205

On the settings page, I want to include three links to

  • My app support site
  • YouTube app tutorial
  • My primary site (ie: linked to a 'Created by Dale Dietrich' label.)

I've searched this site and the web and my documentation and I've found nothing that is obvious.

NOTE: I don't want to open web pages within my app, I just want to send the link to Safari and that link be open there. I've seen numbers of apps doing the same thing in their Settings page so it must be possible.

  • Same issue i am facing in Hybrid development using Ionic Cordova app – Sopo Jul 7 '17 at 9:59

14 Answers 14

375

Heres what I did:

  1. I created an IBAction in the header .h files as follows:

    - (IBAction)openDaleDietrichDotCom:(id)sender;
    
  2. I added a UIButton on the Settings page containing the text that I want to link to.

  3. I connected the button to IBAction in File Owner appropriately.

  4. Then implement the following:

Obj C

- (IBAction)openDaleDietrichDotCom:(id)sender {
    [[UIApplication sharedApplication] openURL:[NSURL URLWithString:@"http://www.daledietrich.com"]];
}

Swift

(IBAction in viewController, rather than header file)

if let link = URL(string: "https://yoursite.com") {
  UIApplication.shared.open(link) 
}
  • 8
    But this is not 100%, because if someone use a jailbreaked iOS and use Chrome or something as default browser, then this will open that, not Safari – Laszlo Sep 30 '13 at 12:55
  • 202
    I feel like if someone's gone to the effort of jailbreaking their phone to make Chrome their default browser, honouring that setting is probably the ideal behaviour. – rpowell Feb 13 '14 at 12:46
  • I understood this but if I am opening a website and user is surfing the website now if he stops by a particular page then can I get the current webpage link in my code? – Varun Jain Jun 1 '16 at 7:33
  • 1
    Why isn't this marked correct? – Mercutio Nov 2 '17 at 1:16
  • 3
    Above method is deprecated now use following. [[UIApplication sharedApplication] openURL:[NSURL URLWithString:self.advertisement.url] options:@{} completionHandler:^(BOOL success) { }]; – Mashhadi Dec 18 '17 at 14:38
161

Swift Syntax:

UIApplication.sharedApplication().openURL(NSURL(string:"http://www.reddit.com/")!)

New Swift Syntax for iOS 9.3 and earlier

As of some new version of Swift (possibly swift 2?), UIApplication.sharedApplication() is now UIApplication.shared (making better use of computed properties I'm guessing). Additionally URL is no longer implicitly convertible to NSURL, must be explicitly converted with as!

UIApplication.sharedApplication.openURL(NSURL(string:"http://www.reddit.com/") as! URL)

New Swift Syntax as of iOS 10.0

The openURL method has been deprecated and replaced with a more versatile method which takes an options object and an asynchronous completion handler as of iOS 10.0

UIApplication.shared.open(NSURL(string:"http://www.reddit.com/")! as URL)
  • 30
    Swift versions of answers are extremely useful to Swift developers, it's a new language without a lot of documentation, esp. on solving real world iOS problems. In my case, autocomplete had chosen the "fileURLWithPath:" selector and I didn't realize that was why my URL was not opening, it was only by reading Dustin's answer that I saw that I should have been using the "string:" selector . So Dustin should be upvoted, not chastised. – SafeFastExpressive Mar 23 '15 at 3:50
  • 3
    @g_fred. Why would he not be able to include a Swift version? – ericgu Mar 24 '15 at 13:21
  • 2
    openURL(_:) was deprecated in iOS 10.0, instead you should call the instance method open(_:options:completionHandler:) on UIApplication. – Ryan H. Oct 24 '16 at 3:43
  • 2
    You can directly use URL instead of NSURL so you can save the cast. – marsbear Jul 21 '17 at 9:04
  • 1
    I recommend never to force unwrap. if let url = NSURL(string:"http://www.reddit.com/") { UIApplication.shared.open(url) } will always serve your better. Might want to assert and error in the else statement to catch typos. – philipp Dec 3 '17 at 0:18
50

Here one check is required that the url going to be open is able to open by device or simulator or not. Because some times (majority in simulator) i found it causes crashes.

Objective-C

NSURL *url = [NSURL URLWithString:@"some url"];
if ([[UIApplication sharedApplication] canOpenURL:url]) {
   [[UIApplication sharedApplication] openURL:url];
}

Swift 2.0

let url : NSURL = NSURL(string: "some url")!
if UIApplication.sharedApplication().canOpenURL(url) {
     UIApplication.sharedApplication().openURL(url)
}

Swift 4.2

guard let url = URL(string: "some url") else {
    return
}
if UIApplication.shared.canOpenURL(url) {
    UIApplication.shared.open(url, options: [:], completionHandler: nil)
}
  • 1
    You can always open HTTP / HTTPS. As of iOS 9, you need to whitelist any URL you wish to call canOpenURL on. I don't see why you wouldn't simply call openURL:url and if it fails, deal with the failure. canOpenURL is primarily used to detect the installation of an app without leaving the current app. – Ben Flynn Apr 25 '16 at 19:57
  • 1
    openURL(_:) was deprecated in iOS 10.0, instead you should call the instance method open(_:options:completionHandler:) on UIApplication. – Ryan H. Oct 24 '16 at 3:43
  • Good answer Chetan..worked !!! – NSPratik Nov 9 '16 at 7:44
20

Take a look at the -openURL: method on UIApplication. It should allow you to pass an NSURL instance to the system, which will determine what app to open it in and launch that application. (Keep in mind you'll probably want to check -canOpenURL: first, just in case the URL can't be handled by apps currently installed on the system - though this is likely not a problem for plain http:// links.)

  • Thanks Tim. You are right on point. I was adding my own answer as yours came in. Sorry about that. But at least there is now an easy how-to for those that follow me. – Dale Dietrich Sep 14 '12 at 0:09
  • No worries - glad you found the solution! – Tim Sep 14 '12 at 0:11
  • 1
    openURL(_:) was deprecated in iOS 10.0, instead you should call the instance method open(_:options:completionHandler:) on UIApplication. – Ryan H. Oct 24 '16 at 3:43
17

And, in case you're not sure if the supplied URL text has a scheme:

NSString* text = @"www.apple.com";
NSURL*    url  = [[NSURL alloc] initWithString:text];

if (url.scheme.length == 0)
{
    text = [@"http://" stringByAppendingString:text];
    url  = [[NSURL alloc] initWithString:text];
}

[[UIApplication sharedApplication] openURL:url];
  • Just add "http://" to row "NSString* text = @"www.apple.com";" – Vlad Apr 1 '15 at 14:43
  • @Vlad This is just a hard-coded example. Often the url string (text here) won't be hard-coded and you need code like this. – meaning-matters Apr 1 '15 at 19:54
  • Some people are frustrating if example does not work... – Vlad Apr 2 '15 at 8:39
  • @Vlad Were you frustrated, and if yes how/why? I assume people don't just copy past the code above. – meaning-matters Apr 2 '15 at 12:39
  • 1
    meaning-matters It is up to you :) – Vlad Apr 2 '15 at 13:32
13

The non deprecated Objective-C version would be:

[[UIApplication sharedApplication] openURL:[NSURL URLWithString:@"http://apple.com"] options:@{} completionHandler:nil];
9

Swift 3.0

if let url = URL(string: "https://www.reddit.com") {
    if #available(iOS 10.0, *) {
        UIApplication.shared.open(url, options: [:])
    } else {
        UIApplication.shared.openURL(url)
    }
}

This supports devices running older versions of iOS as well

9

Swift 3 Solution with a Done button

Don't forget to import SafariServices

if let url = URL(string: "http://www.yoururl.com/") {
            let vc = SFSafariViewController(url: url, entersReaderIfAvailable: true)
            present(vc, animated: true)
        }
  • This is the perfect answer which works in both iOS and iOS Extensions. Other answers only work in apps and can't be used in extensions. – Owen Zhao Jun 5 at 8:22
5

Because this answer is deprecated since iOS 10.0, a better answer would be:

if #available(iOS 10.0, *) {
    UIApplication.shared.open(url, options: [:], completionHandler: nil)
}else{
    UIApplication.shared.openURL(url)
}

y en Objective-c

[[UIApplication sharedApplication] openURL:@"url string" options:@{} completionHandler:^(BOOL success) {
        if (success) {
            NSLog(@"Opened url");
        }
    }];
3

openURL(:) was deprecated in iOS 10.0, instead you should use the following instance method on UIApplication: open(:options:completionHandler:)

Example using Swift
This will open "https://apple.com" in Safari.

if let url = URL(string: "https://apple.com") {
    if UIApplication.shared.canOpenURL(url) {
        UIApplication.shared.open(url, options: [:], completionHandler: nil)
    }
}

https://developer.apple.com/reference/uikit/uiapplication/1648685-open

2

In SWIFT 3.0

               if let url = URL(string: "https://www.google.com") {
                 UIApplication.shared.open(url, options: [:])
               }
1

Try this:

NSString *URL = @"xyz.com";
if([[UIApplication sharedApplication] canOpenURL:[NSURL URLWithString:URL]])
{
     [[UIApplication sharedApplication] openURL:[NSURL URLWithString:URL]];
}
0

In Swift 1.2, try this:

let pth = "http://www.google.com"
    if let url = NSURL(string: pth){
        UIApplication.sharedApplication().openURL(url)
  • plz tell me what is the new in code which you have written and you marked me down vote – Dilip Tiwari Apr 14 '17 at 4:58
-2

Swift 4 solution:

UIApplication.shared.open(NSURL(string:"http://yo.lo")! as URL, options: [String : Any](), completionHandler: nil)
  • 1
    A proper Swift 4 version would use URL and not NSURL. And casting NSURL as URL is not the same. See stackoverflow.com/a/37812485/2227743 for an explanation. Also, force unwrapping is bad. – ayaio Oct 30 '17 at 13:45

protected by Community Aug 13 '17 at 0:12

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