98

In Android we have, Settings.Secure.ANDROID_ID. I do not know the iOS equivalent. Is there a flutter plugin or a way to get a unique device id for both Android and IOS in flutter?

4
  • 4
    Does this unique ID be changed in any case or would remain same and never changed? If changed, what are the scenarios in which it would change?
    – Ravi Garg
    Aug 27, 2020 at 20:18
  • 5
    UPDATE: Because this thread has a very high Google ranking I wanted to mention here that the device_id package has been discontinued. The package platform_device_id looks like it works about the same way though, and has very recent activity. We're switching over to that after seeing errors in the log after iOS crashes which point to the old package. Nov 3, 2020 at 15:22
  • On Android devices, there can be multiple users for the device. Is there a way to get a unique ID per user on the device?
    – Jarl
    Mar 14, 2021 at 9:38
  • @spycbanda did you find the answer of your question, I have the same question like yours
    – wahyu
    Jan 21, 2022 at 3:24

13 Answers 13

116

Null safe code

Use device_info_plus plugin developed by Flutter community. This is how you can get IDs on both platform.

In your pubspec.yaml file add this:

dependencies:
  device_info_plus: ^3.2.3

Create a method:

Future<String?> _getId() async {
  var deviceInfo = DeviceInfoPlugin();
  if (Platform.isIOS) { // import 'dart:io'
    var iosDeviceInfo = await deviceInfo.iosInfo;
    return iosDeviceInfo.identifierForVendor; // unique ID on iOS
  } else if(Platform.isAndroid) {
    var androidDeviceInfo = await deviceInfo.androidInfo;
    return androidDeviceInfo.androidId; // unique ID on Android
  }
}

Usage:

String? deviceId = await _getId();
10
  • 2
    It's known to be null sometimes, it's documented as "can change upon factory reset". Use at your own risk, and it can be easily changed on a rooted phone.
    – Kamlesh
    Aug 31, 2020 at 8:55
  • 1
    @spycbanda Google Play Store release had a different ID vs debug development for me.
    – Elmer
    Sep 14, 2020 at 13:31
  • 18
    Just tested this: The ID stays the same until the program is deleted. If re-installed, the ID is different. Sep 26, 2020 at 20:53
  • 6
    Looks like androidDeviceInfo.androidId does not exist in 4.1.2.
    – Ville
    Aug 19, 2022 at 20:25
  • 1
    For device_info_plus: "Remove androidId (that already got removed from the method channel in 4.0.0, thus always returned null) There is a new, separate pub.dev package for getting the correct androidId" , so you now need to get it from the package "android_id"
    – Unreality
    Aug 19, 2022 at 21:03
95

There is a plugin called device_info. You can get it here.

Check the official example here

 static Future<List<String>> getDeviceDetails() async {
    String deviceName;
    String deviceVersion;
    String identifier;
    final DeviceInfoPlugin deviceInfoPlugin = new DeviceInfoPlugin();
    try {
      if (Platform.isAndroid) {
        var build = await deviceInfoPlugin.androidInfo;
        deviceName = build.model;
        deviceVersion = build.version.toString();
        identifier = build.androidId;  //UUID for Android
      } else if (Platform.isIOS) {
        var data = await deviceInfoPlugin.iosInfo;
        deviceName = data.name;
        deviceVersion = data.systemVersion;
        identifier = data.identifierForVendor;  //UUID for iOS
      }
    } on PlatformException {
      print('Failed to get platform version');
    }

//if (!mounted) return;
return [deviceName, deviceVersion, identifier];
}

You can store this UUID in the Keychain. This way you can set an unique ID for your device.

UPDATE

device_info is now device_info_plus

11
  • How do I get the android device id? can it be retrieved from device_info?
    – Mattias
    Apr 2, 2019 at 8:08
  • if (Platform.isAndroid) { .... identifier = build.androidId; ...} else if (Platform.isIOS) { ..... }
    – mara-mfa
    Aug 10, 2019 at 21:19
  • Does this require any permissions from the user?
    – Scorb
    Jun 13, 2020 at 12:48
  • @ScottF Did you ever figure out if it is legal and requires any permission from the user? Jun 26, 2020 at 16:12
  • @Chaythanya example_here link is not working, i think it is broken. Please check and update it. Thanks.
    – Kamlesh
    Aug 13, 2020 at 12:40
12

I just published a plugin to provide a solution to your problem. It uses Settings.Secure.ANDROID_ID for Android and relies on identifierForVendor and the keychain for iOS to make the behaviour equivalent to Android's. Here's the link.

1
  • I'm not able to build my project with this plugin, something related to SWIFT... Oct 31, 2019 at 21:26
12

Update 1/3/2021: The recommended way is now the extended community plugin called device_info_plus. It supports more platforms than device_info and aims to support all that are supported by flutter. Here is an example usage:

import 'package:flutter/foundation.dart' show kIsWeb;
import 'package:device_info_plus/device_info_plus.dart';
import 'dart:io';

Future<String> getDeviceIdentifier() async {
  String deviceIdentifier = "unknown";
  DeviceInfoPlugin deviceInfo = DeviceInfoPlugin();

  if (Platform.isAndroid) {
    AndroidDeviceInfo androidInfo = await deviceInfo.androidInfo;
    deviceIdentifier = androidInfo.androidId;
  } else if (Platform.isIOS) {
    IosDeviceInfo iosInfo = await deviceInfo.iosInfo;
    deviceIdentifier = iosInfo.identifierForVendor;
  } else if (kIsWeb) {
    // The web doesnt have a device UID, so use a combination fingerprint as an example
    WebBrowserInfo webInfo = await deviceInfo.webBrowserInfo;
    deviceIdentifier = webInfo.vendor + webInfo.userAgent + webInfo.hardwareConcurrency.toString();
  } else if (Platform.isLinux) {
    LinuxDeviceInfo linuxInfo = await deviceInfo.linuxInfo;
    deviceIdentifier = linuxInfo.machineId;
  } 
  return deviceIdentifier;
}
2
  • 5
    As stated in Android and IOS documentations, androidId and identifierForVendor can change over time. Apr 19, 2021 at 7:53
  • 1
    For device_info_plus: "Remove androidId (that already got removed from the method channel in 4.0.0, thus always returned null) There is a new, separate pub.dev package for getting the correct androidId" , so you now need to get it from the package "android_id"
    – Unreality
    Aug 19, 2022 at 21:04
7

Use device_id plugin

  1. Add in your following code in your .yaml file.

    device_id: ^0.1.3
    
  2. Add import in your class

    import 'package:device_id/device_id.dart';
    
  3. Now get device id from:

    String deviceid = await DeviceId.getID;
    
2
  • 2
    This will force your app to have android.permission.READ_PHONE_STATE. And this will cause a warning while publishinh your app to Play Store as Apps using these permissions in an APK are required to have a privacy policy set.
    – Sisir
    Aug 27, 2020 at 14:52
  • 10
    This plugin is discontinued
    – Joe Muller
    Oct 11, 2020 at 18:28
5

I release a new flutter plugin client_information might help. It provide a simple way to get some basic device information from your application user.

  1. add to pubspec.yaml
  dependencies:
    ...
    client_information: ^1.0.1
  1. import to your project
import 'package:client_information/client_information.dart';
  1. then you can get device ID like this
/// Support on iOS, Android and web project
Future<String> getDeviceId() async {
  return (await ClientInformation.fetch()).deviceId;
}

2
  • 1
    if I reinstalled APP, will androidId change here? May 11, 2021 at 14:26
  • 1
    it is always return null
    – user123456
    Feb 3, 2022 at 9:13
5

Latest:

The plugin device_info has given deprecation notice and replaced by device_info_plus

Example:

dependencies:
  device_info_plus: ^2.1.0

How to use:

import 'package:device_info_plus/device_info_plus.dart';

DeviceInfoPlugin deviceInfo = DeviceInfoPlugin();

AndroidDeviceInfo androidInfo = await deviceInfo.androidInfo;
print('Running on ${androidInfo.model}');  // e.g. "Moto G (4)"

IosDeviceInfo iosInfo = await deviceInfo.iosInfo;
print('Running on ${iosInfo.utsname.machine}');  // e.g. "iPod7,1"

WebBrowserInfo webBrowserInfo = await deviceInfo.webBrowserInfo;
print('Running on ${webBrowserInfo.userAgent}');  // e.g. "Mozilla/5.0 (X11; Ubuntu; Linux x86_64; rv:61.0) Gecko/20100101 Firefox/61.0"

You can check here full example:

For Unique ID:

You can use following code to get Unique ID:

if (kIsWeb) {
  WebBrowserInfo webInfo = await deviceInfo.webBrowserInfo;
  deviceIdentifier = webInfo.vendor +
      webInfo.userAgent +
      webInfo.hardwareConcurrency.toString();
} else {
  if (Platform.isAndroid) {
    AndroidDeviceInfo androidInfo = await deviceInfo.androidInfo;
    deviceIdentifier = androidInfo.androidId;
  } else if (Platform.isIOS) {
    IosDeviceInfo iosInfo = await deviceInfo.iosInfo;
    deviceIdentifier = iosInfo.identifierForVendor;
  } else if (Platform.isLinux) {
    LinuxDeviceInfo linuxInfo = await deviceInfo.linuxInfo;
    deviceIdentifier = linuxInfo.machineId;
  }
} 

edit: There is no androidId on since v4.1.0.

3
  • 1
    It's not a good solution because iosInfo changes with each app upgrade/reinstall. Apr 28, 2022 at 10:26
  • hardwareConcurrency is not a good example. It will return the number of cores on the machine, not very unique.. May 28, 2022 at 10:31
  • For device_info_plus: "Remove androidId (that already got removed from the method channel in 4.0.0, thus always returned null) There is a new, separate pub.dev package for getting the correct androidId" , so you now need to get it from the package "android_id"
    – Unreality
    Aug 19, 2022 at 21:05
3

androidID is removed since v4.1.0. Check the changelog.

android_id package is recommanded to get the correct androidId.

3

As of 2022, December, last status about getting device id :

device_info_plus don't give unique device id anymore. So I started to use platform_device_id package.

I tested it on Android and it worked as same as device_info previously and provide the same id value. It also has a simple usage :

   String deviceId = await PlatformDeviceId.getDeviceId;

This package uses updated android embedding version and also has null safety support.

2
  • that package has been abandoned because last update is 20 months ago
    – Tony Hart
    Dec 5, 2022 at 14:59
  • device_info: ^2.0.3 platform_device_id: ^1.0.1 These both packages are depricated and old. However everyone can use android_id: ^0.1.3+1 package just for android.
    – Sanny khan
    Dec 6, 2022 at 10:39
2

Add the following code in your .yaml file.

device_info_plus: ^1.0.0

I used the following approach to get the device info that support in all platforms (i.e.) Android, IOS and Web.

import 'dart:io';  
import 'package:device_info_plus/device_info_plus.dart';  
import 'package:flutter/foundation.dart' show kIsWeb;  

Future<String> getDeviceIdentifier() async { 

    String deviceIdentifier = "unknown";  
    DeviceInfoPlugin deviceInfo = DeviceInfoPlugin();  

    if (kIsWeb) {
      WebBrowserInfo webInfo = await deviceInfo.webBrowserInfo;
      deviceIdentifier = webInfo.vendor +
          webInfo.userAgent +
          webInfo.hardwareConcurrency.toString();
    } else {
      if (Platform.isAndroid) {
        AndroidDeviceInfo androidInfo = await deviceInfo.androidInfo;
        deviceIdentifier = androidInfo.androidId;
      } else if (Platform.isIOS) {
        IosDeviceInfo iosInfo = await deviceInfo.iosInfo;
        deviceIdentifier = iosInfo.identifierForVendor;
      } else if (Platform.isLinux) {
        LinuxDeviceInfo linuxInfo = await deviceInfo.linuxInfo;
        deviceIdentifier = linuxInfo.machineId;
      }
    }
    return deviceIdentifier;
}
2

Use device_info_plus package developed by Flutter community. This is how you can get IDs on both platform.

In your pubspec.yaml file add this:

dependencies:
  device_info_plus: ^3.2.3

Create a method:

Future<String> getUniqueDeviceId() async {
  String uniqueDeviceId = '';

  var deviceInfo = DeviceInfoPlugin();

  if (Platform.isIOS) { // import 'dart:io'
    var iosDeviceInfo = await deviceInfo.iosInfo;
    uniqueDeviceId = '${iosDeviceInfo.name}:${iosDeviceInfo.identifierForVendor}'; // unique ID on iOS
  } else if(Platform.isAndroid) {
    var androidDeviceInfo = await deviceInfo.androidInfo;
    uniqueDeviceId = '${androidDeviceInfo.name}:${androidDeviceInfo.id}' ; // unique ID on Android
  }
  
  return uniqueDeviceId;

}

Usage:

String deviceId = await getUniqueDeviceId();

Output:

M2102J20SG::SKQ1.211006.001

Note:

  1. Do not use androidDeviceInfo.androidId. This would change when your mac address changes. Mobile devices above Android OS 10/11 will generate a randomized MAC. This feature is enabled by default unless disabled manually. This would cause the androidId to change when switiching networks. You can confirm this by yourself by changing androidDeviceInfo.id to androidDeviceInfo.androidId above.

  2. you can probably get away with using only androidDeviceInfo.name as it would not change ever.

  3. androidDeviceInfo.id can also change if OS is updated as it is an android os version.

  4. androidDeviceInfo.androidId should only be used if device uses fix mac address as mentioned in point 1. Otherwise, either use *.name only or androidDeviceInfo.id alongside with *.name.

2

android_id: ^0.1.3+1 Use this package but it only works on android.

device_info_plus: ^8.0.0 Use this package it works on IOS, Android, Web.

-2

If you're serving ads you can use ASIdentifierManager. You should only use it for ads. There is no general UDID mechanism provided by the OS on iOS, for privacy reasons.

If you're using firebase_auth plugin you could signInAnonymously and then use the id of the FirebaseUser. This will give you an identifier that is specific to your Firebase app.

3
  • I am not using firebase , neither I am serving ads. I need a unique identifier to id the device like Settings.Secure.ANDROID_ID in android. I want to know if there a plugin out there for this or shall I have to make a new one for this ?
    – karan vs
    Jul 17, 2017 at 5:54
  • I don't think what you are asking for is possible on iOS. You can easily identify an app install by writing a guid to a file, though. Jul 17, 2017 at 5:55
  • Firebase token has been changed automatically when we uninstall and reinstall mobile app so uniqueness of token does not work. We cannot use it to identify the same user.
    – Kamlesh
    Aug 31, 2020 at 8:57

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