5

Is it possible to open a application from our application with bundle identifier. Suppose I have two apps installed on device one with com.test.app1 and com.test.app2. Can I open app1 from my app2.

I know about openUrl method. for that I have to register url scheme in info.plist. and then i can use following method:

[[UIApplication sharedApplication] openUrl:[NSURL urlWithString:@"myApp1://"]];

But what if I didn't register url scheme or don't know the registered url.

Any idea..?

| |
3

I don't think that's possible.

| |
  • Are you sure that this is not possible..? Because we can check if application is installed in device or not with bundle identifier. so I was wondering that there may be some method for open it. – Kapil Choubisa Aug 29 '11 at 13:17
  • I don't think an Apple approved way exists. – Akshay Aug 29 '11 at 14:33
8

You can use private API to do that

Class LSApplicationWorkspace_class = objc_getClass("LSApplicationWorkspace");
NSObject * workspace = [LSApplicationWorkspace_class performSelector:@selector(defaultWorkspace)];
BOOL isopen = [workspace performSelector:@selector(openApplicationWithBundleID:) withObject:@"com.apple.mobilesafari"];
| |
  • Thank you very much! Works on iOS 11, and don't need to know URL scheme. – DmitryKanunnikoff Jul 26 '17 at 10:35
  • Except you should never use private APIs. – ekscrypto Oct 17 '17 at 3:41
  • @ekscrypto But I think it's the only way to match the requirements. And by the way, we successfully uploaded app with this code to AppStore. – Evan JIANG Oct 17 '17 at 10:01
  • being able to snoop a private api usage by the app review team should not be seen as an authorization to use a private api. – ekscrypto Oct 17 '17 at 10:56
  • 1
    @LuísCunha #import <objc/runtime.h> on the top of the file – MEnnabah Sep 18 '19 at 9:29
4

You can use the openUrl call, but in order to succeed you must add some values to your project's xy-Info.plist file.

enter image description here

Once you've done that you can then call:

[[UIApplication sharedApplication] openUrl:[NSURL urlWithString:@"xingipad://"]];

| |
0

Answer: You can't open app directly only with Bundle identifier.

Solution: You can implement deep linking (and take your bundle id as your deep linking id)concept to do this: Deep-linking

| |
  • The question already included deep linking, asker was trying to find a way around that – ekscrypto Jul 18 '18 at 13:20
  • All steps of deep linking are given in the above answer. – Alok Jul 23 '18 at 2:51
0

The Swift version of @EvanJIANG answer.

guard let obj = objc_getClass("LSApplicationWorkspace") as? NSObject else { return false }
let workspace = obj.perform(Selector(("defaultWorkspace")))?.takeUnretainedValue() as? NSObject
let open = workspace?.perform(Selector(("openApplicationWithBundleID:")), with: "com.apple.mobilesafari") != nil
return open
| |
-1

It is possible using URL Schemes .

| |
  • I know that this is possible with URL Scheme but I want to know that is this possible using bundle identifier?? If I don't have url scheme register than is this possible to open an app. – Kapil Choubisa Aug 7 '12 at 6:58

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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