Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I know that other applications can call from your application via the URL schema. But not all applications are registered schema URL. So how can I launch that application?. I'm developing for iphone jaibroken.

share|improve this question
    
If your code is not in notification center, or a Mobile Substrate tweak (which WrightCS's answer addresses), then you can use this other technique – Nate Jul 31 '12 at 2:06
up vote 2 down vote accepted

I used this way:

void* sbServices = dlopen("/System/Library/PrivateFrameworks/SpringBoardServices.framework/SpringBoardServices", RTLD_LAZY);
int (*SBSLaunchApplicationWithIdentifier)(CFStringRef identifier, Boolean suspended) = dlsym(sbServices, "SBSLaunchApplicationWithIdentifier");
int result = SBSLaunchApplicationWithIdentifier((CFStringRef)bundleId, false);
dlclose(sbServices);

And you need entitlements granted to your app:

 <key>com.apple.springboard.launchapplications</key>
 <true/>

It can run on iOS 6.

share|improve this answer
    
Can you tell use how to get the API SBSLaunchApplicationWithIdentifier's param? – user501836 Feb 28 '14 at 13:15
    
@user501836 that param you should supply – Kevin Lee Mar 1 '14 at 15:00

There are several ways you can launch an app using the Bundle ID.

SBApplication

SBApplication *app = [[objc_getClass("SBApplicationController") sharedInstance] applicationWithDisplayIdentifier:@"com.wrightscs.someapp"];
[[objc_getClass("SBUIController") sharedInstance] activateApplicationFromSwitcher: app];

SBApplicationController

SBUIController *uicontroller = (SBUIController *)[%c(SBUIController) sharedInstance];
SBApplicationController *appcontroller = (SBApplicationController *)[%c(SBApplicationController) sharedInstance];

if ([[UIDevice currentDevice] respondsToSelector:@selector(isMultitaskingSupported)])
{
    [uicontroller activateApplicationFromSwitcher:[[appcontroller applicationsWithBundleIdentifier:bundleID] objectAtIndex:0]];
}
else
{
    // doesn't work outside of Springboard
    [uicontroller activateApplicationAnimated:[[appcontroller applicationsWithBundleIdentifier:bundleID] objectAtIndex:0]];
}

There was another method I used in 4.x and SBUIController but that stopped working in 5.0 so I'm not going to post it.

share|improve this answer
    
I also tried the above then. But to the IOS 5x is not working. You have found a way to launch applications on IOS 5x it is excellent. Can you suggest me some direction? Thanks – jewel Jul 28 '12 at 17:02
    
These work. You're just not doing something right. I use this in a few tweaks on Cydia. – WrightsCS Jul 28 '12 at 20:18
    
Use this code either in a Notification Center tweak or a MobileSubstrate tweak. If you are trying to use it in an app, you'll need to make a substrate tweak to call from the app. – WrightsCS Jul 28 '12 at 20:20
1  
FYI -[SBUIController activateApplicationFromSwitcher:] works in iOS6 too. In iOS5 i was using -[SpringBoard applicationOpenURL:publicURLsOnly:] passing doubletap://display-identifier but this schema is not supported anymore. – Zmaster Sep 19 '12 at 19:38
    
Brilliant. 2nd approach worked for me. Thanks! :) – iAnum Jun 13 '14 at 14:47

As I know, only private api can do this. First

@interface PrivateApi_LSApplicationWorkspace
- (bool)openApplicationWithBundleID:(id)arg1;
@end

then use it

PrivateApi_LSApplicationWorkspace* _workspace;
_workspace = [NSClassFromString(@"LSApplicationWorkspace") new];
[_workspace openApplicationWithBundleID:bundleIdentifier];

You can check https://github.com/wujianguo/iOSAppsInfo.

share|improve this answer

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.