Sunday, June 29, 2014

Some News from Android Market

Im pleased to let you know about several updates to Android Market. First, we will soon introduce new features in Android Market for Android 1.6 that will improve the overall experience for users. As part of this change, developers will be able to provide screenshots, promotional icons and descriptions that will better show off applications and games.

We have also added four new sub-categories for applications: sports, health, themes, and comics. Developers can now choose these sub-categories for both new and existing applications via the publisher website. Finally, we have added seller support for developers in Italy. Italian developers can go to the publisher website to upload applications and target any of the countries where paid applications are currently available to users.

To take advantage of the upcoming Android Market refresh, we encourage you to visit the Android Market publisher website and upload additional marketing assets. Check out the video below for some of the highlights.

Read More..

Saturday, June 28, 2014

More Carrier Billing Options on Android Market



[This post is by Eric Chu, Android Developer Ecosystem. —Dirk Dougherty]



Over the past year, we’ve seen very strong growth in the number of Android users around the world. To make it easier for those users to purchase their favorite apps and games on Android Market, we’re bringing Direct Carrier Billing to additional carrier networks in South Korea, the UK, and Germany.



In South Korea, we’ve begun a phased rollout of the service to users on the top two carrier networks — SK Telecom and KT Corporation. When complete, the rollout will reach more than 10 million users, who will be able to charge their Android Market purchases straight to their phone bills.



In Europe, we’re rolling out the service to users on two popular regional carriers, Vodafone UK and Vodafone DE. Initially, the service will be available only to users who have purchased their devices through Vodafone’s online and retail channels.



The new launches expand the network of carriers already offering direct billing service in the US on the T-Mobile, AT&T, and Sprint networks, and in Japan on SoftBank, KDDI, and NTT DOCOMO networks.



Direct Carrier Billing is a key payment option for users worldwide, especially in regions where credit cards are less common. We will continue to partner with more operators to offer this payment option to their Android users. Watch for more announcements in the weeks ahead.
Read More..

Android Developer Challenge Judges

We have received a few inquiries regarding the judges who will be evaluating entries to the Android Developer Challenge (ADC). All Entries will be judged by a panel of experts in the fields of mobile devices, cellular telecommunications, software development, and/or technology innovation ("Judges"). Google will select the Judges from the member organizations of the Open Handset Alliance, Google and/or mobile experts.

As a reminder, the deadline for the Android Developer Challenge is April 14, 2008. Were really looking forward to seeing what youve created so make sure you submit in time. Good luck!

Read More..

How to have your Cup cake and eat it too

[This post is by Adam Powell, his second touchy-feely outing in just a few weeks. I asked him to send me a better picture than we ran last time, and got this in response. Photo by our own Romain Guy. — Tim Bray]

Android developers concerned with targeting every last device with their apps are no doubt familiar with this chart:

On July 1, 2010 this was the breakdown of active devices running different versions of the Android platform. With all of the new platform features added to the Android SDK in each version, this chart has many developers shouting the F-word when they are forced to choose between integrating newer platform features and providing their app to the widest possible audience.

Savvy Android developers already know that these two options aren’t really mutually exclusive, but that straddling between them can be painful. In this post I’m going to show you that it doesn’t have to be that way.

Several weeks ago we took a look at how to handle multitouch on Android 2.0 (Eclair) and above, and by the end we had a simple demo app. That app uses features exclusive to Android 2.2 (Froyo) which as of this writing hasn’t had a chance to reach many devices yet. In this post we’re going to refactor that demo to run on devices all the way back to Android 1.5 (Cupcake). If you’d like to follow along, start off by grabbing the code in the trunk of the android-touchexample project on Google Code.

The problem manifests

The uses-sdk tag in your AndroidManifest.xml can specify both a minSdkVersion and a targetSdkVersion. You can use this to declare that while your app is prepared to run on an older version of the platform, it knows about newer versions. Your app can now build against newer SDKs. However, if your code accesses newer platform functionality directly you will probably see something like this in the system log of devices running an older version of Android:

E/dalvikvm(  792): Could not find method android.view.MotionEvent.getX, referenced from method com.example.android.touchexample.TouchExampleView.onTouchEvent
W/dalvikvm( 792): VFY: unable to resolve virtual method 17: Landroid/view/MotionEvent;.getX (I)F
W/dalvikvm( 792): VFY: rejecting opcode 0x6e at 0x0006
W/dalvikvm( 792): VFY: rejected Lcom/example/android/touchexample/TouchExampleView;.onTouchEvent (Landroid/view/MotionEvent;)Z
W/dalvikvm( 792): Verifier rejected class Lcom/example/android/touchexample/TouchExampleView;
D/AndroidRuntime( 792): Shutting down VM
W/dalvikvm( 792): threadid=3: thread exiting with uncaught exception (group=0x4000fe70)

We broke the contract of minSdkVersion, and here is the result. When we build our app against SDK 8 (Froyo) but declare minSdkVersion="3" (Cupcake) we promise the system that we know what we’re doing and we won’t try to access anything that doesn’t exist. If we mess this up, we see the above, and our users see an ugly error message.

Cue a lot of frustrated users and one-star ratings on Market. We need a safe way of accessing newer platform functionality without making the verifier angry on older platform versions.

Stop and reflect

Many Android developers are already familiar with the practice of accomplishing this through reflection. Reflection lets your code interface with the runtime, detect when certain methods or classes are present, and invoke or instantiate them without touching them directly.

The prospect of querying each platform feature individually and conditionally invoking it using reflection isn’t pretty. It’s ugly. It’s slow. It’s cumbersome. Most of all, heavy use can turn your app’s codebase into an unmaintainable mess. What if I said there is a way to write Android apps that target Android 1.5 (Cupcake) through 2.2 (Froyo) and beyond with a single codebase and no reflection at all?

Lazy Loading

Computer science researcher Bill Pugh published and popularized a method of writing singletons in Java that takes advantage of the laziness of ClassLoaders. Wikipedia explains his solution further. The code looks like this:

public class Singleton {
// Private constructor prevents instantiation from other classes
private Singleton() {}

/**
* SingletonHolder is loaded on the first execution of Singleton.getInstance()
* or the first access to SingletonHolder.INSTANCE, not before.
*/
private static class SingletonHolder {
private static final Singleton INSTANCE = new Singleton();
}

public static Singleton getInstance() {
return SingletonHolder.INSTANCE;
}
}

There is a very important guaranteed behavior at work here explained by the comment above SingletonHolder. Java classes are loaded and initialized on first access - instantiating the class or accessing one of its static fields or methods for the first time. This is relevant to us because classes are verified by the VM when they are loaded, not before. We now have everything we need to write Android apps that span versions without reflection.

Designing for compatibility

As it turns out this is fairly simple to apply. You generally will want your app to degrade gracefully on older platform versions, dropping features or providing alternate functionality when the platform support isn’t available. Since Android platform features are tied to the API level you have only one axis to consider when designing for compatibility.

In most cases this version support can be expressed as a simple class hierarchy. You can design your app to access version-sensitive functionality through a version-independent interface or abstract class. Subclasses of that interface intended to run on newer platform versions will support newer platform features, and subclasses intended for older versions might need to present alternate ways for your users to access app functionality.

Your app can use a factory method, abstract factory, or other object creation pattern to instantiate the proper subclass at runtime based on the information exposed by android.os.Build.VERSION. This last step insures that the system will never attempt to load a class it can’t verify, preserving compatibility.

The principle in practice

At the beginning of this post I said that we are going to refactor the touch example app from Making Sense of Multitouch to be compatible from API level 3 (Cupcake) on through API level 8 (Froyo). In that post I pointed out that GestureDetectors can be a useful pattern for abstracting the processing of touch events. At the time I didn’t realize how soon that statement would be put to the test. We can refactor the version-specific elements of the demo app’s touch handling into an abstract GestureDetector.

Before we begin the real work, we need to change our manifest to declare that we support API level 3 devices with minSdkVersion in the uses-sdk tag. Keep in mind that we’re still targeting SDK 8, both with targetSdkVersion in our manifest and in our project configuration. Our manifest now looks like this:

<?xml version="1.0" encoding="utf-8"?>
<manifest xmlns:android="http://schemas.android.com/apk/res/android"
package="com.example.android.touchexample"
android:versionCode="1"
android:versionName="1.0">
<application android:icon="@drawable/icon" android:label="@string/app_name">
<activity android:name=".TouchExampleActivity"
android:label="@string/app_name">
<intent-filter>
<action android:name="android.intent.action.MAIN" />
<category android:name="android.intent.category.LAUNCHER" />
</intent-filter>
</activity>
</application>
<uses-sdk android:minSdkVersion="3" android:targetSdkVersion="8" />
</manifest>

Our TouchExampleView class isn’t compatible with Android versions prior to Froyo thanks to its use of ScaleGestureDetector, and it isn’t compatible with versions prior to Eclair thanks to its use of the newer MotionEvent methods that return multitouch data. We need to abstract that functionality out into classes that will not be loaded on versions of the platform that don’t support it. To do this, we will create the abstract class VersionedGestureDetector.

The example app allows the user to perform two gestures, drag and scale. VersionedGestureDetector will therefore publish two events to an attached listener, onDrag and onScale. TouchExampleView will obtain a VersionedGestureDetector instance appropriate to the platform version, filter incoming touch events through it, and respond to the resulting onDrag and onScale events accordingly.

The first pass of VersionedGestureDetector looks like this:

public abstract class VersionedGestureDetector {
OnGestureListener mListener;

public abstract boolean onTouchEvent(MotionEvent ev);

public interface OnGestureListener {
public void onDrag(float dx, float dy);
public void onScale(float scaleFactor);
}
}

We’ll start with the simplest functionality first, the VersionedGestureDetector for Cupcake. For simplicity’s sake in this example we will implement each version as a private static inner class of VersionedGestureDetector. You can organize this however you please, of course, as long as you use the lazy loading technique shown above or some equivalent. Don’t touch any class that directly accesses functionality not supported by your platform version.

private static class CupcakeDetector extends VersionedGestureDetector {
float mLastTouchX;
float mLastTouchY;

@Override
public boolean onTouchEvent(MotionEvent ev) {
switch (ev.getAction()) {
case MotionEvent.ACTION_DOWN: {
mLastTouchX = ev.getX();
mLastTouchY = ev.getY();
break;
}
case MotionEvent.ACTION_MOVE: {
final float x = ev.getX();
final float y = ev.getY();

mListener.onDrag(x - mLastTouchX, y - mLastTouchY);

mLastTouchX = x;
mLastTouchY = y;
break;
}
}
return true;
}
}

This simple implementation dispatches onDrag events whenever a pointer is dragged across the touchscreen. The values it passes are the X and Y distances traveled by the pointer.

In Eclair and later we will need to properly track pointer IDs during drags so that our draggable object doesn’t jump around as extra pointers enter and leave the touchscreen. The base implementation of onTouchEvent in CupcakeDetector can handle drag events for us with a few tweaks. We’ll add the methods getActiveX and getActiveY to fetch the appropriate touch coordinates and override them in EclairDetector to get the coordinates from the correct pointer:

private static class CupcakeDetector extends VersionedGestureDetector {
float mLastTouchX;
float mLastTouchY;

float getActiveX(MotionEvent ev) {
return ev.getX();
}

float getActiveY(MotionEvent ev) {
return ev.getY();
}

@Override
public boolean onTouchEvent(MotionEvent ev) {
switch (ev.getAction()) {
case MotionEvent.ACTION_DOWN: {
mLastTouchX = getActiveX(ev);
mLastTouchY = getActiveY(ev);
break;
}
case MotionEvent.ACTION_MOVE: {
final float x = getActiveX(ev);
final float y = getActiveY(ev);

mListener.onDrag(x - mLastTouchX, y - mLastTouchY);

mLastTouchX = x;
mLastTouchY = y;
break;
}
}
return true;
}
}

And now EclairDetector, overriding the new getActiveX and getActiveY methods. Most of this code should be familiar from the original touch example:

private static class EclairDetector extends CupcakeDetector {
private static final int INVALID_POINTER_ID = -1;
private int mActivePointerId = INVALID_POINTER_ID;
private int mActivePointerIndex = 0;

@Override
float getActiveX(MotionEvent ev) {
return ev.getX(mActivePointerIndex);
}

@Override
float getActiveY(MotionEvent ev) {
return ev.getY(mActivePointerIndex);
}

@Override
public boolean onTouchEvent(MotionEvent ev) {
final int action = ev.getAction();
switch (action & MotionEvent.ACTION_MASK) {
case MotionEvent.ACTION_DOWN:
mActivePointerId = ev.getPointerId(0);
break;
case MotionEvent.ACTION_CANCEL:
case MotionEvent.ACTION_UP:
mActivePointerId = INVALID_POINTER_ID;
break;
case MotionEvent.ACTION_POINTER_UP:
final int pointerIndex = (ev.getAction() & MotionEvent.ACTION_POINTER_INDEX_MASK)
>> MotionEvent.ACTION_POINTER_INDEX_SHIFT;
final int pointerId = ev.getPointerId(pointerIndex);
if (pointerId == mActivePointerId) {
// This was our active pointer going up. Choose a new
// active pointer and adjust accordingly.
final int newPointerIndex = pointerIndex == 0 ? 1 : 0;
mActivePointerId = ev.getPointerId(newPointerIndex);
mLastTouchX = ev.getX(newPointerIndex);
mLastTouchY = ev.getY(newPointerIndex);
}
break;
}

mActivePointerIndex = ev.findPointerIndex(mActivePointerId);
return super.onTouchEvent(ev);
}
}

EclairDetector calls super.onTouchEvent after determining the active pointer index and lets CupcakeDetector take care of dispatching the drag event. Supporting multiple platform versions doesn’t have to mean code duplication.

Finally, let’s add scale gesture support for Froyo devices that have ScaleGestureDetector. We’ll need a couple more changes to CupcakeDetector first; we don’t want to drag normally while scaling. Some devices have touchscreens that don’t deal well with it, and we would want to handle it differently on devices that do anyway. We’ll add a shouldDrag method to CupcakeDetector that we’ll check before dispatching onDrag events.

The final CupcakeDetector:

private static class CupcakeDetector extends VersionedGestureDetector {
float mLastTouchX;
float mLastTouchY;

float getActiveX(MotionEvent ev) {
return ev.getX();
}

float getActiveY(MotionEvent ev) {
return ev.getY();
}

boolean shouldDrag() {
return true;
}

@Override
public boolean onTouchEvent(MotionEvent ev) {
switch (ev.getAction()) {
case MotionEvent.ACTION_DOWN: {
mLastTouchX = getActiveX(ev);
mLastTouchY = getActiveY(ev);
break;
}
case MotionEvent.ACTION_MOVE: {
final float x = getActiveX(ev);
final float y = getActiveY(ev);

if (shouldDrag()) {
mListener.onDrag(x - mLastTouchX, y - mLastTouchY);
}

mLastTouchX = x;
mLastTouchY = y;
break;
}
}
return true;
}
}

EclairDetector remains unchanged. FroyoDetector is below. shouldDrag will return true as long as we do not have a scale gesture in progress:

private static class FroyoDetector extends EclairDetector {
private ScaleGestureDetector mDetector;

public FroyoDetector(Context context) {
mDetector = new ScaleGestureDetector(context,
new ScaleGestureDetector.SimpleOnScaleGestureListener() {
@Override public boolean onScale(ScaleGestureDetector detector) {
mListener.onScale(detector.getScaleFactor());
return true;
}
});
}

@Override
boolean shouldDrag() {
return !mDetector.isInProgress();
}

@Override
public boolean onTouchEvent(MotionEvent ev) {
mDetector.onTouchEvent(ev);
return super.onTouchEvent(ev);
}
}

Now that we have our detector implementations in order we need a way to create them. Let’s add a factory method to VersionedGestureDetector:

public static VersionedGestureDetector newInstance(Context context,
OnGestureListener listener) {
final int sdkVersion = Integer.parseInt(Build.VERSION.SDK);
VersionedGestureDetector detector = null;
if (sdkVersion < Build.VERSION_CODES.ECLAIR) {
detector = new CupcakeDetector();
} else if (sdkVersion < Build.VERSION_CODES.FROYO) {
detector = new EclairDetector();
} else {
detector = new FroyoDetector(context);
}

detector.mListener = listener;

return detector;
}

Since we’re targeting Cupcake, we don’t have access to Build.VERSION.SDK_INT yet. We have to parse the now-deprecated Build.VERSION.SDK instead. But why is accessing Build.VERSION_CODES.ECLAIR and Build.VERSION_CODES.FROYO safe? As primitive static final int constants, these are inlined by the compiler at build time.

Our VersionedGestureDetector is ready. Now we just need to hook it up to TouchExampleView, which has become considerably shorter:

public class TouchExampleView extends View {
private Drawable mIcon;
private float mPosX;
private float mPosY;

private VersionedGestureDetector mDetector;
private float mScaleFactor = 1.f;

public TouchExampleView(Context context) {
this(context, null, 0);
}

public TouchExampleView(Context context, AttributeSet attrs) {
this(context, attrs, 0);
}

public TouchExampleView(Context context, AttributeSet attrs, int defStyle) {
super(context, attrs, defStyle);
mIcon = context.getResources().getDrawable(R.drawable.icon);
mIcon.setBounds(0, 0, mIcon.getIntrinsicWidth(), mIcon.getIntrinsicHeight());

mDetector = VersionedGestureDetector.newInstance(context, new GestureCallback());
}

@Override
public boolean onTouchEvent(MotionEvent ev) {
mDetector.onTouchEvent(ev);
return true;
}

@Override
public void onDraw(Canvas canvas) {
super.onDraw(canvas);

canvas.save();
canvas.translate(mPosX, mPosY);
canvas.scale(mScaleFactor, mScaleFactor);
mIcon.draw(canvas);
canvas.restore();
}

private class GestureCallback implements VersionedGestureDetector.OnGestureListener {
public void onDrag(float dx, float dy) {
mPosX += dx;
mPosY += dy;
invalidate();
}

public void onScale(float scaleFactor) {
mScaleFactor *= scaleFactor;

// Dont let the object get too small or too large.
mScaleFactor = Math.max(0.1f, Math.min(mScaleFactor, 5.0f));

invalidate();
}
}
}

Wrapping up

We’ve now adapted the touch example app to work from Android 1.5 on through the latest and greatest, taking advantage of newer platform features as available without a single reflective call. The same principles shown here can apply to any new Android feature that you want to use while still allowing your app to run on older platform versions:

  • The ClassLoader loads classes lazily and will only load and verify classes on first access.

  • Factor out app functionality that can differ between platform versions with a version-independent interface or abstract class.

  • Instantiate a version-dependent implementation of it based on the platform version detected at runtime. This keeps the ClassLoader from ever touching a class that it will not be able to verify.

To see the final cross-version touch example app, check out the “cupcake” branch of the android-touchexample project on Google Code.

Extra Credit

In this example we didn’t provide another way for pre-Froyo users to zoom since ScaleGestureDetector was only added as a public API for 2.2. For a real app we would want to offer some alternate affordance to users. Traditionally Android offers a set of small tappable zoom buttons along the bottom of the screen. The ZoomControls and ZoomButtonsController classes in the framework can help you present these controls to the user in a standard way. Implementing this is left as an exercise for the reader.

Read More..

Friday, June 27, 2014

Future Proofing Your App

[This post is by Reto Meier AKA @retomeier, who wrote the book on Android App development. — Tim Bray]

As a developer, I’m excited by Android’s potential as a single development platform that can make my apps available on a wide range of devices. From smartphones to televisions, Android is now being used on an increasingly diverse collection of hardware.

Last year’s Android SDK 1.6 release was the first to introduce support for variations in device hardware, paving the way for devices like the HTC Tattoo — a small screen device with a non-autofocus camera. Future devices, like Google TV, may not include some of the hardware features that we now expect, such a accelerometers and telephony.

We all want our apps available on as many devices as possible, but on some hardware they might just not make sense, so it’s important that apps are available only on the devices where they do.

Android Market Rule #1: Dont let existing applications break on new devices

As curators of the Android Market, one of our most important responsibilities is ensuring consumers and developers can trust the Market to only deliver applications to devices capable of running them.

The Android SDK includes built-in support for specifying which hardware features your application needs, ensuring that when we see more hardware variations, the Market will make sure your apps are available everywhere (and only where) they make sense.

Specify the hardware your app needs using the application Manifest

That includes the target and minimum SDK versions, supported screen sizes, and the required hardware features without which your app will “break”. You can specify the hardware features your app requires by adding a uses-feature node to your manifest.

<uses-feature android:name="android.hardware.microphone" />

By updating your manifest now to include all the hardware features you require, you effectively opt out of future hardware that won’t be capable of properly supporting your app.

Android Market Rule #2: Dont let existing applications break on new devices

In extreme cases — such as the introduction of small screen sizes in Android 1.6 — developers will be required to explicitly opt in their apps before they will be made visible in the Market on these new devices.

In other cases the Android Market will analyze the permissions requested by an app to determine if it implies a dependence on any particular hardware. For example, requiring the CALL_PHONE permission strongly implies the need for telephony hardware.

Until we provide a more convenient tool, you can use AAPT in the SDK to analyze your apps (2.2 SDK required) and see which device requirements are being implicitly added to your application:

aapt dump badging myApp.apk

Where your app uses a particular hardware feature, but you know (and have tested) that it will still work without it, you can specify it as optional by setting the required attribute to false.

<uses-feature android:name="android.hardware.telephony" android:required="false" />

Ensure your application manifest correctly identifies what hardware your app needs, and what is optional

With the uses-feature name strings now available, you can ensure right now that your app appears in the Market, where appropriate, on current and future hardware devices rather than waiting for the devices to be released.

Its in your interest as a developer to ensure your apps work well, and are available, on as many devices as possible and appropriate. Now is the time to test your applications and update your Manifest to opt in to all hardware configurations which you support, and opt out of those that don’t make sense.

Read More..

Android 4 4 KitKat and Updated Developer Tools

Posted by Dave Burke, Engineering Director, Android Platform



Today we are announcing Android 4.4 KitKat, a new version of Android that brings great new features for users and developers.



The very first device to run Android 4.4 is the new Nexus 5, available today on Google Play, and coming soon to other retail outlets. We’ll also be rolling out the Android 4.4 update worldwide in the next few weeks to all Nexus 4, Nexus 7, and Nexus 10 devices, as well as the Samsung Galaxy S4 and HTC One Google Play Edition devices.



As part of this release, we kicked off Project Svelte, an effort to reduce the memory needs of Android so that it can run on a much broader range of devices, including entry-level devices that have as little as 512MB RAM. From the kernel to system, frameworks, and apps, weve reduced memory footprint and improved memory management so Android can run comfortably on only 512MB of RAM. We did this not only on Android but across Google apps, like Chrome and YouTube.



By supporting a broader range of devices, Android 4.4 will help move the Android ecosystem forward. Now all users will be able to enjoy the very best that Android has to offer, on the devices that best meet their needs.



Here’s a quick look at some of the new features for developers:




  • New ways to create beautiful apps — A new full-screen immersive mode lets your app or game use every pixel on the screen to showcase content and capture touch events. A new transitions framework makes it easier to animate the states in your UI. Web content can take advantage of a completely new implementation of WebView built on Chromium.


  • More useful than ever — A printing framework lets you add the convenience of printing to your apps. A storage access framework makes it easier for users find documents, photos, and other data across their local and cloud-based storage services. You can integrate your app or storage service with the framework to give users instant access to their data.


  • Low-power sensors — New hardware-integrated sensors let you add great new features to your apps without draining the battery. Included are a step detector and step counter that let you efficiently track of the number of walking steps, even when the screen is off.


  • New media capabilities — A new screen recorder lets you capture high-quality video of your app directly from your Android device. Its a great new way to create walkthroughs, tutorials, marketing videos, and more. Apps can use adaptive playback to offer a significantly better streaming video experience.


  • RenderScript in the NDK — A new C++ API in the Android Native Development Kit (NDK) lets you use RenderScript from your native code, with access to script intrinsics, custom kernels, and more.


  • Improved accessibility support — New system-wide captioning settings let your apps present closed captions in the style thats preferred by the user.




Theres a lot more, so be sure to check out the Android 4.4 platform highlights for a complete overview of those and other new capabilities for developers. For details on the APIs and how to use them, take a look at the API Overview or watch one of the new DevBytes videos on KitKat.



Along with the new Android 4.4 platform were releasing a new version of the Android NDK (r9b). The new NDK gives you native access to RenderScript and other stable APIs in Android 4.4, so if youve been waiting to use RenderScript from your native code, give it a try.



Last, weve updated the Support Package (r19) with a new helper library for printing images through the new printing framework, as well as other updates.



You can get started developing and testing on Android 4.4 right away, in Android Studio or in ADT/Ant. You can download the Android 4.4 Platform (API level 19), as well as the SDK Tools, Platform Tools, and Support Package from the Android SDK Manager.


Read More..

Future Proofing Your Apps

Hi, developers! I hope youve heard about the early-look version of the Android 1.5 SDK that we recently released. There are some great new features in there, but dont get too excited yet -- some of you will need to fix some problems in your apps before you can start taking advantage of Android 1.5.

Weve done some fairly extensive testing of the popular apps on the Android Market, and it turns out that a few of those apps use some bad techniques that cause them to crash or behave strangely on Android 1.5. The list below is based on our observations of five ways that weve seen bad apps fail on 1.5. You can think of these as "anti-patterns" (that is, techniques to avoid) for Android development. If youve written an app with the Android 1.0 or 1.1 SDKs, youll need to pay close attention.

Technique to Avoid, #1: Using Internal APIs

Even though weve always strongly advised against doing so, some developers have chosen to use unsupported or internal APIs. For instance, many developers are using the internal brightness control and bluetooth toggle APIs that were present in 1.0 and 1.1. A bug -- which is now fixed in Android 1.5 -- allowed apps to use those APIs without requesting permission. As a result, apps that use those APIs will break on 1.5. There are other changes to unsupported APIs in 1.5 besides these, so if youve used internal APIs in your apps, you need to update your apps to stop doing so. Even if they dont break on Android 1.5, theres a good chance they will on some later version. (Theres some good news, though: because "flashlight" apps are so popular, weve added the "screenBrightness" field on the WindowManager.LayoutParams class just for that use case.)

Technique to Avoid, #2: Directly Manipulating Settings

Okay, strictly speaking this one isnt evil, since this is a change in behavior that we made to Android itself. But we made it because some developers were doing naughty things: a number of apps were changing system settings silently without even notifying the user. For instance, some apps turn on GPS without asking the user, and others might turn on data roaming.

As a result, applications can no longer directly manipulate the values of certain system Settings, even if they previously had permission to do so. For instance, apps can no longer directly turn on or off GPS. These apps wont crash, but the APIs in question now have no effect, and do nothing. Instead, apps will need to issue an Intent to launch the appropriate Settings configuration screen, so that the user can change these settings manually. For details, see the android.provider.Settings.Secure class, which you can find in the 1.5_pre SDK documentation (and later). Note that only Settings that were moved to the Settings.Secure class are affected. Other, less sensitive, settings will continue to have the same behavior as in Android 1.1.

Technique to Avoid, #3: Going Overboard with Layouts

Due to changes in the View rendering infrastructure, unreasonably deep (more than 10 or so) or broad (more than 30 total) View hierarchies in layouts are now likely to cause crashes. This was always a risk for excessively complex layouts, but you can think of Android 1.5 as being better than 1.1 at exposing this problem. Most developers wont need to worry about this, but if your app has very complicated layouts, youll need to put it on a diet. You can simplify your layouts using the more advanced layout classes like FrameLayout and TableLayout.

Technique to Avoid, #4: Bad Hardware Assumptions

Android 1.5 includes support for soft keyboards, and there will soon be many devices that run Android but do not have physical keyboards. If your application assumes the presence of a physical keyboard (such as if you have created a custom View that sinks keypress events) you should make sure it degrades gracefully on devices that only have soft keyboards. For more information on this, keep on eye on this blog as well be posting more detailed information about handling the new soft keyboards.

Technique to Avoid, #5: Incautious Rotations

Devices running Android 1.5 and later can automatically rotate the screen, depending on how the user orients the device. Some 1.5 devices will do this by default, and on all others it can be turned on by the user. This can sometimes result in unpredictable behavior from applications that do their own reorientations (whether using the accelerometer, or something else.) This often happens when applications assume that the screen can only rotate if the physical keyboard is exposed; if the device lacks a physical keyboard, these apps do not expect to be reoriented, which is a coding error. Developers should be sure that their applications can gracefully handle being reoriented at any time.

Also, apps that use the accelerometer directly to reorient themselves sometimes compete with the system doing the same thing, with odd results. And finally, some apps that use the accelerometer to detect things like shaking motions and that dont lock their orientation to portrait or landscape, often end up flipping back and forth between orientations. This can be irritating to the user. (You can lock your apps orientation to portrait or landscape using the android:screenOrientation attribute in your AndroidManifest.xml.)

Have any of your apps used one of these dubious techniques? If so, break out your IDE, duct tape, and spackle, and patch em up. Im pretty excited by the new features in the Android 1.5 SDK, and I look forward to seeing your apps on my own 1.5-equipped phone -- but I cant, if they wont run! Fortunately, the fixes for these are pretty simple, and you can start fixing all of the above even with the 1.1_r1 SDK release.

By the way, if youd like to fully immerse yourself in Android 1.5, join us at Google I/O! Its my pleasure to shamelessly plug an event thats shaping up to be the Android developer event of the year. Weve added two more sessions—one on multimedia jujitsu, and a particularly interesting session on the Eyes-Free Android project—with even more yet to come. I thought Google I/O was a pretty killer event last year, and this years looking even better, especially in terms of Android content.

I hope to meet many of you there, but either way, Happy Coding!

Read More..