Behavior changes: all apps

The Android 17 platform includes behavior changes that might affect your app. The following behavior changes apply to all apps when they run on Android 17, regardless of targetSdkVersion. You should test your app and then modify it as needed to support these changes, where applicable.

Make sure to also review the list of behavior changes that only affect apps targeting Android 17.

Core functionality

Android 17 (API level 37) includes the following changes that modify or expand various core capabilities of the Android system.

App memory limits

Android 17 introduces app memory limits based on the device's total RAM to create a more stable and deterministic environment for your applications and Android users. In Android 17, limits are set conservatively to establish system baselines, targeting extreme memory leaks and other outliers before they trigger system-wide instability resulting in UI stuttering, higher battery drain, and apps being killed. While we anticipate minimal impact on the vast majority of app sessions, we recommend the following memory best practices, including establishing a baseline for memory.

You can determine if your app session was impacted by calling getDescription in ApplicationExitInfo; if your app was affected, the exit reason will be REASON_OTHER and the description will contain the string "MemoryLimiter:AnonSwap" along with other information. You can also use trigger-based profiling with TRIGGER_TYPE_ANOMALY to get heap dumps that are collected when the memory limit is hit.

The Manage your app's memory documentation gives information to help you diagnose your app's memory issues and optimize its resource consumption.

Test your app's behavior under the memory constraints

You can use Android Debug Bridge (adb) to adjust or disable the memory limits on any device that imposes them. The shell command am provides three subcommands to adjust the memory limits. (These commands have no effect on a device which does not impose memory limits.)

  • am memory-limiter ignore <uid>|none|all
  • am memory-limiter manual <pid> <limit>|max|none
  • am memory-limiter status
ignore

Instructs the memory limiter to ignore some or all processes. Passing a UID instructs the memory limiter to ignore all processes associated with that UID. You can also pass all (ignore all processes) or none (do not ignore any processes). Passing none overrides any previous calls to am memory-limiter ignore.

If you instruct the memory limiter to ignore a process, you can still apply a manual memory limit to the process by calling am memory-limiter manual.

manual

Instructs the system to impose a memory constraint on the process with the specified PID. The memory constraint is specified as an integer number of MB; for example, passing 30 specifies that the process is limited to 30 MB of memory. Passing max removes all memory limits on that process. Passing none removes any manual limits set on the process, restoring the system's default limit (if any).

status

Reports the current status of the memory limiter. The status includes the memory limits imposed on visible and non-visible processes.

Privacy

Android 17 includes the following changes to improve user privacy.

SMS OTP protection

从 Android 17 开始,Android 将扩大对包含一次性密码 (OTP) 的短信的保护范围。

在之前的 Android 版本中,此保护主要侧重于 SMS Retriever 格式。对于大多数应用,包含 SMS Retriever 哈希的消息的递送延迟了 3 小时。不过,某些特定应用(例如默认短信处理程序)不受此延迟的影响,拥有哈希的应用也不受此延迟的影响。

从 Android 17 开始,此保护也适用于 WebOTP 格式的消息。如果应用有权读取短信,但不是 WebOTP 消息的预期接收者(由网域验证确定),则该应用在收到消息后 3 小时内无法访问该消息。此变更旨在提高用户安全性,确保只有与消息中提及的网域关联的应用才能以程序化方式读取验证码。

在这 3 小时的延迟期间,系统会保留 SMS_RECEIVED_ACTION 广播,并过滤 短信提供商 数据库查询。延迟结束后,这些应用即可使用短信。此变更适用于 所有应用,无论其目标 API 级别如何。

某些应用(例如默认短信辅助应用、已连接设备配套应用等)不受此延迟的影响。所有依赖于读取短信 来提取 动态密码 的应用都应过渡到使用 SMS RetrieverSMS User Consent API,以确保功能持续可用。

Security

Android 17 includes the following improvements to device and app security.

usesClearTraffic deprecation plan

我们计划在未来的版本中弃用 usesCleartextTraffic 元素。需要建立未加密 (HTTP) 连接的应用应迁移为使用网络安全配置文件,该文件可让您指定应用需要与哪些网域建立明文连接。

请注意,网络安全配置文件仅在 API 级别 24 及更高版本中受支持。如果您的应用的最低 API 级别低于 24,您应执行以下两项操作:

  • usesCleartextTraffic 属性设置为 true
  • 使用网络配置文件

如果应用的最低 API 级别为 24 或更高,您可以使用网络配置文件,而无需设置 usesCleartextTraffic

Restrict implicit URI grants

Currently, if an app launches an intent with a URI that has the action ACTION_SEND, ACTION_SEND_MULTIPLE, or ACTION_IMAGE_CAPTURE, the system automatically grants the read and write URI permissions to the target app. Starting in Android 18, the system will no longer automatically grant these permissions. For this reason, we recommend that apps explicitly grant the relevant URI permissions instead of relying on the system to grant them.

To detect the usage of these intents in your app, use StrictMode with detectImplicitUriPermissionGrant() to trigger a violation:

Kotlin

val policy = StrictMode.VmPolicy.Builder()
    .detectImplicitUriPermissionGrant()
    .penaltyLog()
    .build()
StrictMode.setVmPolicy(policy)

Java

StrictMode.VmPolicy policy = new StrictMode.VmPolicy.Builder()
    .detectImplicitUriPermissionGrant()
    .penaltyLog()
    .build();
StrictMode.setVmPolicy(policy);

Alternatively, you can monitor for logged exceptions containing the message Please set the grant explicitly in the app that appears when system implicitly sets the grant. You can monitor for these logs using the following adb command:

adb logcat | grep "Please set the grant explicitly in the app"

To explicitly grant the necessary permissions, add the FLAG_GRANT_READ_URI_PERMISSION flag to ACTION_SEND and ACTION_SEND_MULTIPLE intents:

Kotlin

intent.addFlags(Intent.FLAG_GRANT_READ_URI_PERMISSION)

Java

intent.addFlags(Intent.FLAG_GRANT_READ_URI_PERMISSION);

Include both FLAG_GRANT_READ_URI_PERMISSION and FLAG_GRANT_WRITE_URI_PERMISSION flags for ACTION_IMAGE_CAPTURE intents:

Kotlin

intent.addFlags(Intent.FLAG_GRANT_READ_URI_PERMISSION or Intent.FLAG_GRANT_WRITE_URI_PERMISSION)

Java

intent.addFlags(Intent.FLAG_GRANT_READ_URI_PERMISSION | Intent.FLAG_GRANT_WRITE_URI_PERMISSION);

Per-app keystore limits

Apps should avoid creating excessive numbers of keys in Android Keystore, because it is a shared resource for all apps on the device. Beginning with Android 17, the system enforces a limit on the number of keys an app can own. The limit is 50,000 keys for non-system apps targeting Android 17 (API level 37) or higher, and 200,000 keys for all other apps. System apps have a limit of 200,000 keys, regardless of which API level they target.

If an app attempts to create keys beyond the limit, the creation fails with a KeyStoreException. The exception's message string contains information about the key limit. If the app calls getNumericErrorCode() on the exception, the return value depends on what API level the app targets:

  • Apps targeting Android 17 (API level 37) or higher: getNumericErrorCode() returns the new ERROR_TOO_MANY_KEYS value.
  • All other apps: getNumericErrorCode() returns ERROR_INCORRECT_USAGE.

Block cross profile loopback traffic

Beginning with Android 17, cross-profile loopback traffic is no longer permitted by default. Loopback traffic within the same profile is not affected. This change applies to all apps running on Android 17 or higher, regardless of what API level the app targets.

User experience and system UI

Android 17 includes the following changes that are intended to create a more consistent, intuitive user experience.

Restoring default IME visibility after rotation

Beginning with Android 17, when the device's configuration changes (for example, through rotation), and this is not handled by the app itself, the previous IME visibility is not restored.

If your app undergoes a configuration change that it does not handle, and the app needs the keyboard to be visible after the change, you must explicitly request this. You can make this request in one of the following ways:

  • Set the android:windowSoftInputMode attribute to stateAlwaysVisible.
  • Programmatically request the soft keyboard in your activity's onCreate() method, or add the onConfigurationChanged() method.

Human input

Android 17 includes the following changes that affect how apps interact with human input devices like keyboards and touchpads.

Touchpads deliver relative events by default during pointer capture

从 Android 17 开始,如果应用使用 View.requestPointerCapture() 请求捕获指针,并且用户使用触控板,系统会识别用户触摸操作产生的指针移动和滚动手势,并以与捕获的鼠标产生的指针和滚轮移动相同的方式将这些信息报告给应用。在大多数情况下,这使得支持捕获鼠标的应用无需为触控板添加特殊的处理逻辑。如需了解详情,请参阅 View.POINTER_CAPTURE_MODE_RELATIVE 的文档。

之前,系统不会尝试识别触控板的手势,而是以类似于触摸屏触摸的格式将原始的绝对手指位置传递给应用。如果应用仍需要此绝对数据,则应改为使用 View.POINTER_CAPTURE_MODE_ABSOLUTE 调用新的 View.requestPointerCapture(int) 方法。

Media

Android 17 includes the following changes to media behavior.

Background audio hardening

Beginning with Android 17, the audio framework enforces restrictions on background audio interactions including audio playback, audio focus requests, and volume change APIs to ensure that these changes are started intentionally by the user.

If the app tries to call audio APIs while the app is not in a valid lifecycle, the audio playback and volume change APIs fail silently without throwing an exception or providing a failure message. The audio focus API fails with the result code AUDIOFOCUS_REQUEST_FAILED.

For more information, including mitigation strategies, see Background audio hardening.

Connectivity

Android 17 includes the following changes to enhance device connectivity.

Autonomous re-pairing for Bluetooth bond losses

Android 17 introduces autonomous re-pairing, a system-level enhancement designed to automatically resolve Bluetooth bond loss.

Previously, if a bond was lost, users had to manually navigate to Settings to unpair and then re-pair the peripheral. This feature builds upon the security improvement of Android 16 by allowing the system to re-establish bonds in the background without requiring users to manually navigate to Settings to unpair and re-pair peripherals.

While most apps will not require code changes, developers should be aware of the following behavior changes in Bluetooth stack:

  • New pairing context: The ACTION_PAIRING_REQUEST now includes the EXTRA_PAIRING_CONTEXT extra which allows apps to distinguish between a standard pairing request and an autonomous system-initiated re-pairing attempt.
  • Conditional key updates: Existing security keys will only be replaced if the re-pairing is successful and new connection meets or exceeds the security level of the previous bond.
  • Modified intent timing: The ACTION_KEY_MISSING intent is now broadcast only if the autonomous re-pairing attempt fails. This reduces unnecessary error handling in the app if the system successfully recovers the bond in the background.
  • User notification: The system manages re-pairing via new UI notifications and dialogs. Users will be prompted to confirm the re-pairing attempt to ensure they are aware of the reconnection.

Peripheral device manufacturers and companion app developers should verify that hardware and app gracefully handle bond transitions. To test this behavior, simulate a remote bond loss using either of the following methods:

  • Manually remove the bond information from the peripheral device
  • Manually unpair the device in: Settings > Connected devices