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I have a simple Node.js program running on my machine and I want to get the local IP address of a PC on which my program is running. How do I get it with Node.js?

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38 Answers 38

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1

I'm using Node.js 0.6.5:

$ node -v
v0.6.5

Here is what I do:

var util = require('util');
var exec = require('child_process').exec;

function puts(error, stdout, stderr) {
        util.puts(stdout);
}

exec("hostname -i", puts);
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  • This works with hostname -I (uppercase i). It returns a list of all assigned IP addresses of the machine. The first IP address is what you need. That IP is the one attached to the current interface that is up. – blueren Sep 6 '18 at 6:26
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Here is a multi-IP address version of jhurliman's answer:

function getIPAddresses() {

    var ipAddresses = [];

    var interfaces = require('os').networkInterfaces();
    for (var devName in interfaces) {
        var iface = interfaces[devName];
        for (var i = 0; i < iface.length; i++) {
            var alias = iface[i];
            if (alias.family === 'IPv4' && alias.address !== '127.0.0.1' && !alias.internal) {
                ipAddresses.push(alias.address);
            }
        }
    }
    return ipAddresses;
}
1

An improvement on the top answer for the following reasons:

  • Code should be as self-explanatory as possible.

  • Enumerating over an array using for...in... should be avoided.

  • for...in... enumeration should be validated to ensure the object's being enumerated over contains the property you're looking for. As JavaScript is loosely typed and the for...in... can be handed any arbitrary object to handle; it's safer to validate the property we're looking for is available.

     var os = require('os'),
         interfaces = os.networkInterfaces(),
         address,
         addresses = [],
         i,
         l,
         interfaceId,
         interfaceArray;
    
     for (interfaceId in interfaces) {
         if (interfaces.hasOwnProperty(interfaceId)) {
             interfaceArray = interfaces[interfaceId];
             l = interfaceArray.length;
    
             for (i = 0; i < l; i += 1) {
    
                 address = interfaceArray[i];
    
                 if (address.family === 'IPv4' && !address.internal) {
                     addresses.push(address.address);
                 }
             }
         }
     }
    
     console.log(addresses);
    
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  • This is incomprehensible near "for is available". – Peter Mortensen Dec 21 '20 at 19:05
0

Here's a variation that allows you to get local IP address (tested on Mac and Windows):


var
    // Local IP address that we're trying to calculate
    address
    // Provides a few basic operating-system related utility functions (built-in)
    ,os = require('os')
    // Network interfaces
    ,ifaces = os.networkInterfaces();


// Iterate over interfaces ...
for (var dev in ifaces) {

    // ... and find the one that matches the criteria
    var iface = ifaces[dev].filter(function(details) {
        return details.family === 'IPv4' && details.internal === false;
    });

    if(iface.length > 0)
        address = iface[0].address;
}

// Print the result
console.log(address); // 10.25.10.147
0

The bigger question is "Why?"

If you need to know the server on which your Node.js instance is listening on, you can use req.hostname.

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  • 3
    Maybe you have a script that should perform specific actions only if it's running on the 'live' server but not if the server has been imaged and restored to a new server instance. The local IP address might be the only way for the server to tell whether it's the original or a copy. – Molomby Apr 30 '16 at 14:15
  • so many requirements will be there for getting the IP. for example, autoscaling as a cluster – Sreeraj Nov 11 '16 at 5:38
0

The accepted answer is asynchronous. I wanted a synchronous version:

var os = require('os');
var ifaces = os.networkInterfaces();

console.log(JSON.stringify(ifaces, null, 4));

for (var iface in ifaces) {
  var iface = ifaces[iface];
  for (var alias in iface) {
    var alias = iface[alias];

    console.log(JSON.stringify(alias, null, 4));

    if ('IPv4' !== alias.family || alias.internal !== false) {
      debug("skip over internal (i.e. 127.0.0.1) and non-IPv4 addresses");
      continue;
    }
    console.log("Found IP address: " + alias.address);
    return alias.address;
  }
}
return false;
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  • “The accepted answer is asynchronous”... what makes you think so? forEach is synchronous. – Arturo Torres Sánchez Aug 27 '16 at 0:34
-2

Using internal-ip:

const internalIp = require("internal-ip")

console.log(internalIp.v4.sync())
-4

If you dont want to install dependencies and are running a *nix system you can do:

hostname -I

And you'll get all the addresses for the host, you can use that string in node:

const exec = require('child_process').exec;
let cmd = "hostname -I";
exec(cmd, function(error, stdout, stderr)
{
  console.log(stdout + error + stderr);
});

Is a one liner and you don't need other libraries like 'os' or 'node-ip' that may add accidental complexity to your code.

hostname -h

Is also your friend ;-)

Hope it helps!

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