我想制作一个类似这个例子的函数。
示例
let num1 = Driver<Int>
let num2 = Driver<Int>
let result = Driver<String>
num1 = Observable.just(...).asDriver()
num2 = Observable.just(...).asDriver()
result = ??? // When both num1 and num2 are subscribed, this becomes a higher value among them as String.
// This type of code will be used
/*
if $0 >= $1 {
return "num1 = \($0)"
} else {
return "num2 = \($1)"
}
*/
如何实施?
答案 0 :(得分:3)
如果可以提供帮助,请不要使用变量。你已经有了几个observable,所以使用它们,但是,combineLatest就是这里的解决方案:
import RxSwift
let num1 = Observable.just(3)
let num2 = Observable.just(5)
let result = Observable.combineLatest(num1, num2).map { $0 >= $1 ? "num1 = \($0)" : "num2 = \($1)" }
_ = result.subscribe(onNext: { print($0) })
以上打印&#34; num2 = 5&#34;当它被放置在一个配置正确的游乐场时。
答案 1 :(得分:2)
你可以在这里使用RxSwift Variable而不是Driver来监听两个Observable,你可以使用Observable.combineLatest(..)
方法。
以下是如何实现它的示例:
let num1: Variable<Int>!
let num2: Variable<Int>!
let bag = DisposeBag()
num1 = Variable(1)
num2 = Variable(2)
let result = Observable.combineLatest(num1.asObservable(), num2.asObservable()) { (n1, n2) -> String in
if n1 >= n2 {
return "num1 = \(n1)"
} else {
return "num2 = \(n2)"
}
}
result.subscribe(onNext: { (res) in
print("Result \(res)")
}).addDisposableTo(bag)
num1.value = 5
num1.value = 8
num2.value = 10
num2.value = 7
输出:
Result num2 = 2
Result num1 = 5
Result num1 = 8
Result num2 = 10
Result num1 = 8