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I am currently trying to make a speed dial app for various numbers the user might enter. I am loading the phone all like so after clicking a UITableViewCell

- (IBAction)Dialer:(id)sender{
    NSURL *url = [ [ NSURL alloc ] initWithString: @"tel:09-410-7078" ];
    [[UIApplication sharedApplication] openURL:url];
}

that loads up the phone dialer and dials the number.. I'm woundering if after the phone call has ended is its possible to load the app from where it exited for the phone call.. or if there is a better way to do what I am trying to do?

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3 Answers 3

up vote 0 down vote accepted

Actually you should keep in mind that an application can be unloaded at any moment. But when your application is being unloaded your app delegate gets some messages (applicationWillTerminate, applicationWillResignActive, applicationDidEnterBackground). You should read this post. In those methods you should save some parameters of your application (current page, settings, etc.) and use them when your application is launched or become active again.

If you want to start your application manually you shouldn't do so. User will be surprised by such behavior.

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okay thanks for the link. will give it a read now. With regards to your last line I dont want to start it manually, I want to take them back to my app after a phone call is made from pressing a tableviewcell that starts the phone call from inside my app. –  HurkNburkS May 11 '11 at 9:35
    
Thanks for that link it helped alot with my understanding of apps life cycle... –  HurkNburkS May 11 '11 at 9:44
    
As I know you have no legal ability to take back to your app. You shouldn't do this. –  Konstantin Chugalinskiy May 11 '11 at 10:01
    
okay cheers Kos –  HurkNburkS May 11 '11 at 10:10

I searched very long time and got this code from Apple site and it works perfectly:

-(IBAction) dialNumber:(id)sender{

NSString *aPhoneNo = [@"tel://" stringByAppendingString:[itsPhoneNoArray objectAtIndex:[sender tag]]] ; NSURL *url= [NSURL URLWithString:aPhoneNo];

NSString *osVersion = [[UIDevice currentDevice] systemVersion];

if ([osVersion floatValue] >= 3.1) { 
UIWebView *webview = [[UIWebView alloc] initWithFrame:[UIScreen mainScreen].applicationFrame]; 
[webview loadRequest:[NSURLRequest requestWithURL:url]]; 
webview.hidden = YES; 
// Assume we are in a view controller and have access to self.view 
[self.view addSubview:webview]; 
[webview release]; 
} else { 
// On 3.0 and below, dial as usual 
[[UIApplication sharedApplication] openURL: url];
}


}
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From iOS 5.0 onwards, we return to the app after the call ends. Find the below code.

[[UIApplication sharedApplication] openURL:[NSURL URLWithString:@"telprompt:18004912200"]]; 
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