41

How do I programmatically access the value shown in the image below ?

enter image description here

70

This is the hardware serial number. To access it on

It's unique for any device. If you are looking for possibilities on how to get/use a unique device id you should read here.

For a solution involving reflection without requiring a permission see this answer.

  • 3
    Why do you say that it changes on factory reset? I know that is true for Settings.Secure.ANDROID_ID, but I hadn't heard about that for Build.Serial. – Tom Jul 10 '12 at 16:50
  • Tom you are right! I mixed up ANDROID_ID and SERIAL. I edited my answer. – thaussma Jul 11 '12 at 9:22
  • 2
    Is this usually the same serial number that the manufacturer physically prints on the device itself or is it a software-only serial number? – guidod Apr 24 '14 at 13:37
  • Is it change in future anyhow? – Pratik Butani AndroidDev Apr 25 '14 at 4:52
  • 1
    this answer should be edited as with Android 8 (API26) and above the Build.SERIAL will not work. The only way to get the serial number is to call method Build.getSerial() that requires READ_PHONE_STATE permissions – alex_z Jan 28 at 13:44
40

Up to Android 7.1 (SDK 25)

Until Android 7.1 you will get it with:

Build.SERIAL

From Android 8 (SDK 26)

On Android 8 (SDK 26) and above, this field will return UNKNOWN and must be accessed with:

Build.getSerial()

which requires the dangerous permission android.permission.READ_PHONE_STATE.

From Android Q (SDK 29)

Since Android Q using Build.getSerial() gets a bit more complicated by requiring:

android.Manifest.permission.READ_PRIVILEGED_PHONE_STATE (which can only be acquired by system apps), or for the calling package to be the device or profile owner and have the READ_PHONE_STATE permission. This means most apps won't be able to uses this feature. See the Android Q announcement from Google.

See Android SDK reference


Best Practice for Unique Device Identifier

If you just require a unique identifier, it's best to avoid using hardware identifiers as Google continuously tries to make it harder to access them for privacy reasons. You could just generate a UUID.randomUUID().toString(); and save it the first time it needs to be accessed in e.g. shared preferences. Alternatively you could use ANDROID_ID which is a 8 byte long hex string unique to the device, user and (only Android 8+) app installation. For more info on that topic, see Best practices for unique identifiers.

  • Can the downvoter please explain, why he/she believes this is incorrect? – patrickf Nov 21 '17 at 17:02
  • I voted down probably by mistake, this is clearly the correct answer now. I can not remove my downvote because it is locked until the answer is edited. – peceps Nov 30 '17 at 11:37
  • @peceps it's edited :) – patrickf Nov 30 '17 at 13:39
  • 2
    cool, I converted the down vote to up vote. – peceps Dec 1 '17 at 15:01
  • As of right now, this the correct answer. – setholopolus Jul 31 '18 at 22:39
13

Build.SERIAL can be empty or sometimes return a different value (proof 1, proof 2) than what you can see in your device's settings.

If you want a more complete and robust solution, I've compiled every possible solution I could found in a single gist. Here's a simplified version of it :

public static String getSerialNumber() {
    String serialNumber;

    try {
        Class<?> c = Class.forName("android.os.SystemProperties");
        Method get = c.getMethod("get", String.class);

        serialNumber = (String) get.invoke(c, "gsm.sn1");
        if (serialNumber.equals(""))
            serialNumber = (String) get.invoke(c, "ril.serialnumber");
        if (serialNumber.equals(""))
            serialNumber = (String) get.invoke(c, "ro.serialno");
        if (serialNumber.equals(""))
            serialNumber = (String) get.invoke(c, "sys.serialnumber");
        if (serialNumber.equals(""))
            serialNumber = Build.SERIAL;

        // If none of the methods above worked
        if (serialNumber.equals(""))
            serialNumber = null;
    } catch (Exception e) {
        e.printStackTrace();
        serialNumber = null;
    }

    return serialNumber;
}

I try to update the gist regularly whenever I can test on a new device or Android version. Contributions are welcome too.

  • 1
    This should be the accepted answer. Complete and accurate! – iori24 Jan 30 at 8:15
  • Works great for me. This should be the accepted answer! – Satish Shetty Jul 10 at 22:29

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