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I am developing an app about making call and returning to app when calling ended. Here is my code;

**callWebview = [[UIWebView alloc] init];
        NSURL *telUrl=[NSURL URLWithString:@"tel:4444484"];
        [callWebview loadRequest:[NSURLRequest requestWithURL:telUrl]];**

This is ok but when url request is being sent, A pop up appears on the screen.

Call message

This is the screenshot when I press the button and run the code at upside;

enter image description here

So , Here is my question;

  1. Can I block this pop up to appear on the screen ?
  2. If I can't how can I change the message body and buttons of this popup ?

Thanks...

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2 Answers 2

up vote 0 down vote accepted

If you do not use the UIWebView the message will not appear, but then you will not be able to come beck to the app.

To make a call with out the alert:

NSURL *telUrl=[NSURL URLWithString:@"tel:4444484"];
// Check if the iOS device support dialing a number
if ( [[UIApplication sharedApplication] canOpenURL:telUrl]) {
    [[UIApplication sharedApplication] openURL:telUrl];
}

But there is no solution that will do exactly what you desire, so either it is the dialog or no dialog but not retuning to you app.

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Ok I see, There is a framework named coretelephony.I can detect if calling finished with the codes. : (#import <CoreTelephony/CTCall.h> ) So can I return the app with this framework ? –  Mustafa Sait Demirci May 29 '13 at 15:36
    
No, you can get your app to come to the foreground. –  rckoenes May 29 '13 at 19:06

Try the following instead:

NSURL *telUrl=[NSURL URLWithString:@"tel:4444484"];
[[UIApplication sharedApplication] openURL:telUrl];
share|improve this answer
    
Thanks but this is not what I want. I have to turn back to the app. This code doesn't work for my purpose. –  Mustafa Sait Demirci May 29 '13 at 15:40

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