功能和 API

Android 17 面向开发者引入了一些出色的新功能和 API。以下各部分总结了这些功能,可帮助您开始使用相关 API。

有关新增、修改和移除的 API 的详细列表,请参阅 API 差异报告。如需详细了解新的 API,请访问 Android API 参考文档,新 API 会突出显示以方便查看。

您还应查看平台变更可能会在哪些方面影响您的应用。如需了解详情,请参阅以下页面:

核心功能

Android 17 添加了以下与核心 Android 功能相关的新功能。

新的 ProfilingManager 触发器

Android 17 向 ProfilingManager 添加了多个新的系统触发器,可帮助您收集深入的数据来调试性能问题。

新增的触发条件包括:

如需了解如何设置系统触发器,请参阅有关基于触发器的分析以及如何检索和分析分析数据的文档

应用异常的分析触发器

Android 17 引入了一项设备端异常检测服务,用于监控资源密集型行为和潜在的兼容性回归。此服务与 ProfilingManager 集成,可让您的应用接收由特定系统检测到的事件触发的分析工件。

使用 TRIGGER_TYPE_ANOMALY 触发器可检测系统性能问题,例如过多的 binder 调用和过多的内存用量。当应用超出操作系统定义的内存限制时,异常触发器可让开发者接收特定于应用的堆转储,以帮助他们识别和修复内存问题。此外,对于过多的 Binder 垃圾信息,异常触发器会在 Binder 事务上提供堆栈采样配置文件。

此 API 回调发生在任何系统强制执行之前。例如,它可以帮助开发者在应用因超出内存限制而被系统终止之前收集调试数据。

val profilingManager =
    applicationContext.getSystemService(ProfilingManager::class.java)
val triggers = ArrayList<ProfilingTrigger>()
triggers.add(ProfilingTrigger.Builder(ProfilingTrigger.TRIGGER_TYPE_ANOMALY))
val mainExecutor: Executor = Executors.newSingleThreadExecutor()
val resultCallback = Consumer<ProfilingResult> { profilingResult ->
    if (profilingResult.errorCode != ProfilingResult.ERROR_NONE) {
        // upload profile result to server for further analysis
        setupProfileUploadWorker(profilingResult.resultFilePath)
    }
    profilingManager.registerForAllProfilingResults(mainExecutor,
                                                    resultCallback)
    profilingManager.addProfilingTriggers(triggers)
}

JobDebugInfo API

Android 17 引入了新的 JobDebugInfo API,可帮助开发者调试其 JobScheduler 作业,了解作业未运行的原因、运行时长和其他汇总信息。

扩展后的 JobDebugInfo API 的第一个方法是 getPendingJobReasonStats(),该方法会返回一个映射,其中包含作业处于待执行状态的原因及其各自的累计待执行时长。此方法将 getPendingJobReasonsHistory()getPendingJobReasons() 方法联接在一起,可让您了解预定作业未按预期运行的原因,但通过在单个方法中同时提供时长和作业原因,简化了信息检索。

例如,对于指定的 jobId,该方法可能会返回 PENDING_JOB_REASON_CONSTRAINT_CHARGING 和 60000 毫秒的时长,表示作业因未满足充电约束而处于等待状态 60000 毫秒。

通过为“允许在空闲时运行”闹钟提供监听器支持,减少唤醒锁定

Android 17 introduces a new variant of AlarmManager.setExactAndAllowWhileIdle that accepts an OnAlarmListener instead of a PendingIntent. This new callback-based mechanism is ideal for apps that currently rely on continuous wakelocks to perform periodic tasks, such as messaging apps maintaining socket connections.

隐私权

Android 17 包含以下新功能,可提升用户隐私保护。

加密客户端 Hello (ECH) 平台支持

Android 17 introduces platform support for Encrypted Client Hello (ECH), a significant privacy enhancement for network communications. ECH is a TLS 1.3 extension that encrypts the Server Name Indication (SNI) during the initial TLS handshake. This encryption helps protect user privacy by making it more difficult for network intermediaries to identify the specific domain an app is connecting to.

The platform now includes the necessary APIs for networking libraries to implement ECH. This includes new capabilities in DnsResolver to query for HTTPS DNS records containing ECH configurations, and new methods in Conscrypt's SSLEngines and SSLSockets to enable ECH by passing in these configurations when connecting to a domain. Developers can configure ECH preferences, such as enabling it opportunistically or mandating its use, through the new <domainEncryption> element within the Network Security Configuration file, applicable globally or on a per-domain basis.

Popular networking libraries such as HttpEngine, WebView, and OkHttp are expected to integrate these platform APIs in future updates, making it easier for apps to adopt ECH and enhance user privacy.

For more information, see the Encrypted Client Hello documentation.

Android 联系人选择器

Android 联系人选择工具是一个标准化的可浏览界面,用户可通过该界面与您的应用分享联系人。该选择工具适用于搭载 Android 17(API 级别 37)或更高版本的设备,可提供一种注重隐私保护的替代方案,以取代范围广泛的 READ_CONTACTS 权限。您的应用无需请求访问用户的整个地址簿,而是指定所需的数据字段(例如电话号码或电子邮件地址),然后用户选择要分享的特定联系人。这只会授予您的应用对所选数据的读取权限,从而确保精细控制,同时提供一致的用户体验,并具有内置的搜索、个人资料切换和多选功能,而无需构建或维护界面。

如需了解详情,请参阅联系人选择器文档

安全

Android 17 新增了以下功能,以提升设备和应用安全性。

Android 高级保护模式 (AAPM)

Android 高级保护模式为 Android 用户提供了一套强大的新安全功能,标志着在保护用户(尤其是面临较高风险的用户)免遭复杂攻击方面迈出了重要一步。AAPM 是一项选择启用功能,只需进行一项配置设置即可激活。用户可以随时启用该功能,以应用一套主观的安全保护措施。

这些核心配置包括:禁止安装未知来源的应用(旁加载)、限制 USB 数据信号传输,以及强制执行 Google Play 保护机制扫描,从而显著减小设备的攻击面。 开发者可以使用 AdvancedProtectionManager API 与此功能集成,以检测模式的状态,从而使应用能够在用户选择启用此模式时自动采用强化型安全姿态或限制高风险功能。

PQC APK 签名

Android now supports a hybrid APK signature scheme to future-proof your app's signing identity against the potential threat of attacks that make use of quantum computing. This feature introduces a new APK Signature Scheme, which lets you pair a classical signing key (such as RSA or EC) with a new post-quantum cryptography (PQC) algorithm (ML-DSA).

This hybrid approach ensures your app remains secure against future quantum attacks while maintaining full backward compatibility with older Android versions and devices that rely on classical signature verification.

Impact on developers

  • Apps using Play App Signing: If you use Play App Signing, you can wait for Google Play to give you the option to upgrade a hybrid signature using a PQC key generated by Google Play, ensuring your app is protected without requiring manual key management.
  • Apps using self-managed keys: Developers who manage their own signing keys can utilize updated Android build tools (like apksigner) to rotate to a hybrid identity, combining a PQC key with a new classical key. (You must create a new classical key, you cannot reuse the older one.)

连接

Android 17 添加了以下功能,以改进设备和应用连接。

受限卫星网络

实现优化,使应用能够在低带宽卫星网络上有效运行。

用户体验和系统界面

Android 17 包含以下变更,旨在提升用户体验。

专用 Google 助理音量音频流

Android 17 针对 Google 助理应用引入了专用的 Google 助理音量串流,以便使用 USAGE_ASSISTANT 进行播放。此项变更将 Google 助理音频与标准媒体音频流分离,让用户能够单独控制这两个音频流的音量。这样一来,您就可以实现以下场景:在将媒体播放静音的同时,保持 Google 助理回答的可听性;反之亦然。

有权访问新的 MODE_ASSISTANT_CONVERSATION 音频模式的助理应用可以进一步提高音量控制的一致性。助理应用可以使用此模式向系统提供有关有效助理会话的提示,确保可以在有效 USAGE_ASSISTANT 播放之外或通过连接的蓝牙外围设备控制助理流。

Handoff

Handoff is a new feature and API coming to Android 17 that app developers can integrate with to provide cross-device continuity for their users. It allows the user to start an app activity on one Android device and transition it to another Android device. Handoff runs in the background of a user's device and surfaces available activities from the user's other nearby devices through various entry points, like the launcher and taskbar, on the receiving device.

Apps can designate Handoff to launch the same native Android app, if it is installed and available on the receiving device. In this app-to-app flow, the user is deep-linked to the designated activity. Alternatively, app-to-web Handoff can be offered as a fallback option or directly implemented with URL Handoff.

Handoff support is implemented on a per-activity basis. To enable Handoff, call the setHandoffEnabled() method for the activity. Additional data may need to be passed along with the handoff so the recreated activity on the receiving device can restore appropriate state. Implement the onHandoffActivityDataRequested() callback to return a HandoffActivityData object which contains details that specify how Handoff should handle and recreate the activity on the receiving device.

实时更新 - 语义颜色 API

With Android 17, Live Update launches the Semantic Coloring APIs to support colors with universal meaning.

The following classes support semantic coloring:

Coloring

  • Green: Associated with safety. This color should be used for the case where it lets people know you are in the safe situation.
  • Orange: For designating caution and marking physical hazards. This color should be used in the situation where users need to pay attention to set better protection setting.
  • Red: Generally indicates danger, stop. It should be presented for the case where need people's attention urgently.
  • Blue: Neutral color for content that is informational and should stand out from other content.

The following example shows how to apply semantic styles to text in a notification:

  val ssb = SpannableStringBuilder()
        .append("Colors: ")
        .append("NONE", Notification.createSemanticStyleAnnotation(SEMANTIC_STYLE_UNSPECIFIED), 0)
        .append(", ")
        .append("INFO", Notification.createSemanticStyleAnnotation(SEMANTIC_STYLE_INFO), 0)
        .append(", ")
        .append("SAFE", Notification.createSemanticStyleAnnotation(SEMANTIC_STYLE_SAFE), 0)
        .append(", ")
        .append("CAUTION", Notification.createSemanticStyleAnnotation(SEMANTIC_STYLE_CAUTION), 0)
        .append(", ")
        .append("DANGER", Notification.createSemanticStyleAnnotation(SEMANTIC_STYLE_DANGER), 0)

    Notification.Builder(context, channelId)
          .setSmallIcon(R.drawable.ic_icon)
          .setContentTitle("Hello World!")
          .setContentText(ssb)
          .setOngoing(true)
              .setRequestPromotedOngoing(true)

适用于 Android 17 的 UWB 下行链路 TDoA API

Downlink Time Difference of Arrival (DL-TDoA) ranging lets a device determine its position relative to multiple anchors by measuring the relative arrival times of signals.

The following snippet demonstrates how to initialize the Ranging Manager, verify device capabilities, and start a DL-TDoA session:

Kotlin

class RangingApp {

    fun initDlTdoa(context: Context) {
        // Initialize the Ranging Manager
        val rangingManager = context.getSystemService(RangingManager::class.java)

        // Register for device capabilities
        val capabilitiesCallback = object : RangingManager.RangingCapabilitiesCallback {
            override fun onRangingCapabilities(capabilities: RangingCapabilities) {
                // Make sure Dl-TDoA is supported before starting the session
                if (capabilities.uwbCapabilities != null && capabilities.uwbCapabilities!!.isDlTdoaSupported) {
                    startDlTDoASession(context)
                }
            }
        }
        rangingManager.registerCapabilitiesCallback(Executors.newSingleThreadExecutor(), capabilitiesCallback)
    }

    fun startDlTDoASession(context: Context) {

        // Initialize the Ranging Manager
        val rangingManager = context.getSystemService(RangingManager::class.java)

        // Create session and configure parameters
        val executor = Executors.newSingleThreadExecutor()
        val rangingSession = rangingManager.createRangingSession(executor, RangingSessionCallback())
        val rangingRoundIndexes = byteArrayOf(0)
        val config: ByteArray = byteArrayOf() // OOB config data
        val params = DlTdoaRangingParams.createFromFiraConfigPacket(config, rangingRoundIndexes)

        val rangingDevice = RangingDevice.Builder().build()
        val rawTagDevice = RawRangingDevice.Builder()
            .setRangingDevice(rangingDevice)
            .setDlTdoaRangingParams(params)
            .build()

        val dtTagConfig = RawDtTagRangingConfig.Builder(rawTagDevice).build()

        val preference = RangingPreference.Builder(DEVICE_ROLE_DT_TAG, dtTagConfig)
            .setSessionConfig(SessionConfig.Builder().build())
            .build()

        // Start the ranging session
        rangingSession.start(preference)
    }
}

private class RangingSessionCallback : RangingSession.Callback {
    override fun onDlTdoaResults(peer: RangingDevice, measurement: DlTdoaMeasurement) {
        // Process measurement results here
    }
}

Java

public class RangingApp {

    public void initDlTdoa(Context context) {

        // Initialize the Ranging Manager
        RangingManager rangingManager = context.getSystemService(RangingManager.class);

        // Register for device capabilities
        RangingManager.CapabilitiesCallback capabilitiesCallback = new RangingManager.RangingCapabilitiesCallback() {
            @Override
            public void onRangingCapabilities(RangingCapabilities capabilities) {
                // Make sure Dl-TDoA is supported before starting the session
                if (capabilities.getUwbCapabilities() != null && capabilities.getUwbCapabilities().isDlTdoaSupported()) {
                    startDlTDoASession(context);
                }
            }
        };
        rangingManager.registerCapabilitiesCallback(Executors.newSingleThreadExecutor(), capabilitiesCallback);
    }

    public void startDlTDoASession(Context context) {
        RangingManager rangingManager = context.getSystemService(RangingManager.class);

        // Create session and configure parameters
        Executor executor = Executors.newSingleThreadExecutor();
        RangingSession rangingSession = rangingManager.createRangingSession(executor, new RangingSessionCallback());
        byte[] rangingRoundIndexes = new byte[] {0};
        byte[] config = new byte[0]; // OOB config data
        DlTdoaRangingParams params = DlTdoaRangingParams.createFromFiraConfigPacket(config, rangingRoundIndexes);

        RangingDevice rangingDevice = new RangingDevice.Builder().build();
        RawRangingDevice rawTagDevice = new RawRangingDevice.Builder()
                .setRangingDevice(rangingDevice)
                .setDlTdoaRangingParams(params)
                .build();

        RawDtTagRangingConfig dtTagConfig = new RawDtTagRangingConfig.Builder(rawTagDevice).build();

        RangingPreference preference = new RangingPreference.Builder(DEVICE_ROLE_DT_TAG, dtTagConfig)
                .setSessionConfig(new SessionConfig.Builder().build())
                .build();

        // Start the ranging session
        rangingSession.start(preference);
    }

    private static class RangingSessionCallback implements RangingSession.Callback {

        @Override
        public void onDlTdoaResults(RangingDevice peer, DlTdoaMeasurement measurement) {
            // Process measurement results here
        }
    }
}

Out-of-Band (OOB) Configurations

The following snippet provides an example of DL-TDoA OOB configuration data for Wi-Fi and BLE:

Java

// Wifi Configuration
byte[] wifiConfig = {
    (byte) 0xDD, (byte) 0x2D, (byte) 0x5A, (byte) 0x18, (byte) 0xFF, // Header
    (byte) 0x5F, (byte) 0x19, // FiRa Sub-Element
    (byte) 0x02, (byte) 0x00, // Profile ID
    (byte) 0x06, (byte) 0x02, (byte) 0x20, (byte) 0x08, // MAC Address
    (byte) 0x14, (byte) 0x01, (byte) 0x0C, // Preamble Index
    (byte) 0x27, (byte) 0x02, (byte) 0x08, (byte) 0x07, // Vendor ID
    (byte) 0x28, (byte) 0x06, (byte) 0xCA, (byte) 0xC8, (byte) 0xA6, (byte) 0xF7, (byte) 0x6F, (byte) 0x08, // Static STS IV
    (byte) 0x08, (byte) 0x02, (byte) 0x60, (byte) 0x09, // Slot Duration
    (byte) 0x1B, (byte) 0x01, (byte) 0x0A, // Slots per RR
    (byte) 0x09, (byte) 0x04, (byte) 0xE8, (byte) 0x03, (byte) 0x00, (byte) 0x00, // Duration
    (byte) 0x9F, (byte) 0x04, (byte) 0x67, (byte) 0x45, (byte) 0x23, (byte) 0x01  // Session ID
};

// BLE Configuration
byte[] bleConfig = {
    (byte) 0x2D, (byte) 0x16, (byte) 0xF4, (byte) 0xFF, // Header
    (byte) 0x5F, (byte) 0x19, // FiRa Sub-Element
    (byte) 0x02, (byte) 0x00, // Profile ID
    (byte) 0x06, (byte) 0x02, (byte) 0x20, (byte) 0x08, // MAC Address
    (byte) 0x14, (byte) 0x01, (byte) 0x0C, // Preamble Index
    (byte) 0x27, (byte) 0x02, (byte) 0x08, (byte) 0x07, // Vendor ID
    (byte) 0x28, (byte) 0x06, (byte) 0xCA, (byte) 0xC8, (byte) 0xA6, (byte) 0xF7, (byte) 0x6F, (byte) 0x08, // Static STS IV
    (byte) 0x08, (byte) 0x02, (byte) 0x60, (byte) 0x09, // Slot Duration
    (byte) 0x1B, (byte) 0x01, (byte) 0x0A, // Slots per RR
    (byte) 0x09, (byte) 0x04, (byte) 0xE8, (byte) 0x03, (byte) 0x00, (byte) 0x00, // Duration
    (byte) 0x9F, (byte) 0x04, (byte) 0x67, (byte) 0x45, (byte) 0x23, (byte) 0x01  // Session ID
};

If you can't use an OOB configuration because it is missing, or if you need to change default values that aren't in the OOB config, you can build parameters with DlTdoaRangingParams.Builder as shown in the following snippet. You can use these parameters in place of DlTdoaRangingParams.createFromFiraConfigPacket():

Kotlin

val dlTdoaParams = DlTdoaRangingParams.Builder(1)
    .setComplexChannel(UwbComplexChannel.Builder()
            .setChannel(9).setPreambleIndex(10).build())
    .setDeviceAddress(deviceAddress)
    .setSessionKeyInfo(byteArrayOf(0x01, 0x02, 0x03, 0x04))
    .setRangingIntervalMillis(240)
    .setSlotDuration(UwbRangingParams.DURATION_2_MS)
    .setSlotsPerRangingRound(20)
    .setRangingRoundIndexes(byteArrayOf(0x01, 0x05))
    .build()

Java

DlTdoaRangingParams dlTdoaParams = new DlTdoaRangingParams.Builder(1)
    .setComplexChannel(new UwbComplexChannel.Builder()
            .setChannel(9).setPreambleIndex(10).build())
    .setDeviceAddress(deviceAddress)
    .setSessionKeyInfo(new byte[]{0x01, 0x02, 0x03, 0x04})
    .setRangingIntervalMillis(240)
    .setSlotDuration(UwbRangingParams.DURATION_2_MS)
    .setSlotsPerRangingRound(20)
    .setRangingRoundIndexes(new byte[]{0x01, 0x05})
    .build();