How to open url in Safari and the get back to the app under UITests in Xcode 7?

别等时光非礼了梦想. 提交于 2019-12-20 12:37:14

问题


This is my custom view where "LondonStreet" is a button.

When I tap that button I get url and open it in Safari (it works). Then I can go back, using "Back to Wishlist" button (it also works).

The problem is when I try to test this under UITests.

itemsTable.cells.elementBoundByIndex(0).buttons["addressButton"].tap() //press the button to open link in Safari

Along with this line:

app.statusBars.buttons["Back to Wishlist"].tap() //go back, doesn't work, although it was recorded by Xcode itself.

is an error:

UI Testing Failure - Failed to get screenshot within 5s.

And also in issue Navigator

UI Testing failure - Unable to update application state promptly.


回答1:


Starting in iOS 11 you can interact with other applications using the XCUIApplication(bundleIdentifier:) initializer.

To get back to your app you'd do something like:

let myApp = XCUIApplication(bundleIdentifier: "my.app.bundle.id")
let safari = XCUIApplication(bundleIdentifier: "com.apple.mobilesafari")

// Perform action in your app that opens Safari

safari.wait(for: .runningForeground, timeout: 30)
myApp.activate() // <--- Go back to your app



回答2:


UI Testing cannot interact with anything outside of your application. In your scenario, the framework can no longer do anything once your app opens Safari.

To verify this, try printing out the app's hierarchy once Safari opens. You will notice that nothing in Safari nor the navigation bar will show up - you will only see your app's information.

print(XCUIApplication().debugDescription)


来源:https://stackoverflow.com/questions/32522465/how-to-open-url-in-safari-and-the-get-back-to-the-app-under-uitests-in-xcode-7

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