I am currently opening the link in my app in a WebView, but I'm looking for an option to open the link in Safari instead.

up vote 203 down vote accepted

It's not "baked in to Swift", but you can use standard UIKit methods to do it. Take a look at UIApplication's openUrl().

Swift 4

guard let url = URL(string: "https://stackoverflow.com") else { return }
UIApplication.shared.open(url)

Swift 3

guard let url = URL(string: "https://stackoverflow.com") else { return }
UIApplication.shared.openURL(url)

Swift 2.2

guard let url = URL(string: "https://stackoverflow.com") else { return }
UIApplication.sharedApplication().openURL(url)    
  • Is there any chance from app store if we add some purchasing URL like this? – Jan Sep 16 '16 at 6:23
  • 2
    UIApplication.shared.openURL(URL(string: "http://www.stackoverflow.com")!) – E-Madd Sep 29 '16 at 15:37
  • 6
    In iOS 10.0 you must now add options and handler: UIApplication.shared.open(URL(string:"google.com")!, options: [:], completionHandler: nil) – gabicuesta Apr 4 '17 at 13:46
  • 1
    @gabicuesta You actually don't have to provide options and completionHandler, they default to [:] and nil, respectively – Jeremy Jul 12 '17 at 13:17

New with iOS 9 and higher you can present the user with a SFSafariViewController (see documentation here). Basically you get all the benefits of sending the user to Safari without making them leave your app. To use the new SFSafariViewController just:

import SafariServices

and somewhere in an event handler present the user with the safari view controller like this:

let svc = SFSafariViewController(url: url)
present(svc, animated: true, completion: nil)

The safari view will look something like this:

enter image description here

UPDATED for Swift 4: (credit to Marco Weber)

if let requestUrl = NSURL(string: "http://www.iSecurityPlus.com") {
     UIApplication.shared.openURL(requestUrl as URL) 
}

OR go with more of swift style using guard:

guard let requestUrl = NSURL(string: "http://www.iSecurityPlus.com") else {
    return
}

UIApplication.shared.openURL(requestUrl as URL) 

Swift 3:

You can check NSURL as optional implicitly by:

if let requestUrl = NSURL(string: "http://www.iSecurityPlus.com") {
     UIApplication.sharedApplication().openURL(requestUrl)
}
  • 4
    Amit, No, because it's done explicitly as I have explained it is guarantee that requestUrl exist if let requestUrl = ... – CodeOverRide Jun 18 '15 at 21:54
  • 2
    yes, there are many way to do things. Learn the reason why you should use certain code in a situation instead of being a stubborn brat saying, "I'm right, therefore your wrong" mentality. Seems like you are new to programming this is my advise to you kid. – CodeOverRide Jun 26 '15 at 23:20
  • 3
    Amit: No, it doesn't work, you are simply wrong. In Swift 2 or 1.2. And no wonder, requestUrl is not an optional so you can't unwrap it with !. – Gusutafu Sep 15 '15 at 13:40
  • 2
    I like this method better than the one from Mike S, because you do the nil check before sending the request. – Nikolaj Nielsen Dec 15 '15 at 15:00
  • 1
    updated for Swift4: if let requestUrl = NSURL(string: "http://www.iSecurityPlus.com") { UIApplication.shared.openURL(requestUrl as URL) } – Marco Weber May 3 at 21:01

Swift 3 & IOS 10.2

UIApplication.shared.open(URL(string: "http://www.stackoverflow.com")!, options: [:], completionHandler: nil)

Swift 3 & IOS 10.2

  • But note that using this version will stop your app running on iOS 9 and previous unless you version check it – CupawnTae May 10 '17 at 9:04

since iOS 10 you should use:

guard let url = URL(string: linkUrlString) else {
        return
    }

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

In Swift 1.2:

@IBAction func openLink {    
    let pth = "http://www.google.com"
    if let url = NSURL(string: pth){
        UIApplication.sharedApplication().openURL(url)
}

In Swift 2.0:

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

IOS 11.2 Swift 3.1- 4

let webView = WKWebView()
override func viewDidLoad() {
    super.viewDidLoad()
    guard let url = URL(string: "https://www.google.com") else { return }
    webView.frame = view.bounds
    webView.navigationDelegate = self
    webView.load(URLRequest(url: url))
    webView.autoresizingMask = [.flexibleWidth,.flexibleHeight]
    view.addSubview(webView)
}
func webView(_ webView: WKWebView, decidePolicyFor navigationAction: WKNavigationAction, decisionHandler: @escaping (WKNavigationActionPolicy) -> Void) {
    if navigationAction.navigationType == .linkActivated  {
        if let url = navigationAction.request.url,
            let host = url.host, !host.hasPrefix("www.google.com"),
            UIApplication.shared.canOpenURL(url) {
            UIApplication.shared.open(url)
            print(url)
            print("Redirected to browser. No need to open it locally")
            decisionHandler(.cancel)
        } else {
            print("Open it locally")
            decisionHandler(.allow)
        }
    } else {
        print("not a user click")
        decisionHandler(.allow)
    }
}

}

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