Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I want to create an Android app so it would be registered somewhere in android OS (or just would start on system start) and when phone user clicks on special button on a web page inside a web browser a la:

 <a href="myapp://mysettings">Foo</a> 

my app would pop up and run using the params sent in that URL.

So how do I do such thing?

I need a tutorial with code!

share|improve this question
1  
This is quite possibly a duplicate of stackoverflow.com/questions/525063/… –  Casebash May 11 '10 at 4:54
1  
There's a great answer to this question at stackoverflow.com/questions/2448213/… –  neu242 Jun 24 '10 at 6:10

3 Answers 3

up vote 37 down vote accepted

You need to follow the standard rules for URIs via the W3C and such, which basically means: do not do this.

Android defines a Uri syntax for describing a generic Intent. There are methods on Intent for converting to and from this representation, such as: http://developer.android.com/reference/android/content/Intent.html#toUri(int)

So the way to do this is to use the normal facilities to describe an in your manifest for the kinds of intents you are going to handle with a particular component, especially defining an action name in your own namespace (com.mycompany.myapp.action.DO_SOMETHING or whatever). You can then make an Intent that matches your component, and use Intent.toUri() to get the URI representation of this. This can be placed in your link, and will then when pressed look for something that handles and and thus find your app. Note to be launched from the browser like this, the component's must handle the BROWSABLE category. (You don't need to have this in the Intent you put in the link, the browser will automatically add this in for you.)

Finally, you may want to set the package of the intent to your app with this: http://developer.android.com/reference/android/content/Intent.html#setPackage(java.lang.String)

This is a newer feature in the platform, which allows you to direct link intents to only your app so that other applications can not intercept and handle them.

In summary: read the regular documentation on intents and intent filters (such as the NotePad tutorial, though you won't be using content: URIs here, probably just custom actions) and get your app working that way. Then you can make a browser link to launch your app in the same way, provided your intent-filter handles the BROWSABLE category.

share|improve this answer
1  
At first I thought that you didn't explain how ignoring the standard rules for URIs is bad, but then I found your other answer here. –  Casebash May 11 '10 at 4:07
    
Those URLS don't quite appear properly (the bracket on the end is excluded) –  Casebash May 11 '10 at 4:56
    
I can't get this to work. Are the URIs meant to be of the following form? intent:#Intent;action=android.intent.action.VIEW;component=com.mycompany.projec‌​t/.InitActivity;end –  Casebash May 12 '10 at 5:50
2  
@hackbod: Like Casebash, I am having problems with your instructions. Given an activity, I dump getIntent().toUri(Intent.URI_INTENT_SCHEME).toString(), paste that in a Web page (commonsware.com/sample), try opening it in a browser on the emulator, and I get choices of opening the page in Browser, Contacts, or Phone, but not my activity. That seems strange, considering that the intent: URI from toUri() has the component clause, so I'm not sure how those other apps can get it. I have the BROWSABLE category on the intent filter. If you have any thoughts, please @ me back. Thanks! –  CommonsWare Jun 25 '10 at 23:25
3  
@hackbod can you please point me to w3c documentation which suggests to not implement new URI schemes? I have only found rfc2718 which seems to support that. –  guido Apr 21 '12 at 8:37

First, to be able to start your app from link with custom scheme 'myapp' in browser / mail, set intent filter as follows.

<intent-filter> 
  <action android:name="android.intent.action.VIEW"/> 
  <category android:name="android.intent.category.DEFAULT"/> 
  <category android:name="android.intent.category.BROWSABLE"/> 
  <data android:scheme="myapp"/> 
</intent-filter>

and to parse queries in your link myapp://someaction/?var=str&varr=string
(the code is over simplified and has no error checking.)

Intent intent = getIntent();
// check if this intent is started via custom scheme link
if (Intent.ACTION_VIEW.equals(intent.getAction())) {
  Uri uri = intent.getData();
  // may be some test here with your custom uri
  String var = uri.getQueryParameter("var"); // "str" is set
  String varr = uri.getQueryParameter("varr"); // "string" is set
}

[edit] if you use custom scheme to launch your app, one of the problem is that: The WebView in another apps may not understand your custom scheme. This could lead to show 404 page for those browser for the link with custom scheme.

share|improve this answer
    
The first example I've seen on here that includes how to get the Uri out again in the activity.. thanks! –  Ben Clayton Mar 2 '11 at 11:32
    
Where the code that handles the intent should be coded? –  Proverbio Aug 1 at 2:36
1  
@Proverbio: in the main activity of your app, within the onCreate method –  Mirko Aug 7 at 12:45

Here is my cut to the chase contribution.

Create an intent filter in the activity you want to load in the manifest like this:

<intent-filter>
    <action android:name="com.bubblebeats.MY_CUSTOM_ACTION" />
    <category android:name="android.intent.category.DEFAULT"/>
    <category android:name="android.intent.category.BROWSABLE"/>
</intent-filter>

Your web page URL for this will look like this:

intent:#Intent;action=com.bubblebeats.MY_CUSTOM_ACTION;end

The most basic HTML code to launch your apk from a browser would look like this:

<body>
    <a href="intent:#Intent;action=com.bubblebeats.MY_CUSTOM_ACTION;end">click to load apk</a>
</body>

To add variables to your intent

You can generate the URI from within your Android code like this:

Intent i = new Intent();

i.setAction("com.bubblebeats.MY_CUSTOM_ACTION");
i.putExtra("some_variable", "123456");

Log.d("ezpz", i.toUri(Intent.URI_INTENT_SCHEME));

This will produce this:

04-13 09:47:30.742: DEBUG/ezpz(9098): intent:#Intent;action=com.bubblebeats.MY_CUSTOM_ACTION;S.some_variable=123456;end

You just want this part:

intent:#Intent;action=com.bubblebeats.MY_CUSTOM_ACTION;S.some_variable=123456;end

Take a good look at what occurred here and you can see how you can skip the code step and manually create these URIs yourself.

Especially this part:

S.some_variable=123456
share|improve this answer
    
What does the package (from intent.setPackage(..) serialize out to? –  nmr Dec 14 '11 at 23:05
1  
Looks like the package is appended like package=com.bubblebeats; (Also, while not evident in this example, the package is URI encoded) –  nmr Dec 14 '11 at 23:09
2  
@Jason, were you able to get this to work? Launching the intent via "adb shell am start 'intent:#Intent..." works for me. However, from a browser, clicking on the linnk intent doesn't trigger the app launching. –  hopia Sep 20 '12 at 16:12
    
This is the best ans i see in all the answers. –  Gem Sep 26 '13 at 12:11
    
Where does the S. syntax is documented? Just relying on the output of toUri() doesn't seem a good idea. –  cYrus Feb 16 at 18:06

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.