java.lang.SecurityException:发送短信:uid 10051 没有 android.permission.SEND_SMS [重复]
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【中文标题】java.lang.SecurityException:发送短信:uid 10051 没有 android.permission.SEND_SMS [重复]【英文标题】:java.lang.SecurityException: Sending SMS message: uid 10051 does not have android.permission.SEND_SMS [duplicate] 【发布时间】:2017-05-14 17:19:36 【问题描述】:伙计们,我对sms manager 有关于预定短信的问题...在我使用的清单中
`<uses-permission android:name="android.permisson.SEND_SMS"/>`
但我收到此错误...我不知道为什么...我向您展示了我的 LOGCAT:
FATAL EXCEPTION: main
Process: com.example.alarm, PID: 31456
java.lang.RuntimeException: Unable to start receiver com.example.alarm.AlarmReceiver: java.lang.SecurityException: Sending SMS message: uid 10051 does not have android.permission.SEND_SMS.
at android.app.ActivityThread.handleReceiver(ActivityThread.java:2615)
at android.app.ActivityThread.access$1700(ActivityThread.java:151)
at android.app.ActivityThread$H.handleMessage(ActivityThread.java:1397)
at android.os.Handler.dispatchMessage(Handler.java:110)
at android.os.Looper.loop(Looper.java:193)
at android.app.ActivityThread.main(ActivityThread.java:5327)
at java.lang.reflect.Method.invokeNative(Native Method)
at java.lang.reflect.Method.invoke(Method.java:515)
at com.android.internal.os.ZygoteInit$MethodAndArgsCaller.run(ZygoteInit.java:824)
at com.android.internal.os.ZygoteInit.main(ZygoteInit.java:640)
at dalvik.system.NativeStart.main(Native Method)
Caused by: java.lang.SecurityException: Sending SMS message: uid 10051 does not have android.permission.SEND_SMS.
at android.os.Parcel.readException(Parcel.java:1465)
at android.os.Parcel.readException(Parcel.java:1419)
at com.android.internal.telephony.ISms$Stub$Proxy.sendText(ISms.java:926)
at android.telephony.SmsManager.sendTextMessage(SmsManager.java:156)
at com.example.alarm.AlarmReceiver.onReceive(AlarmReceiver.java:24)
at android.app.ActivityThread.handleReceiver(ActivityThread.java:2597)
at android.app.ActivityThread.access$1700(ActivityThread.java:151)
at android.app.ActivityThread$H.handleMessage(ActivityThread.java:1397)
at android.os.Handler.dispatchMessage(Handler.java:110)
at android.os.Looper.loop(Looper.java:193)
at android.app.ActivityThread.main(ActivityThread.java:5327)
at java.lang.reflect.Method.invokeNative(Native Method)
at java.lang.reflect.Method.invoke(Method.java:515)
at com.android.internal.os.ZygoteInit$MethodAndArgsCaller.run(ZygoteInit.java:824)
at com.android.internal.os.ZygoteInit.main(ZygoteInit.java:640)
at dalvik.system.NativeStart.main(Native Method)
以及关于接收器广播的代码:
public class AlarmReceiver extends BroadcastReceiver
@Override
public void onReceive(Context context, Intent intent)
// TODO Auto-generated method stub
String phoneNumberReciver="123456";
String message="blablabla";
/*String SPhone =i.getStringExtra("exPhone");
String SSms = i.getStringExtra("exSmS");*/
//android.telephony.SmsManager sms= SmsManager.getDefault();
//sms.sendTextMessage(phoneNumberReciver, null, message, null, null);
SmsManager smsManager = SmsManager.getDefault();
smsManager.sendTextMessage(phoneNumberReciver, null, message, null, null);
Toast.makeText(context, "Alarm Triggered and SMS Sent", Toast.LENGTH_LONG);
这是我的清单:
<?xml version="1.0" encoding="utf-8"?>
<manifest xmlns:android="http://schemas.android.com/apk/res/android"
package="com.example.alarm"
android:versionCode="1"
android:versionName="1.0" >
<uses-sdk
android:minSdkVersion="8"
android:targetSdkVersion="17" />
<uses-permission android:name="com.example.alarm.permission.SET_ALARM"/>
<uses-permission android:name="android.permisson.SEND_SMS"/>
<uses-permission android:name="android.permission.READ_CONTACTS"/>
<application
android:allowBackup="true"
android:icon="@drawable/ic_launcher"
android:label="@string/app_name"
android:theme="@style/AppTheme" >
<activity
android:name="com.example.alarm.MainActivity"
android:label="@string/app_name" >
<intent-filter>
<action android:name="android.intent.action.MAIN" />
<category android:name="android.intent.category.LAUNCHER" />
</intent-filter>
</activity>
<receiver android:name=".AlarmReceiver"/>
</application>
</manifest>
谁能帮助我?提前谢谢大家!
【问题讨论】:
你想要运行时权限 ***.com/questions/34057030/… 【参考方案1】:复制并粘贴此代码以发送短信服务即可。
Button sendBtn = (Button)findViewById(R.id.senbtn);
sendBtn.setOnClickListener(new View.OnClickListener()
public void onClick(View view)
sendSMSMessage();
);
protected void sendSMSMessage()
phoneNo = txtphoneNo.getText().toString();
message = txtMessage.getText().toString();
if (ContextCompat.checkSelfPermission(this,
Manifest.permission.SEND_SMS)
!= PackageManager.PERMISSION_GRANTED)
if (ActivityCompat.shouldShowRequestPermissionRationale(this,
Manifest.permission.SEND_SMS))
else
ActivityCompat.requestPermissions(this,
new String[]Manifest.permission.SEND_SMS,
MY_PERMISSIONS_REQUEST_SEND_SMS);
@Override
public void onRequestPermissionsResult(int requestCode,String permissions[], int[] grantResults)
switch (requestCode)
case MY_PERMISSIONS_REQUEST_SEND_SMS:
if (grantResults.length > 0
&& grantResults[0] == PackageManager.PERMISSION_GRANTED)
SmsManager smsManager = SmsManager.getDefault();
smsManager.sendTextMessage(phoneNo, null, message, null, null);
Toast.makeText(getApplicationContext(), "SMS sent.",
Toast.LENGTH_LONG).show();
else
Toast.makeText(getApplicationContext(),
"SMS faild, please try again.", Toast.LENGTH_LONG).show();
return;
将此添加到清单文件中:
<uses-permission android:name="android.permission.SEND_SMS"/>
【讨论】:
请不要在没有解释的情况下发布代码。它应该做什么(我知道,但 OP 可以忽略它,未来的用户也是) 为什么需要解释它清楚地显示了代码所说的内容。不要发表负面评论。 见How to Ask,你可以看到这一行简洁是可以接受的,但更全面的解释更好。代码对你来说可能很清楚,但你不应该假设这将是每个人都清楚。 A 这不是否定的,这是一个建议,如果我想否定,我也会对答案投反对票。 Here 是一个有趣的帖子。 复制并粘贴此代码以发送短信服务即可 这不是对您的代码的解释。您应该解释一下,这将检查运行时权限(对于 API > 6.0,应该只有一个)。【参考方案2】:第 1 步 您的明显权限是
<uses-permission android:name="android.permisson.SEND_SMS"/>
更新为
<uses-permission android:name="android.permission.SEND_SMS"/>
它的
android.permission.SEND_SMS 不是android.permisson.SEND_SMS
权限拼写错误
第二步
<receiver android:name=".AlarmReceiver">
<intent-filter>
<action android:name="android.provider.Telephony.SMS_RECEIVED" />
</intent-filter>
</receiver>
【讨论】:
我一直想知道为什么在构建过程中没有警告【参考方案3】:现在没有获得您的许可的主要原因是您的项目的 targetSdkVersion 为 23 或更高,并且您请求的许可是“危险的”。在安卓 6.0 中 您可以手动授予权限:
const onPermissionHandle = async () =>
// We need to ask permission for Android only
if (Platform.OS === 'android')
// Calling the permission function
alert(granted);
const granted = await PermissionsAndroid.request(
PermissionsAndroid.PERMISSIONS.SEND_SMS,
title: 'Example App SEND_SMS Permission',
message: 'Example App needs access to your SEND_SMS',
,
);
alert(granted);
if (granted === PermissionsAndroid.RESULTS.GRANTED)
// Permission Granted
alert('You can use the SEND_SMS');
else
// Permission Denied
alert('SEND_SMS Permission Denied');
else
alert('You can use the SEND_SMS ');
;
【讨论】:
【参考方案4】:您需要为 OS marshmallow 及更高版本授予运行时权限
通过这个link
if (Build.VERSION.SDK_INT >= Build.VERSION_CODES.M)
//SEE NEXT STEP
else
sendSms();
if (checkSelfPermission(Manifest.permission.SEND_SMS) != PackageManager.PERMISSION_GRANTED)
//SEE NEXT STEP
else
sendSMS();
if (shouldShowRequestPermissionRationale(Manifest.permission.SEND_SMS))
//show some description about this permission to the user as a dialog, toast or in Snackbar
else
//request for the permission
@Override
public void onRequestPermissionsResult(int requestCode, String[] permissions, int[] grantResults)
super.onRequestPermissionsResult(requestCode, permissions, grantResults);
if (grantResults[0] == PackageManager.PERMISSION_GRANTED)
Snackbar.make(findViewById(R.id.rl), "Permission Granted",
Snackbar.LENGTH_LONG).show();
sendSMS();
else
Snackbar.make(findViewById(R.id.rl), "Permission denied",
Snackbar.LENGTH_LONG).show();
【讨论】:
你可以提供运行时权限的官方文档,这也很好解释。 @Markus,查看副本以了解您的问题 它的 android.permission.SEND_SMS 不是 android.permisson.SEND_SMS【参考方案5】:经过几个小时的调试,我发现在xml文件中添加这个权限不再产生错误了:
<uses-permission-sdk-23 android:name="android.permission.READ_PHONE_STATE"/>
【讨论】:
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