Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Do Android devices have a unique id, and if so, what is a simple way to access it via Java?

share|improve this question
8  
This question is a duplicate of stackoverflow.com/questions/2322234/… –  rds Dec 15 '10 at 22:12
6  
If you're using ANDROID_ID be sure to read this answer and this bug. –  Dheeraj V.S. Jan 16 '13 at 8:16
2  
Here is an informative answer. –  Eng.Fouad May 24 '13 at 17:10
27  
why do the mods insist on ruining this site and claiming "duplicate" on all the best answers on this site? " - please just sit back for minute and think before you waste time typing bs instead of giving a real answer –  ChuckKelly Sep 16 '13 at 21:10
    
I found perfect: stackoverflow.com/a/16929647/1318946 –  Pratik Butani Apr 25 at 5:00
add comment

26 Answers 26

up vote 462 down vote accepted

Settings.Secure#ANDROID_ID returns the Android ID as an unique 64-bit hex string.

import android.provider.Settings.Secure;

private String android_id = Secure.getString(getContext().getContentResolver(),
                                                        Secure.ANDROID_ID); 
share|improve this answer
194  
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. –  Seva Alekseyev Jun 23 '10 at 14:21
17  
4  
I think we need to be careful about using ANDROID_ID in hash in first answer about because it may not be set when app is first run, may be set later, or may even change in theory, hence unique ID may change –  user604363 Feb 5 '11 at 17:06
24  
Be aware there are huge limitations with this solution: android-developers.blogspot.com/2011/03/… –  emmby Apr 7 '11 at 20:10
6  
ANDROID_ID no longer uniquely identifies a device (as of 4.2): stackoverflow.com/a/13465373/150016 –  Tom Dec 15 '12 at 19:36
show 12 more comments

There are many answers to this question, most of which will only work "some" of the time, and unfortunately that's not good enough.

Based on my tests of devices (all phones, at least one of which is not activated):

  • All devices tested returned a value for TelephonyManager.getDeviceId()
  • All GSM devices (all tested with a SIM) returned a value for TelephonyManager.getSimSerialNumber()
  • All CDMA devices returned null for getSimSerialNumber() (as expected)
  • All devices with a Google account added returned a value for ANDROID_ID
  • All CDMA devices returned the same value (or derivation of the same value) for both ANDROID_ID and TelephonyManager.getDeviceId() -- as long as a Google account has been added during setup.
  • I did not yet have a chance to test GSM devices with no SIM, a GSM device with no Google account added, or any of the devices in airplane mode.

So if you want something unique to the device itself, TM.getDeviceId() should be sufficient. Obviously some users are more paranoid than others, so it might be useful to hash 1 or more of these identifiers, so that the string is still virtually unique to the device, but does not explicitly identify the user's actual device. For example, using String.hashCode(), combined with a UUID:

    final TelephonyManager tm = (TelephonyManager) getBaseContext().getSystemService(Context.TELEPHONY_SERVICE);

    final String tmDevice, tmSerial, androidId;
    tmDevice = "" + tm.getDeviceId();
    tmSerial = "" + tm.getSimSerialNumber();
    androidId = "" + android.provider.Settings.Secure.getString(getContentResolver(), android.provider.Settings.Secure.ANDROID_ID);

    UUID deviceUuid = new UUID(androidId.hashCode(), ((long)tmDevice.hashCode() << 32) | tmSerial.hashCode());
    String deviceId = deviceUuid.toString();

might result in something like: 00000000-54b3-e7c7-0000-000046bffd97

It works well enough for me.

As Richard mentions below, don't forget that you need permission to read the TelephonyManager properties, so add this to your manifest:

<uses-permission android:name="android.permission.READ_PHONE_STATE" />
share|improve this answer
71  
Telephony-based ID won't be there on tablet devices, neh? –  Seva Alekseyev Jun 23 '10 at 14:27
6  
Hence why I said most won't work all the time :) I've yet to see any answer to this question that is reliable for all devices, all device types, and all hardware configurations. That's why this question is here to begin with. It's pretty clear that there is no end-all-be-all solution to this. Individual device manufacturers may have device serial numbers, but those are not exposed for us to use, and it is not a requirement. Thus we're left with what is available to us. –  Joe Jun 29 '10 at 19:40
13  
The code sample works great. Remember to add <uses-permission android:name="android.permission.READ_PHONE_STATE" /> to the manifest file. If storing in a database, the returned string is 36 characters long. –  Richard Feb 27 '11 at 22:28
4  
Be aware there are huge limitations with this solution: android-developers.blogspot.com/2011/03/… –  emmby Apr 7 '11 at 20:09
7  
@softarn: I believe what you're referring to is the Android Developer Blog that emmby already linked to, which explains what you are trying to say, so perhaps you should have simply upvoted his comment instead. Either way, as emmby mentions in his answer, there are still problems even with the blog info. The question asks for a unique DEVICE identifier (not installation identifier), so I disagree with your statement. The blog is making an assumption that what you want is not necessarily to track the device, whereas the question asks for just that. I agree with the blog otherwise. –  Joe Jul 22 '11 at 0:45
show 16 more comments

As Dave Webb mentions, the Android Developer Blog has an article that covers this. Their preferred solution is to track app installs rather than devices, and that will work well for most use cases. The blog post will show you the necessary code to make that work, and I recommend you check it out.

However, the blog post goes on to discuss solutions if you need a device identifier rather than an app installation identifier. I spoke with someone at Google to get some additional clarification on a few items in the event that you need to do so. Here's what I discovered about device identifiers that's NOT mentioned in the aforementioned blog post:

  • ANDROID_ID is the preferred device identifier. ANDROID_ID is perfectly reliable on versions of Android <=2.1 or >=2.3. Only 2.2 has the problems mentioned in the post.
  • Several devices by several manufacturers are affected by the ANDROID_ID bug in 2.2.
  • As far as I've been able to determine, all affected devices have the same ANDROID_ID, which is 9774d56d682e549c. Which is also the same device id reported by the emulator, btw.
  • Google believes that OEMs have patched the issue for many or most of their devices, but I was able to verify that as of the beginning of April 2011, at least, it's still quite easy to find devices that have the broken ANDROID_ID.

Based on Google's recommendations, I implemented a class that will generate a unique UUID for each device, using ANDROID_ID as the seed where appropriate, falling back on TelephonyManager.getDeviceId() as necessary, and if that fails, resorting to a randomly generated unique UUID that is persisted across app restarts (but not app re-installations).

Note that for devices that have to fallback on the device ID, the unique ID WILL persist across factory resets. This is something to be aware of. If you need to ensure that a factory reset will reset your unique ID, you may want to consider falling back directly to the random UUID instead of the device ID.

Again, this code is for a device ID, not an app installation ID. For most situations, an app installation ID is probably what you're looking for. But if you do need a device ID, then the following code will probably work for you.

import android.content.Context;
import android.content.SharedPreferences;
import android.provider.Settings.Secure;
import android.telephony.TelephonyManager;

import java.io.UnsupportedEncodingException;
import java.util.UUID;

public class DeviceUuidFactory {

    protected static final String PREFS_FILE = "device_id.xml";
    protected static final String PREFS_DEVICE_ID = "device_id";
    protected volatile static UUID uuid;

    public DeviceUuidFactory(Context context) {
        if (uuid == null) {
            synchronized (DeviceUuidFactory.class) {
                if (uuid == null) {
                    final SharedPreferences prefs = context
                            .getSharedPreferences(PREFS_FILE, 0);
                    final String id = prefs.getString(PREFS_DEVICE_ID, null);
                    if (id != null) {
                        // Use the ids previously computed and stored in the
                        // prefs file
                        uuid = UUID.fromString(id);
                    } else {
                        final String androidId = Secure.getString(
                            context.getContentResolver(), Secure.ANDROID_ID);
                        // Use the Android ID unless it's broken, in which case
                        // fallback on deviceId,
                        // unless it's not available, then fallback on a random
                        // number which we store to a prefs file
                        try {
                            if (!"9774d56d682e549c".equals(androidId)) {
                                uuid = UUID.nameUUIDFromBytes(androidId
                                        .getBytes("utf8"));
                            } else {
                                final String deviceId = (
                                    (TelephonyManager) context
                                    .getSystemService(Context.TELEPHONY_SERVICE))
                                    .getDeviceId();
                                uuid = deviceId != null ? UUID
                                    .nameUUIDFromBytes(deviceId
                                            .getBytes("utf8")) : UUID
                                    .randomUUID();
                            }
                        } catch (UnsupportedEncodingException e) {
                            throw new RuntimeException(e);
                        }
                        // Write the value out to the prefs file
                        prefs.edit()
                                .putString(PREFS_DEVICE_ID, uuid.toString())
                                .commit();
                    }
                }
            }
        }
    }

    /**
     * Returns a unique UUID for the current android device. As with all UUIDs,
     * this unique ID is "very highly likely" to be unique across all Android
     * devices. Much more so than ANDROID_ID is.
     * 
     * The UUID is generated by using ANDROID_ID as the base key if appropriate,
     * falling back on TelephonyManager.getDeviceID() if ANDROID_ID is known to
     * be incorrect, and finally falling back on a random UUID that's persisted
     * to SharedPreferences if getDeviceID() does not return a usable value.
     * 
     * In some rare circumstances, this ID may change. In particular, if the
     * device is factory reset a new device ID may be generated. In addition, if
     * a user upgrades their phone from certain buggy implementations of Android
     * 2.2 to a newer, non-buggy version of Android, the device ID may change.
     * Or, if a user uninstalls your app on a device that has neither a proper
     * Android ID nor a Device ID, this ID may change on reinstallation.
     * 
     * Note that if the code falls back on using TelephonyManager.getDeviceId(),
     * the resulting ID will NOT change after a factory reset. Something to be
     * aware of.
     * 
     * Works around a bug in Android 2.2 for many devices when using ANDROID_ID
     * directly.
     * 
     * @see http://code.google.com/p/android/issues/detail?id=10603
     * 
     * @return a UUID that may be used to uniquely identify your device for most
     *         purposes.
     */
    public UUID getDeviceUuid() {
        return uuid;
    }
}
share|improve this answer
3  
Shouldn't you be hashing the various IDs so that they're all the same size? Additionally, you should be hashing the device ID in order to not accidentally expose private information. –  Steve Pomeroy Apr 11 '11 at 20:10
1  
Good points, Steve. I updated the code to always return a UUID. This ensure that a) the generated IDs are always the same size, and b) the android and device IDs are hashed before being returned to avoid accidentally exposing personal information. I also updated the description to note that device ID will persist across factory resets and that this may not be desirable for some users. –  emmby Apr 11 '11 at 21:53
1  
I believe you are incorrect; the preferred solution is to track installations, not device identifiers. Your code is substantially longer and more complex than that in the blog post and it's not obvious to me that it adds any value. –  Tim Bray Apr 12 '11 at 4:58
3  
Good point, I updated the commentary to strongly suggest users use app installation ids rather than device ids. However, I think this solution is still valuable for people who do need a device rather than installation ID. –  emmby Apr 12 '11 at 12:25
6  
ANDROID_ID can change on factory reset, so it cannot identify devices as well –  Samuel May 19 '11 at 8:12
show 7 more comments

Here is the code that Reto Meier used in the Google I/O presentation this year to get a unique id for the user:

private static String uniqueID = null;
private static final String PREF_UNIQUE_ID = "PREF_UNIQUE_ID";

public synchronized static String id(Context context) {
    if (uniqueID == null) {
        SharedPreferences sharedPrefs = context.getSharedPreferences(
                PREF_UNIQUE_ID, Context.MODE_PRIVATE);
        uniqueID = sharedPrefs.getString(PREF_UNIQUE_ID, null);
        if (uniqueID == null) {
            uniqueID = UUID.randomUUID().toString();
            Editor editor = sharedPrefs.edit();
            editor.putString(PREF_UNIQUE_ID, uniqueID);
            editor.commit();
        }
    }
    return uniqueID;
}

If you couple this with a backup strategy to send preferences to the cloud (also described in Reto's talk, you should have an id that ties to a user and sticks around after the device has been wiped, or even replaced. I plan to use this in analytics going forward (in other words, I have not done that bit yet :).

share|improve this answer
6  
Great answer, this should go the top. –  Kiran Ryali Dec 16 '11 at 5:13
    
I was using @Lenn Dolling's method with current time appended for unique id. But this seems like more simpler and reliable way. Thanks Reto Meier and Antony Nolan –  Gökhan Barış Aker Jan 3 '12 at 13:55
    
It is great but what about rooted devices? They can access this and change uid to a different one easily. –  tasomaniac May 9 '12 at 21:25
1  
Great option if you don't need the unique ID to persist after an uninstall and reinstall (e.g. promotional event/game where you get three chances to win, period). –  Kyle Clegg May 15 '12 at 21:52
1  
The Meier presentation relies upon using the Android Backup Manager, which in turn depends upon the user choosing to turn that feature on. That is fine for app user preferences (Meier's use), because if the user has not selected that option, she just won't get those backed up. However, the original question is about generating a unique ID for the device, and this ID is generated per app, and not even per installation, let alone per device, and since it relies upon the user selecting the backup option, its uses beyond user preferences (e.g., for a time-limited trial) are limited. –  Carl Dec 22 '12 at 11:15
show 2 more comments

Also you might consider the Wi-Fi adapter's MAC address. Retrieved thusly:

WifiManager wm = (WifiManager)Ctxt.getSystemService(Context.WIFI_SERVICE);
return wm.getConnectionInfo().getMacAddress();

Requires permission android.permission.ACCESS_WIFI_STATE in the manifest.

Reported to be available even when Wi-Fi is not connected. If Joe from the answer above gives this one a try on his many devices, that'd be nice.

On some devices, it's not available when Wi-Fi is turned off.

share|improve this answer
7  
This required android.permission.ACCESS_WIFI_STATE –  ohhorob Nov 1 '10 at 4:41
6  
They exist? I'd rather envision a telephony-less device (AKA tablet)... –  Seva Alekseyev Dec 22 '10 at 14:23
1  
I know this question is old - but this is a great idea. I used the BT mac ID in my app, but only because it requires BT to function. Show me an Android device that's worth developing for that does NOT have WiFi. –  Jack Aug 29 '11 at 21:27
5  
I think you'll find that it's unavailable when WiFi is off, on pretty much all android devices. Turning WiFi off removes the device at kernel level. –  chrisdowney May 21 '12 at 23:38
6  
@Sanandrea - let's face it, on a rooted device EVERYTHING can be spoofed. –  EmacsFodder Sep 4 '13 at 9:53
show 6 more comments

There’s rather useful info here.

It covers five different ID types:

  1. IMEI (only for Android devices with Phone use; needs android.permission.READ_PHONE_STATE)
  2. Pseudo-Unique ID (for all Android devices)
  3. Android ID (can be null, can change upon factory reset, can be altered on rooted phone)
  4. WLAN MAC Address string (needs android.permission.ACCESS_WIFI_STATE)
  5. BT MAC Address string (devices with Bluetooth, needs android.permission.BLUETOOTH)
share|improve this answer
2  
very useful article thanks! –  Elenasys Feb 9 '12 at 2:26
1  
Important point left out (here and in article): you can't get WLAN or BT MAC unless they are turned on! Otherwise I think the WLAN MAC would be the perfect identifier. You have no guarantee that the user will ever turn on their Wi-Fi, and I don't really think it is 'appropriate' to turn it on yourself. –  Tom Oct 7 '12 at 22:44
add comment

Last Updated: 7/17/14

After reading every Stack Overflow post about creating a unique ID, the Google developer blog and Android documentation, I feel as if the 'Pseudo ID' is the best possible option.

Overall breakdown

- Guarantee uniqueness (except rooted devices) for API => 9 (98.4% of Android devices)

- No extra permissions

Psuedo code:

if API => 9: (98.4% of devices)

return unique ID containing serial id (rooted phones may be different)

else

return unique ID of build information (may overlap data - API < 9)

Thanks to @stansult for posting all of our options (in this Stack Overflow question).

List of options - reasons why not to use them:

  • IMEI (only for Android devices with phone use; needs android.permission.READ_PHONE_STATE)
    • Most users hate the fact that it says "Phone Calls" in the permission. Some users give bad ratings, because they believe you are simply stealing their personal information, when all you really want to do is track device installs. It is obvious that you are collecting data.
    • An extra permission
  • Android ID (can be null, can change upon factory reset, can be altered on a rooted phone)
    • Since it can be 'null', we can check for 'null' and change its value, but this means it will no longer be unique.
    • If you have a user with a factory reset phone, the value may have changed or altered on the rooted phone so there may be duplicates entries if you are tracking user installs.
  • WLAN MAC Address string (needs android.permission.ACCESS_WIFI_STATE)
    • This could be the second best option, but you are still collecting and storing a unique identifier that comes directly from a user. This is obvious that you are collecting data.
    • Once again, this is another permission
  • Bluetooth MAC Address string (devices with Bluetooth, needs android.permission.BLUETOOTH)
    • Most applications on the market do not use Bluetooth, and so if your application doesn't use Bluetooth and you are including this, the user could become suspicious.
    • Once again, this is another permission
  • Pseudo-Unique ID (for all Android devices)
    • Very possible, may contain collisions - See my method posted below!
    • This allows you to have an 'almost unique' ID from the user without taking anything that is private. You can create you own unanimous ID from device information.

I know there isn't any 'perfect' way of getting a unique ID without using permissions; however, sometimes we only really need to do is track the device installation. When it comes to creating a unique ID, we can create a 'pseudo unique id' based solely off of information that the Android API gives us without using extra permissions. This way, we can show the user respect and try to offer a good user experience as well.

With a pseudo-unique id, you really only run into the fact that there may be duplicates based on the fact that there are similar devices. You can tweak the combined method to make it more unique; however, some developers need to track device installs and this will do the trick or performance based on similar devices.

API => 9:

If their Android device is API 9 or over, this is guaranteed to be unique because of the 'Build.SERIAL' field.

REMEMBER, you are technically only missing out on around 1.6% of users who have API < 9. So you can focus on the rest: This is 98.4% of the users!

API < 9:

If the user's Android device is lower than API 9; hopefully, they have not done a factory reset and their 'Secure.ANDROID_ID' will be preserved or not 'null'. (see http://developer.android.com/about/dashboards/index.html)

If all else fails:

If all else fails, if the user does have lower than API 9 (lower than Gingerbread), has reset their phone or 'Secure.ANDROID_ID' returns 'null', then simply the ID returned will be solely based off their Android device information. This is where the collisions can happen.

Changes:

  • Removed 'Android.SECURE_ID' because of factory resets could cause the value to change
  • Edited the code to change on API
  • Changed the Pseudo

Please take a look at the method below:

/**
 * Return pseudo unique ID
 * @return ID
 */
public static String getUniquePsuedoID()
{
    // If all else fails, if the user does have lower than API 9 (lower
    // than Gingerbread), has reset their phone or 'Secure.ANDROID_ID'
    // returns 'null', then simply the ID returned will be solely based
    // off their Android device information. This is where the collisions
    // can happen.
    // Thanks http://www.pocketmagic.net/?p=1662!
    // Try not to use DISPLAY, HOST or ID - these items could change.
    // If there are collisions, there will be overlapping data
    String m_szDevIDShort = "35" + (Build.BOARD.length() % 10) + (Build.BRAND.length() % 10) + (Build.CPU_ABI.length() % 10) + (Build.DEVICE.length() % 10) + (Build.MANUFACTURER.length() % 10) + (Build.MODEL.length() % 10) + (Build.PRODUCT.length() % 10);

    // Thanks to @Roman SL!
    // http://stackoverflow.com/a/4789483/950427
    // Only devices with API >= 9 have android.os.Build.SERIAL
    // http://developer.android.com/reference/android/os/Build.html#SERIAL
    // If a user upgrades software or roots their phone, there will be a duplicate entry
    String serial = null;
    try
    {
        serial = android.os.Build.class.getField("SERIAL").get(null).toString();

        // Go ahead and return the serial for api => 9
        return new UUID(m_szDevIDShort.hashCode(), serial.hashCode()).toString();
    }
    catch (Exception e)
    {
        // String needs to be initialized
        serial = "serial"; // some value
    }

    // Thanks @Joe!
    // http://stackoverflow.com/a/2853253/950427
    // Finally, combine the values we have found by using the UUID class to create a unique identifier
    return new UUID(m_szDevIDShort.hashCode(), serial.hashCode()).toString();
}

New(for apps with ads AND Google Play Services):

From the Google Play Developer's console:

Beginning August 1st, 2014, the Google Play Developer Program Policy requires all new app uploads and updates to use the advertising ID in lieu of any other persistent identifiers for any advertising purposes. Learn more

Implementation:

Permission:

<uses-permission android:name="android.permission.INTERNET" />

Code:

import com.google.android.gms.ads.identifier.AdvertisingIdClient;
import com.google.android.gms.ads.identifier.AdvertisingIdClient.Info;
import com.google.android.gms.common.GooglePlayServicesAvailabilityException;
import com.google.android.gms.common.GooglePlayServicesNotAvailableException;
import java.io.IOException;
...

// Do not call this function from the main thread. Otherwise, 
// an IllegalStateException will be thrown.
public void getIdThread() {

  Info adInfo = null;
  try {
    adInfo = AdvertisingIdClient.getAdvertisingIdInfo(mContext);

  } catch (IOException e) {
    // Unrecoverable error connecting to Google Play services (e.g.,
    // the old version of the service doesn't support getting AdvertisingId).

  } catch (GooglePlayServicesAvailabilityException e) {
    // Encountered a recoverable error connecting to Google Play services. 

  } catch (GooglePlayServicesNotAvailableException e) {
    // Google Play services is not available entirely.
  }
  final String id = adInfo.getId();
  final boolean isLAT = adInfo.isLimitAdTrackingEnabled();
}

Source/Docs:

http://developer.android.com/google/play-services/id.html http://developer.android.com/reference/com/google/android/gms/ads/identifier/AdvertisingIdClient.html

Important:

It is intended that the advertising ID completely replace existing usage of other identifiers for ads purposes (such as use of ANDROID_ID in Settings.Secure) when Google Play Services is available. Cases where Google Play Services is unavailable are indicated by a GooglePlayServicesNotAvailableException being thrown by getAdvertisingIdInfo().

I have tried to reference every link that I took information from. If you are missing and need to be included, please comment!

share|improve this answer
    
But wouldn't the Build class change upon OS update? Especially if the API got updated? If so, how do you guarantee this is unique? (Speaking about the method you wrote) –  LuckyMe Jul 13 '13 at 10:16
    
I am still tweaking and going over the classes as well as testing right now; however, I made sure not to include Build.DISPLAY, Build.HOST or Build.ID, which would definitely change on an OTA update. But, like I said API => 9 is practically guaranteed. We should only fall back on the Android.SECURE_ID and/or Build class. –  Jared Burrows Jul 13 '13 at 17:39
    
@Muz Thanks! This is just newer than most of the previous posts! –  Jared Burrows Dec 5 '13 at 1:12
    
I think there is an error in your code getting the serial number - it just returns the field name not its value - here is how to retrieve the value from the field: android.os.Build.class.getField("SERIAL").get(null).toString(); –  Marin Feb 5 at 19:13
    
@Marin Have you printed this out in the log? –  Jared Burrows Feb 5 at 21:02
show 4 more comments

The official Android Developers Blog now has a full article just about this very subject, Identifying App Installations.

share|improve this answer
1  
And the key point of that argument is that if you're trying to get a unique ID out of the hardware, you're probably making a mistake. –  Tim Bray Apr 12 '11 at 4:57
2  
And if you're allowing your device-lock to be reset by a factory reset, your trialware model is as good as dead. –  Seva Alekseyev May 4 '11 at 18:54
add comment

The following code returns the device serial number using a hidden Android API. But, this code don't works on Samsung Galaxy Tab because "ro.serialno" isn't set on this device.

String serial = null;

try {
    Class<?> c = Class.forName("android.os.SystemProperties");
    Method get = c.getMethod("get", String.class);
    serial = (String) get.invoke(c, "ro.serialno");
}
catch (Exception ignored) {

}
share|improve this answer
    
I just read on xda developer that the ro.serialno is used to generate the Settings.Secure.ANDROID_ID. So they are basically different representations of the same value. –  Martin Jun 23 '11 at 6:31
    
@Martin: but probably serial number doesn't change on resetting the device. Isn't it? Just a new value for ANDROID_ID is derived from it. –  userSeven7s Sep 17 '11 at 8:28
    
Actually on all devices I have tested they where the identical same. Or at least the hash values where the same (for privacy reasons I do not write the true values to the log files). –  Martin Sep 18 '11 at 11:53
    
that use a native_get method, and there is a set too: grepcode.com/file/repository.grepcode.com/java/ext/… –  user529543 Oct 14 '13 at 17:56
add comment

I think this is sure fire way of building a skeleton for a unique ID... check it out.

Pseudo-Unique ID, that works on all Android devices Some devices don't have a phone (eg. Tablets) or for some reason you don't want to include the READ_PHONE_STATE permission. You can still read details like ROM Version, Manufacturer name, CPU type, and other hardware details, that will be well suited if you want to use the ID for a serial key check, or other general purposes. The ID computed in this way won't be unique: it is possible to find two devices with the same ID (based on the same hardware and rom image) but the chances in real world applications are negligible. For this purpose you can use the Build class:

String m_szDevIDShort = "35" + //we make this look like a valid IMEI
            Build.BOARD.length()%10+ Build.BRAND.length()%10 +
            Build.CPU_ABI.length()%10 + Build.DEVICE.length()%10 +
            Build.DISPLAY.length()%10 + Build.HOST.length()%10 +
            Build.ID.length()%10 + Build.MANUFACTURER.length()%10 +
            Build.MODEL.length()%10 + Build.PRODUCT.length()%10 +
            Build.TAGS.length()%10 + Build.TYPE.length()%10 +
            Build.USER.length()%10 ; //13 digits

Most of the Build members are strings, what we're doing here is to take their length and transform it via modulo in a digit. We have 13 such digits and we are adding two more in front (35) to have the same size ID like the IMEI (15 digits). There are other possibilities here are well, just have a look at these strings. Returns something like: 355715565309247 . No special permission are required, making this approach very convenient.


(Extra info: The technique given above was copied from an article on Pocket Magic.)

share|improve this answer
6  
Interesting solution. It sounds like this is a situation where you really should be just hashing all that data concatenated instead of trying to come up with your own "hash" function. There are many instances where you'd get collisions even if there is substantial data that is different for each value. My recommendation: use a hash function and then transform the binary results into decimal and truncate it as needed. To do it right, though you should really use a UUID or full hash string. –  Steve Pomeroy Apr 12 '11 at 16:28
1  
I found that the Build.CPU_ABI and Build.MANUFACTURER are not present in all versions.. I was getting harsh build errors when running against <2.2 :) –  Lenn Dolling May 15 '11 at 0:09
12  
You should give credit to your sources... This has been lifted straight out of the following article: pocketmagic.net/?p=1662 –  Steve Haley May 16 '11 at 12:07
4  
This ID is open to collisions like you don't know what. It's practically guaranteed to be the same on identical devices from the same carrier. –  Seva Alekseyev May 26 '11 at 20:21
4  
This may also change if the device gets upgraded. –  David Given Jan 25 '12 at 12:25
show 5 more comments

A Serial field was added to the Build class in API level 9 (Android 2.3 - Gingerbread). Documentation says it represents the hardware serial number. Thus it should be unique, if it exists on the device.

I don't know whether it is actually supported (=not null) by all devices with API level >= 9 though.

share|improve this answer
1  
Unfortunately, it's "unknown". –  m0skit0 Apr 15 '13 at 12:33
add comment

Using the code below, you can get the unique device ID of an Android OS device as a string.

deviceId = Secure.getString(getApplicationContext().getContentResolver(), Secure.ANDROID_ID); 
share|improve this answer
add comment

For detailed instructions on how to get a unique identifier for each Android device your application is installed from, see the official Android Developers Blog posting Identifying App Installations.

It seems the best way is for you to generate one yourself upon installation and subsequently read it when the application is re-launched.

I personally find this acceptable but not ideal. No one identifier provided by Android works in all instances as most are dependent on the phone's radio states (Wi-Fi on/off, cellular on/off, Bluetooth on/off). The others, like Settings.Secure.ANDROID_ID must be implemented by the manufacturer and are not guaranteed to be unique.

The following is an example of writing data to an installation file that would be stored along with any other data the application saves locally.

public class Installation {
    private static String sID = null;
    private static final String INSTALLATION = "INSTALLATION";

    public synchronized static String id(Context context) {
        if (sID == null) {
            File installation = new File(context.getFilesDir(), INSTALLATION);
            try {
                if (!installation.exists())
                    writeInstallationFile(installation);
                sID = readInstallationFile(installation);
            } 
            catch (Exception e) {
                throw new RuntimeException(e);
            }
        }
        return sID;
    }

    private static String readInstallationFile(File installation) throws IOException {
        RandomAccessFile f = new RandomAccessFile(installation, "r");
        byte[] bytes = new byte[(int) f.length()];
        f.readFully(bytes);
        f.close();
        return new String(bytes);
    }

    private static void writeInstallationFile(File installation) throws IOException {
        FileOutputStream out = new FileOutputStream(installation);
        String id = UUID.randomUUID().toString();
        out.write(id.getBytes());
        out.close();
    }
}
share|improve this answer
    
If you want to track app installations this is perfect. Tracking devices though is a lot trickier, and there doesn't appear to be a completely air-tight solution. –  Luca Spiller Oct 3 '11 at 19:56
    
What about rooted devices? They can change this installation id easily, right? –  tasomaniac May 9 '12 at 21:24
    
Absolutely. Root can change the installation ID. You can check for root using this code block: stackoverflow.com/questions/1101380/… –  Kevin May 18 '12 at 16:52
add comment

At Google I/O Reto Meier released a robust answer to how to approach this which should meet most developers needs to track users across installations. Anthony Nolan shows the direction in his answer, but I thought I'd write out the full approach so that others can easily see how to do it (it took me a while to figure out the details).

This approach will give you an anonymous, secure user ID which will be persistent for the user across different devices (based on the primary Google account) and across installs. The basic approach is to generate a random user ID and to store this in the apps' shared preferences. You then use Google's backup agent to store the shared preferences linked to the Google account in the cloud.

Let's go through the full approach. First, we need to create a backup for our SharedPreferences using the Android Backup Service. Start by registering your app via http://developer.android.com/google/backup/signup.html.

Google will give you a backup service key which you need to add to the manifest. You also need to tell the application to use the BackupAgent as follows:

<application android:label="MyApplication"
         android:backupAgent="MyBackupAgent">
    ...
    <meta-data android:name="com.google.android.backup.api_key"
        android:value="your_backup_service_key" />
</application>

Then you need to create the backup agent and tell it to use the helper agent for sharedpreferences:

public class MyBackupAgent extends BackupAgentHelper {
    // The name of the SharedPreferences file
    static final String PREFS = "user_preferences";

    // A key to uniquely identify the set of backup data
    static final String PREFS_BACKUP_KEY = "prefs";

    // Allocate a helper and add it to the backup agent
    @Override
    public void onCreate() {
        SharedPreferencesBackupHelper helper = new SharedPreferencesBackupHelper(this,          PREFS);
        addHelper(PREFS_BACKUP_KEY, helper);
    }
}

To complete the backup you need to create an instance of BackupManager in your main Activity:

BackupManager backupManager = new BackupManager(context);

Finally create a user ID, if it doesn't already exist, and store it in the SharedPreferences:

  public static String getUserID(Context context) {
            private static String uniqueID = null;
        private static final String PREF_UNIQUE_ID = "PREF_UNIQUE_ID";
    if (uniqueID == null) {
        SharedPreferences sharedPrefs = context.getSharedPreferences(
                MyBackupAgent.PREFS, Context.MODE_PRIVATE);
        uniqueID = sharedPrefs.getString(PREF_UNIQUE_ID, null);
        if (uniqueID == null) {
            uniqueID = UUID.randomUUID().toString();
            Editor editor = sharedPrefs.edit();
            editor.putString(PREF_UNIQUE_ID, uniqueID);
            editor.commit();

            //backup the changes
            BackupManager mBackupManager = new BackupManager(context);
            mBackupManager.dataChanged();
        }
    }

    return uniqueID;
}

This User_ID will now be persistent across installations, even if the user moves device.

For more information on this approach see Reto's talk.

And for full details of how to implement the backup agent see Data Backup. I particularly recommend the section at the bottom on testing as the backup does not happen instantaneously and so to test you have to force the backup.

share|improve this answer
    
Doesn't this lead to multiple devices with the same id when a user has multiple devices? A tablet and a phone for instance. –  Tosa Mar 13 '13 at 2:25
    
Minimum target 8 is required for this. –  halxinate Apr 3 '13 at 17:24
    
Would this be the preferred way to create a verification payload when doing in-app purchases? From In-app billing example code comment: "So a good developer payload has these characteristics: 1. If two different users purchase an item, the payload is different between them, so that one user's purchase can't be replayed to another user. 2. The payload must be such that you can verify it even when the app wasn't the one who initiated the purchase flow (so that items purchased by the user on one device work on other devices owned by the user)." –  hsigmond Aug 14 '13 at 7:02
add comment

One thing I'll add - I have one of those unique situations.

Using:

deviceId = Secure.getString(this.getContext().getContentResolver(), Secure.ANDROID_ID);

Turns out that even though my Viewsonic G Tablet reports a DeviceID that is not Null, every single G Tablet reports the same number.

Makes it interesting playing "Pocket Empires" which gives you instant access to someone's account based on the "unique" DeviceID.

My device does not have a cell radio.

share|improve this answer
    
What is the id ? is it perchance 9774d56d682e549c ? –  Mr_and_Mrs_D Sep 18 '13 at 13:44
    
Wow that was so long ago I've long since tossed that tablet. Couldn't say. –  Tony Maro Sep 25 '13 at 19:36
add comment

How about the IMEI. That is unique for Android or other mobile devices.

share|improve this answer
4  
Not for my tablets, which don't have an IMEI since they don't connect to my mobile carrier. –  Brill Pappin Jan 5 '12 at 16:54
1  
Not to mention CDMA devices which have an ESN instead of an IMEI. –  David Given Jan 25 '12 at 12:25
    
@David Given is there any CDMA with Android? –  Elzo Valugi Jan 26 '12 at 14:29
1  
It only will do that is it is a telephone :) A Tablet may not. –  Brill Pappin Jan 26 '12 at 19:39
2  
@ElzoValugi It's "this days" already and still not all tablets have SIM cards. –  Matt Quiros Sep 25 '12 at 9:42
show 3 more comments
final TelephonyManager tm = (TelephonyManager) getBaseContext()
        .getSystemService(SplashActivity.TELEPHONY_SERVICE);
final String tmDevice, tmSerial, androidId;
tmDevice = "" + tm.getDeviceId();
Log.v("DeviceIMEI", "" + tmDevice);
tmSerial = "" + tm.getSimSerialNumber();
Log.v("GSM devices Serial Number[simcard] ", "" + tmSerial);
androidId = "" + android.provider.Settings.Secure.getString(getContentResolver(),
        android.provider.Settings.Secure.ANDROID_ID);
Log.v("androidId CDMA devices", "" + androidId);
UUID deviceUuid = new UUID(androidId.hashCode(),
        ((long) tmDevice.hashCode() << 32) | tmSerial.hashCode());
String deviceId = deviceUuid.toString();
Log.v("deviceIdUUID universally unique identifier", "" + deviceId);
String deviceModelName = android.os.Build.MODEL;
Log.v("Model Name", "" + deviceModelName);
String deviceUSER = android.os.Build.USER;
Log.v("Name USER", "" + deviceUSER);
String devicePRODUCT = android.os.Build.PRODUCT;
Log.v("PRODUCT", "" + devicePRODUCT);
String deviceHARDWARE = android.os.Build.HARDWARE;
Log.v("HARDWARE", "" + deviceHARDWARE);
String deviceBRAND = android.os.Build.BRAND;
Log.v("BRAND", "" + deviceBRAND);
String myVersion = android.os.Build.VERSION.RELEASE;
Log.v("VERSION.RELEASE", "" + myVersion);
int sdkVersion = android.os.Build.VERSION.SDK_INT;
Log.v("VERSION.SDK_INT", "" + sdkVersion);

Add in AndroidManifest.xml:

<uses-permission android:name="android.permission.READ_PHONE_STATE" />
share|improve this answer
add comment

There are a lot of different approaches to work around those ANDROID_ID issues (may be null sometimes or devices of a specific model always return the same ID) with pros and cons:

  • Implementing a custom ID generation algorithm (based on device properties that are supposed to be static and won't change -> who knows)
  • Abusing other IDs like IMEI, serial number, Wi-Fi/Bluetooth-MAC address (they won't exist on all devices or additional permissions become necessary)

I myself prefer using an existing OpenUDID implementation (see https://github.com/ylechelle/OpenUDID) for Android (see https://github.com/vieux/OpenUDID). It is easy to integrate and makes use of the ANDROID_ID with fallbacks for those issues mentioned above.

share|improve this answer
add comment

The unique device ID of an Android OS device as String, using TelephonyManager and ANDROID_ID, is obtained by:

String deviceId;
final TelephonyManager mTelephony = (TelephonyManager) getSystemService(Context.TELEPHONY_SERVICE);
if (mTelephony.getDeviceId() != null) {
    deviceId = mTelephony.getDeviceId();
}
else {
    deviceId = Secure.getString(
                   getApplicationContext().getContentResolver(),
                   Secure.ANDROID_ID);
}

But I strongly recommend a method suggested by Google, see Identifying App Installations.

share|improve this answer
add comment

Here is how I am generating the unique id:

public static String getDeviceId(Context ctx)
{
    TelephonyManager tm = (TelephonyManager) ctx.getSystemService(Context.TELEPHONY_SERVICE);

    String tmDevice = tm.getDeviceId();
    String androidId = Secure.getString(ctx.getContentResolver(), Secure.ANDROID_ID);
    String serial = null;
    if(Build.VERSION.SDK_INT > Build.VERSION_CODES.FROYO) serial = Build.SERIAL;

    if(tmDevice != null) return "01" + tmDevice;
    if(androidId != null) return "02" + androidId;
    if(serial != null) return "03" + serial;
    // other alternatives (i.e. Wi-Fi MAC, Bluetooth MAC, etc.)

    return null;
}
share|improve this answer
add comment

Another way is to use /sys/class/android_usb/android0/iSerial in an app without any permissions whatsoever.

user@creep:~$ adb shell ls -l /sys/class/android_usb/android0/iSerial
-rw-r--r-- root     root         4096 2013-01-10 21:08 iSerial
user@creep:~$ adb shell cat /sys/class/android_usb/android0/iSerial
0A3CXXXXXXXXXX5

To do this in Java one would just use a FileInputStream to open the iSerial file and read out the characters. Just be sure you wrap it in an exception handler, because not all devices have this file.

At least the following devices are known to have this file world-readable:

  • Galaxy Nexus
  • Nexus S
  • Motorola Xoom 3G
  • Toshiba AT300
  • HTC One V
  • Mini MK802
  • Samsung Galaxy S II

You can also see my blog post Leaking Android hardware serial number to unprivileged apps where I discuss what other files are available for information.

share|improve this answer
    
I just read your blog post. I believe that this is not unique: Build.SERIAL is also available w/o any permissions, and is (in theory) a unique hardware serial number. –  Tom Apr 30 '13 at 21:14
    
You're right. It's just one more way that your device can be tracked, and as you said both of these ways require no app permissions. –  insitusec Mar 14 at 17:16
add comment

My two cents - NB this is for a device (err) unique ID - not the installation one as discussed in the Android developers's blog.

Of note that the solution provided by @emmby falls back in a per application ID as the SharedPreferences are not synchronized across processes (see here and here). So I avoided this altogether.

Instead, I encapsulated the various strategies for getting a (device) ID in an enum - changing the order of the enum constants affects the priority of the various ways of getting the ID. The first non-null ID is returned or an exception is thrown (as per good Java practices of not giving null a meaning). So for instance I have the TELEPHONY one first - but a good default choice would be the ANDROID_ID beta:

import android.Manifest.permission;
import android.bluetooth.BluetoothAdapter;
import android.content.Context;
import android.content.pm.PackageManager;
import android.net.wifi.WifiManager;
import android.provider.Settings.Secure;
import android.telephony.TelephonyManager;
import android.util.Log;

// TODO : hash
public final class DeviceIdentifier {

    private DeviceIdentifier() {}

    /** @see http://code.google.com/p/android/issues/detail?id=10603 */
    private static final String ANDROID_ID_BUG_MSG = "The device suffers from "
        + "the Android ID bug - its ID is the emulator ID : "
        + IDs.BUGGY_ANDROID_ID;
    private static volatile String uuid; // volatile needed - see EJ item 71
    // need lazy initialization to get a context

    /**
     * Returns a unique identifier for this device. The first (in the order the
     * enums constants as defined in the IDs enum) non null identifier is
     * returned or a DeviceIDException is thrown. A DeviceIDException is also
     * thrown if ignoreBuggyAndroidID is false and the device has the Android ID
     * bug
     *
     * @param ctx
     *            an Android constant (to retrieve system services)
     * @param ignoreBuggyAndroidID
     *            if false, on a device with the android ID bug, the buggy
     *            android ID is not returned instead a DeviceIDException is
     *            thrown
     * @return a *device* ID - null is never returned, instead a
     *         DeviceIDException is thrown
     * @throws DeviceIDException
     *             if none of the enum methods manages to return a device ID
     */
    public static String getDeviceIdentifier(Context ctx,
            boolean ignoreBuggyAndroidID) throws DeviceIDException {
        String result = uuid;
        if (result == null) {
            synchronized (DeviceIdentifier.class) {
                result = uuid;
                if (result == null) {
                    for (IDs id : IDs.values()) {
                        try {
                            result = uuid = id.getId(ctx);
                        } catch (DeviceIDNotUniqueException e) {
                            if (!ignoreBuggyAndroidID)
                                throw new DeviceIDException(e);
                        }
                        if (result != null) return result;
                    }
                    throw new DeviceIDException();
                }
            }
        }
        return result;
    }

    private static enum IDs {
        TELEPHONY_ID {

            @Override
            String getId(Context ctx) {
                // TODO : add a SIM based mechanism ? tm.getSimSerialNumber();
                final TelephonyManager tm = (TelephonyManager) ctx
                        .getSystemService(Context.TELEPHONY_SERVICE);
                if (tm == null) {
                    w("Telephony Manager not available");
                    return null;
                }
                assertPermission(ctx, permission.READ_PHONE_STATE);
                return tm.getDeviceId();
            }
        },
        ANDROID_ID {

            @Override
            String getId(Context ctx) throws DeviceIDException {
                // no permission needed !
                final String andoidId = Secure.getString(
                    ctx.getContentResolver(),
                    android.provider.Settings.Secure.ANDROID_ID);
                if (BUGGY_ANDROID_ID.equals(andoidId)) {
                    e(ANDROID_ID_BUG_MSG);
                    throw new DeviceIDNotUniqueException();
                }
                return andoidId;
            }
        },
        WIFI_MAC {

            @Override
            String getId(Context ctx) {
                WifiManager wm = (WifiManager) ctx
                        .getSystemService(Context.WIFI_SERVICE);
                if (wm == null) {
                    w("Wifi Manager not available");
                    return null;
                }
                assertPermission(ctx, permission.ACCESS_WIFI_STATE); // I guess
                // getMacAddress() has no java doc !!!
                return wm.getConnectionInfo().getMacAddress();
            }
        },
        BLUETOOTH_MAC {

            @Override
            String getId(Context ctx) {
                BluetoothAdapter ba = BluetoothAdapter.getDefaultAdapter();
                if (ba == null) {
                    w("Bluetooth Adapter not available");
                    return null;
                }
                assertPermission(ctx, permission.BLUETOOTH);
                return ba.getAddress();
            }
        }
        // TODO PSEUDO_ID
        // http://www.pocketmagic.net/2011/02/android-unique-device-id/
        ;

        static final String BUGGY_ANDROID_ID = "9774d56d682e549c";
        private final static String TAG = IDs.class.getSimpleName();

        abstract String getId(Context ctx) throws DeviceIDException;

        private static void w(String msg) {
            Log.w(TAG, msg);
        }

        private static void e(String msg) {
            Log.e(TAG, msg);
        }
    }

    private static void assertPermission(Context ctx, String perm) {
        final int checkPermission = ctx.getPackageManager().checkPermission(
            perm, ctx.getPackageName());
        if (checkPermission != PackageManager.PERMISSION_GRANTED) {
            throw new SecurityException("Permission " + perm + " is required");
        }
    }

    // =========================================================================
    // Exceptions
    // =========================================================================
    public static class DeviceIDException extends Exception {

        private static final long serialVersionUID = -8083699995384519417L;
        private static final String NO_ANDROID_ID = "Could not retrieve a "
            + "device ID";

        public DeviceIDException(Throwable throwable) {
            super(NO_ANDROID_ID, throwable);
        }

        public DeviceIDException(String detailMessage) {
            super(detailMessage);
        }

        public DeviceIDException() {
            super(NO_ANDROID_ID);
        }
    }

    public static final class DeviceIDNotUniqueException extends
            DeviceIDException {

        private static final long serialVersionUID = -8940090896069484955L;

        public DeviceIDNotUniqueException() {
            super(ANDROID_ID_BUG_MSG);
        }
    }
}
share|improve this answer
add comment

I use the following code to get the IMEI or use Secure.ANDROID_ID as an alternative, when the device doesn't have phone capabilities:

String identifier = null;
TelephonyManager tm = (TelephonyManager)context.getSystemService(Context.TELEPHONY_SERVICE));
if (tm != null)
      identifier = tm.getDeviceId();
if (identifier == null || identifier .length() == 0)
      identifier = Secure.getString(activity.getContentResolver(),Secure.ANDROID_ID);
share|improve this answer
add comment

Google now has an Advertising ID.
This can also be used, but note that :

The advertising ID is a user-specific, unique, resettable ID

and

enables users to reset their identifier or opt out of interest-based ads within Google Play apps.

So though this id may change, it seems that soon we may not have a choice, depends on the purpose of this id.

More info @ develper.android

Copy-paste code here

HTH

share|improve this answer
    
It can be reset: The advertising ID is a unique but user-resettable string identifier that lets ad networks and other apps anonymously identify a user. –  Jared Burrows Nov 6 '13 at 14:37
    
(@JaredBurrows yeap, it is mentioned in the post...) –  Hertzel Guinness Nov 6 '13 at 17:04
add comment

Check for SystemInfo.deviceUniqueIdentifier

Documentation: http://docs.unity3d.com/Documentation/ScriptReference/SystemInfo-deviceUniqueIdentifier.html

A unique device identifier. It is guaranteed to be unique for every device (Read Only).

iOS: on pre-iOS7 devices it will return hash of MAC address. On iOS7 devices it will be UIDevice identifierForVendor or, if that fails for any reason, ASIdentifierManager advertisingIdentifier.

share|improve this answer
add comment

Get the device ID only once, and then store it in a database or a file. In this case, if it is the first boot of the app, it generates an ID and stores it. Next time, it will only take the ID stored in the file.

share|improve this answer
    
The idea is to have an ID that survives the app being uninstalled and re installed. Saving an ID to a data base doesn't help because the data base is removed when the app is uninstalled. –  Ted Hopp Oct 21 '13 at 12:17
add comment

protected by Robert Harvey Feb 5 '11 at 17:06

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

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