Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Basically, i'm trying to program a "tweet this" button from inside my application. Depending on their spot in the application, they can click the tweet button and it'll shoot them out to Safari with a tweet message that changes depending on where they are.

In order to create URLs, I have to escape the query string that I want to put in the NSUrl object. So, I do this:

NSString* escapedTweet = [@"Some String With Spaces" stringByAddingPercentEscapesUsingEncoding:NSASCIIStringEncoding];

After concatenating the base, my url comes out "http://www.twitter.com/home/?status=Some&20String%20With%20Spaces" - looked at it in the debugger and this is definitely the value (as expected). Now, I create my URL and launch safari:

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

But here's where the issue comes up: OpenUrl appears to be escaping my percent signs, so the actual URL that Safari goes to is "http://www.twitter.com/home/?status=Some%2520String%2520With%2520Spaces", which is obviously a problem since twitter creates the status message as "Some%20String%20With%20Spaces".

NSUrl will NOT allow me to create a URL with spaces in it, so i'm completely lost as to how to get my URLs to just include a %20. Has anyone else run into this issue or found a workaround?

I'm running on an iPad with an up to date OS, not sure if it's the same issue on the iPhone.

Edit: In a nutshell, how do I get openUrl to open http://www.twitter.com/home/?status=Some%20Url%20With%20Spaces without escaping my percent signs and creating a URL like http://www.twitter.com/home/?status=Some%2520Url%2520With%2520Spaces?

share|improve this question
    
When you say "my url comes out", do you mean your URL or your URL string? Try doing NSURL * url = [NSURL URLWithString:escapedUrlString]; and printing that to see if it's NSURL doing the escaping instead of OpenURL. Also check the console log; I think SpringBoard.app prints the URL being opened. –  tc. Oct 2 '10 at 15:11
add comment

1 Answer

I am assuming that escapedUrlString is declared as NSURL *escapedUrlString = [NSURL URLWithString:escapedTweet];. Then your problem probably lies in openURL:[NSURL URLWithString:escapedUrlString]];, because you’re taking an URL, passing it into another URL and then opening it. Fix by passing in escapedURLString (which should be named ‘escapedURL’) instead of URLWithString:….

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.