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I am trying to use an action sheet to open safari with a link. The variable is set correct and displays the link accordingly, but for some reason, Safari won't open and I cannot figure out why...

Here's the code:

-(void)actionSheet {
    sheet = [[UIActionSheet alloc] initWithTitle:@"Options"
                                    delegate:self
                           cancelButtonTitle:@"Cancel"
                      destructiveButtonTitle:nil
                           otherButtonTitles:@"Open in Safari", nil];

    [sheet showInView:[UIApplication sharedApplication].keyWindow];
}

-(void)actionSheet:(UIActionSheet *)actionSheet clickedButtonAtIndex:(NSInteger)buttonIndex {

    if (buttonIndex != -1) {
        [[UIApplication sharedApplication] openURL:[NSURL URLWithString:self.url]];
    }
}
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Where are you creating "self.url"? –  0x7fffffff Sep 8 '12 at 0:05
    
If you NSLog(@"%@",self.url) what do you get? –  Ryan Poolos Sep 8 '12 at 0:05
    
I get the link as it should be. –  Jon Erickson Sep 8 '12 at 0:30
    
self.url is passed from the previous view controller –  Jon Erickson Sep 8 '12 at 0:31

2 Answers 2

up vote -1 down vote accepted

To open a link in Safari, all you should have to do is the following. urlAddress is a NSString that you set wherever you need it to be set. Alternatively you could replace urlAddress with @"someString".

[[UIApplication sharedApplication] openURL:[NSURL URLWithString: urlAddress]];

Also, have you checked that your header file is implementing the UIActionSheetDelegate protocol?

Edit:

Try the following in your call to see if an error is generated:

-(void)actionSheet:(UIActionSheet *)actionSheet clickedButtonAtIndex:(NSInteger)buttonIndex {

    if (buttonIndex != -1) {

        NSUrl *myURL = [NSURL URLWithString:self.url];

        if (![[UIApplication sharedApplication] openURL:myURL]) {
            NSLog(@"%@%@",@"Failed to open url:",[myURL description]);
        }

    }
}
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Yeah, I have implemented the delegate, let me make urlAddress a string and see if it works. –  Jon Erickson Sep 8 '12 at 0:27
    
so I changed it to: NSString *urlAddress = self.url; [[UIApplication sharedApplication] openURL:[NSURL URLWithString:urlAddress]]; and still does not work. –  Jon Erickson Sep 8 '12 at 0:30
    
If you have implemented the protocol, put a NSLog statement inside your actionSheet:clickedButtonAtIndex method call to see if your program is even getting there or set a breakpoint in that method to see if it's getting there. If it's not getting to that point, then you'll be able to find the problem faster. –  Sly Raskal Sep 8 '12 at 0:30
    
I set a breakpoint on the if statement and it worked when I clicked the button, and the NSLog of self.url is the link as it should be. –  Jon Erickson Sep 8 '12 at 0:34
1  
So I encoded like you said using this: NSString *rawURL = self.url; NSString *urlAddress = [rawURL stringByAddingPercentEscapesUsingEncoding:NSUTF8StringEncoding]; and it worked finally! thanks a lot. –  Jon Erickson Sep 8 '12 at 3:04
NSString *strurl = [NSString stringWithFormat:@"http://%@",strMediaIconUrl];
[[UIApplication sharedApplication] openURL:[NSURL URLWithString:strurl]];
use http:// must.
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