string IP="Your Ip Address Is :->"+ addr[addr.Length - 1].ToString();
1
  • str is always empty
    – aj.toulan
    Commented Sep 9, 2019 at 15:30
1

Keep in mind, in the general case you could have multiple NAT translations going on, and multiple dns servers, each operating on different NAT translation levels.

What if you have carrier grade NAT, and want to communicate with other customers of the same carrier? In the general case you never know for sure because you might appear with different host names at every NAT translation.

1

Obsolete gone, this works to me

public static IPAddress GetIPAddress()
{ 
 IPAddress ip = Dns.GetHostAddresses(Dns.GetHostName()).Where(address => 
 address.AddressFamily == AddressFamily.InterNetwork).First();
 return ip;
}
1
Imports System.Net
Imports System.Net.Sockets
Function LocalIP()
    Dim strHostName = Dns.GetHostName
    Dim Host = Dns.GetHostEntry(strHostName)
    For Each ip In Host.AddressList
        If ip.AddressFamily = AddressFamily.InterNetwork Then
            txtIP.Text = ip.ToString
        End If
    Next

    Return True
End Function

Below same action

Function LocalIP()

   Dim Host As String =Dns.GetHostEntry(Dns.GetHostName).AddressList(1).MapToIPv4.ToString

   txtIP.Text = Host

   Return True

End Function
1
  • Below example is same action Function LocalIP() Dim Host As String = Dns.GetHostEntry(Dns.GetHostName).AddressList(1).MapToIPv4.ToString txtIP.Text = Host Return True End Function Commented May 23, 2020 at 7:16
0

In addition just simple code for getting Client Ip:

        public static string getclientIP()
        {
            var HostIP = HttpContext.Current != null ? HttpContext.Current.Request.UserHostAddress : "";
            return HostIP;
        }

Hope it's help you.

1
  • This is relevant if you have HttpContext to hand but in some cases we will not so there should be an alternative solution for that.
    – Trevor
    Commented Apr 2, 2021 at 16:16
0

Modified compman2408's code to be able to iterate through each NetworkInterfaceType.

public static string GetLocalIPv4 (NetworkInterfaceType _type) {
    string output = null;
    foreach (NetworkInterface item in NetworkInterface.GetAllNetworkInterfaces ()) {
        if (item.NetworkInterfaceType == _type && item.OperationalStatus == OperationalStatus.Up) {
            foreach (UnicastIPAddressInformation ip in item.GetIPProperties ().UnicastAddresses) {
                if (ip.Address.AddressFamily == AddressFamily.InterNetwork) {
                    output = ip.Address.ToString ();
                }
            }
        }
    }
    return output;
}

And you can call it like so:

static void Main (string[] args) {
    // Get all possible enum values:
    var nitVals = Enum.GetValues (typeof (NetworkInterfaceType)).Cast<NetworkInterfaceType> ();

    foreach (var nitVal in nitVals) {
        Console.WriteLine ($"{nitVal} => {GetLocalIPv4 (nitVal) ?? "NULL"}");
    }
}
0

I failed to get the IP address with the suggested answer using "var host = Dns.GetHostEntry(Dns.GetHostName())" on Debian 10 arm64, it gives an ExtendedSocketException like this

Unhandled exception. System.Net.Internals.SocketExceptionFactory+ExtendedSocketException (00000005, 0xFFFDFFFF): Name or service not known at System.Net.Dns.GetHostEntryOrAddressesCore(String hostName, Boolean justAddresses, AddressFamily addressFamily, ValueStopwatch stopwatch) at System.Net.Dns.GetHostEntry(String hostNameOrAddress, AddressFamily family) at System.Net.Dns.GetHostEntry(String hostNameOrAddress)

I eventually got it working with System.Net.NetworkInformation.NetworkInterface.GetAllNetworkInterfaces()

var netInterfaces = System.Net.NetworkInformation.NetworkInterface.GetAllNetworkInterfaces();
foreach (var netInterface in netInterfaces)
    foreach(var ip in netInterface.GetIPProperties().UnicastAddresses)
        Console.WriteLine("\t{0}", ip.Address.ToString());
0
    private static string GetIpAdressForLocalHost(string host)

    {
        //check if hostname is localhost or 127.0.0.1 and so on
        if(!Dns.GetHostAddresses(host).Where(IPAddress.IsLoopback).IsNullOrEmpty())
        {
            //returns the ip address for the physical network interface
            return NetworkInterface.GetAllNetworkInterfaces()
                .Where(u => (u.NetworkInterfaceType == NetworkInterfaceType.Wireless80211 || u.NetworkInterfaceType == NetworkInterfaceType.Ethernet)
                            && u.OperationalStatus == OperationalStatus.Up && !u.GetIPProperties().GatewayAddresses.IsNullOrEmpty())
                .Select(i => i.GetIPProperties().UnicastAddresses).SelectMany(u => u).Where(u => u.Address.AddressFamily == AddressFamily.InterNetwork)
                .Select(i => i.Address.ToString()).FirstOrDefault(Dns.GetHostAddresses(host).Select(i => i.ToString()).FirstOrDefault(host));
        }
        else
            return Dns.GetHostName();
    }
1
  • 2
    Thank you for your interest in contributing to the Stack Overflow community. This question already has quite a few answers—including one that has been extensively validated by the community. Are you certain your approach hasn’t been given previously? If so, it would be useful to explain how your approach is different, under what circumstances your approach might be preferred, and/or why you think the previous answers aren’t sufficient. Can you kindly edit your answer to offer an explanation? Commented Aug 19, 2023 at 1:02
-1
Dns.GetHostEntry(Dns.GetHostName()).AddressList[1].MapToIPv4() //returns 192.168.14.1

enter image description here

3
  • 5
    Your answer should contain a description of how it works for the case of OP and also for future readers. Commented Mar 8, 2020 at 11:51
  • It's better to include an explanation of your answer for future readers. Commented Mar 8, 2020 at 15:01
  • 1
    It may throw an OutOfRangeException in some cases.
    – Jinjinov
    Commented Jul 29, 2020 at 9:25
-1

This is the shortest way:

Dns.GetHostEntry(
    Dns.GetHostName()
).AddressList.AsEnumerable().Where(
    ip=>ip.AddressFamily.Equals(AddressFamily.InterNetwork)
).FirstOrDefault().ToString()
1
  • 2
    Please edit your post to include an explanation
    – mousetail
    Commented Oct 18, 2021 at 10:26
-2

There is already many of answer, but I m still contributing mine one:

public static IPAddress LocalIpAddress() {
    Func<IPAddress, bool> localIpPredicate = ip =>
        ip.AddressFamily == AddressFamily.InterNetwork &&
        ip.ToString().StartsWith("192.168"); //check only for 16-bit block
    return Dns.GetHostEntry(Dns.GetHostName()).AddressList.LastOrDefault(localIpPredicate);
}

One liner:

public static IPAddress LocalIpAddress() => Dns.GetHostEntry(Dns.GetHostName()).AddressList.LastOrDefault(ip => ip.AddressFamily == AddressFamily.InterNetwork && ip.ToString().StartsWith("192.168"));

note: Search from last because it still worked after some interfaces added into device, such as MobileHotspot,VPN or other fancy virtual adapters.

3
  • 6
    So if my local IP is 10.0.2.3 it's not found? That's really weird in this code. Commented Oct 31, 2019 at 11:21
  • @frankhommers been said check only for 16-bit block
    – nyconing
    Commented Nov 1, 2019 at 3:44
  • 4
    16 bits blocks can also be something else than 192.168 Commented Nov 1, 2019 at 8:37

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