87

I'm new to Swift, how can I convert a String to CGFloat?

I tried:

var fl: CGFloat = str as CGFloat
var fl: CGFloat = (CGFloat)str
var fl: CGFloat = CGFloat(str)

all didn't work

2
  • 3
    Do you need to handle international users? (For example, in Germany, the comma is used as the decimal separator.) If so, consider using NSNumberFormatter, which will employ the device's internationalization settings to handle numbers in the user's preferred format.
    – Rob
    Commented Dec 22, 2014 at 2:44
  • 2
    thanks but internationalization is not an issue here
    – Shai UI
    Commented Dec 25, 2014 at 5:32

12 Answers 12

153

If you want a safe way to do this, here is a possibility:

let str = "32.4"
if let n = NumberFormatter().number(from: str) {
    let f = CGFloat(truncating: n)
}

If you change str to "bob", it won't get converted to a float, while most of the other answers will get turned into 0.0

Side note: remember also that decimal separator might be either comma or period. You might want to specify it inside the number formatter

let formatter = NumberFormatter()
formatter.decimalSeparator = "." // or ","

// use formatter (e.g. formatter.number(from:))
5
  • 1
    None of the other answers handle international user input. If this string is input from a user, a locale-specific answer such as this (or NSScanner) should be used.
    – Rob
    Commented Dec 22, 2014 at 2:59
  • 1
    I hadn't even thought of localization. (Let's face it, it's something even the best programmers often don't consider.) But you're right. Commented Dec 22, 2014 at 3:02
  • 1
    It seems like there is no NSNumberFormatter in Swift 4.0. Commented Oct 3, 2017 at 14:36
  • NumberFormatter for Swift 4 Commented Apr 25, 2018 at 20:20
  • 2
    CGFloat(truncating: n) Commented Feb 27, 2020 at 6:49
32

As of Swift 2.0, the Double type has a failable initializer that accepts a String. So the safest way to go from String to CGFloat is:

let string = "1.23456"
var cgFloat: CGFloat?

if let doubleValue = Double(string) {
    cgFloat = CGFloat(doubleValue)
}

// cgFloat will be nil if string cannot be converted

If you have to do this often, you can add an extension method to String:

extension String {

  func CGFloatValue() -> CGFloat? {
    guard let doubleValue = Double(self) else {
      return nil
    }

    return CGFloat(doubleValue)
  }
}

Note that you should return a CGFloat? since the operation can fail.

17

You should cast string to double and then cast from double to CGFloat, Let try this:

let fl: CGFloat = CGFloat((str as NSString).doubleValue)
2
  • 2
    Going from float to CGFloat can cause a loss in precision (tried it with 0.57). Going from double to CGFloat maintains the correct value.
    – Maxwell
    Commented Dec 15, 2015 at 18:15
  • @Maxwell for now. In the future there may be additional floating-point types to consider. Additionally, there's a good reason CGFloat exists in place of float and double: it runs faster on 32-bit processors. Relying on IEEE 64-bit float to maintain a correct value is shortsighted at best.
    – Ky -
    Commented Aug 30, 2016 at 21:28
16

This works:

let str = "3.141592654"
let fl = CGFloat((str as NSString).floatValue)
1
  • 3
    The drawback of this is that (str as NSString).floatValue gives 0 for strings it doesn't understand, like "bob". This could be a feature or a bug depending upon your requirements. I wouldn't use this method if I was accepting untrusted input. Instead, I'd use NSNumberFormatter or the like. Commented Dec 22, 2014 at 2:32
11

Simple one line solution:

let pi = CGFloat(Double("3.14") ?? 0)
0
9

in Swift 3.0

if let n = NumberFormatter().number(from: string) {
  let f = CGFloat(n)
}

or this if you are sure that string meets all requirements

let n = CGFloat(NumberFormatter().number(from: string)!)
8

While the other answers are correct, but the result you see will have trailing decimals.

For example:

let str = "3.141592654"
let foo = CGFloat((str as NSString).floatValue)

Result:

3.14159274101257

To get a proper value back from the string, try the following:

let str : String = "3.141592654"
let secStr : NSString = str as NSString
let flt : CGFloat = CGFloat(secStr.doubleValue)

Result:

3.141592654
2
  • 1
    fair enough, I prefer yours
    – Shai UI
    Commented Dec 22, 2014 at 2:37
  • actually, I'll wait for upvotes to decide who gets the answer. thanks though.
    – Shai UI
    Commented Dec 22, 2014 at 2:39
6

You can make an extension that adds an init to CGFloat

extension CGFloat {
    
    init?(string: String) {
        
        guard let number = NumberFormatter().number(from: string) else {
            return nil
        }
        
        self.init(number.floatValue)
    }
    
}

Use it like so let x = CGFloat(string: xString)

1
  • 2
    Be careful with NumberFormatter as behavior depends on current Locale
    – Marcin
    Commented May 29, 2020 at 11:20
3

in Swift 3.1

if let n = NumberFormatter().number(from: string) {
   let fl = CGFloat(n)
} 

or:

let fl = CGFloat((str as NSString).floatValue))
1

This is kind of a work around, but you can cast it as an NSString, then get the float value, then initialize a CGFloat from that value. Example:

let str = "1.02345332"
let foo = CGFloat((str as NSString).floatValue)
0
-1

Good question. There is not in fact any pure Swift API for converting a string that represents a CGFloat into a CGFloat. The only string-represented number that pure Swift lets you convert to a number is an integer. You'll have to use some other approach from some other library - for example, start with Foundation's NSString or C's (Darwin's) strtod.

5
  • facepalm. I appreciate the answer, but any hack to do this? (ie code). coming from javascript it's like going back to the 18th century here.
    – Shai UI
    Commented Dec 22, 2014 at 2:25
  • NSNumberFormatter is also a possibility, though I doubt it's as efficient. Unsafely: CGFloat(formatter.numberFromString("23.4")!). Commented Dec 22, 2014 at 2:25
  • yes it does, vacawama's answer. in case u weren't paying attention stackoverflow IS my man.
    – Shai UI
    Commented Dec 22, 2014 at 2:30
  • 2
    Right. But you see what I mean; you're shifting into the whole vast mechanism of Cocoa / Foundation in order to do this. It isn't "pure" Swift. I think their reasoning was: well, Cocoa / Foundation and C are there, and they are not going away, so we don't need to build a big language like JavaScript or Ruby.
    – matt
    Commented Dec 22, 2014 at 2:32
  • @matt Interesting, I never thought of Foundation as not being "pure" Swift, but I see your point and agree. Commented Dec 22, 2014 at 2:43
-3
let myFloatNumber = CGFloat("4.22")
1
  • 4
    It would be much better if you edit your answer to explain how this solves the original problem and is better than the existing collection of answers. Commented Jun 16, 2020 at 11:10

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.