216

I have a (somewhat?) basic question regarding time conversions in Swift.

I have an integer that I would like converted into Hours / Minutes / Seconds.

Example: Int = 27005 would give me:

7 Hours  30 Minutes 5 Seconds

I know how to do this in PHP, but alas, swift isn't PHP.

0

25 Answers 25

406

Define

func secondsToHoursMinutesSeconds(_ seconds: Int) -> (Int, Int, Int) {
    return (seconds / 3600, (seconds % 3600) / 60, (seconds % 3600) % 60)
}

Use

> secondsToHoursMinutesSeconds(27005)
(7,30,5)

or

let (h,m,s) = secondsToHoursMinutesSeconds(27005)

The above function makes use of Swift tuples to return three values at once. You destructure the tuple using the let (var, ...) syntax or can access individual tuple members, if need be.

If you actually need to print it out with the words Hours etc then use something like this:

func printSecondsToHoursMinutesSeconds(_ seconds: Int) {
  let (h, m, s) = secondsToHoursMinutesSeconds(seconds)
  print ("\(h) Hours, \(m) Minutes, \(s) Seconds")
}

Note that the above implementation of secondsToHoursMinutesSeconds() works for Int arguments. If you want a Double version you'll need to decide what the return values are - could be (Int, Int, Double) or could be (Double, Double, Double). You could try something like:

func secondsToHoursMinutesSeconds(seconds: Double) -> (Double, Double, Double) {
  let (hr,  minf) = modf(seconds / 3600)
  let (min, secf) = modf(60 * minf)
  return (hr, min, 60 * secf)
}
5
  • 25
    The last value (seconds % 3600) % 60 can be optimized to seconds % 60. No need to extract the hours first.
    – zisoft
    Nov 7, 2014 at 7:02
  • @GoZoner - i can't seem to be getting the printSecondsToHoursMinutesSeconds function to be working properly. This is what I have in a playground, but printSecondsToHoursMinutesSeconds isnt returning anything: import UIKit func secondsToHoursMinutesSeconds (seconds : Int) -> (Int, Int, Int) { return (seconds / 3600, (seconds % 3600) / 60, (seconds % 3600) % 60) } let (h,m,s) = secondsToHoursMinutesSeconds(27005) func printSecondsToHoursMinutesSeconds (seconds:Int) -> () { let (h, m, s) = secondsToHoursMinutesSeconds (seconds) println ("(h) Hours, (m) Minutes, (s) Seconds") }
    – Joe
    Nov 10, 2014 at 2:26
  • printSecondstoHoursMinutesSeconds() doesn't return anything (see the -> () return type in the function declaration). The function prints something; which does not show up in a Playground. If you want it to return something, say a String then eliminate the println() call and fix the function's return type.
    – GoZoner
    Nov 10, 2014 at 20:58
  • @GoZoner - just a quick question in your syntax above. How would I declare that 27005 in a variable? I'm working on a tool right now to get my feet wet with swift. I have a constant that displays the amount of seconds (generated after my basic calculations). let cocSeconds = cocMinutes * 60. (cocSeconds is what I want to use in place of 27005.) I think the problem I am having is cocSeconds is a double, and in your syntax, you're using Ints. How would I go about adjusting this code to put a variable in place of 27005? Thank you so much in advance!!!
    – Joe
    Nov 29, 2014 at 3:56
  • The solution I gave works for Int types because of the nature of the / and % functions. That is / drops the factional part. The same code won't work for Double. Specifically 2 == 13/5 but 2.6 == 13.0/5. Therefore you would need a different implementation for Double. I've updated my answer with a note on this.
    – GoZoner
    Nov 29, 2014 at 5:04
287

In macOS 10.10+ / iOS 8.0+ (NS)DateComponentsFormatter has been introduced to create a readable string.

It considers the user's locale und language.

let interval = 27005

let formatter = DateComponentsFormatter()
formatter.allowedUnits = [.hour, .minute, .second]
formatter.unitsStyle = .full

let formattedString = formatter.string(from: TimeInterval(interval))!
print(formattedString)

The available unit styles are positional, abbreviated, short, full, spellOut and brief.

For more information please read the documenation.

6
  • 50
    Using formatter.unitsStyle = .positional gives exactly what I want (which is 7:30:05)! Best answer IMO
    – Sam
    May 13, 2017 at 21:20
  • 24
    And you can add the zero ``` formatter.zeroFormattingBehavior = .pad ``` Feb 11, 2019 at 21:07
  • How to get the vice versa of this. That is how to convert Hour , Minute to seconds Jul 6, 2019 at 5:38
  • 1
    @AngelFSyrus Simply hours * 3600 + minutes * 60
    – vadian
    Jul 6, 2019 at 6:53
  • You might ned this if your seconds are giving less than a minute, especially in the shorter styles : formatter.zeroFormattingBehavior = [ .pad ]
    – multitudes
    Jul 6, 2021 at 15:43
123

Building upon Vadian's answer, I wrote an extension that takes a Double (of which TimeInterval is a type alias) and spits out a string formatted as time.

extension Double {
  func asString(style: DateComponentsFormatter.UnitsStyle) -> String {
    let formatter = DateComponentsFormatter()
    formatter.allowedUnits = [.hour, .minute, .second, .nanosecond]
    formatter.unitsStyle = style
    return formatter.string(from: self) ?? ""
  }
}

Here are what the various DateComponentsFormatter.UnitsStyle options look like:

10000.asString(style: .positional)  // 2:46:40
10000.asString(style: .abbreviated) // 2h 46m 40s
10000.asString(style: .short)       // 2 hr, 46 min, 40 sec
10000.asString(style: .full)        // 2 hours, 46 minutes, 40 seconds
10000.asString(style: .spellOut)    // two hours, forty-six minutes, forty seconds
10000.asString(style: .brief)       // 2hr 46min 40sec
6
  • @MaksimKniazev Usually time-oriented values are represented by Doubles in Swift.
    – Adrian
    Mar 23, 2018 at 1:10
  • @Adrian thank you for the extension. I like the .positional UnitStyle, however I would like to display ie: 9 seconds as "00:09" instead of "9", 1min 25 seconds as "01:25" instead of "1:25". I am able to achieve this calculating manually, based on Double value and I was wondering is there a way to incorporate into the extension itself? Thank you.
    – Vetuka
    Feb 7, 2019 at 22:06
  • 6
    FYI: if you want to keep the 0s before a single digit value (or simply if the value is 0) you need to add this formatter.zeroFormattingBehavior = .pad. This would give us: 3660.asString(style: .positional) // 01:01:00
    – Moumou
    May 9, 2020 at 17:03
  • Note that DateComponentsFormatter isn't available on Linux Dec 19, 2020 at 13:37
  • 1
    nanosecond break in swift5
    – slboat
    Dec 17, 2021 at 6:49
41

In Swift 5:

    var i = 9897

    func timeString(time: TimeInterval) -> String {
        let hour = Int(time) / 3600
        let minute = Int(time) / 60 % 60
        let second = Int(time) % 60

        // return formated string
        return String(format: "%02i:%02i:%02i", hour, minute, second)
    }

To call function

    timeString(time: TimeInterval(i))

Will return 02:44:57

3
  • Superb! Just what I required. I changed the 9897 for an Int variable and got the desired results. Thank you!
    – David_2877
    Jul 6, 2020 at 14:02
  • This doesn't work for me in Swift 5.3. I send it a TimeInterval value of 217368 milliseconds and it returns 60:22:48. 217368 milliseconds is 10:02. Sep 20, 2020 at 11:21
  • @SouthernYankee65 Please pass seconds, not the milliseconds. It worked for me in Swift 5.3 Oct 11, 2022 at 17:12
31

I have built a mashup of existing answers to simplify everything and reduce the amount of code needed for Swift 3.

func hmsFrom(seconds: Int, completion: @escaping (_ hours: Int, _ minutes: Int, _ seconds: Int)->()) {

        completion(seconds / 3600, (seconds % 3600) / 60, (seconds % 3600) % 60)

}

func getStringFrom(seconds: Int) -> String {

    return seconds < 10 ? "0\(seconds)" : "\(seconds)"
}

Usage:

var seconds: Int = 100

hmsFrom(seconds: seconds) { hours, minutes, seconds in

    let hours = getStringFrom(seconds: hours)
    let minutes = getStringFrom(seconds: minutes)
    let seconds = getStringFrom(seconds: seconds)

    print("\(hours):\(minutes):\(seconds)")                
}

Prints:

00:01:40

2
  • 6
    From my perspective, adding closure isn't really simplifies anything. Is there any good reason for closure?
    – derpoliuk
    Mar 16, 2017 at 14:49
  • @derpoliuk I've needed the closure for my specific needs in my app
    – David Seek
    Mar 16, 2017 at 15:28
28

Here is a more structured/flexible approach: (Swift 3)

struct StopWatch {

    var totalSeconds: Int

    var years: Int {
        return totalSeconds / 31536000
    }

    var days: Int {
        return (totalSeconds % 31536000) / 86400
    }

    var hours: Int {
        return (totalSeconds % 86400) / 3600
    }

    var minutes: Int {
        return (totalSeconds % 3600) / 60
    }

    var seconds: Int {
        return totalSeconds % 60
    }

    //simplified to what OP wanted
    var hoursMinutesAndSeconds: (hours: Int, minutes: Int, seconds: Int) {
        return (hours, minutes, seconds)
    }
}

let watch = StopWatch(totalSeconds: 27005 + 31536000 + 86400)
print(watch.years) // Prints 1
print(watch.days) // Prints 1
print(watch.hours) // Prints 7
print(watch.minutes) // Prints 30
print(watch.seconds) // Prints 5
print(watch.hoursMinutesAndSeconds) // Prints (7, 30, 5)

Having an approach like this allows the adding of convenience parsing like this:

extension StopWatch {

    var simpleTimeString: String {
        let hoursText = timeText(from: hours)
        let minutesText = timeText(from: minutes)
        let secondsText = timeText(from: seconds)
        return "\(hoursText):\(minutesText):\(secondsText)"
    }

    private func timeText(from number: Int) -> String {
        return number < 10 ? "0\(number)" : "\(number)"
    }
}
print(watch.simpleTimeString) // Prints 07:30:05

It should be noted that purely Integer based approaches don't take leap day/seconds into account. If the use case is dealing with real dates/times Date and Calendar should be used.

3
  • Could you please add month to your implementation? Thanks in advance!
    – ixany
    Dec 5, 2016 at 15:31
  • 3
    You should use NSCalendar (Calendar) for something like that.
    – GetSwifty
    Dec 5, 2016 at 16:08
  • 1
    You could replace return number < 10 ? "0\(number)" : "\(number)" by using a string formatter return String(format: "%02d", number) which automatically adds a zero when the number is below 10
    – Continuum
    Jan 10, 2020 at 1:28
20

Swift 5:

extension Int {

    func secondsToTime() -> String {

        let (h,m,s) = (self / 3600, (self % 3600) / 60, (self % 3600) % 60)

        let h_string = h < 10 ? "0\(h)" : "\(h)"
        let m_string =  m < 10 ? "0\(m)" : "\(m)"
        let s_string =  s < 10 ? "0\(s)" : "\(s)"

        return "\(h_string):\(m_string):\(s_string)"
    }
}

Usage:

let seconds : Int = 119
print(seconds.secondsToTime()) // Result = "00:01:59"
19

Xcode 12.1. Swift 5

DateComponentsFormatter: A formatter that creates string representations, by using unitsStyle u can get a string as you want and mention allowedUnits.

e.g: output for unitsStyle:: for 10000 secods

  1. full = "2 hours, 46 minutes, 49 seconds"
  2. positional = "2:46:40"
  3. abbreviated = "2h 46m 40s"
  4. spellOut = "two hours, forty-six minutes, forty seconds”
  5. short = "2hr,46 min,40 sec"
  6. brief = "2hr 46min 40sec"

Easy to use:

 let time = convertSecondsToHrMinuteSec(seconds: 10000)


func convertSecondsToHrMinuteSec(seconds:Int) -> String{
     let formatter = DateComponentsFormatter()
     formatter.allowedUnits = [.hour, .minute, .second]
     formatter.unitsStyle = .full
    
     let formattedString = formatter.string(from:TimeInterval(seconds))!
     print(formattedString)
     return formattedString
    }
14

Swift 4

func formatSecondsToString(_ seconds: TimeInterval) -> String {
    if seconds.isNaN {
        return "00:00"
    }
    let Min = Int(seconds / 60)
    let Sec = Int(seconds.truncatingRemainder(dividingBy: 60))
    return String(format: "%02d:%02d", Min, Sec)
}
2
  • What is truncatingRemainder ? Xcode does not recognize it for me.
    – Ahmadreza
    Jul 8, 2019 at 7:31
  • you can read more about truncatingRemainder here
    – r3dm4n
    Mar 23, 2021 at 14:49
13

Here is another simple implementation in Swift3.

func seconds2Timestamp(intSeconds:Int)->String {
   let mins:Int = intSeconds/60
   let hours:Int = mins/60
   let secs:Int = intSeconds%60

   let strTimestamp:String = ((hours<10) ? "0" : "") + String(hours) + ":" + ((mins<10) ? "0" : "") + String(mins) + ":" + ((secs<10) ? "0" : "") + String(secs)
   return strTimestamp
}
0
12

SWIFT 3.0 solution based roughly on the one above using extensions.

extension CMTime {
  var durationText:String {
    let totalSeconds = CMTimeGetSeconds(self)
    let hours:Int = Int(totalSeconds.truncatingRemainder(dividingBy: 86400) / 3600)
    let minutes:Int = Int(totalSeconds.truncatingRemainder(dividingBy: 3600) / 60)
    let seconds:Int = Int(totalSeconds.truncatingRemainder(dividingBy: 60))

    if hours > 0 {
        return String(format: "%i:%02i:%02i", hours, minutes, seconds)
    } else {
        return String(format: "%02i:%02i", minutes, seconds)
    }

  }
}

Use it with AVPlayer calling it like this?

 let dTotalSeconds = self.player.currentTime()
 playingCurrentTime = dTotalSeconds.durationText
8

I had answered to the similar question, however you don't need to display milliseconds in the result. Hence my solution requires iOS 10.0, tvOS 10.0, watchOS 3.0 or macOS 10.12.

You should call func convertDurationUnitValueToOtherUnits(durationValue:durationUnit:smallestUnitDuration:) from the answer that I already mentioned here:

let secondsToConvert = 27005
let result: [Int] = convertDurationUnitValueToOtherUnits(
    durationValue: Double(secondsToConvert),
    durationUnit: .seconds,
    smallestUnitDuration: .seconds
)
print("\(result[0]) hours, \(result[1]) minutes, \(result[2]) seconds") // 7 hours, 30 minutes, 5 seconds
0
7

Answer of @r3dm4n was great. However, I also needed hour in it. Just in case someone else needed too here it is:

func formatSecondsToString(_ seconds: TimeInterval) -> String {
    if seconds.isNaN {
        return "00:00:00"
    }
    let sec = Int(seconds.truncatingRemainder(dividingBy: 60))
    let min = Int(seconds.truncatingRemainder(dividingBy: 3600) / 60)
    let hour = Int(seconds / 3600)
    return String(format: "%02d:%02d:%02d", hour, min, sec)
}
0
5

Swift 5 & String Response, In presentable format

public static func secondsToHoursMinutesSecondsStr (seconds : Int) -> String {
      let (hours, minutes, seconds) = secondsToHoursMinutesSeconds(seconds: seconds);
      var str = hours > 0 ? "\(hours) h" : ""
      str = minutes > 0 ? str + " \(minutes) min" : str
      str = seconds > 0 ? str + " \(seconds) sec" : str
      return str
  }

public static func secondsToHoursMinutesSeconds (seconds : Int) -> (Int, Int, Int) {
        return (seconds / 3600, (seconds % 3600) / 60, (seconds % 3600) % 60)
 }

Usage:

print(secondsToHoursMinutesSecondsStr(seconds: 20000)) // Result = "5 h 33 min 20 sec"
3

According to GoZoner answer I have wrote an Extension to get the time formatted according to the hours, minute, and seconds:

extension Double {

    func secondsToHoursMinutesSeconds () -> (Int?, Int?, Int?) {
        let hrs = self / 3600
        let mins = (self.truncatingRemainder(dividingBy: 3600)) / 60
        let seconds = (self.truncatingRemainder(dividingBy:3600)).truncatingRemainder(dividingBy:60)
        return (Int(hrs) > 0 ? Int(hrs) : nil , Int(mins) > 0 ? Int(mins) : nil, Int(seconds) > 0 ? Int(seconds) : nil)
    }

    func printSecondsToHoursMinutesSeconds () -> String {

        let time = self.secondsToHoursMinutesSeconds()

        switch time {
        case (nil, let x? , let y?):
            return "\(x) min \(y) sec"
        case (nil, let x?, nil):
            return "\(x) min"
        case (let x?, nil, nil):
            return "\(x) hr"
        case (nil, nil, let x?):
            return "\(x) sec"
        case (let x?, nil, let z?):
            return "\(x) hr \(z) sec"
        case (let x?, let y?, nil):
            return "\(x) hr \(y) min"
        case (let x?, let y?, let z?):
            return "\(x) hr \(y) min \(z) sec"
        default:
            return "n/a"
        }
    }
}

let tmp = 3213123.printSecondsToHoursMinutesSeconds() // "892 hr 32 min 3 sec"
0
3

Here is what I use for my Music Player in Swift 4+. I am converting seconds Int to readable String format

extension Int {
    var toAudioString: String {
        let h = self / 3600
        let m = (self % 3600) / 60
        let s = (self % 3600) % 60
        return h > 0 ? String(format: "%1d:%02d:%02d", h, m, s) : String(format: "%1d:%02d", m, s)
    }
}

Use like this:

print(7903.toAudioString)

Output: 2:11:43

3

Latest Code: XCode 10.4 Swift 5

extension Int {
    func timeDisplay() -> String {
        return "\(self / 3600):\((self % 3600) / 60):\((self % 3600) % 60)"
    }
}
3

From @Gamec answer

typealias CallDuration = Int

extension CallDuration {
    func formatedString() -> String? {
        let hours = self / 3600
        let minutes = (self / 60) % 60
        let seconds = self % 60
        if hours > 0 { return String(format: "%0.2d:%0.2d:%0.2d", hours, minutes, seconds) }
        return String(format: "%0.2d:%0.2d", minutes, seconds)
    }
}


Usage:

let duration: CallDuration = 3000
duration.formatedString() // 50 minute
2

The simplest way imho:

let hours = time / 3600
let minutes = (time / 60) % 60
let seconds = time % 60
return String(format: "%0.2d:%0.2d:%0.2d", hours, minutes, seconds)
2
  • It may be ld for double instead of d for int.
    – Nike Kov
    Nov 16, 2017 at 19:27
  • @NikeKov %ld is for long int. Use %f for double and float.
    – HangarRash
    Mar 15, 2023 at 17:25
1

NSTimeInterval is Double do do it with extension. Example:

extension Double {

    var formattedTime: String {

        var formattedTime = "0:00"

        if self > 0 {

            let hours = Int(self / 3600)
            let minutes = Int(truncatingRemainder(dividingBy: 3600) / 60)

            formattedTime = String(hours) + ":" + (minutes < 10 ? "0" + String(minutes) : String(minutes))
        }

        return formattedTime
    }
}
1

convert a number into time as a string

func convertToHMS(number: Int) -> String {
  let hour    = number / 3600;
  let minute  = (number % 3600) / 60;
  let second = (number % 3600) % 60 ;
  
  var h = String(hour);
  var m = String(minute);
  var s = String(second);
  
  if h.count == 1{
      h = "0\(hour)";
  }
  if m.count == 1{
      m = "0\(minute)";
  }
  if s.count == 1{
      s = "0\(second)";
  }
  
  return "\(h):\(m):\(s)"
}
print(convertToHMS(number:3900))
0

I went ahead and created a closure for this (in Swift 3).

let (m, s) = { (secs: Int) -> (Int, Int) in
        return ((secs % 3600) / 60, (secs % 3600) % 60) }(299)

This will give m = 4 and s = 59. So you can format that as you wish. You may of course want to add hours as well, if not more information.

0

Swift 4 I'm using this extension

 extension Double {

    func stringFromInterval() -> String {

        let timeInterval = Int(self)

        let millisecondsInt = Int((self.truncatingRemainder(dividingBy: 1)) * 1000)
        let secondsInt = timeInterval % 60
        let minutesInt = (timeInterval / 60) % 60
        let hoursInt = (timeInterval / 3600) % 24
        let daysInt = timeInterval / 86400

        let milliseconds = "\(millisecondsInt)ms"
        let seconds = "\(secondsInt)s" + " " + milliseconds
        let minutes = "\(minutesInt)m" + " " + seconds
        let hours = "\(hoursInt)h" + " " + minutes
        let days = "\(daysInt)d" + " " + hours

        if daysInt          > 0 { return days }
        if hoursInt         > 0 { return hours }
        if minutesInt       > 0 { return minutes }
        if secondsInt       > 0 { return seconds }
        if millisecondsInt  > 0 { return milliseconds }
        return ""
    }
}

useage

// assume myTimeInterval = 96460.397    
myTimeInteval.stringFromInterval() // 1d 2h 47m 40s 397ms
0
0

neek's answer isn't correct.

here's the correct version

func seconds2Timestamp(intSeconds:Int)->String {
   let mins:Int = (intSeconds/60)%60
   let hours:Int = intSeconds/3600
   let secs:Int = intSeconds%60

   let strTimestamp:String = ((hours<10) ? "0" : "") + String(hours) + ":" + ((mins<10) ? "0" : "") + String(mins) + ":" + ((secs<10) ? "0" : "") + String(secs)
   return strTimestamp
}
0

Another way would be convert seconds to date and take the components i.e seconds, minutes and hour from date itself. This solution has limitation only till 23:59:59

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