该应用程序基本上通过输入初始和最终速度和时间来计算加速度,然后使用一个公式来计算加速度。但是,由于文本框中的值是字符串,我无法将它们转换为整数。
@IBOutlet var txtBox1 : UITextField
@IBOutlet var txtBox2 : UITextField
@IBOutlet var txtBox3 : UITextField
@IBOutlet var lblAnswer : UILabel
@IBAction func btn1(sender : AnyObject) {
let answer1 = "The acceleration is"
var answer2 = txtBox1
var answer3 = txtBox2
var answer4 = txtBox3
当前回答
这对我很有用
var a:Int? = Int(userInput.text!)
其他回答
我最近也遇到了同样的问题。下面的解决方案对我来说是可行的:
let strValue = "123"
let result = (strValue as NSString).integerValue
这对我很有用
var a:Int? = Int(userInput.text!)
斯威夫特3
最简单、更安全的方法是:
@IBOutlet var textFieldA : UITextField
@IBOutlet var textFieldB : UITextField
@IBOutlet var answerLabel : UILabel
@IBAction func calculate(sender : AnyObject) {
if let intValueA = Int(textFieldA),
let intValueB = Int(textFieldB) {
let result = intValueA + intValueB
answerLabel.text = "The acceleration is \(result)"
}
else {
answerLabel.text = "The value \(intValueA) and/or \(intValueB) are not a valid integer value"
}
}
避免无效值设置键盘类型为数字pad:
textFieldA.keyboardType = .numberPad
textFieldB.keyboardType = .numberPad
Swift5 float或int string to int:
extension String {
func convertStringToInt() -> Int {
return Int(Double(self) ?? 0.0)
}
}
let doubleStr = "4.2"
// print 4
print(doubleStr.convertStringToInt())
let intStr = "4"
// print 4
print(intStr.convertStringToInt())
斯威夫特4.0
let stringNumber = "123"
let number = Int(stringNumber) //here number is of type "Int?"
//using Forced Unwrapping
if number != nil {
//string is converted to Int
}
你也可以使用可选绑定而不是强制绑定。
eg:
if let number = Int(stringNumber) {
// number is of type Int
}
