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This is the a button which when clicked will open up Safari.

-(IBAction)loginClicked:(id)sender{
NSLog(@"loginClicked");

NSLog(@"currentSelectedRow = %i", currentSelectedRow );

loginObj = [appDelegate.loginArray objectAtIndex:currentSelectedRow];
NSLog(@"URL = %@", loginObj.loginURL);

Error-->[[UIApplication sharedApplication] openURL:[NSURL URLWithString: @"%@", loginObj.loginURL]];

}

Error: Too many arguments to method call, expected 1, have 27

If I replace [[UIApplication sharedApplication] with

[[UIApplication sharedApplication] openURL:[NSURL URLWithString: @"www.google.com"]];

Safari can be launched and will go to Google and my debugger shows the following

2012-01-26 16:04:15.546 Login2[197:707] loginClicked
2012-01-26 16:04:15.550 Login2[197:707] currentSelectedRow = 0
2012-01-26 16:04:15.555 Login2[197:707] URL = www.amazon.com

It seems that I have pulled the URL from my array correctly but I can't implement it to the code to open the URL in Safari.

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2 Answers 2

up vote 1 down vote accepted
Error-->[[UIApplication sharedApplication] openURL:[NSURL URLWithString: @"%@", loginObj.loginURL]];  //Edit this line as
Correct-->[[UIApplication sharedApplication] openURL:[NSURL URLWithString:loginObj.loginURL]];
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Hi Sri, thank you for your help. i tried your method and now the button is able to open up safari from the URL in my array. but the thing is the URL stored in my array is http://www.amazon.com but what was opened in safari is www.amazon.com%0a/ instead and it is an invalid URL. please advice –  at0m87 Jan 27 '12 at 8:07
    
try this. loginObj.loginURL = [[loginObj.loginURL stringByReplacingOccurrencesOfString:@"%0a" withString:@""];[[UIApplication sharedApplication] openURL:[NSURL URLWithString:loginObj.loginURL]]; –  Tendulkar Jan 27 '12 at 8:22
    
is there a difference if i used https instead of http? seems like when i change my URL in the array to https://www.amazon.com it works! but not when it is http://www.amazon.com i think generally your method is the best, short and sweet and the problem why it wasn't opening correctly lies with my URL in my array. –  at0m87 Jan 27 '12 at 8:36
    
you have to use the http only. –  Tendulkar Jan 27 '12 at 8:41
    
okay thanks Sri =) –  at0m87 Jan 27 '12 at 9:26

The problem is that you are trying to pass formatting parameters to

[NSURL URLWithString:]

But the URLWithString method doesn't take formatting parameters - not every method that takes a string in iOS works like [NSSString stringWithFormat:] or NSLog().

Generally, a good clue is that a method will be named somethingWithFormat: instead of somethingWithString: if it does accept formatting parameters. You should assume that methods called somethingWithString: don't accept formatting arguments.

To fix you code, split it into two calls:

NSString *urlString = [NSSString stringWithFormat:@"%@", loginObj.loginURL];
NSURL *url = [NSURL URLWithString:urlsString];

Although come to think of it, I'm not sure why you don't just write:

NSURL *url = [NSURL URLWithString:loginObj.loginURL];

Since you aren't actually doing anything with the format string except spitting out the first argument.

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Hi Nick thank you for answering my question in such detail, yes loginObj.loginURL is declared as NSString. i changed the code as per ur suggestion: NSString *urlString = [NSString stringWithFormat:loginObj.loginURL]; NSURL *url = [NSURL URLWithString:urlString]; [[UIApplication sharedApplication] openURL:url]; now the websites open but the URL becomes www.amazon.com%0a%/ what could be wrong? my URL in the array is http://www.amazon.com –  at0m87 Jan 27 '12 at 8:08
    
Just use [NSURL URLWithString:loginObj.loginURL]; stringWithFormat treats the string as if all the %'s are placeholders for variables. Don't use stringWithFormat unless you have parameters you want to insert into the string. –  Nick Lockwood Jan 27 '12 at 15:50

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