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I need to tell if my device has Internet connection or not. I found many answers like:

private boolean isNetworkAvailable() {
    ConnectivityManager connectivityManager 
         = (ConnectivityManager) getSystemService(Context.CONNECTIVITY_SERVICE);
    NetworkInfo activeNetworkInfo = connectivityManager.getActiveNetworkInfo();
    return activeNetworkInfo != null;
}

(Taken from Detect whether there is an Internet connection available on Android.)

But this is not right, for example if I'm connected to a wireless network which doesn't have Internet access, this method will return true… Is there a way to tell if the device has Internet connection and not if it is only connected to something?

share|improve this question
    
Hey you can go with [this][1] as well. That might help! [1]: stackoverflow.com/questions/4238921/… – akshay May 29 '13 at 6:37
    
possible duplicate of How to check internet access on Android? InetAddress never timeouts... – Palec Dec 23 '14 at 13:57
up vote 128 down vote accepted

You are right. The code you've provided only checks if there is a network connection. The best way to check if there is an active Internet connection is to try and connect to a known server via http.

public static boolean hasActiveInternetConnection(Context context) {
    if (isNetworkAvailable(context)) {
        try {
            HttpURLConnection urlc = (HttpURLConnection) (new URL("http://www.google.com").openConnection());
            urlc.setRequestProperty("User-Agent", "Test");
            urlc.setRequestProperty("Connection", "close");
            urlc.setConnectTimeout(1500); 
            urlc.connect();
            return (urlc.getResponseCode() == 200);
        } catch (IOException e) {
            Log.e(LOG_TAG, "Error checking internet connection", e);
        }
    } else {
        Log.d(LOG_TAG, "No network available!");
    }
    return false;
}

Of course you can substitute the http://www.google.com URL for any other server you want to connect to, or a server you know has a good uptime.

As Tony Cho also pointed out in this comment below, make sure you don't run this code on the main thread, otherwise you'll get a NetworkOnMainThread exception (in Android 3.0 or later). Use an AsyncTask or Runnable instead.

If you want to use google.com you should look at Jeshurun's modification. In his answer he modified my code and made it a bit more efficient. If you connect to

HttpURLConnection urlc = (HttpURLConnection) 
            (new URL("http://clients3.google.com/generate_204")
            .openConnection());

and then check the responsecode for 204

return (urlc.getResponseCode() == 204 && urlc.getContentLength() == 0);

then you don't have to fetch the entire google home page first.

share|improve this answer
18  
but what if google is banned in some country. – varun bhardwaj Mar 29 '12 at 10:45
5  
@varunbhardwaj you can just take a different website (e.g. baidu.com when deploying your app in China), or you can try a second site if the first one fails to make sure there is no connection. – THelper Mar 29 '12 at 11:10
2  
i +1 your answer and know using it in my app, but there is be a big corner case of dependency on some website and my question still remain unanswered. anyways great workaround thanx. – varun bhardwaj Mar 29 '12 at 11:33
2  
@blackcrow Depends on how long you/the users are willing to wait. Personally I consider 1000ms to be the lower limit, 6000ms about average and 15000ms long. But if the check is running in the background and the user is not waiting for it you can use much longer timeouts. – THelper May 28 '12 at 20:05
8  
This should also be down on a background thread (whereas checking the ConnectivityManager does not require this). Otherwise, on Android 4.x+ devices, you will get a NetworkOnMainThread exception. – Anthony Chuinard Jul 15 '13 at 17:47

I have modified THelper's answer slightly, to use a known hack that Android already uses to check if the connected WiFi network has Internet access. This is a lot more efficient over grabbing the entire Google home page. See here and here for more info.

public static boolean hasInternetAccess(Context context) {
    if (isNetworkAvailable(context)) {
        try {
            HttpURLConnection urlc = (HttpURLConnection) 
                (new URL("http://clients3.google.com/generate_204")
                .openConnection());
            urlc.setRequestProperty("User-Agent", "Android");
            urlc.setRequestProperty("Connection", "close");
            urlc.setConnectTimeout(1500); 
            urlc.connect();
            return (urlc.getResponseCode() == 204 &&
                        urlc.getContentLength() == 0);
        } catch (IOException e) {
            Log.e(TAG, "Error checking internet connection", e);
        }
    } else {
        Log.d(TAG, "No network available!");
    }
    return false;
}
share|improve this answer
1  
Hello, is it OK to use this practice in current apps? – Slava Fomin II Mar 9 '15 at 12:49
    
Is this efficient in implementing in our current app? – therealprashant Mar 18 '15 at 5:33
1  
It would be way more efficient than the method in the answer above. Grabbing the Google home page is very inefficient, especially if they happen to have a doodle on it. – Jeshurun Mar 18 '15 at 13:42
1  
The checked as correct response should be updated with this because it improves the answer. Well done man, thanks – Hugo Jan 14 at 9:55
public Boolean isAvailable() {
    try { 
        Process p1 = java.lang.Runtime.getRuntime().exec("ping -c 1    www.google.com");
        int returnVal = p1.waitFor();
        boolean reachable = (returnVal==0);
        if(reachable){
            System.out.println("Internet access");
            return reachable;
        } 
        else{ 
            System.out.println("No Internet access");
        } 

    } catch (Exception e) {

        e.printStackTrace();
    } 
    return false; 
} 

return true if internet is actually available

share|improve this answer
    
This is the best, most complete answer: it's the shortest way of doing things (a ping doesn't access the whole website), it runs independantly of which connection you have and it runs in it's won process so it plays nice with android versions. – MacD Aug 4 '15 at 11:33
    
will it be blocking call??? – Terri Oct 27 '15 at 9:05
    
what do u mean ? here is another snippet which i am using in a current project checkInternet – Bilal Shahid Oct 27 '15 at 16:57
    
what he meant is will this call block the UI and he needs to make this call in thread ?? – Amit Hooda Dec 14 '15 at 8:31
    
obviously it should be in Thread. – Bilal Shahid Dec 14 '15 at 13:50

try this one

public class ConnectionDetector {
    private Context _context;

    public ConnectionDetector(Context context) {
        this._context = context;
    }

    public boolean isConnectingToInternet() {
        if (networkConnectivity()) {
            try {
                HttpURLConnection urlc = (HttpURLConnection) (new URL(
                        "http://www.google.com").openConnection());
                urlc.setRequestProperty("User-Agent", "Test");
                urlc.setRequestProperty("Connection", "close");
                urlc.setConnectTimeout(3000);
                urlc.setReadTimeout(4000);
                urlc.connect();
                // networkcode2 = urlc.getResponseCode();
                return (urlc.getResponseCode() == 200);
            } catch (IOException e) {
                return (false);
            }
        } else
            return false;

    }

    private boolean networkConnectivity() {
        ConnectivityManager cm = (ConnectivityManager) _context
                .getSystemService(Context.CONNECTIVITY_SERVICE);
        NetworkInfo networkInfo = cm.getActiveNetworkInfo();
        if (networkInfo != null && networkInfo.isConnected()) {
            return true;
        }
        return false;
    }
}

you'll have to add the following permission to your manifest file:

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

Then call like that:

if((new ConnectionDetector(MyService.this)).isConnectingToInternet()){
    Log.d("internet status","Internet Access");
}else{
    Log.d("internet status","no Internet Access");
}
share|improve this answer

If you're targeting Lollipop or higher it's possible to use the new NetworkCapabilities class, i.e:

public static boolean hasInternetConnection(final Context context) {
    final ConnectivityManager connectivityManager = (ConnectivityManager)context.
            getSystemService(Context.CONNECTIVITY_SERVICE);

    final Network network = connectivityManager.getActiveNetwork();
    final NetworkCapabilities capabilities = connectivityManager
            .getNetworkCapabilities(network);

    return capabilities != null
            && capabilities.hasCapability(NetworkCapabilities.NET_CAPABILITY_VALIDATED);
}
share|improve this answer

/** * Checks if device is connected to internet. * @return true or false. */

public static boolean isOnline() {
    Context context = Application.getContext();
    ConnectivityManager cm = (ConnectivityManager) context
        .getSystemService(Context.CONNECTIVITY_SERVICE);
    NetworkInfo netInfo = cm.getActiveNetworkInfo();
    if (netInfo != null && netInfo.isConnectedOrConnecting()) {
        return true;
    }
    return false;
}

If you want to use this piece of code though, you'll have to add the following permission to your manifest file:

<uses-permission android:name="android.permission.ACCESS_NETWORK_STATE" />
share|improve this answer
6  
This does nothing different then the example given by the OP and in no way answers his question as it disregards completely the requirement of ensuring an actual link to the internet not just a connection service. – Jared Oct 8 '12 at 19:51
    
This is same as the question asked. – Mayur May 2 '14 at 11:11
    
this does yield true or false to checking if internet connection is available but specifically not the requirements of ensuring the device can connect to the internet and browse content. – paul polo Feb 5 '15 at 0:55
    
up for the worst answer ever ;) – Milad Jan 5 at 11:18

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