问题
We know that we can use an if let statement as a shorthand to check for an optional nil then unwrap.
However, I want to combine that with another expression using the logical AND operator &&.
So, for example, here I do optional chaining to unwrap and optionally downcast my rootViewController to tabBarController. But rather than have nested if statements, I'd like to combine them.
if let tabBarController = window!.rootViewController as? UITabBarController {
if tabBarController.viewControllers.count > 0 {
println("do stuff")
}
}
Combined giving:
if let tabBarController = window!.rootViewController as? UITabBarController &&
tabBarController.viewControllers.count > 0 {
println("do stuff")
}
}
The above gives the compilation error Use of unresolved identifier 'tabBarController'
Simplifying:
if let tabBarController = window!.rootViewController as? UITabBarController && true {
println("do stuff")
}
This gives a compilation error Bound value in a conditional binding must be of Optional type. Having attempted various syntactic variations, each gives a different compiler error. I've yet to find the winning combination of order and parentheses.
So, the question is, is it possible and if so what is correct syntax?
Note that I want to do this with an if statement not a switch statement or a ternary ? operator.
回答1:
As of Swift 1.2, this is now possible. The Swift 1.2 and Xcode 6.3 beta release notes state:
More powerful optional unwrapping with if let — The if let construct can now unwrap multiple optionals at once, as well as include intervening boolean conditions. This lets you express conditional control flow without unnecessary nesting.
With the statement above, the syntax would then be:
if let tabBarController = window!.rootViewController as? UITabBarController where tabBarController.viewControllers.count > 0 {
println("do stuff")
}
This uses the where clause.
Another example, this time casting AnyObject to Int, unwrapping the optional, and checking that the unwrapped optional meets the condition:
if let w = width as? Int where w < 500
{
println("success!")
}
For those now using Swift 3, "where" has been replaced by a comma. The equivalent would therefore be:
if let w = width as? Int, w < 500
{
println("success!")
}
回答2:
In Swift 3 Max MacLeod's example would look like this:
if let tabBarController = window!.rootViewController as? UITabBarController, tabBarController.viewControllers.count > 0 {
println("do stuff")
}
The where was replaced by ,
回答3:
Max's answer is correct and one way of doing this. Notice though that when written this way:
if let a = someOptional where someBool { }
The someOptional expression will be resolved first. If it fails then the someBool expression will not be evaluated (short-circuit evaluation, as you'd expect).
If you want to write this the other way around it can be done like so:
if someBool, let a = someOptional { }
In this case someBool is evaluated first, and only if it evaluates to true is the someOptional expression evaluated.
回答4:
Swift 4, I will use,
let i = navigationController?.viewControllers.index(of: self)
if let index = i, index > 0, let parent = navigationController?.viewControllers[index-1] {
// access parent
}
回答5:
It is not possible.
From Swift grammar
GRAMMAR OF AN IF STATEMENT
if-statement → if if-condition code-block else-clauseopt
if-condition → expression | declaration
else-clause → else code-block | else if-statement
The value of any condition in an if statement must have a type that conforms to the BooleanType protocol. The condition can also be an optional binding declaration, as discussed in Optional Binding
if-condition must be expression or declaration. You can't have both expression and declaration.
let foo = bar is a declaration, it doesn't evaluate to a value that conforms to BooleanType. It declares a constant/variable foo.
Your original solution is good enough, it is much more readable then combining the conditions.
回答6:
I think your original proposition is not too bad. A (messier) alternative would be:
if ((window!.rootViewController as? UITabBarController)?.viewControllers.count ?? 0) > 0 {
println("do stuff")
}
来源:https://stackoverflow.com/questions/25202770/using-the-swift-if-let-with-logical-and-operator