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i am trying to open a url (http://c22.smaato.net/oapi/lp.jsp;jsessionid=E253E547A55290CA553F493659433DBF.c22) on a button through the following code

NSString *strs=[[NSString alloc]initWithFormat:@"%@",[linkArry objectAtIndex:0]];



    NSURL *urls = [NSURL URLWithString:strs];



    [[UIApplication sharedApplication] openURL:urls];

[linkArry objectAtIndex:0] is the link mentioned above.

but it is not responding?? if i type something like "http://www.google.com" it works..

is there any other method to open these urls??

share|improve this question
    
Show the code that defines url. – kennytm Jun 26 '10 at 9:31
    
If RespLink is a string, why are you converting it in a string in such way? – kiamlaluno Jun 26 '10 at 10:48
    
updated the correct code – hemant Jun 26 '10 at 12:13
    
please show the code that defines linkArry – jrtc27 Jun 26 '10 at 12:26
up vote 0 down vote accepted

Check the line

NSURL *urls = [NSURL URLWithString:strs];

NSlog("urls : %@", urls); and print the urls in console , if you find urls is nil,

then escape the strs with NSUTF8StringEncoding.

strs = [strs stringByAddingPercentEscapesUsingEncoding:NSUTF8StringEncoding]; NSURL *urls = [NSURL URLWithString:strs];

share|improve this answer

Make sure that url is of NSURL type and not NSString

share|improve this answer
    
it is of NSURL type – hemant Jun 26 '10 at 10:19

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