21

I created a button to make a call from app:

   @IBAction func callButton(sender: AnyObject) {
    if (PhoneNumber != ""){
    UIApplication.sharedApplication().openURL(NSURL(string: "telprompt://\(PhoneNumber)")!)
    }
}

and it works perfectly fine. Strange thing happens when I want to open a web page. I use nearly exactly same code

    @IBAction func openWeb(sender: AnyObject) {
    UIApplication.sharedApplication().openURL(NSURL(string: "www.google.com")!)
}

But this time button doesn't react and nothing happens. Wherever I was looking for some information about opening web pages in safari from the app, the code was written exactly this way. Do you have any idea where the problem is?

Thanks in advance!

1
  • 1
    You forgot to add the URL scheme in the second attempt. Jan 18, 2015 at 14:07

5 Answers 5

61

missing url scheme

UIApplication.shared.open(URL(string: "http://www.google.com")!, options: [:], completionHandler: nil)
0
18

Swift 4, safely unwrapped optional, check if canOpenURL

if let url = URL(string: "https://www.google.com"),
        UIApplication.shared.canOpenURL(url) {
            UIApplication.shared.open(url, options: [:])
}
7

Swift 3 Version

UIApplication.shared.openURL(NSURL(string: "http://google.com")! as URL)
1
  • 3
    if you need a more secure approach, check before making the openURL call --> UIApplication.shared.canOpenURL(url)
    – MarMass
    Dec 16, 2016 at 7:54
4

Updated Swift 3.0 version as of iOS 10

let googleURL = NSURL(string: "www.google.com")! as URL
UIApplication.shared.open(googleURL, options: [:], completionHandler: nil)
2

Swift 4.2.1, iOS 10 and higher

UIApplication.shared.open(URL(string: "https://google.com")!, options: [:], completionHandler: nil)

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