127

This might be a rather obvious question, but can you launch the Safari browser from an iPhone app?

200

should be the following :

NSURL *url = [NSURL URLWithString:@"http://www.stackoverflow.com"];

if (![[UIApplication sharedApplication] openURL:url]) {
    NSLog(@"%@%@",@"Failed to open url:",[url description]);
}
  • Will this count towards your app's memory usage? Also, is there a good way to get back to your app (like the login feature in social networking sites)? – brendan Mar 9 '12 at 19:25
  • 1
    @brendan my guess would be no as I assume the 'webview' is launched in the safari application so it would fall under that process – surtyaar Jul 24 '13 at 20:41
  • 12
    dupe of earlier 5/9/09 answer – Barett Aug 8 '15 at 15:49
  • 2
    @Barett: Not exactly actually, because that's a 9/21/09 answer – Bergi Aug 9 '15 at 17:00
  • 4
    IMO the API call is similar enough that this answer would have been better applied as an edit or comment on the prior answer. – Barett Aug 9 '15 at 18:33
52

UIApplication has a method called openURL:

example:

NSURL *url = [NSURL URLWithString:@"http://www.stackoverflow.com"];

if (![[UIApplication sharedApplication] openURL:url]) {
  NSLog(@"%@%@",@"Failed to open url:",[url description]);
}
16

you can open the url in safari with this:

[[UIApplication sharedApplication] openURL:[NSURL URLWithString:@"https://www.google.com"]];
4

With iOS 10 we have one different method with completion handler:

ObjectiveC:

NSDictionary *options = [NSDictionary new];
//options can be empty
NSURL *url = [NSURL URLWithString:@"http://www.stackoverflow.com"];
[[UIApplication sharedApplication] openURL:url options:options completionHandler:^(BOOL success){
}];

Swift:

let url = URL(string: "http://www.stackoverflow.com")
UIApplication.shared.open(url, options: [:]) { (success) in
}
2

Maybe someone can use the Swift version:

In swift 2.2:

UIApplication.sharedApplication().openURL(NSURL(string: "https://www.google.com")!)

And 3.0:

UIApplication.shared().openURL(URL(string: "https://www.google.com")!)
2

In swift 4, as OpenURL is depreciated, an easy way of doing it would be just

if let url = URL(string: "https://stackoverflow.com") {
UIApplication.shared.open(url, options: [:]) }
  • While this code snippet may solve the question, including an explanation helps to improve the quality of your response. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. – Stefan Crain Apr 13 '18 at 15:34
1

In Swift 3.0, you can use this class to help you communicate with. The framework maintainers have deprecated or removed previous answers.

import UIKit

class InterAppCommunication {
    static func openURI(_ URI: String) {
        UIApplication.shared.open(URL(string: URI)!, options: [:], completionHandler: { (succ: Bool) in print("Complete! Success? \(succ)") })
    }
}

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