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How to open an URL from code in the built-in web browser rather than within my application?

I tried this:

try {
    Intent myIntent = new Intent(Intent.ACTION_VIEW, Uri.parse(download_link));
    startActivity(myIntent);
} catch (ActivityNotFoundException e) {
    Toast.makeText(this, "No application can handle this request."
        + " Please install a webbrowser",  Toast.LENGTH_LONG).show();
    e.printStackTrace();
}

but I got an Exception:

No activity found to handle Intent{action=android.intent.action.VIEW data =www.google.com
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3  
I think it's because of this: android-developers.blogspot.com/2009/12/… –  Arutha Feb 4 '10 at 18:23

13 Answers 13

up vote 909 down vote accepted

Try this:

Intent browserIntent = new Intent(Intent.ACTION_VIEW, Uri.parse("http://www.google.com"));
startActivity(browserIntent);

That works fine for me.

As for the missing "http://" I'd just do something like this:

if (!url.startsWith("http://") && !url.startsWith("https://"))
   url = "http://" + url;

I would also probably pre-populate your EditText that the user is typing a URL in with "http://".

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2  
Except that your code and mbaird's aren't the same, from what I can tell for what's posted. Ensure that your URL has the http:// scheme -- the exception shown suggests that your URL is lacking the scheme. –  CommonsWare Feb 4 '10 at 18:31
4  
Yes ! It missed the http:// ! The URL is entered by the user, is there a way to automatically format? –  Arutha Feb 4 '10 at 18:44
    
See the update to my answer above regarding detecting the missing http:// –  mbaird Feb 4 '10 at 19:03
4  
URLUtil is a great way to check on user entered "url" Strings –  Dan Jun 21 '11 at 19:30
23  
if (!url.startsWith("http://") && !url.startsWith("https://")) is a common error which may lead you to urls like file:// and break some good usecases. Try to parse uri with URI class and check is there a schema. If no, add "http://" ;) –  tuxSlayer Apr 19 '13 at 14:22

In 2.3, I had better luck with

final Intent intent = new Intent(Intent.ACTION_VIEW).setData(Uri.parse(url));
activity.startActivity(intent);

The difference being the use of Intent.ACTION_VIEW rather than the String "android.intent.action.VIEW"

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1  
waht is the different ? –  user1324936 Nov 17 '13 at 21:24
1  
This answer helped me immensely. I do not know what the difference was, but we had an issue with 2.3 that this solved. Does anyone know what the difference in the implementation is? –  Innova Dec 5 '13 at 21:29

Try this:

Uri uri = Uri.parse("https://www.google.com");
                startActivity(new Intent(Intent.ACTION_VIEW, uri));

or if you want then web browser open in your activity then do like this:

WebView webView = (WebView) findViewById(R.id.webView1);
WebSettings settings = webview.getSettings();
settings.setJavaScriptEnabled(true);
webView.loadUrl(URL);

and if you want to use zoom control in your browser then you can use:

settings.setSupportZoom(true);
settings.setBuiltInZoomControls(true);
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2  
Note that plugins and such are disabled in WebView, and that the INTERNET permissions would be required. (reference‌​) –  Camil Staps Jun 10 '13 at 20:30

If you want to show user a dialoge with all browser list, so he can choose preferred, here is sample code:

private static final String HTTPS = "https://";
private static final String HTTP = "http://";

public static void openBrowser(final Context context, String url) {

     if (!url.startsWith(HTTP) && !url.startsWith(HTTPS)) {
            url = HTTP + url;
     }

     Intent intent = new Intent(Intent.ACTION_VIEW, Uri.parse(url));
     context.startActivity(Intent.createChooser(intent, "Chose browser"));

}
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2  
if there are multiple apps that can handle the intent, the system will automatically provide a chooser, right? –  Jeffrey Blattman Apr 18 '13 at 19:22
    
whats the point of making HTTP and HTTPS fields ? –  xmen W.K. Dec 26 '14 at 4:40
    
@xmen-w-k because url can start ether with http or https, and in java it is a good practice to declare 'magic strings' as constants. –  Dmytro Danylyk Dec 26 '14 at 7:19

other option In Load Url in Same Application using Webview

webView = (WebView) findViewById(R.id.webView1);
        webView.getSettings().setJavaScriptEnabled(true);
        webView.loadUrl("http://www.google.com");
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Note that plugins and such are disabled in WebView, and that the INTERNET permissions would be required. (reference‌​) –  Camil Staps Jun 10 '13 at 20:30

a common way to achieve this is with the next code:

String url = "http://www.stackoverflow.com";
Intent i = new Intent(Intent.ACTION_VIEW);
i.setData(Uri.parse(url)); 
startActivity(i); 

that could be changed to a short code version ...

Intent intent = new Intent(Intent.ACTION_VIEW).setData(Uri.parse("http://www.stackoverflow.com"));      
startActivity(intent); 

or just

Intent intent = new Intent(Intent.ACTION_VIEW, Uri.parse("http://www.stackoverflow.com")); 
startActivity(intent);

or just

startActivity(new Intent(Intent.ACTION_VIEW, Uri.parse("http://www.stackoverflow.com")));

happy coding!

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Just like the solutions other have written (that work fine), I would like to answer the same thing, but with a tip that I think most would prefer to use.

In case you wish the app you start to open in a new task, indepandant of your own, instead of staying on the same stack, you can use this code:

final Intent intent=new Intent(Intent.ACTION_VIEW,Uri.parse(url));
intent.addFlags(Intent.FLAG_ACTIVITY_NO_HISTORY|Intent.FLAG_ACTIVITY_CLEAR_WHEN_TASK_RESET);
intent.addFlags(Intent.FLAG_ACTIVITY_NEW_TASK|Intent.FLAG_ACTIVITY_MULTIPLE_TASK);
startActivity(intent);
share|improve this answer

A short code version...

 if (!strUrl.startsWith("http://") && !strUrl.startsWith("https://")){
     strUrl= "http://" + strUrl;
 }


 startActivity(new Intent(Intent.ACTION_VIEW, Uri.parse(strUrl)));
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You can also go this way

In xml :

<?xml version="1.0" encoding="utf-8"?>
<WebView  
xmlns:android="http://schemas.android.com/apk/res/android"
android:id="@+id/webView1"
android:layout_width="fill_parent"
android:layout_height="fill_parent" />

In java code :

public class WebViewActivity extends Activity {

private WebView webView;

public void onCreate(Bundle savedInstanceState) {
    super.onCreate(savedInstanceState);
    setContentView(R.layout.webview);

    webView = (WebView) findViewById(R.id.webView1);
    webView.getSettings().setJavaScriptEnabled(true);
    webView.loadUrl("http://www.google.com");

 }

}

In Manifest dont forget to add internet permission...

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Within in your try block,paste the following code,Android Intent uses directly the link within the URI(Uniform Resource Identifier) braces in order to identify the location of your link.

Try this:

Intent myIntent = new Intent(Intent.ACTION_VIEW, Uri.parse("http://www.google.com")); startActivity(myIntent);

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Intent getWebPage = new Intent(Intent.ACTION_VIEW, Uri.parse(MyLink));          
startActivity(getWebPage);
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welcome, newbie. please make the answer more complete, declaring variables that do not exist in original code. –  tony gil Jul 17 '14 at 13:30
String url = "http://www.example.com";
Intent i = new Intent(Intent.ACTION_VIEW);
i.setData(Uri.parse(url));
startActivity(i);
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Simple, website view via intent,

Intent viewIntent = new Intent("android.intent.action.VIEW", Uri.parse("http://www.yoursite.in"));
startActivity(viewIntent);  

use this simple code toview your website in android app.

Add internet permission in manifest file,

<
uses-permission android:name="android.permission.INTERNET" /> 
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protected by Community Mar 18 '12 at 11:56

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