181

I want to convert a Float to an Int in Swift. Basic casting like this does not work because these types are not primitives, unlike floats and ints in Objective-C

var float: Float = 2.2
var integer: Int = float as Float

But this produces the following error message:

'Float' is not convertible to 'Int'

Any idea how to property convert from Float to Int?

  • 2
    the as operator is for down-casting to subclasses. ie: UIView as UIButton – Jack Jun 4 '14 at 6:04
  • 2
    in swift, you can do type casting using the as keyword or optional as (as?) such as 4 as? String, if 4 can be a string it will work but if it's not it will not work. I bring this up because you use the word "casting" in your question and i didn't want you to be confused. :3 – A'sa Dickens Jun 19 '14 at 13:36

13 Answers 13

302

You can convert Float to Int in Swift like this:

var myIntValue:Int = Int(myFloatValue)
println "My value is \(myIntValue)"

You can also achieve this result with @paulm's comment:

var myIntValue = Int(myFloatValue)
  • would var myIntValue = Int(myFloatValue) also work? – paulm Jun 6 '14 at 0:52
  • @paulm - I had not tried (above code in comment). but might be it will work for us (not sure). – iPatel Jun 6 '14 at 4:34
  • 4
    The cast is enough for the Swift compiler to intuit the variable type, so you do not need to explicitly declare the type. var myIntValue = Int(myFloatValue) works. – Tim Sullivan Jun 21 '14 at 14:32
  • Just like in C++ – fnc12 Sep 14 '15 at 11:46
  • (swift 2.0) it's better to check if the float value is a finite value, if myFloatvalue.isFinite {...} – ZYiOS Sep 22 '15 at 9:28
102

Explicit Conversion

Converting to Int will lose any precision (effectively rounding down). By accessing the math libraries you can perform explicit conversions. For example:

If you wanted to round down and convert to integer:

let f = 10.51
let y = Int(floor(f))

result is 10.

If you wanted to round up and convert to integer:

let f = 10.51
let y = Int(ceil(f))

result is 11.

If you want to explicitly round to the nearest integer

let f = 10.51
let y = Int(round(f))

result is 11.

In the latter case, this might seem pedantic, but it's semantically clearer as there is no implicit conversion...important if you're doing signal processing for example.

  • 3
    Yeah, it's really worth noting that Int() simply cuts the fractional part, which usually isn't the desired behaviour ;) Int(round(f)) does the job. – Grzegorz D. Jun 23 '15 at 17:08
  • 1
    Or ceil ()to round the value upwards. – Vincent Nov 30 '15 at 7:36
  • This is the best answer.. – Rinku Jun 10 '16 at 14:22
  • Wow!!! Beautiful answer. Than you very much! – Marcelo dos Santos Jul 25 '18 at 22:07
  • should be the accepted answer. – Kevin Amiranoff Sep 29 '18 at 12:17
25

Converting is simple:

let float = Float(1.1) // 1.1
let int = Int(float) // 1

But it is not safe:

let float = Float(Int.max) + 1
let int = Int(float)

Will due to a nice crash:

fatal error: floating point value can not be converted to Int because it is greater than Int.max

So I've created an extension that handles overflow:

extension Double {
    // If you don't want your code crash on each overflow, use this function that operates on optionals
    // E.g.: Int(Double(Int.max) + 1) will crash:
    // fatal error: floating point value can not be converted to Int because it is greater than Int.max
    func toInt() -> Int? {
        if self > Double(Int.min) && self < Double(Int.max) {
            return Int(self)
        } else {
            return nil
        }
    }
}


extension Float {
    func toInt() -> Int? {
        if self > Float(Int.min) && self < Float(Int.max) {
            return Int(self)
        } else {
            return nil
        }
    }
}

I hope this can help someone

22

There are lots of ways to round number with precision. You should eventually use swift's standard library method rounded() to round float number with desired precision.

To round up use .up rule:

let f: Float = 2.2
let i = Int(f.rounded(.up)) // 3

To round down use .down rule:

let f: Float = 2.2
let i = Int(f.rounded(.down)) // 2

To round to the nearest integer use .toNearestOrEven rule:

let f: Float = 2.2
let i = Int(f.rounded(.toNearestOrEven)) // 2

Be aware of the following example:

let f: Float = 2.5
let i = Int(roundf(f)) // 3
let j = Int(f.rounded(.toNearestOrEven)) // 2
5

Like this:

var float:Float = 2.2 // 2.2
var integer:Int = Int(float) // 2 .. will always round down.  3.9 will be 3
var anotherFloat: Float = Float(integer) // 2.0
5

You can get an integer representation of your float by passing the float into the Integer initializer method.

Example:

Int(myFloat)

Keep in mind, that any numbers after the decimal point will be loss. Meaning, 3.9 is an Int of 3 and 8.99999 is an integer of 8.

  • 6
    And use Int(MyFloat + .5) for rounding. – Jean Le Moignan Jun 13 '14 at 10:33
  • Yes, good point – A'sa Dickens Jun 13 '14 at 18:51
3

Use a function style conversion (found in section labeled "Integer and Floating-Point Conversion" from "The Swift Programming Language."[iTunes link])

  1> Int(3.4)
$R1: Int = 3
1

You can type cast like this:

 var float:Float = 2.2
 var integer:Int = Int(float)
1

Just use type casting

 var floatValue:Float = 5.4
 var integerValue:Int = Int(floatValue)

 println("IntegerValue = \(integerValue)")

it will show roundoff value eg: IntegerValue = 5 means the decimal point will be loss

0
var i = 1 as Int

var cgf = CGFLoat(i)
0
var floatValue = 10.23
var intValue = Int(floatValue)

This is enough to convert from float to Int

0

Suppose you store float value in "X" and you are storing integer value in "Y".

Var Y = Int(x);

or

var myIntValue = Int(myFloatValue)
-1

Use Int64 instead of Int. Int64 can store large int values.

  • you mean, for the original question, or for the problem with Float having a value range larger than Int ? – benc Mar 6 at 18:46

protected by eyllanesc Apr 3 '18 at 6:54

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